Head Discharging Compressor System
A cylinder arrangement for a reciprocating air compressor system includes a compressor pump having a compression cylinder and piston. An inlet valve moves to an open position and allows air to enter the compression cylinder through an inlet valve clearance during intake strokes of the piston. The inlet valve moves to a closed position and prevents air from exiting the compression cylinder through the inlet valve clearance during compression strokes of the piston. An orifice has a minimum cross sectional area smaller than the inlet valve clearance. The orifice allows air to enter the compression cylinder during intake strokes of the piston and allows air to exit the compression cylinder during piston compression strokes. The amount of air passing through the orifice is significantly less than the amount of air passing through the inlet valve clearance during each intake stroke. The orifice relieves backpressure within the compression cylinder.
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Reciprocating air compressor systems are used to provide compressed air for the operation of various types of mechanical and pneumatic devices. Such systems are manufactured in a broad range of sizes and capacities that allow for air deliveries that vary from less than 1 Standard Cubic Foot per Minute (“SCFM”) to more than 100 SCFM. A piston is commonly employed to reciprocate with repeated intake and compression strokes within a compression cylinder. In most reciprocating compressor systems, an arrangement of valves allows air to be drawn from the environment surrounding the compressor system through at least one inlet valve into a compression cylinder where the air is compressed. The compressed air is then channeled through at least one outlet valve and a discharge tube into an air reservoir where air is stored. The air pressure within the air reservoir is normally maintained within a predetermined pressure range by the operation of the compressor.
An air reservoir check valve allows compressed air at a pressure greater than that of the reservoir to flow from the compressor through the discharge tube and into the reservoir. The air reservoir check valve also prevents air from flowing from the reservoir back into the discharge tube when the compressor is off. However, when the compressor turns off, a residual pressure, called a back pressure, remains within the discharge tube and on the piston within the compression cylinder when the compressor starts up again.
It is usually desirable to relieve back pressure on the piston when the piston is not reciprocating within the compression cylinder since the piston must overcome this back pressure as it starts to compress air. Relieving the back pressure significantly improves the performance of the compressor system and extends the operational life of the compressor pump. To relieve back pressure, compressor systems often employ a bleed orifice downstream from the compression cylinder sometimes included as part of an air reservoir check valve. The bleed orifice continuously allows compressed air to flow to the surrounding atmosphere from the discharge tube and connected compression cylinder. When the piston is not reciprocating within the compression cylinder, the bleed orifice unloads backpressure from the piston at a preselected rate of unloading determined by the diameter of the bleed orifice.
When the piston reciprocates within the compression cylinder, the larger clearance of the open outlet valve from the compression chamber and the larger diameter of the discharge tube, compared to the significantly smaller diameter of the bleed orifice, allow an amount of air to be compressed that is sufficient to increase pressurization of the air reservoir. However, as a result of the downstream location of the bleed orifice from the compression cylinder, compressed air is discharged continuously from the bleed orifice while the piston reciprocates within the compression cylinder. Thus, some air pressure within the discharge tube is wasted continuously through the bleed orifice as the piston reciprocates. This causes an inherent inefficiency in the compressor system that is directly related to the amount of air pressure lost through the bleed orifice.
Compressor systems can also become less efficient if the compression cylinder is not substantially sealed from the discharge tube during intake strokes of the piston. During each compression stroke, air that has been compressed and that has moved downstream through the discharge tube tends to acquire additional heat energy. If the compressed air subsequently escapes from the discharge tube back into the compression cylinder, the heated, previously compressed air may be less dense than cooler air entering the compression cylinder through the inlet valve.
The escape of air from the discharge tube back to the compression cylinder can be caused by an incompletely sealed outlet valve or another opening between the compression cylinder and discharge tube. The resulting leakage of air between the compression cylinder and discharge tube during intake strokes of the piston can produce a condition known as reversion. In this condition, since the heated, previously compressed air present within the compression cylinder can have a density less than cooler air entering through the inlet valve, thee amount of air taken from the atmosphere during each piston stroke is reduced and can lead to lower compressed air production by the compressor.
If the compression chamber outlet valve is not substantially leak free or if a bleed orifice is located downstream of the outlet valve at a location such as the discharge tube, the discharge tube will be unable to sustain the pressure of compressed air within the air reservoir when the piston is not reciprocating. As a result, an additional check valve is normally required to maintain air pressure within the compression cylinder. The inclusion of such additional components can significantly increase the overall unit construction cost of the compressor system.
Such typical limitations of prior art systems can be best understood with reference to the example prior art reciprocating air compressor system 20 depicted in
As the piston 26 reciprocates within the compression cylinder 24, each intake stroke of the piston 26, during which the piston 26 moves in a downward direction in the compression chamber 24, causes air to be drawn from the environment surrounding the compressor system 20 through an air filter 40 into a cylinder inlet chamber 42. Referring briefly to
During each compression stroke, the piston (not shown in
Referring again to
As best understood by comparing
The reservoir check valve 52 also includes a plug 56 having a tapered section 58. The plug 56 is shaped with flutes 57 (shown in
When the piston 26 reciprocates in the compression cylinder 24, air forced through the outlet valve 46 by compression strokes of the piston 26 pressurizes the cylinder outlet chamber 48 and discharge tube 50. Some air from within the cylinder outlet chamber 48 escapes back through the unsealed outlet valve 46 through reversion during each subsequent intake stroke of the piston 26. As long as air pressure within the discharge tube 50 is greater than in the environment surrounding the air compressor system 20, air flows continuously through the bleed orifice 54 to slowly but constantly remove air pressure within the discharge tube 50. If the air pressure within the discharge tube 50 is initially sufficient to exert a cracking force against the o-ring 60 of the reservoir check valve 52 and remains sufficiently greater than the air pressure contained within the air reservoir 36 to overcome the biasing force of the o-ring 60, the o-ring 60 is forced to stretch outward and down the tapered section 58 toward the o-ring stop 62 to an open position (not shown in
Although some compressed air from the valve outlet chamber 48 is lost by reversion during intake strokes of the piston 26 and although some pressurized air is constantly lost during operation of the compressor 22 through the bleed orifice 54, the rate at which air is lost is less than the rate at which air can be compressed by the reciprocating piston 26. The cross sectional areas of the air passage 59 (see
A cylinder arrangement for a reciprocating air compressor system includes a compressor pump having a compression cylinder. A piston is positioned to reciprocate with intake and compression strokes within the compression cylinder. An inlet valve has open and closed positions, an inlet valve clearance being present in the inlet valve when the inlet valve is in the open position. The inlet valve moves to the open position and allows air to enter the compression cylinder through the inlet valve clearance during intake strokes of the piston. The inlet valve moves to the closed position and prevents air from exiting the compression cylinder through the inlet valve clearance during compression strokes of the piston.
An orifice has a minimum cross sectional area smaller than the effective area of the inlet valve clearance. The orifice is positioned to allow air to enter the compression cylinder during intake strokes of the piston and to allow air to exit the compression cylinder during compression strokes of the piston. The amount of air passing through the orifice is significantly less than the amount of air passing through the inlet valve clearance during each intake stroke. When the piston is not reciprocating within the compression cylinder, remaining backpressure within the compression cylinder is relieved through the orifice.
A second embodiment also includes a discharge tube and allows compressed air to flow from the compressor pump to an air reservoir. An outlet valve having open and closed positions moves to the open position and allows air to exit the compression cylinder and enter the discharge tube during compression strokes of the piston. The outlet valve moves to the closed position and prevents air from entering the compression cylinder through the outlet valve during intake strokes of the piston. The outlet valve also moves to the closed position to prevent air from the discharge tube and air reservoir from entering the compression cylinder through the outlet valve when the piston is not reciprocating in the compression cylinder. The outlet valve is constructed so that when in the closed position it is substantially leak free and is generally capable of sealing the backpressure of the discharge tube to preserve the pressure of compressed air in the air reservoir.
The placement of the orifice to allow air to enter the compression cylinder through the orifice during intake strokes of the piston and to only allow air to exit the compression cylinder through the orifice during compression strokes of the piston allows for an approximately 50% reduction in the amount of compressed air that is wasted through the orifice while the piston reciprocates within the compression cylinder. This is done without reducing the ability of the orifice to remove backpressure from the piston when the piston is not reciprocating.
This placement of the orifice allows for the usage of a substantially leak free valve, such as an elastomeric o-ring valve, as an outlet valve. If the outlet valve is substantially leak free, it is possible to use outlet valve to seal and allow for pressure of the air reservoir to be maintained within the discharge tube, eliminating the need for an additional check valve to prevent the escape of air pressure from the air reservoir to the surrounding atmosphere.
The use of a substantially leak free valve prevents the leaking or reversion of compressed air back through the outlet valve when the outlet valve is closed during intake strokes of the piston. This allows for an increase in the amount of air that can be drawn into the pump from the surrounding atmosphere and leads to greater efficiency of the compressor pump.
In some embodiments, the use of a substantially leak free valve, such as an elastomeric o-ring valve, as an outlet valve also allows for improved cooling of the compressor pump since a hollow valve shaft can be used to enhance the transfer of heat to cooler air flowing throughout the cooling fins and across the cylinder head of the pump.
Those skilled in the art will realize that this invention is capable of embodiments that are different from those shown and that details of the structure of the disclosed arrangement can be changed in various manners without departing from the scope of this invention. Accordingly, the drawings and descriptions are to be regarded as including such equivalent arrangements as do not depart from the spirit and scope of the invention.
For a more complete understanding and appreciation of this invention, and many of its advantages, reference will be made to the following detailed description taken in conjunction with the accompanying drawings.
Referring again to the drawings, identical reference numerals and letters designate the same or corresponding parts throughout the several figures shown on the drawings. In some drawings, some specific embodiment variations in corresponding parts are denoted with the addition of lower case letters and/or prime indicators to reference numerals.
A reciprocating air compressor system 64a according to the invention is depicted in
Referring to FIGS. 5 and 7-9, which depicts a magnified partial cross sectional view of the compressor pump 66a during an intake stroke of the piston 70, each intake stroke causes air to be drawn from the atmosphere surrounding the compressor system 64a through an air filter 82a and head assembly 83a into a cylinder inlet chamber 84a. A reed valve serves as an inlet valve 86a allowing a unidirectional flow of air from the cylinder inlet chamber 84a to the compression cylinder 68a throughout the duration of each intake stroke.
An orifice 88a is positioned on a hollow orifice pin 90a to allow airflow between the cylinder inlet chamber 84a and compression cylinder 68a.
Referring again to FIGS. 5 and 7-9, both the inlet valve 86a and orifice pin 90a/orifice 88a are positioned on a cylinder valve plate 92a that is located between the cylinder inlet chamber 84a and compression cylinder 68a. Air is therefore allowed to also pass through the cylinder valve plate 92a when passing through the inlet valve 86a and orifice 88a. As shown in
As best understood by comparing
The size of the inlet valve clearance 87a and the corresponding amount of air that can be admitted during each intake stroke is dependent on the size and configuration of the inlet valve 86a.
Referring again to
As best understood with a further comparison of FIGS. 5 and 6-9 with
The sealing ring 122a and actuation ring 124a are constructed from materials selected for having optimal properties for their respective functions and interactions. For example, one suitable combination is the use of a Teflon sealing ring 122a with a silicone elastomer actuation ring 124a. In such a combination, the Teflon material of the sealing ring 122a provides effective sealing and low frictional resistance to the operation of the outlet valve 108a while the silicone material of the actuation ring 124a is effective for providing elasticity, high-temperature resistance, and hardening resistance while retaining viscosity. Other possible actuation ring materials include nitrile elastomers and viton elastomers. Other possible sealing ring materials include viton elastomers, hard nitrate elastomers, brass, and stainless steel.
Although the invention is shown and described in
Referring again to
As best understood by comparing
The ability of the outlet valve 108a to maintain air pressure in the outlet chamber 114a, discharge tube 126a, and air reservoir 80 eliminates the need for a separate reservoir check valve to preserve air pressure in the air reservoir 80 and further eliminates the need for a bleed orifice 54a to remove back pressure within the discharge tube 126a and outlet chamber 114a when the piston 70 is not reciprocating within the compression cylinder 68a. As depicted in
It is usually desirable to remove backpressure that may remain in the compression cylinder 68a when the piston 70 is not reciprocating. Since the orifice 88a is much smaller than the inlet valve clearance 87a of the open inlet valve 86a, air passes through the orifice 88a at a much slower rate than through the inlet valve 86a during the intake stroke. However, given the typical length of intervals during which the piston 70 is not reciprocating within the compression cylinder 68a, the removal of such backpressure can normally proceed at a rate that is much slower than the rate at which air is compressed by the piston 70. Therefore, the orifice 88a can be used for the removal of backpressure from the compression cylinder 68a.
The advantages of using the orifice 88a to remove backpressure in conjunction with an outlet valve according to the invention are best understood by comparing
Since air is drawn into the compression cylinder 68a during the intake stroke, the outlet valve 108a assumes the closed position, with the sealing ring 122a moving into sealing contact with the cylinder valve plate 92a due to the bias of the actuation ring 124a and suction forces of the piston 70. The sealing contact between the sealing ring 122a and cylinder valve plate 92a in the closed position makes the outlet valve 108a substantially leak free. Thus, the outlet valve 108a is sufficient to prevent air from the discharge tube 125a and cylinder outlet chamber 114a from entering or reverting into the compression cylinder 68a during the intake stroke. This sealing effect substantially reduces inefficiencies of the compressor pump 66a that could otherwise be caused by reversion.
Consider the compressor pump 66a when the piston 70 is not reciprocating within the compression cylinder 68a. The sealing ring 122a moves to the closed position, as depicted in FIG, 7, to seal against the cylinder valve plate 92a and prevent the loss of air pressure within the air reservoir 80, discharge valve 126a, and cylinder outlet chamber 114a. The compressor system 64a of
Backpressure remaining in the compression cylinder 68a is relieved through the orifice 88a into the cylinder inlet chamber 84a and surrounding environment without affecting the air pressure contained within the air reservoir 80, discharge valve 126a, and cylinder outlet chamber 114a. This release of backpressure occurs without the need for an additional check valve and bleed mechanism such as the reservoir check valve 52 and bleed orifice 54 in the prior compressor system 20 of
Now consider
Referring again to
Although reciprocation of the piston 70 results in some air being lost through the orifice 88a during each compression stroke, the positioning of the orifice 88a between the cylinder inlet chamber 84a and compression cylinder 68a and the use of the substantially leak free outlet valve 108a allows for a substantial reduction in the overall amount of compressed air that is wasted. Rather than being bled continuously, air is lost from the compression cylinder 86a through the orifice 88a to the inlet chamber 84a only during each compression stroke. After a quantity of air is lost through the orifice 88a during each compression stroke, a roughly equal amount of air is drawn back through the orifice 88a from the cylinder inlet chamber 84a to the compression cylinder 68a during each subsequent intake stroke. Air is not lost through the orifice 88a during the intake strokes.
By limiting the loss of compressed air through the orifice 88a to compression strokes, the invention increases the overall efficiency of the compressor system 64a. For example, since the placement of the bleed orifice 54 in the prior art compressor system 20 of
Referring to
For example,
The valve piston 134b is constructed of a polymer, elastomer, rubber, or other material suitable for creating a sealing contact with the cylinder valve plate 92b. A valve spring 136b biases the valve piston 134b to a closed position that is also the closed position of the outlet valve 108b and depicted in
When the piston 70 reciprocates within the compression cylinder 68b, the valve piston 134b moves against the bias of the valve spring 136b away from sealing contact with the cylinder valve plate 92b to an open position (not shown) during each compression stroke. The open position results in an outlet valve clearance that allows air to exit the compression cylinder 68b through the outlet hole 116b. The inlet valve 86b closes to prevent air from exiting the compression cylinder 68b through the inlet hole 106b. Although some air escapes the compression cylinder 68b into the inlet chamber 84b through the orifice 88b, the cross sectional size of the outlet valve clearance of the outlet valve 108b is much larger than the orifice 88b, resulting in a net movement of compressed air into the outlet chamber 114b and discharge tube 126b. During subsequent intake strokes, the valve piston 134b moves back into the closed position and prevents backpressure from flowing back into the compression cylinder 68b while the inlet valve 86b opens to allow air to enter the compression cylinder 68b from the inlet chamber 84b.
It is contemplated that in some embodiments of the invention, orifices provided to relieve compression cylinder backpressure may be reconfigured or combined with other compressor components. For example,
During each intake stroke of the piston 70, the inlet valve 86c opens to allow a valve clearance that is much larger than each orifice 88c, allowing a substantial amount of air to enter the compression cylinder 68c while the outlet valve 108c prevents backpressure in the outlet chamber 114c from flowing through the outlet hole 116c. During each compression stroke, the outlet valve 108c opens and the inlet valve 106c closes, though some compressed air escapes through the inlet hole 106c via each orifice 88c during the compression stroke. However, the cross sectional size of the orifice 88c is sufficient to allow the relief of backpressure from within the compression cylinder 68c during intervals when the piston 70 is not reciprocating. During such intervals, the outlet valve 108c continues to seal off backpressure in the outlet chamber 114c and discharge tube 126c and prevent the backpressure from entering the compression cylinder 68c.
During each intake stroke of the piston 70, the inlet valve 86d opens to allow a valve clearance that is much larger than the orifice 88d, allowing a substantial amount of air to enter the compression cylinder 68d while the outlet valve 108d prevents backpressure in the outlet chamber 114d from flowing through the outlet hole 116d. Some air from the inlet chamber 84d enters the compression cylinder 68d through the orifice tube 138d. During each compression stroke, the outlet valve 108d opens and the inlet valve 106d closes, though some compressed air escapes through the orifice tube 138d and orifice 88d back into the inlet chamber 84d. During intervals when the piston 70 is not reciprocating, the orifice tube 138d and orifice 88d relieve backpressure directly from the compression cylinder 68d into the inlet chamber 84d without first channeling air through the inlet hole 106d or through the cylinder valve plate 92d.
It will be further appreciated that outlet valves that are both metallic sealing check valves and substantially leak free can be implemented within the contemplated scope of the invention. It will also be appreciated that inlet valves that are substantially leak free can also be used. For example,
A magnified, perspective exploded view of the outlet valve 108f is depicted in
Referring again to
The compressor pump 66f also includes an orifice 88f positioned within an orifice tube 138f leading directly from the compression cylinder 68f to the environment surrounding the compressor pump 66f.
Operation of the compressor pump 66f is best understood by comparing
During each intake stroke, the valve disk 140 of the outlet valve 108f remains in the closed position, as depicted in
During each compression stroke of the piston 70, the valve disk 140′ of the inlet valve 8f returns to the closed position under the combined force of air compression by the piston 70 and the bias of the valve spring 148′, as depicted in
The compression forces of the piston 70 during the intake stroke also result in the valve disk 140 of the outlet valve 108f moving against the bias of the valve spring 148, as depicted in
Those skilled in the art will recognize that the various features of this invention described above can be used in various combinations with other elements without departing from the scope of the invention. Thus, the appended claims are intended to be interpreted to cover such equivalent air compressor systems as do not depart from the spirit and scope of the invention.
Claims
1. A compressor head for a reciprocating air compressor, the air compressor having a compressor pump having a compression cylinder, the compression cylinder having a piston positioned to reciprocate with intake and compression strokes within the compression cylinder, the compressor head comprising:
- an inlet valve, said inlet valve having an open position and a closed position, said inlet valve having a valve clearance when said inlet valve is in said open position, said inlet valve moving to said open position and allowing air to enter the compression cylinder through said valve clearance during intake strokes of the piston, said inlet valve moving to said closed position and preventing air from exiting the compression cylinder through the valve clearance during compression strokes of the piston; and
- an orifice having a cross sectional size that is significantly smaller than the effective area of said valve clearance of said inlet valve, said orifice positioned to allow air to enter the compression cylinder during intake strokes of the piston and to allow air to exit the compression cylinder during compression strokes of the piston.
2. The compressor head for a reciprocating air compressor of claim 1, said compressor head further comprising an outlet valve having an open position and a closed position, said outlet valve moving to said open position and allowing air to exit said compression cylinder during compression strokes of said piston, said outlet valve moving to said closed position and preventing air from entering said compression cylinder through said outlet valve during intake strokes of said piston, said outlet valve moving to said closed position and preventing air from entering said compression cylinder through said outlet valve when said piston is not reciprocating in said compression cylinder, said outlet valve being substantially leak free when in said closed position.
3. The compressor head for a reciprocating air compressor of claim 1, said compressor head further comprising an outlet valve having an open position and a closed position, said outlet valve moving to said open position and allowing air to exit said compression cylinder during compression strokes of said piston, said outlet valve moving to said closed position and preventing air from entering said compression cylinder through said outlet valve during intake strokes of said piston, said outlet valve moving to said closed position and preventing air from entering said compression cylinder through said outlet valve when said piston is not reciprocating in said compression cylinder, said outlet valve being substantially leak free when in said closed position, said outlet valve comprising an elastomeric o-ring check valve.
4. The compressor head for a reciprocating air compressor of claim 1 further comprising:
- an outlet valve that is an elastomeric o-ring check valve,
- a hollow valve shaft, said valve shaft having a tapered portion, a non-tapered portion, an open top, and an inside surface;
- a sealing ring having a closed position and an open position, said sealing ring being capable of reciprocating along said non-tapered portion of said valve shaft from said closed position and said open position;
- an actuation ring positioned to reciprocate along said tapered portion of said valve shaft, said actuation ring biasing said sealing ring to said closed position; and
- said open top of said valve shaft being positioned to allow air from the environment surrounding said cylinder arrangement to flow across and cool said inside surface of said valve shaft.
5. The compressor head for a reciprocating air compressor of claim 1 having an outlet valve comprising a spring-actuated elastomeric o-ring check valve.
6. The compressor head for a reciprocating air compressor of claim 1 having an outlet valve comprising a metallic sealing check valve.
7. The compressor head for a reciprocating air compressor of claim 1, said inlet valve comprising a reed valve.
8. The compressor head for a reciprocating air compressor of claim 1 having an outlet valve comprising a spring-actuated check valve.
9. The compressor head for a reciprocating air compressor of claim 1 further comprising an outlet valve, said outlet valve being capable of sealing and preventing air that has been compressed by said piston from flowing back through said outlet valve when said outlet valve is closed during intake strokes of said piston.
10. The compressor head for a reciprocating air compressor of claim 1 further comprising:
- a cylinder valve plate, said inlet valve being positioned on said valve plate to allow air to pass through said valve plate into said compression cylinder during intake strokes of said piston, said orifice being positioned on said valve plate to allow air to pass through said valve plate to said compression cylinder during intake strokes of said piston and being positioned to allow air to exit said compression cylinder through said valve plate during compression strokes of said piston; and
- an outlet valve positioned relative to said valve plate to allow air to exit from said compression cylinder through said valve plate during compression strokes of said piston.
11. The compressor head for a reciprocating air compressor of claim 1 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- a cylinder outlet chamber for receiving air that has been compressed by said piston in said compression cylinder;
- a cylinder valve plate positioned between said cylinder inlet chamber and said compression cylinder and between said compression cylinder and said cylinder outlet chamber;
- said inlet valve being positioned on said valve plate to allow air to pass from said cylinder inlet chamber into said compression cylinder during intake strokes of said piston;
- said orifice being positioned to allow air to pass through said valve plate from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston and positioned to allow air to pass through said valve plate from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston; and
- an outlet valve being positioned relative to said valve plate to allow air to pass from said compression cylinder to said cylinder outlet chamber during compression strokes of said piston,
12. The compressor head for a reciprocating air compressor of claim 1 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- said orifice being positioned to allow air to flow from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston; and
- said orifice being positioned to allow air to flow from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston.
13. The compressor head for a reciprocating air compressor of claim 1 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- said orifice extending from said cylinder inlet chamber to said compression cylinder;
- said orifice being positioned to allow air to flow from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston; and
- said orifice being positioned to allow air to flow from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston.
14. The compressor head for a reciprocating air compressor of claim 1 further comprising:
- said inlet valve comprising a reed valve; and
- said orifice being positioned to extend through said reed valve to allow air to flow into said compression cylinder during intake strokes of said piston and to allow air to exit from said compression cylinder during compression strokes of said piston.
15. The compressor head for a reciprocating air compressor of claim 1 further comprising:
- said orifice extending from said compression cylinder to the environment surrounding said compressor pump;
- said orifice being positioned to allow air to flow from the environment surrounding said compressor pump to said compression cylinder during intake strokes of said piston; and
- said orifice being positioned to allow air to flow from said compression cylinder to the environment surrounding said compressor pump during compression strokes of said piston.
16. The compressor head for a reciprocating air compressor of claim 1 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- said orifice including an orifice tube extending from said cylinder inlet chamber to the exterior of said compressor pump and to said compression cylinder;
- said orifice being positioned to allow air to flow from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston; and
- said orifice being positioned to allow air to flow from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston.
17. The compressor bead for a reciprocating air compressor of claim 1 further comprising an outlet valve, a discharge tube, and an air reservoir, said outlet valve being positioned to prevent the loss of air pressure within said air reservoir and said discharge tube through said compressor pump when said piston is not reciprocating.
18. A compressor head for a reciprocating air compressor, the air compressor having a compressor pump having a compression cylinder, the compression cylinder having a piston positioned to reciprocate with intake and compression strokes within the compression cylinder, the compressor head comprising:
- an inlet valve, said inlet valve having an open position and a closed position, said inlet valve having a valve clearance when said inlet valve is in said open position, said inlet valve moving to said open position and allowing air to enter the compression cylinder through said valve clearance during intake strokes of the piston, said inlet valve moving to said closed position and preventing air from exiting the compression cylinder through the valve clearance during compression strokes of the piston; and
- an air passage extending from upstream of said inlet valve to said compression cylinder, said air passage having a cross sectional size that is significantly smaller than the effective area of said valve clearance of said inlet valve, said air passage positioned to allow air to enter the compression cylinder during intake strokes of the piston and to allow air to exit the compression cylinder during compression strokes of the piston.
19. The compressor head for a reciprocating air compressor of claim 18, said air passage further comprising an orifice, said orifice having a cross sectional size that is significantly smaller than the effective area of said valve clearance of said inlet valve, said orifice positioned to allow air to enter the compression cylinder during intake strokes of the piston and to allow air to exit the compression cylinder during compression strokes of the piston.
20. The compressor head for a reciprocating air compressor of claim 18, said compressor head further comprising an outlet valve having an open position and a closed position, said outlet valve moving to said open position and allowing air to exit said compression cylinder during compression strokes of said piston, said outlet valve moving to said closed position and preventing air from entering said compression cylinder through said outlet valve during intake strokes of said piston, said outlet valve moving to said closed position and preventing air from entering said compression cylinder through said outlet valve when said piston is not reciprocating in said compression cylinder, said outlet valve being substantially leak free when in said closed position.
21. The compressor head for a reciprocating air compressor of claim 18, said compressor head further comprising an outlet valve having an open position and a closed position, said outlet valve moving to said open position and allowing air to exit said compression cylinder during compression strokes of said piston, said outlet valve moving to said closed position and preventing air from entering said compression cylinder through said outlet valve during intake strokes of said piston, said outlet valve moving to said closed position and preventing air from entering said compression cylinder through said outlet valve when said piston is not reciprocating in said compression cylinder, said outlet valve being substantially leak free when in said closed position, said outlet valve comprising an elastomeric o-ring check valve.
22. The compressor head for a reciprocating air compressor of claim 18 further comprising:
- an outlet valve that is an elastomeric o-ring check valve,
- a hollow valve shaft, said valve shaft having a tapered portion, a non-tapered portion, an open top, and an inside surface;
- a sealing ring having a closed position and an open position, said sealing ring being capable of reciprocating along said non-tapered portion of said valve shaft from said closed position and said open position;
- an actuation ring positioned to reciprocate along said tapered portion of said valve shaft, said actuation ring biasing said sealing ring to said closed position; and
- said open top of said valve shaft being positioned to allow air from the environment surrounding said cylinder arrangement to flow across and cool said inside surface of said valve shaft.
23. The compressor head for a reciprocating air compressor of claim 18 having an outlet valve comprising a spring-actuated elastomeric o-ring check valve.
24. The compressor head for a reciprocating air compressor of claim 18 having an outlet valve comprising a metallic sealing check valve.
25. The compressor head for a reciprocating air compressor of claim 18, said inlet valve comprising a reed valve.
26. The compressor head for a reciprocating air compressor of claim 18 having an outlet valve comprising a spring-actuated check valve.
27. The compressor head for a reciprocating air compressor of claim 18 further comprising an outlet valve, said outlet valve being capable of sealing and preventing air that has been compressed by said piston from flowing back through said outlet valve when said outlet valve is closed during intake strokes of said piston.
28. The compressor head for a reciprocating air compressor of claim 18 further comprising:
- a cylinder valve plate, said inlet valve being positioned on said valve plate to allow air to pass through said valve plate into said compression cylinder during intake strokes of said piston, said air passage being positioned on said valve plate to allow air to pass through said valve plate to said compression cylinder during intake strokes of said piston and being positioned to allow air to exit said compression cylinder through said valve plate during compression strokes of said piston; and
- an outlet valve positioned relative to said valve plate to allow air to exit from said compression cylinder through said valve plate during compression strokes of said piston.
29. The compressor head for a reciprocating air compressor of claim 18 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- a cylinder outlet chamber for receiving air that has been compressed by said piston in said compression cylinder;
- a cylinder valve plate positioned between said cylinder inlet chamber and said compression cylinder and between said compression cylinder and said cylinder outlet chamber;
- said inlet valve being positioned on said valve plate to allow air to pass from said cylinder inlet chamber into said compression cylinder during intake strokes of said piston;
- said air passage being positioned to allow air to pass through said valve plate from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston and positioned to allow air to pass through said valve plate from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston; and
- an outlet valve being positioned relative to said valve plate to allow air to pass from said compression cylinder to said cylinder outlet chamber during compression strokes of said piston.
30. The compressor head for a reciprocating air compressor of claim 18 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- said air passage being positioned to allow air to flow from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston; and
- said air passage being positioned to allow air to flow from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston.
31. The compressor head for a reciprocating air compressor of claim 18 further comprising.
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- said air passage extending from said cylinder inlet chamber to said compression cylinder;
- said air passage being positioned to allow air to flow from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston; and
- said air passage being positioned to allow air to flow from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston.
32. The compressor head for a reciprocating air compressor of claim 18 further comprising:
- said inlet valve comprising a reed valve; and
- said air passage being positioned to extend through said reed valve to allow air to flow into said compression cylinder during intake strokes of said piston and to allow air to exit from said compression cylinder during compression strokes of said piston.
33. The compressor head for a reciprocating air compressor of claim 18 further comprising;
- said air passage extending from said compression cylinder to the upstream environment surrounding said compressor pump;
- said air passage being positioned to allow air to flow from the upstream environment surrounding said compressor pump to said compression cylinder during intake strokes of said piston; and
- said air passage being positioned to allow air to flow from said compression cylinder to the upstream environment surrounding said compressor pump during compression strokes of said piston.
34. The compressor head for a reciprocating air compressor of claim 18 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- said air passage comprising an orifice tube extending from said cylinder inlet chamber to the exterior of said compressor pump and to said compression cylinder;
- said air passage being positioned to allow air to flow from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston; and
- said air passage being positioned to allow air to flow from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston.
35. The compressor head for a reciprocating air compressor of claim 18 further comprising an outlet valve, a discharge tube, and an air reservoir, said outlet valve being positioned to prevent the loss of air pressure within said air reservoir and said discharge tube through said compressor pump when said piston is not reciprocating.
36. A cylinder arrangement for a reciprocating air compressor comprising:
- a compressor pump having a compression cylinder, said compression cylinder having a piston positioned to reciprocate with intake and compression strokes within said compression cylinder;
- an inlet valve, said inlet valve having an open position and a closed position, said inlet valve having a valve clearance when said inlet valve is in said open position, said inlet valve moving to said open position and allowing air to enter said compression cylinder through said valve clearance during intake strokes of said piston, said inlet valve moving to said closed position and preventing air from exiting said compression cylinder through said valve clearance during compression strokes of said piston;
- an orifice having a minimum cross sectional size that is smaller than said valve clearance of said inlet valve, said orifice allowing air to enter said compression cylinder during intake strokes of said piston, said orifice allowing air to exit said compression cylinder during compression strokes of said piston;
- a discharge tube and an air reservoir, said discharge tube allowing air to flow from said compressor pump to said air reservoir; and
- an outlet valve having an open position and a closed position, said outlet valve moving to said open position and allowing air to exit said compression cylinder and enter said discharge tube during compression strokes of said piston, said outlet valve moving to said closed position and preventing air from entering said compression cylinder through said outlet valve during intake strokes of said piston, said outlet valve moving to said closed position and preventing air from said discharge tube and from said air reservoir from entering said compression cylinder through said outlet valve when said piston is not reciprocating in said compression cylinder, said outlet valve being substantially leak free when in said closed position.
37. The cylinder arrangement for a reciprocating air compressor of claim 36, said outlet valve comprising an elastomeric o-ring check valve.
38. The cylinder arrangement for a reciprocating air compressor of claim 36, said outlet valve being an elastomeric o-ring check valve further comprising:
- a hollow valve shaft, said valve shaft having a tapered portion, a non-tapered portion, an open top, and an inside surface;
- a sealing ring having a closed position and an open position, said sealing ring being capable of reciprocating along said non-tapered portion of said valve shaft from said closed position and said open position;
- an actuation ring positioned to reciprocate along said tapered portion of said valve shaft, said actuation ring biasing said sealing ring to said closed position; and
- said open top of said valve shaft being positioned to allow air from the environment surrounding said cylinder arrangement to flow across and cool said inside surface of said valve shaft.
39. The cylinder arrangement for a reciprocating air compressor of claim 36, said outlet valve comprising a spring-actuated elastomeric o-ring check valve.
40. The cylinder arrangement for a reciprocating air compressor of claim 36, said outlet valve comprising a metallic sealing check valve.
41. The cylinder arrangement for a reciprocating air compressor of claim 36, said inlet valve comprising a reed valve.
42. The cylinder arrangement for a reciprocating air compressor of claim 36, said outlet valve comprising a spring-actuated check valve.
43. The cylinder arrangement for a reciprocating air compressor of claim 36, said outlet valve being capable of sealing and maintaining air pressure within said discharge tube to prevent the escape of air from the air reservoir to the environment surrounding said cylinder arrangement when said piston is not reciprocating within said compression cylinder.
44. The cylinder arrangement for a reciprocating air compressor of claim 36, said outlet valve being capable of sealing and preventing air that has been compressed by said piston from flowing back through said outlet valve when said outlet valve is closed during intake strokes of said piston.
45. The cylinder arrangement for a reciprocating air compressor of claim 36 further comprising a cylinder valve plate, said inlet valve being positioned on said valve plate to allow air to pass through said valve plate into said compression cylinder during intake strokes of said piston, said orifice being positioned on said valve plate to allow air to pass through said valve plate to said compression cylinder during intake strokes of said piston and being positioned to allow air to exit said compression cylinder through said valve plate during compression strokes of said piston, said outlet valve being positioned relative to said valve plate to allow air to exit from said compression cylinder through said valve plate during compression strokes of said piston.
46. The cylinder arrangement for a reciprocating air compressor of claim 36 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- a cylinder outlet chamber for receiving air that has been compressed by said piston in said compression cylinder:
- a cylinder valve plate positioned between said cylinder inlet chamber and said compression cylinder and between said compression cylinder and said cylinder outlet chamber;
- said inlet valve being positioned on said valve plate to allow air to pass from said cylinder inlet chamber into said compression cylinder during intake strokes of said piston;
- said orifice being positioned to allow air to pass through said valve plate from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston and positioned to allow air to pass through said valve plate from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston; and
- said outlet valve being positioned relative to said valve plate to allow air to pass from said compression cylinder to said cylinder outlet chamber during compression strokes of said piston.
47. The cylinder arrangement for a reciprocating air compressor of claim 36 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- said orifice being positioned to allow air to flow from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston; and
- said orifice being positioned to allow air to flow from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston.
48. The cylinder arrangement for a reciprocating air compressor of claim 36 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- said orifice extending from said cylinder inlet chamber to said compression cylinder;
- said orifice being positioned to allow air to flow from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston; and
- said orifice being positioned to allow air to flow from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston.
49. The cylinder arrangement for a reciprocating air compressor of claim 36 further comprising:
- said inlet valve comprising a reed valve; and
- said orifice being positioned to extend through said reed valve to allow air to flow into said compression cylinder during intake strokes of said piston and to allow air to exit from said compression cylinder during compression strokes of said piston.
50. The cylinder arrangement for a reciprocating air compressor of claim 36 further comprising:
- said orifice extending from said compression cylinder to the environment surrounding said compressor pump;
- said orifice being positioned to allow air to flow from the environment surrounding said compressor pump to said compression cylinder during intake strokes of said piston; and
- said orifice being positioned to allow air to flow from said compression cylinder to the environment surrounding said compressor pump during compression strokes of said piston.
51. The cylinder arrangement for a reciprocating air compressor of claim 36 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- said orifice including an orifice tube extending from said cylinder inlet chamber to the exterior of said compressor pump and to said compression cylinder;
- said orifice being positioned to allow air to flow from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston; and
- said orifice being positioned to allow air to flow from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston.
52. The cylinder arrangement for a reciprocating air compressor of claim 36, said outlet valve being positioned to prevent the loss of air pressure within said air reservoir and said discharge tube through said compressor pump when said piston is not reciprocating.
53. A compressor pump for a reciprocating air compressor comprising:
- a compression cylinder, said compression cylinder having a piston positioned to reciprocate with intake and compression strokes within said compression cylinder;
- an inlet valve, said inlet valve having an open position and a closed position, said inlet valve having a valve clearance when said inlet valve is in said open position, said inlet valve moving to said open position and allowing air to enter said compression cylinder through said valve clearance during intake strokes of said piston, said inlet valve moving to said closed position and preventing air from exiting said compression cylinder through said valve clearance during compression strokes of said piston;
- an orifice having a minimum cross sectional size that is smaller than said valve clearance of said inlet valve, said orifice allowing air to enter said compression cylinder during intake strokes of said piston, said orifice allowing air to exit said compression cylinder during compression strokes of said piston; and
- an outlet valve having an open position and a closed position, said outlet valve moving to said open position and allowing air to exit said compression cylinder during compression strokes of said piston, said outlet valve moving to said closed position and preventing air from entering said compression cylinder through said outlet valve during intake strokes of said piston, said outlet valve moving to said closed position and preventing air from entering said compression cylinder through said outlet valve when said piston is not reciprocating in said compression cylinder, said outlet valve being substantially leak free when in said closed position.
54. The compressor pump of claim 53, said outlet valve comprising an elastomeric o-ring check valve.
55. The compressor pump of claim 53, said outlet valve being an elastomeric o-ring check valve further comprising:
- a hollow valve shaft, said valve shaft having a tapered portion, a non-tapered portion, an open top, and an inside surface;
- a sealing ring having a closed position and an open position, said sealing ring being capable of reciprocating along said non-tapered portion of said valve shaft from said closed position and said open position;
- an actuation ring positioned to reciprocate along said tapered portion of said valve shaft, said actuation ring biasing said sealing ring to said closed position; and
- said open top of said valve shaft being positioned to allow air from the environment surrounding said cylinder arrangement to flow across and cool said inside surface of said valve shaft.
56. The compressor pump of claim 53, said outlet valve comprising a spring-actuated elastomeric o-ring check valve.
57. The compressor pump of claim 53, said outlet valve comprising a metallic scaling check valve.
58. The compressor pump of claim 53, said inlet valve comprising a reed valve.
59. The compressor pump of claim 53, said outlet valve comprising a spring-actuated check valve.
60. The compressor pump of claim 53, said outlet valve being capable of sealing and maintaining air pressure within said discharge tube to prevent the escape of air from the air reservoir to the environment surrounding said compressor pump when said piston is not reciprocating within said compression cylinder.
61. The compressor pump of claim 53, said outlet valve being capable of sealing and preventing air that has been compressed by said piston from flowing back through said outlet valve when said outlet valve is closed during intake strokes of said piston.
62. The compressor pump of claim 53 further comprising a cylinder valve plate, said inlet valve being positioned on said valve plate to allow air to pass through said valve plate into said compression cylinder during intake strokes of said piston, said orifice being positioned on said valve plate to allow air to pass through said valve plate to said compression cylinder during intake strokes of said piston and being positioned to allow air to exit said compression cylinder through said valve plate during compression strokes of said piston, said outlet valve being positioned relative to said valve plate to allow air to exit from said compression cylinder through said valve plate during compression strokes of said piston.
63. The compressor pump of claim 53 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- a cylinder outlet chamber for receiving air that has been compressed by said piston in said compression cylinder;
- a cylinder valve plate positioned between said cylinder inlet chamber and said compression cylinder and between said compression cylinder and said cylinder outlet chamber;
- said inlet valve being positioned on said valve plate to allow air to pass from said cylinder inlet chamber into said compression cylinder during intake strokes of said piston;
- said orifice being positioned to allow air to pass through said valve plate from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston and positioned to allow air to pass through said valve plate from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston; and
- said outlet valve being positioned relative to said valve plate to allow air to pass from said compression cylinder to said cylinder outlet chamber through said valve plate during compression strokes of said piston.
64. The compressor pump of claim 53 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- said orifice being positioned to allow air to flow from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston; and
- said orifice being positioned to allow air to flow from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston.
65. The compressor pump of claim 53 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- said orifice extending from said cylinder inlet chamber to said compression cylinder;
- said orifice being positioned to allow air to flow from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston; and
- said orifice being positioned to allow air to flow from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston.
66. The compressor pump of claim 53 further comprising:
- said inlet valve comprising a reed valve; and
- said orifice being positioned to extend through said reed valve to allow air to flow into said compression cylinder during intake strokes of said piston and to allow air to exit from said compression cylinder during compression strokes of said piston.
67. The compressor pump of claim 53 further comprising:
- said orifice extending from said compression cylinder to the environment surrounding said compressor pump;
- said orifice being positioned to allow air to flow from the environment surrounding said compressor pump to said compression cylinder during intake strokes of said piston; and
- said orifice being positioned to allow air to flow from said compression cylinder to the environment surrounding said compressor pump during compression strokes of said piston.
68. The compressor pump of claim 53 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- said orifice including an orifice tube extending from said cylinder inlet chamber to the exterior of said compressor pump and to said compression cylinder;
- said orifice being positioned to allow air to flow from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston; and
- said orifice being positioned to allow air to flow from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston.
69. A cylinder valve plate for a reciprocating air compressor having an air compressor pump, the compressor pump having a compression cylinder and a piston positioned to reciprocate with intake and compression strokes within the compression cylinder, said cylinder valve plate comprising:
- a valve plate body for mounting within the compressor pump;
- an inlet valve positioned on said valve plate body, said inlet valve having an open position and a closed position, said inlet valve having a valve clearance when said inlet valve is in said open position, said inlet valve moving to said open position and allowing air to enter the compression cylinder through said valve clearance during intake strokes of the piston, said inlet valve moving to said closed position and preventing air from exiting the compression cylinder through said valve clearance during compression strokes of the piston;
- an orifice having a minimum cross sectional size that is smaller than said valve clearance of said inlet valve, said orifice allowing air to enter the compression cylinder during intake strokes of the piston, said orifice allowing air to exit the compression cylinder during compression strokes of the piston; and
- an outlet valve positioned relative to said valve plate body, said outlet valve having an open position and a closed position, said outlet valve moving to said open position and allowing air to exit the compression cylinder during compression strokes of the piston, said outlet valve moving to said closed position and preventing air from entering the compression cylinder through said outlet valve during intake strokes of the piston, said outlet valve moving to said closed position and preventing air from entering the compression cylinder through said outlet valve when the piston is not reciprocating in the compression cylinder, said outlet valve being substantially leak free when in said closed position.
70. The cylinder valve plate of claim 69, said outlet valve comprising an elastomeric o-ring check valve.
71. The cylinder valve plate of claim 69, said outlet valve being an elastomeric o-ring check valve further comprising:
- a hollow valve shaft, said valve shaft having a tapered portion, a non-tapered portion, an open top, and an inside surface;
- a scaling ring having a closed position and an open position, said sealing ring being capable of reciprocating along said non-tapered portion of said valve shaft from said closed position and said open position;
- an actuation ring positioned to reciprocate along said tapered portion of said valve shaft, said actuation ring biasing said sealing ring to said closed position; and
- said open top of said valve shaft being positioned to allow air from the environment surrounding said cylinder arrangement to flow across and cool said inside surface of said valve shaft.
72. The cylinder valve plate of claim 69, said outlet valve comprising a spring-actuated elastomeric o-ring check valve.
73. The cylinder valve plate of claim 69, said outlet valve comprising a metallic sealing check valve.
74. The cylinder valve plate of claim 69, said inlet valve comprising a reed valve.
75. The cylinder valve plate of claim 69, said outlet valve comprising a spring-actuated check valve.
76. The cylinder valve plate of claim 69, said outlet valve being capable of sealing and maintaining air pressure within said discharge tube to prevent the escape of air from the air reservoir to the environment surrounding the reciprocating air compressor when said piston is not reciprocating within said compression cylinder.
77. The cylinder valve plate of claim 69, said outlet valve being capable of sealing and preventing air that has been compressed by said piston from flowing back through said outlet valve when said outlet valve is closed during intake strokes of said piston.
78. The cylinder valve plate of claim 69, the compressor pump having a cylinder inlet chamber for receiving air from the environment surrounding the compressor pump and for providing air to the compression cylinder, said orifice being positioned to allow air to flow from the cylinder inlet chamber to the compression cylinder during intake strokes of the piston, said orifice being positioned to allow air to flow from the compression cylinder to the cylinder inlet chamber during compression strokes of the piston.
79. The cylinder valve plate of claim 69, the compressor pump having a cylinder inlet chamber for receiving air from the environment surrounding the compressor pump and for providing air to the compression cylinder, said orifice extending from the cylinder inlet chamber to the compression cylinder, said orifice being positioned to allow air to flow from the cylinder inlet chamber to the compression cylinder during intake strokes of the piston, said orifice being positioned to allow air to flow from the compression cylinder to the cylinder inlet chamber during compression strokes of the piston.
80. The cylinder valve plate of claim 69, said inlet valve comprising a reed valve, said orifice being positioned to extend through said reed valve to allow air to flow into the compression cylinder during intake strokes of the piston and to allow air to exit from the compression cylinder during compression strokes of the piston.
81. The cylinder valve plate of claim 69 further comprising:
- said orifice extending from the compression cylinder to the environment surrounding the compressor pump;
- said orifice being positioned to allow air to flow from the environment surrounding the compressor pump to the compression cylinder during intake strokes of the piston; and
- said orifice being positioned to allow air to flow from the compression cylinder to the environment surrounding the compressor pump during compression strokes of the piston.
82. The cylinder valve plate of claim 69, the compressor pump having a cylinder inlet chamber for receiving air from the environment surrounding the compressor pump and for providing air to the compression cylinder;
- said orifice including an orifice tube extending from the cylinder inlet chamber to the exterior of the compressor pump and to the compression cylinder;
- said orifice being positioned to allow air to flow from the cylinder inlet chamber to the compression cylinder during intake strokes of the piston; and
- said orifice being positioned to allow air to flow from the compression cylinder to the cylinder inlet chamber during compression strokes of the piston.
83. A compressor pump for a reciprocating air compressor comprising,
- a compression cylinder, said compression cylinder having a piston positioned to reciprocate with intake and compression strokes within said compression cylinder;
- an inlet valve, said inlet valve having an open position and a closed position, said inlet valve having a valve clearance when said inlet valve is in said open position, said inlet valve moving to said open position and allowing air to enter said compression cylinder through said valve clearance during intake strokes of said piston, said inlet valve moving to said closed position and preventing air from exiting said compression cylinder through said valve clearance during compression strokes of said piston;
- an orifice having a minimum cross sectional size that is smaller than said valve clearance of said inlet valve, said orifice allowing air to enter said compression cylinder during intake strokes of said piston, said orifice allowing air to exit said compression cylinder during compression strokes of said piston;
- a discharge tube and an air reservoir, said discharge tube allowing air to flow from said compressor pump to said air reservoir; and
- an outlet valve positioned between said compression cylinder and said discharge tube, said outlet valve being the only valve positioned between said compression cylinder and said discharge tube, said outlet valve having an open position and a closed position, said outlet valve moving to said open position and allowing air to exit said compression cylinder during compression strokes of said piston, said outlet valve moving to said closed position and preventing air from entering said compression cylinder through said outlet valve during intake strokes of said piston, said outlet valve moving to said closed position and preventing air from entering said compression cylinder through said outlet valve when said piston is not reciprocating in said compression cylinder, said outlet valve being substantially leak free when in said closed position.
84. The compressor pump of claim 83, said outlet valve comprising an elastomeric o-ring check valve.
85. The compressor pump of claim 83, said outlet valve being an elastomeric o-ring check valve further comprising:
- a hollow valve shaft, said valve shaft having a tapered portion, a non-tapered portion, an open top, and an inside surface;
- a sealing ring having a closed position and an open position, said sealing ring being capable of reciprocating along said non-tapered portion of said valve shaft from said closed position and said open position;
- an actuation ring positioned to reciprocate along said tapered portion of said valve shaft, said actuation ring biasing said sealing ring to said closed position; and
- said open top of said valve shaft being positioned to allow air from the environment surrounding said cylinder arrangement to flow across and cool said inside surface of said valve shaft.
86. The compressor pump of claim 83, said outlet valve comprising a spring-actuated elastomeric o-ring check valve.
87. The compressor pump of claim 83, said outlet valve comprising a metallic sealing check valve.
88. The compressor pump of claim 83, said inlet valve comprising a reed valve.
89. The compressor pump of claim 83, said outlet valve comprising a spring-actuated check valve.
90. The compressor pump of claim 83, said outlet valve being capable of sealing and maintaining air pressure within said discharge tube to prevent the escape of air from the air reservoir to the environment surrounding said compressor pump when said piston is not reciprocating within said compression cylinder.
91. The compressor pump of claim 83, said outlet valve being capable of sealing and preventing air that has been compressed by said piston from flowing back through said outlet valve when said outlet valve is closed during intake strokes of said piston.
92. The compressor pump of claim 83 further comprising a cylinder valve plate, said inlet valve being positioned on said valve plate to allow air to pass through said valve plate into said compression cylinder during intake strokes of said piston, said orifice being positioned on said valve plate to allow air to pass through said valve plate to said compression cylinder during intake strokes of said piston and being positioned to allow air to exit said compression cylinder through said valve plate during compression strokes of said piston, said outlet valve being positioned relative to said valve plate to allow air to exit from said compression cylinder through said valve plate during compression strokes of said piston.
93. The compressor pump of claim 83 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- a cylinder outlet chamber for receiving air that has been compressed by said piston in said compression cylinder;
- a cylinder valve plate positioned between said cylinder inlet chamber and said compression cylinder and between said compression cylinder and said cylinder outlet chamber;
- said inlet valve being positioned on said valve plate to allow air to pass from said cylinder inlet chamber into said compression cylinder during intake strokes of said piston,
- said orifice being positioned to allow air to pass through said valve plate from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston and positioned to allow air to pass through said valve plate from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston; and
- said outlet valve being positioned relative to said valve plate to allow air to pass from said compression cylinder to said cylinder outlet chamber through said valve plate during compression strokes of said piston.
94. The compressor pump of claim 83 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- said orifice being positioned to allow air to flow from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston; and
- said orifice being positioned to allow air to flow from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston.
95. The compressor pump of claim 83 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- said orifice extending from said cylinder inlet chamber to said compression cylinder;
- said orifice being positioned to allow air to flow from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston; and
- said orifice being positioned to allow air to flow from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston.
96. The compressor pump of claim 83 further comprising:
- said inlet valve comprising a reed valve; and
- said orifice being positioned to extend through said reed valve to allow air to flow into said compression cylinder during intake strokes of said piston and to allow air to exit from said compression cylinder during compression strokes of said piston.
97. The compressor pump of claim 83 further comprising;
- said orifice extending from said compression cylinder to the environment surrounding said compressor pump;
- said orifice being positioned to allow air to flow from the environment surrounding said compressor pump to said compression cylinder during intake strokes of said piston; and
- said orifice being positioned to allow air to flow from said compression cylinder to the environment surrounding said compressor pump during compression strokes of said piston.
98. The compressor pump of claim 83 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- said orifice including an orifice tube extending from said cylinder inlet chamber to the exterior of said compressor pump and to said compression cylinder;
- said orifice being positioned to allow air to flow from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston; and
- said orifice being positioned to allow air to flow from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston.
99. A reciprocating air compressor system comprising:
- a compressor pump having a compression cylinder, said compression cylinder having a piston positioned to reciprocate with intake and compression strokes within said compression cylinder;
- an engine for reciprocating said piston within said compression cylinder;
- an inlet valve, said inlet valve having an open position and a closed position, said inlet valve having a valve clearance when said inlet valve is in said open position, said inlet valve moving to said open position and allowing air to enter said compression cylinder through said valve clearance during intake strokes of said piston, said inlet valve moving to said closed position and preventing air from exiting said compression cylinder through said valve clearance during compression strokes of said piston;
- an orifice having a minimum cross sectional size that is smaller than said valve clearance of said inlet valve, said orifice allowing air to enter said compression cylinder during intake strokes of said piston, said orifice allowing air to exit said compression cylinder during compression strokes of said piston;
- a discharge tube and an air reservoir, said discharge tube allowing air to flow from said compressor pump to said air reservoir; and
- an outlet valve having an open position and a closed position, said outlet valve moving to said open position and allowing air to exit said compression cylinder and enter said discharge tube through said outlet valve during compression strokes of said piston, said outlet valve moving to said closed position and preventing air from entering said compression cylinder through said outlet valve during intake strokes of said piston, said outlet valve moving to said closed position and preventing air from said discharge tube and from said air reservoir from entering said compression cylinder through said outlet valve when said piston is not reciprocating in said compression cylinder, said outlet valve being substantially leak free when in said closed position.
100. The reciprocating air compressor system of claim 99 further comprising a pressure switch for operating said motor, said pressure switch being positioned to cause said motor to reciprocate said piston and cause said air compressor system to compress air when air pressure in said air reservoir is below a predetermined minimum level, said pressure switch being positioned to cause said motor to stop reciprocating said piston and cause said air compressor system to stop compressing air when air pressure in said air reservoir is above predetermined maximum level.
101. The reciprocating air compressor system of claim 99, said outlet valve comprising an elastomeric o-ring check valve.
102. The reciprocating air compressor system of claim 99, said outlet valve being an elastomeric o-ring check valve further comprising:
- a hollow valve shaft, said valve shaft having a tapered portion, a non-tapered portion, an open top, and an inside surface;
- a sealing ring having a closed position and an open position, said sealing ring being capable of reciprocating along said non-tapered portion of said valve shaft from said closed position and said open position;
- an actuation ring positioned to reciprocate along said tapered portion of said valve shaft, said actuation ring biasing said sealing ring to said closed position; and
- said open top of said valve shaft being positioned to allow air from the environment surrounding said cylinder arrangement to flow across and cool said inside surface of said valve shaft.
103. The reciprocating air compressor system of claim 99, said outlet valve comprising a spring-actuated elastomeric o-ring check valve.
104. The reciprocating air compressor system of claim 99, said outlet valve comprising a metallic sealing check valve.
105. The reciprocating air compressor system of claim 99, said outlet valve being capable of sealing and maintaining air pressure within said discharge tube to prevent the escape of air from the air reservoir to the environment surrounding said air compressor system when said piston is not reciprocating within said compression cylinder.
106. The reciprocating air compressor system of claim 99, said outlet valve being capable of sealing and preventing air that has been compressed by said piston from flowing back through said outlet valve when said outlet valve is closed during intake strokes of said piston.
107. The reciprocating air compressor system of claim 99, said inlet valve comprising a reed valve.
108. The reciprocating air compressor system of claim 99, said outlet valve comprising a spring-actuated check valve.
109. The reciprocating air compressor system of claim 99 further comprising a cylinder valve plate, said inlet valve being positioned on said valve plate to allow air to pass through said valve plate into said compression cylinder during intake strokes of said piston, said orifice being positioned on said valve plate to allow air to pass through said valve plate to said compression cylinder during intake strokes of said piston and being positioned to allow air to exit said compression cylinder through said valve plate during compression strokes of said piston, said outlet valve being positioned on said valve plate to allow air to exit from said compression cylinder during compression strokes of said piston.
110. The reciprocating air compressor system of claim 99 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- a cylinder outlet chamber for receiving air that has been compressed by said piston in said compression cylinder;
- a cylinder valve plate positioned between said cylinder inlet chamber and said compression cylinder and between said compression cylinder and said cylinder outlet chamber;
- said inlet valve being positioned on said valve plate to allow air to pass from said cylinder inlet chamber into said compression cylinder during intake strokes of said piston;
- said orifice being positioned to allow air to pass through said valve plate from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston and positioned to allow air to pass through said valve plate from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston; and
- said outlet valve being positioned relative to said valve plate to allow air to pass from said compression cylinder to said cylinder outlet chamber during compression strokes of said piston.
111. The reciprocating air compressor system of claim 99 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- said orifice being positioned to allow air to flow from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston; and
- said orifice being positioned to allow air to flow from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston.
112. The reciprocating air compressor system of claim 99 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- said orifice extending from said cylinder inlet chamber to said compression cylinder;
- said orifice being positioned to allow air to flow from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston; and
- said orifice being positioned to allow air to flow from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston.
113. The reciprocating air compressor system of claim 99 further comprising:
- said inlet valve comprising a reed valve; and
- said orifice being positioned to extend through said reed valve to allow air to flow into said compression cylinder during intake strokes of said piston and to allow air to exit from said compression cylinder during compression strokes of said piston.
114. The reciprocating air compressor system of claim 99 further comprising:
- said orifice extending from said compression cylinder to the environment surrounding said compressor pump;
- said orifice being positioned to allow air to flow from the environment surrounding said compressor pump to said compression cylinder during intake strokes of said piston; and
- said orifice being positioned to allow air to flow from said compression cylinder to the environment surrounding said compressor pump during compression strokes of said piston.
115. The reciprocating air compressor system of claim 99 further comprising:
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compression cylinder;
- said orifice including an orifice tube extending from said cylinder inlet chamber to the exterior of said compressor pump and to said compression cylinder;
- said orifice being positioned to allow air to flow from said cylinder inlet chamber to said compression cylinder during intake strokes of said piston; and
- said orifice being positioned to allow air to flow from said compression cylinder to said cylinder inlet chamber during compression strokes of said piston.
116. The reciprocating air compressor system of claim 99, said outlet valve being positioned to prevent the loss of air pressure within said air reservoir and said discharge tube through said compressor pump when said piston is not reciprocating.
117. A cylinder arrangement for a reciprocating air compressor comprising:
- a compressor pump having a compression cylinder, said compression cylinder having a piston positioned to reciprocate with intake and compression strokes within said compression cylinder;
- an inlet valve comprising a reed valve, said inlet valve having an open position and a closed position, said inlet valve having a valve clearance when said inlet valve is in said open position, said inlet valve moving to said open position and allowing air to enter said compression cylinder through said valve clearance during intake strokes of said piston, said inlet valve moving to said closed position and preventing air from exiting said compression cylinder through said valve clearance during compression strokes of said piston;
- an orifice having a minimum cross sectional size that is smaller than said valve clearance of said inlet valve, said orifice allowing air to enter said compression cylinder during intake strokes of said piston, said orifice allowing air to exit said compression cylinder during compression strokes of said piston;
- a discharge tube and an air reservoir, said discharge tube allowing air to flow from said compressor pump to said air reservoir:
- an outlet valve comprising a spring-actuated elastomeric check valve, said outlet valve having an open position and a closed position, said outlet valve moving to said open position and allowing air to exit said compression cylinder and enter said discharge tube during compression strokes of said piston, said outlet valve moving to said closed position and preventing air from entering said compression cylinder through said outlet valve during intake strokes of said piston, said outlet valve moving to said closed position and preventing air from said discharge tube and from said air reservoir from entering said compression cylinder through said outlet valve when said piston is not reciprocating in said compression cylinder, said outlet valve being substantially leak free when in said closed position; and
- a cylinder valve plate, said inlet valve being positioned on said valve plate to allow air to pass through said valve plate into said compression cylinder during intake strokes of said piston, said orifice being positioned on said valve plate to allow air to pass through said valve plate to said compression cylinder during intake strokes of said piston and being positioned to allow air to exit said compression cylinder through said valve plate during compression strokes of said piston, said outlet valve being positioned relative to said valve plate to allow air to exit from said compression cylinder through said valve plate during compression strokes of said piston.
118. A cylinder arrangement for a reciprocating air compressor comprising:
- a compressor pump having a compression cylinder, said compression cylinder having a piston positioned to reciprocate with intake and compression strokes within said compression cylinder;
- a cylinder inlet chamber for receiving air from the environment surrounding said compressor pump and for providing air to said compressor cylinder;
- a cylinder outlet chamber for receiving air that has been compressed by said piston in said compression cylinder;
- an inlet valve comprising a reed valve, said inlet valve having an open position and a closed position, said inlet valve having a valve clearance when said inlet valve is in said open position, said inlet valve moving to said open position and allowing air to enter said compression cylinder from said cylinder inlet chamber through said valve clearance during intake strokes of said piston, said inlet valve moving to said closed position and preventing air from exiting said compression cylinder through said valve clearance during compression strokes of said piston;
- an orifice having a minimum cross sectional size that is smaller than said valve clearance of said inlet valve, said orifice allowing air to enter said compression cylinder during intake strokes of said piston, said orifice allowing air to exit said compression cylinder during compression strokes of said piston;
- a discharge tube and an air reservoir, said discharge tube allowing air to flow from said compressor pump to said air reservoir;
- an outlet valve comprising a spring-actuated elastomeric check valve, said outlet valve having an open position and a closed position, said outlet valve moving to said open position and allowing air to exit said compression cylinder and enter said cylinder outlet chamber and said discharge tube during compression strokes of said piston, said outlet valve moving to said closed position and preventing air from entering said compression cylinder through said outlet valve during intake strokes of said piston, said outlet valve moving to said closed position and preventing air from said cylinder outlet chamber, from said discharge tube and from said air reservoir from entering said compression cylinder through said outlet valve when said piston is not reciprocating in said compression cylinder, said outlet valve being substantially leak free when in said closed position; and
- a cylinder valve plate, said inlet valve being positioned on said valve plate to allow air to pass through said valve plate into said compression cylinder during intake strokes of said piston, said orifice being positioned on said valve plate to allow air to pass through said valve plate to said compression cylinder during intake strokes of said piston and being positioned to allow air to exit said compression cylinder through said valve plate during compression strokes of said piston, said outlet valve being positioned relative to said valve plate to allow air to exit from said compression cylinder through said valve plate during compression strokes of said piston.
119. A cylinder arrangement for a reciprocating air compressor comprising:
- a compressor pump having a compression cylinder, said compression cylinder having a piston positioned to reciprocate with intake and compression strokes within said compression cylinder;
- an inlet valve comprising a reed valve, said inlet valve having an open position and a closed position, said inlet valve having a valve clearance when said inlet valve is in said open position, said inlet valve moving to said open position and allowing air to enter said compression cylinder through said valve clearance during intake strokes of said piston, said inlet valve moving to said closed position and preventing air from exiting said compression cylinder through said valve clearance during compression strokes of said piston;
- an orifice having a minimum cross sectional size that is smaller than said valve clearance of said inlet valve, said orifice allowing air to enter said compression cylinder during intake strokes of said piston, said orifice allowing air to exit said compression cylinder during compression strokes of said piston;
- a discharge tube and an air reservoir, said discharge tube allowing air to flow from said compressor pump to said air reservoir;
- an outlet valve comprising a spring-actuated elastomeric check valve, said outlet valve having a hollow valve shaft, said valve shaft having a tapered portion, a non-tapered portion, an open top, and an inside surface, said outlet valve having a sealing ring having a closed position and an open position, said sealing ring being capable of reciprocating along said non-tapered portion of said valve shaft from said closed position and said open position, said outlet valve having an actuation ring positioned to reciprocate along said tapered portion of said valve shaft, said actuation ring biasing said sealing ring to said closed position, said open top of said valve shaft being positioned to allow air from the environment surrounding said cylinder arrangement to flow across and cool said inside surface of said valve shaft;
- said sealing ring moving to said open position and allowing air to exit said compression cylinder and enter said discharge tube during compression strokes of said piston, said actuation ring moving said sealing ring to said closed position and preventing air from entering said compression cylinder through said outlet valve during intake strokes of said piston, said actuation ring moving said sealing ring to said closed position and preventing air from said discharge tube and from said air reservoir from entering said compression cylinder through said outlet valve when said piston is not reciprocating in said compression cylinder, said sealing ring being substantially leak free when in said closed position; and
- a cylinder valve plate, said inlet valve being positioned on said valve plate to allow air to pass through said valve plate into said compression cylinder during intake strokes of said piston, said orifice being positioned on said valve plate to allow air to pass through said valve plate to said compression cylinder during intake strokes of said piston and being positioned to allow air to exit said compression cylinder through said valve plate during compression strokes of said piston, said outlet valve being positioned relative to said valve plate to allow air to exit from said compression cylinder through said valve plate during compression strokes of said piston.
Type: Application
Filed: Sep 13, 2006
Publication Date: Mar 13, 2008
Applicant:
Inventor: James P. Cornwell (Erie, PA)
Application Number: 11/531,425
International Classification: F04B 39/10 (20060101);