Multi-Pellet Launcher
A system and method for propelling pellets from a launch tube includes a retainer plug for holding the pellets inside the launch tube between the retainer plug and a compressed spring. A latch is established on the launch tube to restrain forward movement of the retainer ring in response to the bias force imposed by the compressed spring. In operation, the launch tube is propelled in a forward direction by a man-powered weapon. This creates an acceleration force on the tube that moves the retainer plug and pellets in a rearward direction relative to the launch tube to further compress the spring and release the latch from the retainer plug. After the initial acceleration has subsided, force from the compressed spring provides a forward propulsion of the retainer plug and the plurality of pellets from the launch tube for travel of the pellets toward an intended target.
The present invention pertains generally to man-powered weapons. More particularly, the present invention pertains to systems and methods for shooting a plurality of pellets (i.e. projectiles or shot) at a target with a statistically predictable and defined shot group on the target. The present invention is particularly, but not exclusively, useful as a system and method for propelling a multi-pellet-filled launch tube from a man-powered weapon, and for employing the resultant acceleration force on the launch tube to unlatch and release the pellets from the launch tube for impact in a shot group on a target.
BACKGROUND OF THE INVENTIONTypically, man-powered weapons are designed to launch only one projectile at a time. In particular, this is the case when the weapon is to be operated and fired by a single individual. For example, the arrow of a well-known bow and arrow set is such a projectile, as is the bolt of a crossbow or the dart of a blowgun. There are instances, however (e.g. the extermination of vermin or clay pigeon shooting), when it would be preferable to simultaneously launch several projectiles (e.g. pellets) all at the same time. In this respect, there is a need for a man-powered weapon that is comparable in its on-target effect to the familiar shotgun. To achieve such comparability with a man-powered weapon, like a shotgun, all of the pellets need to be collectively launched as a predictably defined group. The situation for a man-powered weapon is exacerbated, however, due to the fact that they typically employ only a single launching string or, in the case of an air gun, a single launching tube.
Ideally, when a plurality of projectiles are to be launched simultaneously from a single man-powered weapon, the launching mechanism of the weapon needs to have comparably direct influence upon each projectile (e.g. pellet). Specifically, the influence and control over each projectile in the plurality must be similar, and be effective to the same extent, as if only one projectile was being launched. It happens, however, that with a single string or single barrel launcher (e.g. a bow, a crossbow or an air gun), such influence and control is virtually impossible. A solution for this problem is to, somehow, structurally combine the several projectiles into a cohesive unit for launch. This solution, of course, must be short term. Immediately after launch, the problem then becomes how to effectively separate the projectiles. Specifically, this separation must be accomplished in a manner that causes the projectiles to travel toward a target in a predictably defined group that will have the intended on-target effect.
With the above in mind, it is an object of the present invention to provide a multi-pellet launcher that will hold a plurality of projectiles together as a single cohesive unit prior to and during launch. Another object of the present invention is to provide a multi-pellet launcher that will maintain a group integrity for the pellets (projectiles) while in flight, for the purposes of achieving an intended on-target effect (i.e. have a statistically well defined shot group). Still another object of the present invention is to provide a multi-pellet launcher that is easy to use, is simple to manufacture, and is cost effective.
SUMMARY OF THE INVENTIONIn accordance with the present invention, a system is provided for propelling pellets (projectiles) from a launch tube. In particular, the propulsion of pellets occurs after the launch tube has been shot from a man-powered weapon (e.g. a bow, a crossbow or an air gun). Prior to being shot (launched), the launch tube holds a plurality of pellets inside the tube. Specifically, this is accomplished by positioning the pellets between a retainer plug that is restrained inside the launch tube, and a compression spring that is fixedly mounted inside the launch tube. In order to restrain the retainer plug, a latch is established relative to the launch tube. The latch then prevents a forward movement of the retainer plug, and the pellets, in response to a bias force that is imposed on the retainer plug and the pellets by the partially compressed spring.
In overview, while the launch tube is being propelled in a forward direction by a man-powered weapon, the resultant acceleration force on the launch tube moves the retainer plug and pellets in a relatively rearward (proximal) direction with respect to the tube. This proximal movement of the retainer plug and pellets in the launch tube further compresses the spring, and simultaneously releases the latch from the retainer plug. In flight, after the initial acceleration force has subsided, the compressed spring provides a forward propulsion force on the plurality of pellets and the retainer plug. This propulsion force then ejects the pellets and the retainer plug from the launch tube. The pellets then continue on toward an intended target.
Structurally, the launch tube of the present invention is formed with a lumen, and it defines a longitudinal axis. In a preferred embodiment of the present invention, it also has an open distal end and a closed or partially closed proximal end. Beginning at the proximal end of the lumen inside the launch tube, the spring is positioned and affixed to its closed proximal end. The plurality of pellets (projectiles) is then positioned in the lumen against the spring. Next, the retainer plug is positioned in the lumen distal to the plurality of pellets (projectiles). In greater structural detail, for one embodiment of the present invention, the retainer plug has a distal ring that is dimensioned to move within the lumen, and it has a proximal ring that is also dimensioned to move within the lumen. Between these rings of the retainer ring is a mid-section that is formed with a decreasing taper in the proximal direction.
In the vicinity of the retainer plug, the sidewall of the launch tube is formed with one or more lateral vents. Preferably, these vents are located equidistant from the distal end of the tube. One or more latch spheres are provided to interact between the proximal ring of the retainer plug and the vents of the launch tube. Specifically, this interaction is in response to the distally directed force that is generated when the spring is partially compressed. More specifically, each latch sphere is trapped in a respective vent, and it is urged against a distal edge of the vent by the proximal ring of the retainer plug. Thus, prior to a launch, the distal bias of the compressed spring on the retainer plug holds the retainer plug, and the pellets, stationary in the lumen of the launch tube.
Upon shooting a launch tube from a man-powered weapon, an acceleration force is imposed in a distal direction on the pellets, and on the proximal end of the spring within the lumen of the launch tube. This acceleration causes the retainer plug and pellets to move proximally relative to the launch tube, and the spring is further compressed. In turn, this relative motion of the retainer plug and launch tube causes the proximal ring of the retainer plug to release the latch sphere(s) and causes a tapered or stepped region of the retainer plug to eject the latch sphere(s) from the launch tube through their respective vents. Consequently, the retainer plug and the plurality of pellets are released by the latch and are propelled from the launch tube in response to the distal bias of the spring.
An additional structure of the launch tube is an inner sleeve that can be affixed inside the lumen of the launch tube, proximal to the spring. Specifically, this inner sleeve is positioned at a distance “df” from the distal end of the launch tube to act as an abutment for the spring when it is compressed. The distance “df” can, of course, be varied as desired. In any event, it is preferable that the inner sleeve be affixed to place the pellets (projectiles) relatively near the distal end of the launch tube. With this in mind, the present invention envisions that, even though the pellets may extend through a relatively short distance (i.e. a few inches), an inner sleeve will allow the total length of the launch tube to be as long as is required for a conventional bow, compound bow or crossbow.
For a preferred embodiment of the present invention, there may be as many as forty or more pellets, and they can be made of steel. Also, in order to promote tumbling of the retainer plug after a launch of the launcher, the distal ring of the retainer plug may be formed with a distal recessed surface, and is made of a light-weight material such as Acrilonitrile-Butadiene-Styrene (ABS), Polycarbonate or Polysulfone. Also, for the purpose of dispensing the pellets in-flight for a controlled, on-target impact, the pellets inside the launch tube can be combined with a plurality of spacers. If used, individual spacers can be positioned between adjacent pellets in the launch tube. In another embodiment, for the same purpose, a plurality of magnets can be combined with the pellets in a configuration where adjacent magnets straddle two pellets, and pellets on opposed sides of a same magnet are subjected to a different polarity.
For an alternate embodiment of a latch for the multi-pellet launcher, the launch tube is formed with a pair of axially opposed slots that extend, parallel to each other, in a proximal direction from the distal end of the launch tube. A detent is formed at the proximal end of each slot. For this embodiment, the retainer plug is cylindrical and includes a pair of axially opposed pins that extend outwardly from the retainer plug. For an assembly of the multi-pellet launcher in accordance with this alternate embodiment, the pins on the retainer plug are received in a respective slot of the launch tube and are advanced in a proximal direction. When the pins are at the proximal end of their respective slots, the retainer plug is rotated to engage the pins with a respective detent at the end of the slot. This holds the retainer plug stationary in the launch tube. Upon a subsequent launching of the launch tube, the resultant acceleration force rotates the pins out of their detents. This then frees the retainer plug for axial movement out of the launch tube in a distal direction when the acceleration force subsides. It is an important consideration for this particular embodiment of the latch, that the pins do not extend beyond the outer diameter of the launch tube when the retainer plug is engaged with the launch tube. This is necessary to allow an assembled launcher to be received within the barrel of a weapon (e.g. an air gun) without any interference of the pins on the retainer plug with the bore of the barrel.
In yet another embodiment of a latch for the present invention, the launch tube is formed with at least one lateral opening. For this embodiment, the retainer plug includes a clip that is mounted on the retainer plug, and the clip is reconfigured to engage with the lateral opening. Importantly, the clip does not extend beyond the lateral opening. When the launch tube is launched, as in the other embodiments of the present invention, the resultant acceleration force moves the retainer plug in a proximal direction relative to the launch tube. Consequently, the clip is released from the lateral opening. The retainer plug is thereby released for free travel through the launch tube.
The novel features of this invention, as well as the invention itself, both as to its structure and its operation, will be best understood from the accompanying drawings, taken in conjunction with the accompanying description, in which similar reference characters refer to similar parts, and in which:
Referring initially to
Referring now to
Positioned distal to the pellets 34 is a retainer plug 36 that is preferably made of a light weight material such as Acrilonitrile-Butadiene-Styrene (ABS), Polycarbonate or Polysulfone. Structurally, the retainer plug 36 is formed with a proximal ring 38 and a distal ring 40, with a mid-section 42 formed therebetween. Importantly, both the proximal ring 38 and the distal ring 40 are dimensioned for movement within the lumen 28 of the launch tube 12. Further, it is important that the mid-section 42 be formed with a decreasing taper in the proximal direction from the distal ring 40 to the proximal ring 38.
As perhaps best seen in
As a launch tube 12 is launched from a crossbow 20, or bow 22, in the direction of arrow 47 (see
Shortly after launch, in accordance with well known principles, the initial acceleration force on the launch tube 12 subsides. With this diminution of the acceleration force, the potential energy in the compressed spring 32 is released to propel the retainer plug 36 and pellets 34 from the launch tube 12. As shown in
For an alternate embodiment of the launcher 10, as shown in
An alternate embodiment for the structure of a latch to be used with the present invention is shown in
In an operation of the launch tube 54, the acceleration force that initially results during a launch of the launch tube 54 will cause the retainer plug 66 to move in a rearward (proximal) direction relative to the launch tube 54. This relative movement of the retainer plug 66 then causes the pin 68 to follow the angled edge 64. The result here is that the retainer plug 66 is rotated to realign the pin 68 with the slot 60a, and to thereby allow for a free distal (forward) movement of the retainer plug 66 out of the launch tube 54 when the acceleration force subsides. An important aspect of this particular embodiment of a latching action for the present invention is that the pin(s) 68 do not extend beyond the outer surface 70 of the launch tube 54. This is so in order to allow for an assembled launch tube 54 to be positioned in a hollow launch tube (not shown), such as in the barrel of an air gun 23. Additionally, it will be appreciated by the skilled artisan that the inside surface 72 of the barrel 25 of air gun 23 can be rifled to assist in the proper rotation and alignment of the retainer plug 66 during an operation of this embodiment of the present invention.
Still referring to
Referring now to
In yet another configuration for components inside the launch tube 12/54, a spring guide 92 is employed to control and restrict compression of the spring 32. As shown in
While the particular Multi-Pellet Launcher as herein shown and disclosed in detail is fully capable of obtaining the objects and providing the advantages herein before stated, it is to be understood that it is merely illustrative of the presently preferred embodiments of the invention and that no limitations are intended to the details of construction or design herein shown other than as described in the appended claims.
Claims
1. A multi-pellet launcher which comprises:
- a hollow launch tube having a distal end and a proximal end with a lumen extending therebetween;
- a retainer plug positioned in the lumen of the launch tube;
- a plurality of pellets positioned in the lumen of the launch tube proximal to the retainer plug;
- a spring fixedly mounted in the lumen of the launch tube proximal the plurality of pellets; and
- an acceleration-activated latch having a first configuration wherein the latch connects the retainer plug with the launch tube to hold the retainer plug stationary in the launch tube, and a second configuration wherein the latch releases the retainer plug from the launch tube for free travel of the retainer plug through the lumen of the launch tube, and further wherein an acceleration force generated by a rapid acceleration of the launch tube in a distal direction transitions the latch from its first configuration to its second configuration and compresses the spring to propel the retainer plug and the plurality of pellets from the launch tube in the distal direction when the acceleration force subsides.
2. A multi-pellet launcher as recited in claim 1, wherein the retainer plug is formed with a distal ring dimensioned to move within the lumen and a proximal ring dimensioned to move within the lumen, and a mid-section formed with a proximally decreasing taper between the distal ring and the proximal ring, and wherein the tube is formed with at least one lateral vent, and wherein the acceleration-activated latch further comprises at least one latch sphere positioned in the vent and that is trapped between a distal edge of the vent and the proximal ring of the retainer plug by the spring to hold the retainer plug and pellets in the lumen of the launch tube for the first latch configuration until the acceleration force is imposed on the retainer plug to release the latch sphere for ejection from the vent to transition the latch from its first configuration to its second configuration.
3. A multi-pellet launcher as recited in claim 1 wherein the launch tube is formed with a pair of axially opposed, substantially parallel slots extending in a proximal direction from the distal end of the launch tube, with a detent formed at a proximal end of each slot, and wherein the launcher further comprises a pair of axially opposed pins extending radially outward from the retainer plug to be received in a respective slot of the launch tube for engagement with a respective detent to hold the retainer plug in the first latch configuration.
4. A multi-pellet launcher as recited in claim 1 wherein the launch tube is formed with a lateral opening, and wherein the launcher further comprises a clip mounted on the retainer plug and extending in a distal direction therefrom, wherein the clip is received in the opening of the launch tube in a stressed condition to hold the retainer plug in the first latch configuration, while the clip is biased for a return to an unstressed condition in the second latch configuration for free travel of the retainer plug through the launch tube.
5. A multi-pellet launcher as recited in claim 1 further comprising an inner sleeve affixed inside the lumen of the launch tube, at a distance “df” from the distal end of the tube, wherein the inner sleeve is positioned proximal the spring to act as an abutment for the spring during a compression of the spring.
6. A multi-pellet launcher as recited in claim 1 wherein the retainer plug is made of a material selected from a group comprising Acrilonitrile-Butadiene-Styrene (ABS), Polycarbonate and Polysulfone, and wherein a distal end of the retainer plug is formed with a distal recessed surface to promote tumbling of the retainer plug after a launch of the launcher.
7. A multi-pellet launcher as recited in claim 1 further comprising a plurality of spacers, wherein a spacer is positioned between adjacent pellets in the launch tube.
8. A multi-pellet launcher as recited in claim 1 further comprising a plurality of magnets wherein adjacent magnets straddle two pellets, and pellets on opposed sides of a same magnet are subjected to a different polarity.
9. A multi-pellet launcher as recited in claim 1 wherein the launch tube has an overall length of less than thirty-two inches.
10. A system for propelling a plurality of pellets from a launch tube which comprises:
- a retainer plug for holding the plurality of pellets in an axial alignment inside the launch tube in response to a forward directed bias force imposed on the pellets by a compressed spring;
- a latch established on the launch tube for restraining a forward movement of the retainer plug in response to the bias force imposed by the compressed spring; and
- a means for propelling the launch tube in a forward direction to create an acceleration force for moving the retainer plug and the pellets in a rearward direction to further compress the spring and release the latch from the retainer plug for a subsequent forward propulsion of the retainer plug and the plurality of pellets from the launch tube in response to the bias force of the compressed spring.
11. A system as recited in claim 10 wherein the launch tube defines a longitudinal axis and has an open distal end and a closed proximal end, and further wherein the tube is formed with one or more lateral vents located equidistant from the distal end of the tube.
12. A system as recited in claim 11 wherein the latch comprises one or more latch spheres, wherein each latch sphere is positioned in a respective vent and is urged against a forward edge of the vent by the distal bias of the spring on the retainer plug, to hold the retainer plug and pellets in the lumen of the launch tube.
13. A system as recited in claim 12 wherein the retainer plug has a distal ring dimensioned to move within the lumen and a proximal ring dimensioned to move within the lumen and a mid-section formed with a proximally decreasing taper between the distal ring and proximal ring.
14. A system as recited in claim 10 wherein the distal ring of the retainer plug is formed with a distal recessed surface to promote tumbling of the retainer plug after a launch of the launcher and the retainer plug is made of a material selected from a group comprising Acrilonitrile-Butadiene-Styrene (ABS), Polycarbonate and Polysulfone.
15. A system as recited in claim 10 further comprising an inner sleeve affixed inside the lumen of the launch tube, at a distance “df” from the distal end of the tube, wherein the inner sleeve is positioned between the spring and the plurality of pellets to act as an abutment for the spring during a compression of the spring.
16. A system as recited in claim 10 wherein the system has as many as forty or more pellets and the launch tube has a length less than thirty-two inches.
17. A system as recited in claim 10 wherein the means for propelling the launch tube is a crossbow.
18. A system as recited in claim 10 wherein the means for propelling the launch tube is an air gun.
19. A method for propelling a plurality of pellets from a launch tube which comprises the steps of:
- holding the plurality of pellets with a retainer plug in an axial alignment inside the launch tube in response to a forward directed bias force imposed on the pellets by a compressed spring;
- establishing a latch on the launch tube for restraining a forward movement of the retainer ring in response to the bias force imposed by the compressed spring; and
- propelling the launch tube in a forward direction to create an acceleration force for moving the retainer plug and the pellets in a rearward direction relative to the launch tube to further compress the spring and release the latch from the retainer plug for a subsequent forward propulsion of the retainer plug and the plurality of pellets from the launch tube in response to the bias force of the compressed spring.
20. A method as recited in claim 19 further comprising the step of affixing an inner sleeve inside the lumen of the launch tube, at a distance “df” from the distal end of the tube, wherein the inner sleeve is positioned between the spring and the plurality of pellets to act as an abutment for the spring during a compression of the spring.
Type: Application
Filed: Nov 16, 2011
Publication Date: May 16, 2013
Inventor: G. Wilson Flint (Albuquerque, NM)
Application Number: 13/298,124
International Classification: F41B 7/00 (20060101); F41B 11/00 (20060101); F41B 5/12 (20060101);