Cooling device and system
A novel heat pipe and a cooling system that employs the heat pipe are disclosed. The heat pipe has a configuration in the form of a nail that includes a flattened upper section and an elongated lower, section. The heat pipe may be in the form of nail shape or a continuous bar that includes a flattened upper section and an elongated section. The heat pipe may be employed together with a thermoelectric cooling module and a heat sink to provide a cooling device. The cooling device may be employed with a container to provide a cooling system.
The present invention relates to refrigeration technology. More particularly, the present invention relates to portable cooling devices and systems.
BACKGROUND OF THE INVENTIONKnown mechanical compressor type refrigeration units employ a compressor, a condenser, an evaporator and a fan. These devices, although useful, generate considerable vibration and noise. Also, these devices, owing in part to their size, are not suitable for cooling small amounts of liquids such as found in mugs intended for automobile vehicle use.
For the purpose of illustrating the invention, there is shown in the drawings a form that is presently preferred, it being understood, however, that this invention is not limited to precise arrangements shown.
The disclosed cooling device 10 employs a heat pipe, such as an elongated heat pipe such as heat pipe 1 in combination with thermoelectric cooling module 2. Heat pipe 1 advantageously may operate in silence and without moving parts. Cooling device 10 advantageously may operate with minimal noise and vibration. Cooling device 10 may be configured to a wide range of dimensions. Advantageously, cooling device 10 may be configured in dimensions suitable for enabling cooling device 10 to be useful as a portable, mini-cooling appliance for use in automotive vehicles, boats, home and office. Cooling device 10 may be configured for battery, DC and AC operation.
DETAILED DESCRIPTION OF THE INVENTIONIn a first embodiment, and referring to
Elongated section 1B preferably is in the form of an elongated, hollow cylinder such as a cylinder that has any of a circular cross section or a hollow hexagonal cross section, preferably a hollow circular cross section. When elongated, lower section 1B of heat pipe 1 has a circular cross-section, the inner and outer diameters of lower section 1B may vary over a wide range. Typically, the outer diameter of lower section 1B may vary from about 10 mm to about 20 mm, preferably about 14 mm to about 18 mm. Lower section 1B may have a wall thickness that may vary from about 1 mm to about 2 mm. Where heat pipe 1 is formed from aluminum, the wall thickness is preferably about 1.5 mm and the outer diameter is preferably about 16 mm. The length of section 1B may vary and is limited only by the depth of the container in which the heat pipe is employed. Typically, the length of section 1B is about 80% to about 95% of the depth of the container in which the heat pipe is employed.
Section 1B has an open, upper end and a closed bottom end. The bottom end of section 1B may be configured in a wide variety of shapes. Preferably, the bottom end of lower section 1B is upwardly concave, preferably in the form of a hemisphere. Upper section 1A of heat pipe 1 may have a variety of configurations so as to correspond to the configuration of thermoelectric cooling module 2. Section 1A may have configurations such as square, rectangular, circular, preferably square. Section 1A, as shown in
The upper surface of elongated section 1B may be joined to the bottom surface of upper section 1A by a variety of methods such as welding, brazing and the like to form a leak resistant, preferably a leak-proof assembly. Upper section 1A also may be integral with elongated section 1B as may be produced by methods such as casting.
Each of elongated section 1B and upper section 1A may be formed from the same or different, heat conductive materials, preferably the same heat conductive materials. Useful heat conductive materials typically have thermal conductivities of about 150W·m−1·K−1 or greater at 300 K. Examples of these heat conductive materials include but are not limited to aluminum and copper, preferably aluminum, as well as bi-layer composites of aluminum and copper. Where copper is employed, the copper may be nickel-plated or chrome plated. Where aluminum is employed, the aluminum may be anodized, preferably hard anodized. Where bi-layer materials of aluminum and copper are employed in any of elongated section 1B and upper section 1A of heat pipe 1, copper is preferably on the interior of elongated section 1B. Where bi-layer materials of aluminum and copper are employed for upper section 1A, copper is preferably employed on the exterior of upper section 1A. Heat pipe 1 is suitable for use in a container such as container 13 shown in
Elongated section 1B, as shown in
In a second embodiment, and as shown in
Upper section 1D may vary over a wide range of dimensions and configurations. Typically, section 1D has dimensions of length and width that are about equal to that of thermoelectric cooling module 2. Section 1D may have configurations such as square, rectangular, circular, preferably square. The dimensions of section 1E also may vary over a wide range. Typically, section 1E has a length that is about 80% to about 95% of the depth of the container in which the heat pipe is employed. The bar may be formed of conductive metals such as aluminum, copper, or bi-layers of aluminum and copper, preferably aluminum.
Referring to
Fan 4, such as a muffin fan from SUNON, is secured to heat sink 3. Fan 4 generates forced air to dissipate heat from heat sink 3. Fan 4 may be secured to heat sink 3 by mechanical fasteners such as screws.
Heat pipe 1, thermoelectric cooling module 2, and heat sink 3 that has fan 4 mounted thereon are secured to holding plate 8 by fasteners such as screws 9 to form an assembly. Holding plate 8 may be formed from conductive materials such as metal or insulating materials such as plastics. Optional insulation cubes 7 formed of materials such as non-metallic insulative materials such as nylon may be secured together with heat pipe 1, thermoelectric cooling module 2 and heat sink 3 to holding plate 8 by fasteners such as screws 9. Thermal insulation foam optionally may be provided between the bottom surface of heat sink 3 and the top surface of holding plate 8.
In use, cooling device 10, as shown in
Container 13, as shown in
During use, heat pipe 1 of cooling device 10 is inserted into a flowable material to be cooled, such as a liquid such as water in container 13. Heat from the flowable material is transferred to heat pipe 1 to cause evaporation of the coolant in heat pipe 1, the vapor rises upwardly until it reaches the cold surface of the upper section of heat pipe 1. The latent heat of the coolant vapor is transferred to thermoelectric cooling module 2 whereby the vapor condenses and falls to the bottom of heat pipe 1 for subsequent cycling and continued cooling of the material in container 13.
Claims
1. A heat pipe comprising a flattened upper section operatively connected to an elongated lower section wherein the elongated lower section has the configuration on an elongated hollow cylinder.
2. The heat pipe of claim 1 wherein the elongated hollow cylinder has a circular cross section or a hollow hexagonal cross section.
3. The heat pipe of claim 1 wherein the lower section has a closed lower end and an open upper end wherein the closed lower end has a hemispherical configuration.
4. The heat pipe of claim 1 wherein the upper section includes a port for admitting coolant into the lower section.
5. The heat pipe of claim 4 wherein the coolant is a phase change, heat transfer liquid selected from the group consisting of ammonia, acetone, 1,1,1,2-Tetrafluoroethane, 2,3,3,3-tetrafluoroprop-1-ene, ethanol and mixtures thereof.
6. The heat pipe of claim 1 wherein each of the elongated section and the upper section are formed from heat conductive materials that have thermal conductivities of about 150W·m−1·K−1 or greater at 300 K.
7. The heat pipe of claim 6 wherein the heat conductive materials are aluminum.
8. A heat pipe comprising a continuous angled bar that has an upper section that is integral with an elongated lower section wherein the upper section and lower section have an angle θ there between and wherein the bar has at least one channel that extends throughout the upper section and the lower section.
9. The heat pipe of claim 8 wherein the bar has a ratio of width to thickness of about 3 to about 6.
10. The heat pipe of claim 8 wherein the bar includes a plurality of channels.
11. The heat pipe of claim 8 wherein the angle θ is about 90°±10°.
12. A cooling device comprising a heat pipe cooperatively connected to a thermoelectric cooling module wherein the thermoelectric cooling module is cooperatively connected to a heat sink and wherein the thermoelectric cooling module generates a cold surface that contacts the heat pipe to cool fluid coolant in the heat pipe.
13. The device of claim 12 further comprising a fan unit cooperatively connected the heat sink wherein the fan unit provides air to the heat sink.
14. A cooling system comprising the cooling device of claim 12 secured to a container suitable for retaining flowable material wherein the heat pipe extends into the container.
15. The cooling system of claim 14 wherein the cooling device of claim 12 further comprises a fan unit cooperatively connected to the heat sink wherein the fan unit provides air to the heat sink.
16. The cooling system of claim 14 further comprising a tube for extracting flowable material from the container.
Type: Application
Filed: Nov 5, 2009
Publication Date: May 5, 2011
Inventors: Wanlie Zheng (Fairborn, OH), Siqi Zheng (Fairborn, OH)
Application Number: 12/591,053
International Classification: F28D 15/02 (20060101);