STIRLING COOLER STRUCTURE HAVING MULTIPLE COOLING MODULES
20230043596 ยท 2023-02-09
Inventors
Cpc classification
F25B2309/1428
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B9/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2400/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A Stirling cooler structure having multiple cooling modules includes at least one power unit, a pipeline, a plurality of Stirling cooling modules, and at least one piezoresistive unit. The power unit includes a cylinder and a piston. The pipeline is connected to the cylinder. The Stirling cooling modules each include a pipe and a passive displacer. The passive displacer is reciprocally, movably disposed in the pipe to partition the pipe into a cold end and a hot end. The hot end is connected to the pipeline. The piston is driven by an electric motor for a compressed air to flow through the pipeline to the hot end and then flow to the cold end through the passive displacer, such that the cold end absorbs ambient heat. The piezoresistive unit is selectively disposed between the Stirling cooling modules and the cylinder.
Claims
1. A Stirling cooler structure, comprising: at least one power unit, including a cylinder and a piston: a pipeline, connected to the cylinder; a plurality of Stirling cooling modules, each including a pipe and a passive displacer, the passive displacer being reciprocally, movably disposed in the pipe to partition the pipe into a cold end and a hot end, wherein the hot end is connected to the pipeline; wherein the piston is driven to compress air in the cylinder to form a compressed air, the compressed air flows through the pipeline to the hot end and then flows to the cold end through the passive displacer, the cold end absorbs ambient heat so that the compressed air is expanded to flow back to the cylinder through the passive displacer, characterize in that: the pipeline is provided with at least one piezoresistive unit, the piezoresistive unit is selectively disposed between the Stirling cooling modules and the cylinder, when the compressed air passes through the piezoresistive unit, a pressure of the compressed air is changed, thereby changing a movement stroke of the passive displacer and a phase difference between the movement strokes of the passive displacers of the Stirling cooling modules.
2. The Stirling cooler structure as claimed in claim 1, wherein the piezoresistive unit is one of a valve and a porous member.
3. The Stirling cooler structure as claimed in claim 2, wherein the valve is one of a constant temperature expansion valve, a constant pressure expansion valve and a constant flow expansion valve.
4. The Stirling cooler structure as claimed in claim 1, wherein the power unit further includes an electric motor, and the electric motor is connected to the piston.
5. The Stirling cooler structure as claimed in claim 1, wherein the cold ends of the Stirling cooling modules are arranged in a single straight line, multiple straight lines, a radial form, a single circle, multiple circles, or a combination thereof.
6. The Stirling cooler structure as claimed in claim 1, wherein the cold ends of the Stirling cooling modules are different in size.
7. A Stirling cooler structure, comprising: at least one power unit, including a cylinder and a piston; a pipeline, connected to the cylinder; a plurality of Stirling cooling modules, each including a pipe and a passive displacer, the passive displacer being reciprocally, movably disposed in the pipe to partition the pipe into a cold end and a hot end, wherein the hot end is connected to the pipeline; wherein the piston is driven to compress air in the cylinder to form a compressed air, the compressed air flows through the pipeline to the hot end and then flows to the cold end through the passive displacer, the cold end absorbs ambient heat so that the compressed air is expanded to flow back to the cylinder through the passive displacer, characterize in that: the pipeline has at least one diameter-changing portion, the diameter-changing portion is selectively disposed between the Stirling cooling modules and the cylinder, when the compressed air passes through the diameter-changing portion, a pressure of the compressed air is changed, thereby changing a movement stroke of the passive displacer and a phase difference between the movement strokes of the passive displacers of the Stirling cooling modules.
8. The Stirling cooler structure as claimed in claim 7, wherein the power unit further includes an electric motor, and the electric motor is connected to the piston.
9. The Stirling cooler structure as claimed in claim 7, wherein the cold ends of the Stirling cooling modules are arranged in a single straight line, multiple straight lines, a radial form, a single circle, multiple circles, or a combination thereof.
10. The Stirling cooler structure as claimed in claim 7, wherein the cold ends of the Stirling cooling modules are different in size.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0031] Embodiments of the present invention will now be described, by way of example only, with reference to the accompanying drawings.
[0032] As shown in
[0033] The power unit 1 includes a cylinder 11 and a piston 12. The piston 12 is mounted in the cylinder 11 and has a distance D1 from the bottom dead center of the cylinder 11. In this embodiment, the power unit 1 further includes an electric motor 13. The electric motor 13 is connected to the piston 12 for driving the piston 12 to move in the cylinder 11. The pipeline 2 is connected to the cylinder 11. Each Stirling cooling module 3 includes a pipe 31 and a passive displacer 32. The passive displacer 32 is reciprocally, movably disposed in the pipe 31 to partition the pipe 31 into a cold end 311 and a hot end 312. The hot end 312 is connected to the pipeline 2. The passive displacer 32 is at a distance d1 from the bottom dead center of the cold end 311. The piezoresistive unit 4 is disposed on the pipeline 2, and is selectively disposed between the Stirling cooling modules 3 and the cylinder 11. In this embodiment, the piezoresistive unit 4 is provided between each of the Stirling cooling modules 3 and the cylinder 11. The piezoresistive unit 4 may use, for example, a valve or a porous member. The valve may use, for example, a constant temperature expansion valve, a constant pressure expansion valve or a constant flow expansion valve.
[0034] Referring to
[0035] It should be particularly noted that when the compressed air enters the pipe 31 of each Stirling cooling module 3, the pressure drop can be adjusted through the piezoresistive unit 4 between each Stirling cooling module 3 and the cylinder 11. When the compressed air enters the hot end 312 of the pipe 31 of each Stirling cooling module 3, it has the same pressure, so that the passive displacer 32 of each Stirling cooling module 3 has a movement stroke that tends to be uniform. For example, when the piston 12 is moved to have a distance D2 from the bottom dead center of the cylinder 11, the passive displacer 32 of each Stirling cooling module 3 is moved to have a distance d2 from the bottom dead center of the opposite cold end 311, thereby changing the phase difference between the movement strokes of the passive displacers 32 of the Stirling cooling modules 3. Thus, the cold end 311 of the pipe 31 of each Stirling cooling module 3 has a cooling effect that tends to be uniform. Alternatively, according to different cooling requirements, different pressure drops are adjusted through the piezoresistive unit 4, so that the cold end 311 of the pipe 31 of each Stirling cooling module 3 has a different cooling effect. That is, in this embodiment, the passive displacer 32 of each Stirling cooling module 3 has a controllable movement stroke, so that the cold end 311 of each Stirling cooling module 3 has a controllable cooling effect. The power unit 1 uses the electric motor 13 to drive the piston 12, so the number of revolutions of the compression part of the cylinder 11 can be adjusted freely. Thus, the temperature of the hot end 312 of the subsequent Stirling cooling module 3 can be controlled to control the cooling capacity of the Stirling cooling module 3.
[0036] Referring to
[0037]
[0038] The power unit 1A includes a cylinder 11A and a piston 12A. The piston 12A is mounted in the cylinder 11A. In this embodiment, the power unit 1A further includes an electric motor 13A. The electric motor 13A is connected to the piston 12A. The pipeline 2A is connected to the cylinder 11A. The Stirling cooling modules 3 are connected to the pipeline 2. The second embodiment is substantially similar to the first embodiment with the exceptions described hereinafter. The piezoresistive unit 4 is not provided in the second embodiment. The pipeline 2A has diameter-changing portions 21A, 21B. 21C, 21D connected to the respective Stirling cooling modules 3A. In this embodiment, the pressure of the compressed air entering each Stirling cooling module 3A is controlled according to the diameter-changing portions 21A, 21B, 21C, 21D, so as to control the cooling effect of each Stirling cooling module 3A.
[0039]
[0040] Although particular embodiments of the present invention have been described in detail for purposes of illustration, various modifications and enhancements may be made without departing from the spirit and scope of the present invention. Accordingly, the present invention is not to be limited except as by the appended claims.