Pulse tube heat engine

5435136
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Inventors

Ishizaki, Yoshihiro
Matsui, Takayuki

Application #

960837

Filed

Oct-14-1992

Published

Jul-25-1995

Current US Class

060/517
062/467
062/6

International Classes

F25B 009/00

Field of Search

60/517 62/6 62/467 62/401

Assignee

Aisin Seiki Kabushiki Kaisha (Kariya, JP); ECTI Kabushiki Kaisha (Kamakura, JP)

Examiners

Look; Edward K.

Attorney, Agent or Firm

Oblon, Spivak, McClelland, Maier & Neustadt

US Patent References

4024727   Vuilleumier refrige...
4335579   Refrigerating system
4570445   Method of absorbin...
4717405   Stirling machine
5172554   Superfluid thermod...
5269147   Pulse tube refriger...
5275002   Pulse tube refriger...

Referenced by:

View Backward References

Other References

Inoue, Low Temperature Engineering, vol. 26, No. 2, 1991, pp. 98-107. "Current State of Research of Pulse-Tube Refrigerators". Radebaugh, Advances in Cryogenic Engineering, vol. 35, 1990, pp. 1191-1205. Radebaugh, et al., Fourth International Cryocooler Conference, 1987, pp. 119-133. "Refrigeration Efficiency of Pulse-Tube Refrigerators". Matsubara, et al., The 5th International Cryocooler Conference, pp. 127-135. "Alternative Methods of the Orifice Pulse Tube Refrigerator". Kasuya, et al., Cryogenics, vol. 31, No. 9, 1991, pp. 786-790. "Work and heat flows in a pulse-tube refrigerator".

Citation

Cite This Patent

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Abstract
A pulse tube refrigerator includes a compression space defined by a compression piston inside a cylinder, an expansion space defined by an expansion piston inside a cylinder, the expansion piston being reciprocated at an advance angle of a constant phase difference within a range of 10.degree.-45.degree. relative to the compression piston, and first and second thermal systems communicating the compression and expansion spaces. Each thermal system has a radiator, a regenerator, a cold head and a pulse tube, with the regenerator of the second thermal system being composed of two regenerator sections. The cold head of the first thermal system is made to perform a heat exchange with the second thermal system between the two regenerator sections thereof, whereby a very low temperature is obtained from the cold head of the second thermal system.
 
Claims
What is claimed is:

1. A pulse tube heat engine comprising a compression space, a radiator, a regenerator, a heat absorber, a pulse tube and an expansion space, wherein said radiator, said regenerator, said heat absorber and said pulse tube are connected between said compression space and said expansion space of a working fluid, and a variation in the volume of said expansion space is advanced by a constant phase difference within a range of phases of from 0.degree. to +60.degree. relative to a variation in the volume of said compression space.

2. The heat engine according to claim 1, wherein said heat engine operates as a prime mover, with the volume of said expansion space being within a range of from 6.6 to 30% of the volume of said compression space.



Description
BACKGROUND OF THE INVENTION

1. Field of the Invention

This invention relates to a pulse tube heat engine which makes it possible to provide a simply structured, highly efficient, highly reliable and low-cost refrigerator or prime mover, wherein a pulse tube, which is the main device used in the adiabatic process of a pulse tube refrigerator, is introduced in a Stirling-cycle engine to construct a thermal cycle (a pseudo-Stirling cycle) comprising, in terms of theoretical operation, two isovolumetric processes and two adiabatic processes, whereby an expansion piston or a displacer, reciprocated at low or high temperature and heretofore essential in refrigerators or prime movers of a Stirling engine, is no loner necessary.

2. Description of the Prior Art

A Stirling cycle comprising two isothermal and isovolumetric processes is a closed-cycle apparatus which uses a working fluid (helium, argon, hydrogen, etc.) and has been developed as an external-combustion engine or refrigerator. A drawback encountered in refrigerators which use this Stirling cycle is that mechanical vibration, which is produced by reciprocation of a low-temperature, comparatively long expansion piston, is transmitted to a cold head and causes a sensor or the like to generate noise. Another problem is that contact between the outer peripheral surface of the comparatively long expansion piston and the inner peripheral surface of a cylinder produces abrasion dust that contaminates the working fluid and a regenerator. This leads to malfunctions and a decline in the performance of the refrigerator.
 
  An engine has a piston with plural end faces that compresses combustible mixtures on both sides of the piston and in each end of a closed cylinder containing...  To improve cooling efficiency of a pulse tube refrigerator, it is found that creating two conditions in the refrigerator, particularly in a regenerator...