4.6 Article

A 1 kW-class multi-stage heat-driven thermoacoustic cryocooler system operating at liquefied natural gas temperature range

期刊

APPLIED PHYSICS LETTERS
卷 107, 期 3, 页码 -

出版社

AMER INST PHYSICS
DOI: 10.1063/1.4927428

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资金

  1. National Natural Science Foundation of China [51276187]
  2. Joint Funds of NSFC-Yunnan [U1137606]

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This article introduces a multi-stage heat-driven thermoacoustic cryocooler capable of reaching cooling capacity about 1 kW at liquefied natural gas temperature range without any moving mechanical parts. The cooling system consists of an acoustically resonant double-acing traveling wave thermoacoustic heat engine and three identical pulse tube coolers. Unlike other traditional traveling wave thermoacoustic heat engines, the acoustically resonant double-acting thermoacoustic heat engine is a closed-loop configuration consists of three identical thermoacoustic conversion units. Each pulse tube cooler is bypass driven by one thermoacoustic heat engine unit. The device is acoustically completely symmetric and therefore self-matching for efficient traveling-wave thermoacoustic conversion. In the experiments, with 7MPa helium gas as working gas, when the heating temperature reaches 918 K, total cooling capacity of 0.88kW at 110K is obtained with a resonant frequency of about 55 Hz. When the heating temperature is 903 K, a maximum total cooling capacity at 130K of 1.20 kW is achieved, with a thermal-to-cold exergy efficiency of 8%. Compared to previously developed heat-driven thermoacoustic cryocoolers, this device has higher thermal efficiency and higher power density. It shows a good prospect of application in the field of natural gas liquefaction and recondensation. (C) 2015 AIP Publishing LLC.

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