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Design and study of the anisotropic stack/heat-exchanger refrigerator.

机译:各向异性堆栈/热交换器冰箱的设计和研究。

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摘要

Conventional finned heat exchangers maintain a large temperature gradient between the thermoacoustic fluid and the heat exchanger fluid to enable a large amount of heat transport. The entropy increase of heat transferal between two fluids causes irreversibility and results in the poor performance of the thermoacoustic system.; Stack geometry, on the other hand, also affects the thermoacoustic refrigerator performance. The ratio of the productive area over the dissipative area is a function of the concavity or convexity of the basic stack elements. The thermoacoustic linear theory (G. W. Swift, et al.) indicates that the pin array stack has a higher performance than other geometries.; In order to increase the overall performance of the thermoacoustic refrigerator, we designed an anisotropic stack/heat-exchanger unit (ASHE unit) to fit into the Space ThermoAcoustic Refrigerator (STAR) resonator that has a built-in copper-fin heat exchanger at the cold end. The system was driven by a high power Shipboard Electronic ThermoAcoustic Cooler (SETAC) driver. The heat exchanger, with much less temperature difference between the thermoacoustic fluid and heat exchanger fluid, was proven by our measurements to have a large heat convection coefficient. The unit eliminates the disparity of length scale between the stack and heat exchangers. The measurements have shown that the ASHE refrigerator with the copper fin heat exchanger has a coefficient of performance (COP) of 13% relative to the Carnot efficiency at a 2% pressure ratio, which increases to 16% at a 3% pressure ratio. A further analysis suggests a high 20% COP relative to the Carnot efficiency at a 3% pressure ratio when the copper-fin heat exchanger is replaced by an ASHE heat exchanger at the cold end.
机译:常规的翅片式热交换器在热声流体和热交换器流体之间保持大的温度梯度,以实现大量的热传递。两种流体之间的传热熵增加导致不可逆性,并导致热声系统的性能下降。另一方面,烟囱的几何形状也会影响热声冰箱的性能。生产面积与耗散面积之比是基本堆叠元件的凹度或凸度的函数。热声线性理论(G. W. Swift,等人。)表明,引脚阵列叠层的性能要高于其他几何形状。为了提高热声制冷机的整体性能,我们设计了一个各向异性的堆栈/热交换器单元(ASHE单元),以安装到空间热声制冷机(STAR)谐振器中,该谐振器在其内部装有内置铜翅片式热交换器。冷端。该系统由大功率舰载电子热声冷却器(SETAC)驱动。通过我们的测量证明,热交换器的热声流体与热交换器流体之间的温差要小得多,它具有较大的热对流系数。该装置消除了烟囱和热交换器之间的长度刻度差异。测量结果表明,带有铜翅片热交换器的ASHE冰箱相对于2%压力比下的卡诺效率具有13%的性能系数(COP),在3%压力比下可提高到16%。进一步的分析表明,当在冷端用ASHE换热器代替铜翅片换热器时,相对于3%压力比下的卡诺效率,COP值高达20%。

著录项

  • 作者

    Zhang, Chao.;

  • 作者单位

    The Pennsylvania State University.;

  • 授予单位 The Pennsylvania State University.;
  • 学科 Physics Acoustics.; Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 183 p.
  • 总页数 183
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 声学;机械、仪表工业;
  • 关键词

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