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Characteristics of Thermoacoustic Sound Generator and Its Application to Refrigerator

机译:热声发生器的特性及其在冰箱中的应用

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摘要

The simplified thermoacoustic sound wave generator was employed for preciously oscillatory flow in the resonance tube, and the propagated sound was converted to cold heat using a thermoacoustic sound refrigerator. This is a concept of refrigerator, without a refrigerant and moving part, which is different from conventional refrigerant cycle in present. For the thermoacoustic sound generator, ceramic honeycomb was introduced as a regenerator. When the temperature gradient of each side of the thin tube exceeded the critical temperature, the thermoacoustic sound was generated. The resonance frequency of this sound generator depends on the length of resonance tube and the diameter of a ceramic thin tube. On the other hand, the thermoacoustic sound created a low temperature field using a ceramic regenerator. In addition the resonance frequency must be match between thermoacoustic sound generator and refrigerator. The purpose of this study is to find an optimal system configuration and system condition to achieve a high performance thermoacoustic sound refrigerator with a thermoacoustic sound wave generator. The characteristics of thermoacoustic sound wave generator and refrigerator are evaluated experimentally in this paper. The performance of the thermoacoustic system is examined theoretically based on the experimental results.
机译:使用简化的热声波发生器在共振管中进行宝贵的振荡流动,并使用热声冰箱将传播的声音转换为冷热。这是没有制冷剂和移动部件的冰箱的概念,其不同于当前的常规制冷剂循环。对于热声发声器,引入了陶瓷蜂窝作为蓄热器。当细管两侧的温度梯度超过临界温度时,就会产生热声。该声音发生器的共振频率取决于共振管的长度和陶瓷细管的直径。另一方面,热声利用陶瓷蓄热器产生了低温场。另外,热声发生器和冰箱之间的谐振频率必须匹配。本研究的目的是找到一种最佳的系统配置和系统条件,以实现具有热声波发生器的高性能热声冰箱。通过实验评估了热声声波发生器和冰箱的特性。理论上根据实验结果检查了热声系统的性能。

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  • 会议地点 San Jose CA(US)
  • 作者单位

    Division of Mechanical Engineering, Graduate School of Engineering, Mie University 1577 Kurimamachiya-cho, Tsu 514-8507, Japan Fuji Electric Co., Ltd.1-27 Fuji-cho, Yokkaichi 510-8631, Japan;

    Division of Mechanical Engineering, Graduate School of Engineering, Mie University 1577 Kurimamachiya-cho, Tsu 514-8507, Japan Fuji Electric Co., Ltd.1-27 Fuji-cho, Yokkaichi 510-8631, Japan;

    Division of Mechanical Engineering, Graduate School of Engineering, Mie University 1577 Kurimamachiya-cho, Tsu 514-8507, Japan Fuji Electric Co., Ltd.1-27 Fuji-cho, Yokkaichi 510-8631, Japan;

    Division of Mechanical Engineering, Graduate School of Engineering, Mie University 1577 Kurimamachiya-cho, Tsu 514-8507, Japan Fuji Electric Co., Ltd.1-27 Fuji-cho, Yokkaichi 510-8631, Japan;

    Division of Mechanical Engineering, Graduate School of Engineering, Mie University 1577 Kurimamachiya-cho, Tsu 514-8507, Japan Fuji Electric Co., Ltd.1-27 Fuji-cho, Yokkaichi 510-8631, Japan;

    Division of Mechanical Engineering, Graduate School of Engineering, Mie University 1577 Kurimamachiya-cho, Tsu 514-8507, Japan Fuji Electric Co., Ltd.1-27 Fuji-cho, Yokkaichi 510-8631, Japan;

    Division of Mechanical Engineering, Graduate School of Engineering, Mie University 1577 Kurimamachiya-cho, Tsu 514-8507, Japan Fuji Electric Co., Ltd.1-27 Fuji-cho, Yokkaichi 510-8631, Japan;

    Division of Mechanical Engineering, Graduate School of Engineering, Mie University 1577 Kurimamachiya-cho, Tsu 514-8507, Japan Fuji Electric Co., Ltd.1-27 Fuji-cho, Yokkaichi 510-8631, Japan;

    Division of Mechanical Engineering, Graduate School of Engineering, Mie University 1577 Kurimamachiya-cho, Tsu 514-8507, Japan Fuji Electric Co., Ltd.1-27 Fuji-cho, Yokkaichi 510-8631, Japan;

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