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首页> 外文期刊>Cryogenics >Investigation of neon-nitrogen mixed refrigerant Joule-Thomson cryocooler operating below 70 K with precooling at 100 K
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Investigation of neon-nitrogen mixed refrigerant Joule-Thomson cryocooler operating below 70 K with precooling at 100 K

机译:氮-氮混合制冷剂焦耳-汤姆逊低温冷却器的研究工作在70 K以下且预冷为100 K

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There has been two-stage mixed refrigerant (MR) Joule-Thomson (JT) refrigeration cycle suggested for cooling high temperature superconductor (HTS) electric power cable below 70 K. As the continuation effort of realizing the actual system, we fabricated and tested a small scale neon and nitrogen MR JT cryocooler to investigate the refrigeration characteristics and performance. The compression system of the refrigeration circuit was accomplished by modifying commercially available air-conditioning rotary compressors. Compressors stably operated at the maximum compression ratio of 31 when the suction pressure was 77 kPa. The achieved lowest temperature was 63.6 K when the heating load was 35.9 W. The measured Carnot efficiency of the present system was 6.5% which was lower than that of the designed goal of 17.4%. The low efficiency of compressor (34.5%), and the pressure drop at the compressor suction were the main reasons for this efficiency degradation. The feasibility and usefulness of neon and nitrogen MRJT refrigeration cycle was validated that the achieved minimum temperature was 63.6 K even though the pressure after the expansion was maintained by 130 kPa. The comparison between the measurement and calculation showed that each stream temperature of refrigeration cycle were predictable within 3% error by Peng-Robinson equation of state (EOS).
机译:建议使用两阶段混合制冷剂(MR)焦耳-汤姆森(JT)制冷循环来冷却70 K以下的高温超导体(HTS)电力电缆。为实现实际系统的持续努力,我们制造并测试了小型氖和氮MR JT制冷机研究制冷特性和性能。制冷回路的压缩系统是通过修改市售的空调旋转式压缩机来实现的。当吸入压力为77 kPa时,压缩机以最大压缩比31稳定运行。当加热负荷为35.9 W时,达到的最低温度为63.6K。本系统测得的卡诺效率为6.5%,低于设计目标的17.4%。压缩机效率低(34.5%)以及压缩机吸入时的压降是导致效率降低的主要原因。氖气和氮气MRJT制冷循环的可行性和实用性得到了验证,即使将膨胀后的压力保持在130 kPa,所达到的最低温度仍为63.6K。测量和计算之间的比较表明,根据彭-罗宾逊状态方程(EOS),可以预测每个制冷循环的流温度在3%的误差范围内。

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