...
首页> 外文期刊>Energy Conversion & Management >Study on the coupling performance of a turboexpander compressor applied in cryogenic reverse Brayton air refrigerator
【24h】

Study on the coupling performance of a turboexpander compressor applied in cryogenic reverse Brayton air refrigerator

机译:低温反向布雷顿空气制冷机中涡轮膨胀机压缩机的耦合性能研究

获取原文
获取原文并翻译 | 示例
           

摘要

A small cryogenic reverse Brayton air refrigerator with turboexpander compressor (TEC) is presented in this study. Because of stable process, simple matching between expander and brake blower, and easy regulation, a turboexpander with brake blower is usually used in small reverse Brayton refrigerator. However, a turboexpander with brake blower just consumes and wastes the output energy during the enthalpy drop. In contrast, the output energy of TEC is absorbed by its coupled compressor for recycling. Thus when employing a TEC, the reverse Brayton refrigerator will achieve lower refrigeration temperature, larger cooling capacity and more effective energy use. TEC overall performance, which has an important impact on the refrigerator thermal performance, is mainly determined by the coupling between expander and compressor. In a TEC, the compressor and expander should seek balance among energy, rotating speed, mass flow rate and pressure, though restricted by individual working characteristics. The coupling relations among compressor efficiency, expander efficiency, compressor pressure ratio and expander expansion ratio are quite complex. In this study, theoretical coupling analysis between expander and compressor was conducted. The aerodynamic performances of compressor and expander were calculated using CFX simulation with SST model. The performance curves of compressor and expander were obtained through simulation results, which were validated by experimental data. Based on the coupling analysis and numerical simulations, the automatic coupling model between compression process and expansion process was established via Matlab code. The refrigerator was tested under varied coupling parameters (compressor inlet pressures and expander inlet temperatures). The calculated coupling performance-was validated by experimental data. With good coupling, the cooling capacity of refrigerator reached 48.0 W at 99.6 K. The coupling performance was calculated through the coupling model, and mutual relations and interactions among coupling parameters were quantitatively described and clarified. The coupling model could effectively predict the coupling performance and therefore allow for the further design and optimization of TEC. (C) 2016 Elsevier Ltd. All rights reserved.
机译:这项研究提出了一种小型的带有涡轮膨胀压缩机(TEC)的低温反向布雷顿空气制冷机。由于工艺稳定,膨胀机与制动鼓风机之间的简单匹配以及易于调节,通常在小型反向布雷顿制冷机中使用带有制动鼓风机的涡轮膨胀机。然而,带焓鼓风机的涡轮膨胀机只会在焓降期间消耗和浪费输出能量。相反,TEC的输出能量被其耦合的压缩机吸收,以便回收利用。因此,当使用TEC时,反向布雷顿制冷机将实现更低的制冷温度,更大的制冷量和更有效的能源利用。 TEC的整体性能对冰箱的热性能有重要影响,主要取决于膨胀机和压缩机之间的耦合。在TEC中,压缩机和膨胀机应在能量,转速,质量流率和压力之间寻求平衡,尽管受个别工作特性的限制。压缩机效率,膨胀机效率,压缩机压力比和膨胀机膨胀比之间的耦合关系非常复杂。在这项研究中,进行了膨胀机和压缩机之间的理论耦合分析。压缩机和膨胀机的空气动力学性能是使用CST模拟和SST模型计算得出的。通过仿真结果获得了压缩机和膨胀机的性能曲线,并通过实验数据进行了验证。在耦合分析和数值模拟的基础上,通过Matlab代码建立了压缩过程与膨胀过程之间的自动耦合模型。在变化的耦合参数(压缩机入口压力和膨胀机入口温度)下对冰箱进行了测试。计算的耦合性能已通过实验数据验证。通过良好的耦合,冰箱的制冷量在99.6 K时达到了48.0W。通过耦合模型计算了耦合性能,并定量描述了耦合参数之间的相互关系和相互作用。耦合模型可以有效地预测耦合性能,因此可以进一步设计和优化TEC。 (C)2016 Elsevier Ltd.保留所有权利。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号