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首页> 外文期刊>ASHRAE Transactions >New Types of Low Global Warming, Energy Efficient Refrigeration Architectures Using a Trans-Critical Rotary Pressure Exchanger
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New Types of Low Global Warming, Energy Efficient Refrigeration Architectures Using a Trans-Critical Rotary Pressure Exchanger

机译:New Types of Low Global Warming, Energy Efficient Refrigeration Architectures Using a Trans-Critical Rotary Pressure Exchanger

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摘要

CO_2 refrigeration has been a strong candidate for ultra-low global warming refrigeration. However efficiency of a trans-critical CO2 refrigeration cycle suffers in hotter ambient due to the excessive amount of flash gas produced that needs to be re-compressed back to high gas cooler pressure. Exergetic analysis of such a cycle indicates that a large amount of exergy is destroyed through entropy production during the throttling across a Joule-Thompson valve. To solve this problem, this paper presents new CO_2 refrigeration architectures using a novel rotary Trans-Critical Pressure Exchanger (TCPX) to achieve high cycle efficiencies. TCPX reduces compression work required by the cycle using a direct fluid-to-fluid pressure exchange between high-pressure supercritical CO_2 and low-pressure gaseous CO_2, that takes place within its rotary ducts, thus allowing for an efficient pressure recovery. A TCPX placed between the gas cooler and receiver / evaporator serves simultaneously as a compressor and as an isentropic expansion device all within a single rotary device. It utilizes acoustic compression waves generated in a multi-ducted high-speed rotor to compress the low-pressure CO_2 without requiring external mechanical energy input and simultaneously expands high-pressure supercritical CO_2 to produce a two-phase, cold fluid stream ready for heat absorption. Various refrigeration architectures integrated with this TCPX are designed and the energy savings provided by TCPX are evaluated.

著录项

  • 来源
    《ASHRAE Transactions》 |2022年第2期|360-368|共9页
  • 作者

    Azam Thatte; Brian A. Fricke;

  • 作者单位

    Energy Recovery, Inc., San Leandro, CA;

    Building Equipment Research Group at Oak Ridge National Laboratory, Oak Ridge, TN;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 英语
  • 中图分类
  • 关键词

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