高级检索

    适应SCO2物性变化特性的印刷电路板换热器性能研究

    Study on Heat Transfer Performance of PCHE Adapted to Physical Property Variation of SCO2

    • 摘要: 针对二氧化碳工质在超临界二氧化碳(SCO2)布雷顿循环冷端处于近临界状态,物性随温度变化剧烈,冷端换热器的设计和运行控制难度大等问题,基于换热器分段设计的方法,设计了应用于超临界二氧化碳动力循环冷端换热的直通道印刷电路板换热器(PCHE)和变截面通道PCHE,分析了SCO2在不同流道形式的PCHE中的流动和换热特性。利用SIMULINK建立换热器的仿真模型,研究入口参数偏离设计工况时对不同流道形式换热器的SCO2出口参数的影响。结果表明:SCO2侧流道截面渐扩的设计能增强PCHE的换热性能,但同时会增大SCO2侧的压损;流道截面渐扩的PCHE在冷侧和热侧入口参数偏离设计工况时,能更好地稳定SCO2的出口温度,拓宽了冷端参数的运行范围。

       

      Abstract: In view of the problems, such as the near-critical state of CO2 working fluid in the cold end of the supercritical CO2 Brayton cycle, the physical properties change drastically with temperature, and the difficulties in design and operation control of the cold end heat exchanger, the straight channel printed circuit heat exchanger (PCHE) and the variable section channel PCHE applied to supercritical CO2 power cycle cold end heat transfer were designed, and the flow and heat transfer characteristics of SCO2 in PCHE of variable-section flow channel were analyzed, based on the method of segmented design of heat exchanger. SIMULINK was used to establish a simulation model of the heat exchanger, the influences of the inlet parameters on the SCO2 outlet parameters of heat exchangers with different flow channel forms were studied when the inlet parameters deviated from the design working conditions. Results show that the designed flow channel section of gradual expansion in SCO2 side can increase the heat transfer performance of PCHE, but the pressure loss will be increased. PCHE with flow channel cross-section of progressive expansion can better stabilize the outlet temperature of SCO2 while the inlet parameters of the cold side and hot side deviate from the design working conditions, and the operating range of the cold end parameters can be broadened.

       

    /

    返回文章
    返回