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THERMAL DESIGN OF HEAT EXCHANGER WITH FINS INSIDE AND OUTSIDE TUBES

机译:散热管热交换器的热设计

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Compact heat exchangers such as tube-fin types and plate-fin types are widely used for gas-liquid or gas-gas applications. Some examples are air-coolers, fan coils, regenerators and recuperators in micro-turbines. In this study, thermal design of fin-and-tube (tube-fin) heat exchanger performance with fins being employed outside and inside tubes was presented, with which designed plate-fin heat exchanger was compared. These designs were performed under identical mass flow rate, inlet temperature and operating pressure on each side for recuperator in 100kW microturbine as well as specified allowable fractions of total pressure drop by means of Log-Mean Temperature Difference (LMTD) method. Heat transfer areas, volumes and weights of designed heat exchangers were evaluated. It is shown that, under identical heat duty, fin-and-tube heat exchanger requires 1.8 times larger heat transfer area outside tubes and volume, 0.6 times smaller heat transfer area inside tubes than plate-fin heat exchanger. Under identical total pressure drop, fin-and-tube heat exchanger requires about 5 times larger volume and heat transfer area in gas-side, 1.6 times larger heat transfer area in air-side than plate-fin heat exchanger. Total weight of fin-and-tube heat exchanger is about 2.7 times higher than plate-fin heat exchanger, however, the heat transfer rate of fin-and-tube heat exchanger is about 1.4 times larger than that of plate-fin heat exchanger. It is indicated that, both-sides finned tube heat exchanger may be used in engineering application where the total pressure drop is severe to a small fraction and the operating pressure is high, and may be adopted for recuperator in microturbine.
机译:紧凑型换热器,例如管翅式类型和板翅式类型被广泛用于气 - 液或气 - 气应用程序。一些实例是空气冷却器,风扇盘管,蓄热器和同流换热器在微型涡轮机。在这项研究中,与散热片所采用外部和内部管翅片管(管翅式)热交换器性能的散热设计提出,利用该板翅式换热器进行比较而设计的。这些设计以及通过Log-平均温度差(LMTD)方法的手段指定的总压降的容许级分在100kW的微型燃气轮机同流换热器下相同质量流率,入口温度和工作压力进行在每一侧上。传热面积,体积和设计的热交换器的权重进行了评价。它表明,在相同的热负荷,翅片管式换热器,需要1.8倍大的传热面积外管和体积,内部管比板翅式换热器的0.6倍小的传热面积。在相同的总压降,翅片管式换热器要求在气体侧的约5倍更大的体积和传热面积,在空气侧比板翅式换热器的1.6倍大的传热面积。翅片管式热交换器的总重量为约比板翅式换热器的2.7倍,但是,翅片管式换热器的传热速率比板翅式换热器的约大1.4倍。据指出,两面翅片管换热器可以在工程应用中使用,其中的总压降是严重到一小部分,操作压力是高的,并且可以在同流换热器微型涡轮被采用。

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