实验室用双管换热器的设计与施工

C. Ebieto, R. Ana, O. Nyong, E. G. Saturday
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引用次数: 1

摘要

没有实验实践,工程教育是不完整的。热交换器是所有工程专业学生在本科学习过程中必须动手操作的实验室设备之一。本文介绍了一种可用于并联和逆流配置的实验室型双管换热器的详细设计和构造。换热器的管壳均采用镀锌钢结构。设计并进行了实验,测试了换热器的性能。得到并比较了两种配置下换热器的性能特征(对数平均温差(LMTD)、换热率、效率和总换热系数)。随着流量的增加,平行流和逆流配置的LMTD趋于相对恒定,但平行流配置的LMTD值更高。换热器具有更高的传热速率、效率和总体传热系数,因此具有更强的逆流配置性能。两种结构的总传热系数随流量的增加而增加。重要的是,作为这个项目的结果,机械工程专业的学生现在可以对双管热交换器的工作原理有动手的实验室经验。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design and Construction of a Double Pipe Heat Exchanger for Laboratory Application
Engineering education is incomplete without laboratory practices. One of such laboratory equipment necessary for all engineering students to have hands-on in the course of their undergraduate studies is the heat exchanger. This work presents the detailed design and construction of a laboratory type double pipe heat exchanger that can be used both in the parallel and counter flow configuration. The heat exchanger was constructed using galvanized steel for both the tube and shell. Experiments were designed and carried out to test the performance of the heat exchangers. The heat exchanger performance characteristics (logarithm mean temperature difference (LMTD), heat transfer rate, effectiveness, and overall heat transfer coefficient) were obtained and compared for the two configurations. The LMTD tends to be relatively constant as the flow rate was increased for both the parallel and counter-flow configuration but with a higher value for the parallel flow configuration. The heat exchanger has a higher heat transfer rate, effectiveness, and overall heat transfer coefficient and therefore has more performance capability for the counter-flow configuration. The overall heat transfer coefficient increased as the flow rate increased for both configurations. Importantly, as a result of this project, Mechanical Engineering students can now have hands-on laboratory experience on how the double pipe heat exchanger works.
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