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Numerical Dynamic Simulation of Optimized Cross-Flow Heat Exchanger with Various Refrigerants

机译:各种制冷剂优化交叉流动热交换器的数值动态仿真

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Dynamic behaviors of fluid flow and interaction with the pipe material as well as the temperature are very useful in the design of heat exchangers. The information can be used to determine the effective operating condition and the limitation of the heat exchanger which will then benefited the manufacturers and consumers in terms of economy and safety. A single pass cross flow heat exchanger with conduction and forced convection heat transfer was represented by a mathematical model consist sets of partial differential equations. The equations were then transformed to nondimensional form for the solution. A computer program was developed to solve the problem numerically. The governing equations were solved by finite difference method using implicit method. Five different types of refrigerant were used in the study; water, R-134a, R-23, R-22 and ammonia. Time response for steady state temperature then was determined and compared between the refrigerants which were then shows that ammonia has the shortest time response and water is the lowest steady state temperature. The results also showed that the tube length affects the air fund temperature difference with the increase of temperature difference along with the tube length. The working fluid temperature difference was also affected by tube length with unique behaviors of the increase in temperature with respect to tube length. Finally, maximum air velocity showed the increase with working fluid velocity up to certain magnitude then the air velocity showed negligible change with the increase of working fluid velocity.
机译:流体流动的动态行为与管材的相互作用以及温度在热交换器的设计中非常有用。该信息可用于确定有效的操作条件和热交换器的限制,然后将制造商和消费者在经济和安全方面受益。具有导通和强制对流热传递的单通交叉流动热交换器由数学模型表示,包括部分微分方程组。然后将等式转化为溶液的非潜能形式。开发了一种计算机程序以数字方式解决问题。通过使用隐式方法通过有限差分法解决了控制方程。研究中使用了五种不同类型的制冷剂;水,R-134a,r-23,r-22和氨。然后确定并比较稳态温度的时间响应并比较在制冷剂之间,然后表明氨具有最短的时间响应,水是最低稳态温度。结果还表明,管长度影响空气胁迫温度差随管长度的温差的增加。工作流体温差也受管长度的影响,具有相对于管长度的温度升高的独特行为。最后,最大空气速度显示,随着工作流体速度的增加,空气速度随着工作流体速度的增加而变化,空气速度的最大空气速度均显示为一定大小。

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