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Performance of heat transport systems: least square method generated correlations of non-dimensional variables

机译:传热系统的性能:最小二乘法生成的无量纲变量的相关性

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摘要

Waste heat and renewable energy are increasingly being recognized as important sources of heat for district heating systems and for industrial clients, and as a means to reduce fossil fuel consumption. One of the most important challenges of using this heat is to transport it from the source to the load in an efficient manner. The objective of this paper is to establish explicit relations between the performance and the essential design variables of a system that includes a heat source, a heat transport sub-system, and a heat load. For this purpose we have used dimensional analysis, a factorial design of experiment methodology with the least square method and obtained linear correlations between two performance indicators (the system effectiveness and its exergy efficiency) and non-dimensional groups which combine the physical and operational characteristics of the system. It has also been shown that the economic desirability of the system as measured by the Internal Rate of Return increases linearly with the system effectiveness. A sensibility analysis has determined the non-dimensional groups which have the most important effect on each performance indicator. The obtained correlations have been applied to solve the following two design problems: (1) find the optimum values of design parameters such as the pipe insulation thickness and the mass flow rate of the heat transport fluid in order to maximize the exergy efficiency of the system and (2) find the optimum distribution of a fixed total thermal conductance in order to maximize the system effectiveness and/or its exergy efficiency.
机译:废热和可再生能源越来越被认为是区域供热系统和工业客户的重要热源,也是减少化石燃料消耗的一种手段。使用这种热量的最重要挑战之一是如何以有效的方式将其从热源传输到负载。本文的目的是在包括热源,热传输子系统和热负荷的系统的性能与基本设计变量之间建立明确的关系。为此,我们使用了尺寸分析,采用最小二乘法的实验方法的析因设计,并获得了两个性能指标(系统有效性及其火用效率)与结合了物理和操作特性的无量纲之间的线性关系。系统。还已经表明,由内部收益率衡量的系统的经济需求随系统有效性线性增加。敏感性分析确定了对每个绩效指标影响最大的无因次组。所获得的相关性已用于解决以下两个设计问题:(1)找到设计参数的最佳值,例如管道隔热厚度和传热流体的质量流量,以最大程度地发挥系统的火用效率(2)找到固定的总热导率的最佳分布,以使系统效率和/或其火用效率最大化。

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