首页> 外文会议>ASME international heat transfer conference;IHTC14 >MASS NATURE OF HEAT AND ITS APPLICATIONS V: ENTRANSY, ENTRANSY DISSIPATION AND HEAT TRANSFER IRREVERSIBILITY
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MASS NATURE OF HEAT AND ITS APPLICATIONS V: ENTRANSY, ENTRANSY DISSIPATION AND HEAT TRANSFER IRREVERSIBILITY

机译:热量的本质及其应用V:焓,焓耗散和传热不可逆性

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Heat transfer optimization is ubiquitous because improving heat transfer performance could increase the energy utilization or reduce the weight or size of heat transfer equipments. This article discusses the optimization in heat transfer using the new physical quantity, entransy, in recent years. Entransy describes the heat transfer ability. When heat is transferred from a high temperature to a low temperature and entransy dissipation is produced. Heat transfer is irreversible from the viewpoint of entransy. The entransy transfer efficiency can be defined using the concept of entransy. Definition of entransy, entransy flux, and entransy dissipation are given and the entransy balance equations are derived for conduction, convection and thermal radiation based on the energy equation. The minimum entransy dissipation principle for prescribed heat flux boundary conditions and a maximum entransy dissipation principle for prescribed temperature boundary conditions are investigated. These two principles are called entransy dissipation extreme (EDE) principle. An equivalent or average thermal resistance of a system can be defined based on the entransy dissipation and the EDE principle becomes the minimum thermal resistance principle. These principles can be used to optimize heat transport with constraints and some examples are presented. The relation of entransy with thermomass is discussed and comparison between EDE and entropy generation optimization is made. The essence of the entansy is the energy of thermomass.
机译:传热优化是无处不在的,因为改善传热性能可以提高能量利用率或减小传热设备的重量或尺寸。本文讨论了近年来使用新的物理量entransy优化传热的方法。 Entransy描述了传热能力。当热量从高温传递到低温并产生传导耗散时。从转移的观点来看,热传递是不可逆的。可以使用entransy的概念来定义entransy传输效率。给出了熵,熵通量和损耗的定义,并基于能量方程推导了传导,对流和热辐射的平衡方程。研究了规定的热通量边界条件的最小熵耗散原理和规定的温度边界条件的最大熵耗散原理。这两个原理称为超传输耗散(EDE)原理。可以基于传输损耗定义系统的等效或平均热阻,并且EDE原理成为最小热阻原理。这些原理可用于优化有限制的热传输,并提供了一些示例。讨论了熵与热质量的关系,并进行了电子数据交换和熵产生优化的比较。热情的本质是热质的能量。

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