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An actual thermal efficiency expression for heat engines: Effect of heat transfer roadmaps.

Authors :
Xu, Jinliang
Zheng, Yawen
Wang, Yanjuan
Yang, Xufei
Yu, Chao
Xie, Xuewang
Li, Zhi
Zhao, Xiaoli
Source :
International Journal of Heat & Mass Transfer. Oct2017, Vol. 113, p556-568. 13p.
Publication Year :
2017

Abstract

In the framework of modern thermodynamics, “thermodynamics flow” and “thermodynamics force” are introduced to develop a real thermal efficiency expression for heat engine, which receives heat from a heat source and dissipates heat to environment to yield a work output, for the first time. Enclosed area of T-Q curves of a counter-current heat exchanger is the dissipation for heat to power conversion, representing loss of thermal energy quality. The relationship between heat load and dissipation for heat to power conversion is quantified. Such connection is written for both heating and cooling processes. Linking the thermal couplings between heating and cooling processes yields the thermal efficiency expressed as η real = C η Carnot , where C = 1 η Carnot - R 1 - η Carnot , η Carnot is the Carnot efficiency, R = R h / R c is the ratio of resistance in heating process R h divided by that in cooling process R c . The thermal efficiency theory tells us that no matter how complex a heat engine is, the engine should reach a lower resistance ratio of heating process with respect to cooling process to raise its thermal efficiency. The guidelines for design and operation of general heat engines are provided. A link between heat transfer and thermodynamics is presented in this work. As an application example, the effect of critical temperatures of organic fluids on the performance of Organic Rankine Cycles is successfully explained by the newly developed theory. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00179310
Volume :
113
Database :
Academic Search Index
Journal :
International Journal of Heat & Mass Transfer
Publication Type :
Academic Journal
Accession number :
124047165
Full Text :
https://doi.org/10.1016/j.ijheatmasstransfer.2017.05.104