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An irreversible Stirling cycle with temperature difference both in non-isothermal and isochoric processes

机译:非等温和等速过程中具有温差的不可逆斯特林循环

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In this paper, an irreversible thermodynamic cycle working between two constant temperature external reservoirs is proposed to model the practical Stirling engine by applying finite time thermodynamics (FIT). To analyze the regenerative processes, the regenerator is assumed to consist of numerous smaller heat reservoirs with individual temperature, and the irreversible heat transfer occurs between the working fluid and these smaller heat reservoirs. To analyze the expansive and compressive processes, polytropic processes are adopted to model the expansive and compressive processes, and corresponding polytropic exponents are obtained by thermodynamics for the first time. Based on the proposed thermodynamic model, the expression of thermal efficiency and output power are derived. In addition, the effects of thermodynamic parameters on power and efficiency are investigated to evaluate the performance of the proposed model. To optimize the proposed Stirling cycle model, an intelligent optimization algorithm named multi-objective particle swarm optimization based on crowding distance (MOPSOCD) is adopted to optimize the output power and thermal efficiency simultaneously. (C) 2019 Elsevier Ltd. All rights reserved.
机译:本文提出了一个在两个恒温外部储层之间不可逆的热力学循环,通过应用有限时间热力学(FIT)对实际的斯特林发动机进行建模。为了分析再生过程,假定再生器由许多具有不同温度的较小的储热器组成,并且在工作流体与这些较小的储热器之间发生不可逆的热传递。为了分析膨胀和压缩过程,采用多变过程对膨胀和压缩过程进行建模,并首次通过热力学获得了相应的多变指数。基于所提出的热力学模型,推导了热效率和输出功率的表达式。此外,研究了热力学参数对功率和效率的影响,以评估所提出模型的性能。为了优化提出的斯特林循环模型,采用了基于拥挤距离的多目标粒子群优化智能优化算法(MOPSOCD)来同时优化输出功率和热效率。 (C)2019 Elsevier Ltd.保留所有权利。

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