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Optimal Power and Efficiency of Multi-Stage Endoreversible Quantum Carnot Heat Engine with Harmonic Oscillators at the Classical Limit

机译:多级内心量子Quantum Carnot热力发动机的最佳功率和效率谐振振荡器在经典极限下

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摘要

At the classical limit, a multi-stage, endoreversible Carnot cycle model of quantum heat engine (QHE) working with non-interacting harmonic oscillators systems is established in this paper. A simplified combined cycle, where all sub-cycles work at maximum power output (MPO), is analyzed under two types of combined form: constraint of cycle period or constraint of interstage heat current. The expressions of power and the corresponding efficiency under two types of combined constrains are derived. A general combined cycle, in which all sub-cycles run at arbitrary state, is further investigated under two types of combined constrains. By introducing the Lagrangian function, the MPO of two-stage combined QHE with different intermediate temperatures is obtained, utilizing numerical calculation. The results show that, for the simplified combined cycle, the total power decreases and heat exchange from hot reservoir increases under two types of constrains with the increasing number (N) of stages. The efficiency of the combined cycle decreases under the constraints of the cycle period, but keeps constant under the constraint of interstage heat current. For the general combined cycle, three operating modes, including single heat engine mode at low “temperature” (SM1), double heat engine mode (DM) and single heat engine mode at high “temperature” (SM2), appear as intermediate temperature varies. For the constraint of cycle period, the MPO is obtained at the junction of DM mode and SM2 mode. For the constraint of interstage heat current, the MPO keeps constant during DM mode, in which the two sub-cycles compensate each other.
机译:在古典的极限下,在本文中建立了一种多级,用于非交互谐波振荡器系统的量子热发动机(QHE)的多级内射叉循环模型。在两种类型的组合形式下分析了简化的组合循环,其中所有子循环在最大功率输出(MPO)下进行分析:周期周期的约束或级间热电流的约束。推导出功率的表达和在两种类型的组合约束下的相应效率。在两种类型的组合约束下进一步研究了一般组合循环,其中所有子循环在任意状态下运行。通过引入拉格朗日函数,利用数值计算获得具有不同中间温度的两级组合QHE的MPO。结果表明,对于简化的组合循环,从热储存器的总功率降低和热交换在两种类型的约束下增加,随着阶段的越来越多的约束。在循环周期的约束下,组合循环的效率降低,但在级间热电流的约束下保持恒定。对于通用组合循环,在高“温度”(SM1),高温“温度”(SM2)(SM2)下,包括单个热发动机模式,包括单热电发动机模式(SM2)(SM2),如中间温度变化。对于循环周期的约束,在DM模式和SM2模式的结处获得MPO。对于级间热电流的约束,MPO在DM模式期间保持恒定,其中两个子循环彼此补偿。

著录项

  • 期刊名称 Entropy
  • 作者

    Zewei Meng; Lingen Chen; Feng Wu;

  • 作者单位
  • 年(卷),期 2020(22),4
  • 年度 2020
  • 页码 457
  • 总页数 21
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

    机译:有限时间热力学;量子钉钟热发动机;组合循环;谐波振荡器系统;电力;效率;

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