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Performance characteristics of an irreversible thermally driven Brownian microscopic heat engine

机译:不可逆热驱动布朗微观热机的性能特征

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摘要

Brownian particles moving in a spatially asymmetric but periodic potential (ratchet), with an external load force and connected to an alternating hot and cold reservoir, are modeled as a microscopic heat engine, referred to as the Brownian heat engine. The heat flow via both the potential energy and the kinetic energy of the particles are considered simultaneously. The forward and backward particle currents are determined using an Arrhenius' factor. Expressions for the power output and efficiency are derived analytically. The maximum power output and efficiency are calculated. It is expounded that the Brownian heat engine is always irreversible and its efficiency cannot approach the efficiency eta(C) of the Carnot heat engine even in quasistatic limit. The influence of the main parameters such as the load, the barrier height of the potential, the asymmetry of the potential and the temperature ratio of the heat reservoirs on the performance of the Brownian heat engine is discussed in detail. It is found that the Brownian heat engines may be controlled to operate in different regions through variation of some parameters.
机译:以外部负载力在空间不对称但具有周期性周期性(棘轮)中运动并连接到交替的冷热储藏器的布朗粒子被建模为微观热机,称为布朗热机。同时考虑了通过粒子的势能和动能的热流。使用Arrhenius因子确定正向和反向粒子流。通过分析得出功率输出和效率的表达式。计算出最大功率输出和效率。阐述了布朗热机总是不可逆的,并且即使在准静态极限下,其效率也无法达到卡诺热机的效率eta(C)。详细讨论了负载,势垒的高度,势的不对称性以及储热器的温度比等主要参数对布朗热机性能的影响。发现可以通过改变一些参数来控制布朗热机在不同区域中操作。

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