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布朗制冷机的最优分析。

Optimum analysis of a Brownian refrigerator.

作者信息

Luo X G, Liu N, He J Z

机构信息

Department of Physics, Southeast University, Nanjing 211189, People's Republic of China.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2013 Feb;87(2):022139. doi: 10.1103/PhysRevE.87.022139. Epub 2013 Feb 25.

Abstract

A Brownian refrigerator with the cold and hot reservoirs alternating along a space coordinate is established. The heat flux couples with the movement of the Brownian particles due to an external force in the spatially asymmetric but periodic potential. After using the Arrhenius factor to describe the behaviors of the forward and backward jumps of the particles, the expressions for coefficient of performance (COP) and cooling rate are derived analytically. Then, through maximizing the product of conversion efficiency and heat flux flowing out, a new upper bound only depending on the temperature ratio of the cold and hot reservoirs is found numerically in the reversible situation, and it is a little larger than the so-called Curzon and Ahlborn COP ε(CA)=(1/√[1-τ])-1. After considering the irreversible factor owing to the kinetic energy change of the moving particles, we find the optimized COP is smaller than ε(CA) and the external force even does negative work on the Brownian particles when they jump from a cold to hot reservoir.

摘要

建立了一种冷、热库沿空间坐标交替排列的布朗制冷机。在空间不对称但呈周期性的势场中,由于外力作用,热流与布朗粒子的运动相互耦合。在用阿仑尼乌斯因子描述粒子向前和向后跳跃的行为后,解析推导了制冷系数(COP)和制冷率的表达式。然后,通过最大化转换效率与流出热流的乘积,在可逆情况下数值发现了一个仅取决于冷、热库温度比的新上限,且它比所谓的柯曾和阿尔伯恩制冷系数ε(CA)=(1/√[1 - τ]) - 1略大。在考虑了由于运动粒子动能变化引起的不可逆因素后,我们发现优化后的COP小于ε(CA),并且当布朗粒子从冷库跳跃到热库时,外力甚至对布朗粒子做负功。

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