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Invalid Microstate Densities for Model Systems Lead to Apparent Violation of Thermodynamic Law

机译:模型系统的无效微态密度导致热力学定律的明显违反

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It is often incorrectly assumed that the number of microstates Ω ( E , V , N , . . . ) available to an isolated system can have arbitrary dependence on the extensive variables E , V , N , ... However, this is not the case for systems which can, in principle, reach thermodynamic equilibrium since restrictions arise from the underlying equilibrium statistical mechanic axioms of independence and a priori equal probability of microstates. Here we derive a concise criterion specifying the condition on Ω which must be met in order for a system to be able, in principle, to reach thermodynamic equilibrium. Natural quantum systems obey this criterion and therefore can, in principle, reach thermodynamic equilibrium. However, models which do not respect this criterion will present inconsistencies when treated under equilibrium thermodynamic formalism. This has relevance to a number of recent models in which negative heat capacity and other violations of fundamental thermodynamic law have been reported.
机译:通常错误地认为,可用于隔离系统的微状态数Ω(E,V,N,...)可以任意依赖广泛的变量E,V,N...。但是,这并不是在理论上可以达到热力学平衡的系统的情况,因为限制是由潜在的平衡统计力学公理和微观状态的先验相等概率引起的。在这里,我们导出了一个简明的标准,该标准指定了为使系统原则上能够达到热力学平衡而必须满足的Ω条件。自然量子系统遵守该标准,因此原则上可以达到热力学平衡。但是,在平衡热力学形式主义下进行处理时,不遵守该标准的模型将出现不一致之处。这与许多最近的模型有关,其中已经报道了负热容量和其他违反基本热力学定律的情况。

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