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Performance Optimization of the Carnot andJoule Cycles and Relationship with theFormulation of Physical Exergy Property

机译:卡诺循环和焦耳循环的性能优化及其与物理能值形成的关系

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The present theoretical study proposes an analysis, underpinned by the basic foundations reported in the literature, aimed at establishing a generalization of the relationship between cyclic thermo-mechanical conversion processes and the physical exergy property defined for a system interacting with two different and independent reservoirs. The outcome of the study is the demonstration that physical exergy expresses both useful work or useful heat, if these interactions undergo conversion when withdrawn from a system. The approach to conversion consists in comparing the efficiency of (ideal) Carnot and Joule cycles leading to the argument that the Joule cycle is the one performing at maximum efficiency between two constant pressures, similarly to the Carnot cycle performing at maximum efficiency between two constant temperatures. In terms of specific (per cycle) work or heat of Carnot and Joule cycles, the study proves that the roles of temperature and pressure are opposed as evidenced by a performance optimization analysis for the two cycles. Interactions between a system and two independent reservoirs undergoing isothermal and isobaric processes respectively are examined in relation to useful work and useful heat. The aim and the novelty of this analysis is to explore the role of the Joule cycle and the pressure of system and isobaric reservoir, which are similar to the role of the Carnot cycle and the temperature of system and isothermal reservoir. This implies a generalized formulation of physical exergy which, for this reason, may be regarded as a temperature-and-pressure-dependent property in the general case of a system interacting with two reservoirs. Finally, the expression of the thermal and mechanical components of physical exergy, depending on temperature and pressure, and their relationship with the Carnot and Joule cycles, are envisaged as possible consequences of this analysis representing the basis for future research.
机译:本理论研究提出了以文献报道的基本基础为基础的分析,旨在建立循环热力机械转化过程与为与两个不同且独立的油藏相互作用的系统定义的物理火用性质之间的关系的概括。该研究的结果表明,如果从系统中撤出这些相互作用时,它们的相互作用会表达有用的功或有用的热量。转换方法在于比较(理想)卡诺循环和焦耳循环的效率,从而得出这样的论点,即焦耳循环是在两个恒定压力之间以最大效率执行的循环,类似于卡诺循环在两个恒定温度之间以最大效率执行的循环。 。就卡诺和焦耳循环的特定(每循环)功或热而言,研究证明温度和压力的作用是相反的,这是通过两个循环的性能优化分析所证明的。根据有用功和有用热量检查了系统与分别经历等温和等压过程的两个独立储层之间的相互作用。该分析的目的和新颖性是探索焦耳循环的作用以及系统和等压储层的压力,这与卡诺循环的作用以及系统和等温储层的温度相似。这意味着对物理能动的一般化表述,由于这个原因,在系统与两个储层相互作用的一般情况下,可以将其视为与温度和压力有关的性质。最后,根据温度和压力,以及根据它们与卡诺(Carnot)和焦耳(Joule)循环的关系,可以推测出物理能用的热和机械成分的表达,这是该分析的可能结果,代表了未来研究的基础。

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