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首页> 外文期刊>Journal of Industrial Ecology >An Indicator to Evaluate the Thermodynamic Maturity of Industrial Process Units in Industrial Ecology
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An Indicator to Evaluate the Thermodynamic Maturity of Industrial Process Units in Industrial Ecology

机译:工业生态学中评估工业过程单元热力学成熟度的指标

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The article suggests a measure to evaluate the thermodynamic maturity of industrial systems at the level of single process units. The measure can be quantified with reasonable confidence on the basis of entropy production as defined by irreversible thermodynamics theory It quantifies, for one process unit, the distance between its actual state of operation and its state with minimum entropy production or optimum exergy efficiency, when the two states are constrained with a fixed production capacity of the process unit. We suggest that the minimum entropy production state is a mature state, or that processes that operate at this state are mature. We-propose to call the measure "the thermodynamic maturity indicator" (π), and we define it as the ratio between the minimum entropy production and the actual entropy production. We calculated π on the basis of literature data for some examples of industrial process units in the chemical and process industry (i.e., heat exchanger, chemical reactor, distillation column, and paper drying machine). The proposed thermodynamic measure should be of interest for industrial ecology because it emerges from the entropy production rate, a dynamic function that can be optimized and used to understand the thermodynamic limit to improving the exergy efficiency of industrial processes. Although not a tool for replacing one process with another or comparing one technology to another; π may be used to assess actual operation states of single process units in industrial ecology.
机译:本文提出了一种在单个过程单元级别上评估工业系统热力学成熟度的措施。可以基于不可逆热力学理论定义的熵产生,以合理的置信度对度量进行量化。对于一个过程单元,量化其实际操作状态与具有最小熵产生或最佳火用效率的状态之间的距离。两个状态受制于处理单元的固定生产能力。我们建议最小熵产生状态是成熟状态,或者在该状态下运行的过程是成熟的。我们建议将该度量称为“热力学成熟度指标”(π),并将其定义为最小熵产生与实际熵产生之间的比率。我们根据文献数据为化学和加工业的一些工业过程单元(即热交换器,化学反应器,蒸馏塔和造纸干燥机)计算了π。拟议的热力学方法应引起工业生态学的关注,因为它是从熵生产率中得出的,该熵函数可以优化并用于理解热力学极限以提高工业过程的火用效率。尽管不是一种用另一种流程代替一个流程或将一种技术与另一种进行比较的工具; π可用于评估工业生态学中单个过程单元的实际运行状态。

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