Sustainable maximum power extraction from urban solid waste incineration

M. N. Muñoz, J. Vargas, W. Balmant, A. Arena, Juan C. Ordonez, A. Mariano
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引用次数: 2

Abstract

Urban solid waste production has drastically grown worldwide requiring creative, environmentally correct and sustainable solutions to be developed. This paper considers the basic thermodynamic optimization problem of extracting the most power from a stream of hot exhaust produced by urban solid waste incineration when the contact heat transfer area is fixed. For that, a mathematical model is introduced to evaluate the heat generation rate due to the waste incineration process, and the exergy rate (power) captured by a heat recovery heat exchanger. The numerical results show that when the receiving (cold) stream boils in the counterflow heat exchanger, the thermodynamic optimization consists of locating the optimal capacity rate of the cold stream. At the optimum, the cold side of the heat transfer surface divides itself into three sections: liquid preheating, boiling and vapor superheating. Microalgae cultivation photobioreactors are proposed to treat the produced emissions and increase the global system efficiency for cogeneration of high aggregated value coproducts.
从城市固体垃圾焚烧中可持续提取最大电力
世界范围内的城市固体废物生产急剧增长,需要开发创造性的、环保的和可持续的解决方案。本文研究了当接触传热面积固定时,从城市垃圾焚烧产生的热废气流中提取最大功率的基本热力学优化问题。为此,引入了一个数学模型来评估垃圾焚烧过程的产热率,以及热回收换热器捕获的火用率(功率)。数值计算结果表明,当接收(冷)流在逆流式换热器内沸腾时,热力优化包括冷流最优容率的确定。在最佳状态下,传热面冷侧分为液体预热、沸腾和蒸汽过热三段。提出了微藻培养光生物反应器来处理产生的排放物,并提高全球系统的效率,以热电联产高聚合价值的副产品。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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