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MODELING AND SIMULATION OF A SOLID WASTE INCINERATION SUSTAINABLE ENERGY SYSTEM

机译:固体废物焚化可持续能源系统的建模与仿真

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Urban solid waste generation has drastically grown around the world, requiring creative, ecologically correct and sustainable solutions to be developed. This work considers a problem of thermodynamic optimization of extracting the most energy from a stream of hot exhaust produced by urban solid waste incineration, considering a stoichiometric combustion model, when the contact heat transfer area is fixed. For that, a mathematical model is introduced to evaluate the rate of heat generation due to the waste incineration process, and the exergetic (power) rate captured by a heat recovery steam generator (heat exchanger). The numerical results show that when the (cold) receiving stream boils in the counterflow heat exchanger; the thermodynamic optimization consists of locating the optimal capacity rate of the cold current. At the optimum, the cold side of the heat transfer surface is divided into three sections: preheating of liquid, boiling and superheating of steam. Experimental results are in good qualitative and quantitative agreement with the numerically calculated mathematical model results. Microalgae cultivated in large-scale vertical tubular compact photobiorreactors are investigated to treat the emissions produced by the incineration, and to increase the efficiency of the global system via cogeneration of co-products with high aggregated commercial value.
机译:在世界范围内,城市固体废物的产生急剧增长,需要开发创新,生态正确和可持续的解决方案。这项工作考虑了一个热力学优化问题,即当接触传热面积固定时,考虑化学计量燃烧模型,从城市固体垃圾焚烧产生的热废气流中提取最大能量。为此,引入了一个数学模型来评估由于废物焚化过程而产生的热量的速率,以及由余热回收蒸汽发生器(热交换器)捕获的能量(功率)速率。数值结果表明,当(冷)接收物流在逆流换热器中沸腾时,反之亦然。热力学优化包括确定冷电流的最佳容量率。在最佳状态下,传热表面的冷侧分为三个部分:液体的预热,沸腾和蒸汽的过热。实验结果与数值计算的数学模型结果在定性和定量方面吻合良好。对在大型垂直管状紧凑型光生物反应器中种植的微藻进行了研究,以处理焚烧产生的排放,并通过联产具有高总商业价值的副产品来提高全球系统的效率。

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