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Design and optimisation of an advanced waste heat cascade utilisation system for a large marine diesel engine

机译:大型船用柴油发动机先进废物热级联利用系统的设计与优化

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Growing energy shortages severely restricting the sustainable development of human beings, improving energy efficiency has become an urgent issue. To improve energy efficiency, the dual-pressure organic Rankine cycle, which is an efficient waste heat recovery technique for ships, has received increasing attention. Most researchers have investigated the dual-pressure organic Rankine cycle with pure working fluids, which do not yield the best thermodynamic and economic performance. In addition, some low-grade waste heat sources in the engine have been neglected. To completely recover the waste heat energy of marine engines, a novel waste heat recovery technique with a dual-pressure organic Rankine cycle system, desalination plant, and two-bed regenerative adsorption refrigeration device is presented for recovering residual heat from the exhaust gas, jacket water, charge air, and lubricating oil. Based on a comparison of the thermodynamic performance, safety, and environmental effects, the zeotropic working fluid pair dimethyl carbonate/perfluoropropane is selected. The mathematical model of the proposed integrated system is evaluated to ensure accuracy, and its critical parameters are analysed based on its thermodynamic and economic performance. A multi-objective artificial bee colony algorithm is adopted to optimise the system. The results show that the proposed integrated system can recover 354.65 kW net power and increase the thermal efficiency by 4.2% on average; at the most frequently used engine load, a refrigeration capacity of 88 kW and a fresh water rate of 146 kg/h are achieved. This work promotes the development of the energy recycling. (c) 2020 Elsevier Ltd. All rights reserved.
机译:越来越多的能源短缺严重限制人类的可持续发展,提高能源效率已成为一种紧急问题。为了提高能效,双重压力有机朗肯循环,即船舶的有效浪费热回收技术,已得到越来越长的关注。大多数研究人员已经调查了具有纯工作液的双压有机朗肯循环,不产生最佳的热力学和经济性能。此外,发动机中的一些低级废热源被忽略了。为了完全恢复海洋发动机的废热能量,提出了一种新的废热回收技术,具有双重压力有机兰粉循环系统,海水淡化厂和双床再生吸附制冷装置,用于从废气,夹克中回收残余热量水,电荷空气和润滑油。基于热力学性能,安全性和环境效应的比较,选择碳酸酯/全氟丙烷的横渗。评估所提出的集成系统的数学模型以确保准确性,并根据其热力学和经济性能分析其关键参数。采用多目标人工蜂菌落算法来优化系统。结果表明,拟议的综合系统可以平均恢复354.65千瓦净功率,并将热效率提高4.2%;在最常用的发动机负荷,实现88千瓦的制冷容量和146kg / h的淡水速度。这项工作促进了能源回收的发展。 (c)2020 elestvier有限公司保留所有权利。

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