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System analysis and optimisation of a Kalina split-cycle for waste heat recovery on large marine diesel engines

机译:大型船用柴油机余热回收Kalina分裂循环系统分析与优化

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摘要

Waste heat recovery systems can produce power from heat without using fuel or emitting CO2, therefore their implementation is becoming increasingly relevant. The Kalina cycle is proposed as an efficient process for this purpose. The main reason for its high efficiency is the non-isothermal phase change characteristics of the ammonia-water working fluid. The present study investigates a unique type of Kalina process called the Split-cycle, applied to the exhaust heat recovery from large marine engines. In the Split-cycle, the working fluid concentration can be changed during the evaporation process in order to improve the match between the heat source and working fluid temperatures. We present a system analysis to identify the governing mechanisms of the process, including a comparison of the efficiency of the Split-cycle and a conventional Kalina cycle and an investigation of the effects of using reheat in both cases. Results of a multi-variable optimisation effort using a genetic algorithm suggest that the Split-cycle process can obtain a thermal efficiency of 23.2% when using reheat compared to 20.8% for a conventional reference Kalina cycle. Reheat can increase the thermal efficiency by 3.4e5.9%. A simplified cost analysissuggests higher purchase costs as result of increased process complexity. © 2013 Elsevier Ltd. All rights reserved.
机译:废热回收系统可以利用热能发电,而无需使用燃料或排放二氧化碳,因此其实施变得越来越重要。为此,提出了一种有效的过程-卡利纳循环。其高效率的主要原因是氨水工作流体的非等温相变特性。本研究调查了一种称为分裂循环的独特类型的Kalina工艺,该工艺应用于大型船舶发动机的余热回收。在分流循环中,可以在蒸发过程中更改工作流体的浓度,以改善热源与工作流体温度之间的匹配度。我们提供了系统分析来确定过程的控制机制,包括比较分体式循环和传统卡利纳循环的效率,以及对两种情况下使用再热的效果进行调查。使用遗传算法进行的多变量优化工作的结果表明,与传统的参考Kalina循环相比,使用再热时,分体式循环工艺可获得的热效率为23.2%,而热效率为20.8%。再加热可以使热效率提高3.4e5.9%。简化的成本分析建议增加流程复杂性,从而导致更高的采购成本。 ©2013 ElsevierLtd。保留所有权利。

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