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Selection of cooling fluid for an organic Rankine cycle unit recovering heat on a container ship sailing in the Arctic region

机译:选择冷却液,用于北极地区集装箱船上恢复热量的有机朗肯循环单元

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摘要

As Arctic sea ice coverage declines it is expected that marine traffic could increase in this northern region due to shorter routes. Navigating in the Arctic offers opportunities and challenges for waste heat recovery systems (WHRS). Lower temperatures require larger heating power on board, hence a larger demand for waste heat usage, to cover services and maintaining on board spaces temperatures. However, a lower heat rejection temperature increases the WHRS thermal efficiency. The air temperature for the Arctic route selected is colder than that of the seawater, opening the opportunity of having air as coolant. This paper explores the use of two different coolants, air and seawater, for an organic Rankine cycle (ORC) unit using the available waste heat in the scavenge air system of a container ship navigating in Arctic Circle. Using a two-step single objective optimisation process, detailed models of air and seawater heat exchangers are evaluated as the WHRS condensers. The results suggest that an ORC unit using R1233zd(E) as its working fluid coupled with seawater as its coolant is the preferable option to reduce CO2 emissions. Using the ambient air as the coolant while a less effective option could be cheaper to install.
机译:由于北极海冰覆盖率下降,预计由于较短的路线,这座北部地区可能会增加海洋交通。在北极航行提供垃圾热回收系统(WHRS)的机会和挑战。较低的温度需要更大的加热功率,因此对废热使用的需求较大,覆盖服务和维持在船上的温度。然而,较低的散热温度增加了WHRS热效率。选择的北极路线的空气温度比海水的气温更冷,打开空气作为冷却剂的机会。本文探讨了使用两种不同的冷却剂,空气和海水,用于使用在北极圈中导航的集装箱船的清除空气系统中的可用废物热量的有机朗肯循环(ORC)单元。使用两步单个客观优化工艺,提供了空气和海水热交换器的详细型号,作为WHRS冷凝器评估。结果表明,使用R1233ZD(e)的ORC单元作为其作为其冷却剂的海水连接的工作流体是减少二氧化碳排放的优选选择。使用环境空气作为冷却剂,而较低的有效选项可能更便宜。

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