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Performance analysis of a combined cold and power (CCP) system with exergy recovery from LNG-regasification

机译:从LNG再气化中回收火用的冷电联产(CCP)系统的性能分析

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Liquefied Natural Gas (LNG) is becoming vital in relation to energy transition and fighting climate change. Because of its cryogenic temperature (111 K), LNG is an exergy "mine" that can be exploited in the regasification process for multiple industrial applications. But this exergy is usually wasted.This research presents a Combined Cold and Power (CCP) system with exergy recovery from LNG-regasification. This exergy is exploited for the combined production of electricity and low-temperature refrigeration distributed through a CO2 District Cooling Network. These systems entail many benefits, but also pending challenges. The CCP system is modelled using real operation data, and its performance is analyzed and benchmarked against that of a cryogenic power plant, both at design and off-design operating conditions.The proposed CCP system reports an equivalent electricity saving of 139 kWh/t-LNG with an exergetic efficiency of 40%, turning into useful energy up to 64% of the maximum cold recoverable in the regasification process. The performance enhances as the heat source temperature rises. Higher LNG flow rates contribute to increase the electricity and refrigeration production, but irreversibilities also increase. Finally, findings show that a low LNG regasification pressure is preferable in spite of the negative effect on the power generation. (C) 2019 Elsevier Ltd. All rights reserved.
机译:液化天然气(LNG)在能源转换和应对气候变化方面正变得至关重要。由于其低温(111 K),LNG是一种能级“矿”,可以在再气化过程中用于多种工业应用。但是这种火用通常是浪费的。这项研究提出了一种冷热电联产(CCP)系统,该系统具有从液化天然气再气化中回收的能。这种火用被用于通过二氧化碳区域冷却网络分配电力和低温制冷的联合生产。这些系统带来许多好处,但同时也面临挑战。使用实际运行数据对CCP系统进行建模,并在设计和非设计运行条件下对低温电厂的性能进行分析和基准测试。拟议中的CCP系统报告的等效节电量为139 kWh / t-液化天然气的有效效率为40%,转化为有用能量,高达再气化过程中可回收的最大冷量的64%。性能随着热源温度的升高而增强。较高的液化天然气流量有助于增加电力和制冷产量,但不可逆性也会增加。最后,研究结果表明,尽管对发电产生了负面影响,但较低的液化天然气再气化压力是可取的。 (C)2019 Elsevier Ltd.保留所有权利。

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