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TECHNOECONOMIC OPTIMIZATION OF TURBOCOMPRESSION COOLING SYSTEMS

机译:涡轮增压冷却系统的技术经济优化

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Low grade waste heat streams with temperatures near 100°C are abundant, presenting a significant opportunity to reduce primary energy consumption across the world. For example, thermally activated cooling systems can utilize waste heat to meet air conditioning loads. Recently, a turbocompression cooling system (TCCS) that utilizes low grade waste heat from power plants was investigated to improve the economic viability of dry air cooling systems. The TCCS utilizes Rankine and vapor-compression cycles that are directly coupled through a high efficiency centrifugal turbine and a compressor. In this paper, a coupled thermodynamic, heat transfer, and economic model for a TCCS is applied to utilizing low grade engine coolant waste heat to meet cargo ship cooling load requirements while minimizing the payback period for a particular operational scenario. The results of this study show that with a constant heat input of 2 MW, the liquid coupled turbocompression cooling system provided 642 kW of cooling with a payback period of 2 years and 6 months, and the total cost of the heat exchangers made up more than 84% of the total system cost. In addition, a sensitivity analysis showed that the effectiveness of the power cycle heat exchangers have a stronger influence on the payback period than the cooling cycle heat exchangers.
机译:温度接近100°C的低品位废热资源丰富,为减少世界范围内的一次能源消耗提供了巨大的机会。例如,热激活的冷却系统可以利用废热来满足空调负荷。最近,研究了利用发电厂低级废热的涡轮压缩冷却系统(TCCS),以提高干燥空气冷却系统的经济可行性。 TCCS利用朗肯和蒸汽压缩循环,这些循环通过高效的离心式涡轮机和压缩机直接耦合。在本文中,TCCS的热力学,热传递和经济耦合模型用于利用低级发动机冷却剂废热来满足货船的冷却负荷要求,同时最大程度地缩短了特定操作场景的投资回收期。研究结果表明,在恒定输入热量为2 MW的情况下,液力耦合涡轮增压冷却系统可提供642 kW的冷却能力,投资回收期为2年零6个月,热交换器的总成本超过占系统总成本的84%。此外,敏感性分析表明,动力循环热交换器的效率比冷却循环热交换器对投资回收期的影响更大。

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