利用H2O-LiBr吸收式制冷剂系统优化电厂余热性能

L. Anggraini, A. Wahyuni, Rendi Hernawan, T. Kurniawan
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引用次数: 0

摘要

本文考察了印度尼西亚巴哇伊岛3x1 MW燃气发动机发电厂(GEPP)的废能源利用情况。可行性方法采用水-溴化锂(H2O-LiBr)技术作为吸收式制冷技术。此外,香蕉也被用于冷藏,以克服浪费能源的利用。该冷库占地300立方米,可承载香蕉100公斤,温度为5℃,湿度为85%,24小时运行,冷负荷为1292 W,制冷量为371 TR。该系统采用燃气散热的廉价能源,不会造成臭氧层破坏和全球变暖等生态危害。排气温度500℃。此外,还研究了冷库的冷负荷(与热力学模型相结合)以及冷库的流体特性、性能和尺寸的一致性。结果表明,与外部因素相比,内部因素对冷库产量的影响更大。另外,蒸发吸收式制冷剂为5oC,容量403 TR, q吸收984 kW, q发电机1066 kW, q蒸发1411 kW, q冷凝器1493 kW,吸收性能系数(COP)为1.32,耗电量为158.25 kW。此外,经过计算、分析和现场试验,表明冷负荷的内部因素高于来自冷藏香蕉的外部因素。这种现象的发生可能是由于产品被冷藏,随着冷却能力的飙升。因此,PLTGU 3x1 MW的废能已尝试被制冷剂吸收系统利用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance Optimization of Power Plant Waste Heat Using H2O-LiBr Absorption Refrigerant System
This paper examines the use of waste energy in a 3x1 MW Gas Engine Power Plant (GEPP) on Bawean Island, Indonesia. The feasibility method uses water-lithium bromide (H2O-LiBr) technology as absorption refrigeration technology. In addition, bananas are also used for cold storage to overcome waste energy utilization. The cold storage is placed in the 300 m3 area with a 100 kg load capacity for a banana with a temperature of 5oC, 85% humidity, 24 hours of operation, 1292 W cooling load, and 371 TR. This system is used because it utilizes a cheap energy source that dissipates heat from gas and has no ecological hazards, such as ozone layer depletion and global warming. The exhaust gas temperature is 500oC. Moreover, cooling loads for cold storage, which are used with thermodynamic models, and consistent fluid properties, performance, and size of cold storage were also investigated. The results obtained show that higher cold storage output comes from internal factors as compared to external factors. In addition, the absorption refrigerant with Tevaporation is 5oC, capacity 403 TR and Qabsorption is 984 kW, Qgenerator is 1066 kW, Qevaporation is 1411 kW, Qcondenser is 1493 kW, with an absorption coefficient of performance (COP) of 1.32 and power consumption of 158,25 kW. Furthermore, after calculations, analysis, and field experiments, it shows that the internal factor of the cooling load is higher than the external factor sourced from bananas in the cold storage. This phenomenon occurs probably due to the product being refrigerated, following the soar cooling capacity. Thus, the waste energy in PLTGU 3x1 MW has tried to be utilized by the refrigerant absorption system.
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