住宅用天然制冷剂太阳能离网空调系统的理论与实验评价

Adam Y. Sulaiman , Gerard I. Obasi , Roma Chang , Hussein Sayed Moghaieb , Jayanta D. Mondol , Mervyn Smyth , Babak Kamkari , Neil J. Hewitt
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引用次数: 2

摘要

住宅空调机组对于在气候炎热的地区提供合适的室内舒适性至关重要。尽管如此,由于这些国家对不可再生能源的依赖和对环境不友好的工作流体的使用,这些装置对二氧化碳排放量的贡献很大。本研究旨在评估使用低全球升温潜能值制冷剂运行离网太阳能空调床单元的可行性,该制冷剂可以有效地取代传统制冷剂。开发了一个模型来评估蒸汽压缩循环的能量和运动性能。如果环保制冷剂取代传统物质,则使用各种制冷剂作为数学模型的输入,以模拟机组的性能。一个组装好的原型空调机组被制造出来,为连接的雨棚提供冷空气。两块400瓦的光伏板为该系统供电,电池储能在夜间为机组供电。TRNSYS用于评估电池的储能能力,而综合环境解决方案虚拟环境(IESVE)用于估计为机组供电所需的太阳能量。在高能和高能研究结果的基础上,R290和R600a已经证明了它们适合作为传统制冷剂的替代品。与R134a相比,当使用R290时,该系统的COP提高了2.42%。这一改进的同时,投入工作量减少了2.31%,工作效率提高了2.37%。本文结合连贯的过程系统为分析设计提供了指导。这为温暖国家的主要能源消耗这一非常现实的问题提供了一个极好的解决方案,将可再生能源与环保空调循环相结合。
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A solar powered off-grid air conditioning system with natural refrigerant for residential buildings: A theoretical and experimental evaluation

Residential air-conditioning units are essential for providing suitable interior comfort in regions experiencing hot climates. Nonetheless, these units contribute significantly to CO2 emissions in these countries due to their reliance on non-renewable energy sources and the use of environmentally unfriendly working fluids. This research aims to evaluate the feasibility of operating an off-grid solar-powered air-conditioning bed unit using low-GWP refrigerants that can efficiently replace conventional refrigerants. A model was developed to evaluate the vapour compression cycle's energetic and exergetic performance. Various refrigerants were employed as feeds to the mathematical model in order to simulate the unit's performance if environmentally friendly refrigerants supersede the conventional substances. An assembled prototype air-conditioning unit was built to provide cold air to a connected canopy. Two 400 W photovoltaic panels power this system, with battery storage providing electricity to the unit at night. TRNSYS was used to evaluate the batteries' energy storage capability, whilst Integrated Environmental Solutions Virtual Environment (IESVE) was used to estimate the amount of solar energy required to power the unit. On the basis of the energetic and exergetic findings, R290 and R600a have demonstrated their suitability as replacements for conventional refrigerants. In comparison to R134a, the system showed a 2.42% improvement in COP when using R290. This improvement was accompanied by a reduction in input work by 2.31% and an increase in exergetic efficiency by 2.37%. This paper provides a guideline for analytical design, combined with a coherent process system. This offers an excellent solution to the very real problems of major energy consumption in warm countries, combining a renewable energy source with an eco-friendly air-conditioning cycle.

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