采用生态制冷剂的太阳能冰箱能源性能分析

IF 2.1 Q3 ENVIRONMENTAL SCIENCES
C. Amaris, F. Barbosa, M. Balbis
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引用次数: 2

摘要

鉴于全球能源需求的增加和全球变暖气体的排放,发展可持续能源技术必须成为优先事项。在这项工作中,讨论了以R600a、R290、R717和R134a为基本情况的具有内部热交换的小容量直流冰箱的自主太阳能制冷的能量评估。开发了一个热力学模型,以评估200 W冰箱在蒸发温度为-32/-10°C、冷凝温度为35/46°C和不同内部换热器有效值时的性能,同时考虑到巴兰基亚市的环境条件,巴兰基拉市的大都市和城市地区具有巨大的太阳能制冷潜力。结果表明,R290系统的性能系数比R134a高出2.6%。R600a系统的性能系数比R134a高出2.7%,但仅在最有利的条件下。R717系统超过了压缩机排气温度限制,因此发现它不适合本应用。此外,对于R134a、R600a和R290,发现内部热交换器有利于减少压缩机和膨胀阀中的火用破坏,但增加了冷凝器中的火能破坏。在蒸发温度为-32°C的条件下,R600a的内部热交换器推荐有效性应为0.4左右,R290的建议有效性为0.3左右。对于-10°C的蒸发温度,R600a和R290的IHX有效性可高达0.5。最后,在蒸发温度为-32°C和-10°C时,太阳能R290制冷系统的最大功耗估计分别约为4.08 kWh和2.28 kWh,太阳能电池板面积分别为3.76 m2和2.10 m2,而太阳能R600a制冷系统的功耗值相似。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Energy Performance Analysis of a Solar Refrigerator Using Ecological Refrigerants
The development of sustainable energy technologies must be a priority given the rising global energy demand and global warming gases emission. In this work, the energy evaluation of a small-capacity direct-current refrigerator with internal heat exchange using R600a, R290, R717, and R134a as a base case, for autonomous solar refrigeration, is discussed. A thermodynamic model was developed to assess a 200 W refrigerator performance at evaporation temperatures of -32/-10 °C, condensation temperatures of 35/46 °C, and different internal heat exchanger effectiveness values while considering the environmental conditions in the city of Barranquilla whose metropolitan and urban area presents a great potential for solar refrigeration. Results showed that the R290 system coefficient of performance was up to 2.6% higher than that of the R134a. The R600a system coefficient of performance was up to 2.7% higher than that of the R134a, but only under the most favourable conditions. The R717 system surpassed the compressor discharge temperature limits so it was found unsuitable for the present application. Moreover, the internal heat exchanger was found beneficial to reduce the exergy destruction in the compressor and expansion valve but increased that in the condenser for R134a, R600a, and R290. The internal heat exchanger recommended effectiveness should be around 0.4 for R600a or 0.3 for R290 at an evaporation temperature of -32 °C. For an evaporation temperature of -10 °C, the IHX effectiveness can be up to 0.5 for both R600a and R290. Finally, the maximum power consumption of the solar R290 refrigeration system was estimated around 4.08 kWh and 2.28 kWh at evaporation temperatures of -32 °C and -10 °C, respectively, which could be covered by a solar panel area of 3.76 m 2 y 2.10 m 2 , respectively, while similar values were obtained for the solar R600a refrigeration system.
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来源期刊
CiteScore
5.40
自引率
9.50%
发文量
59
审稿时长
20 weeks
期刊介绍: The Journal of Sustainable Development of Energy, Water and Environment Systems – JSDEWES is an international journal dedicated to the improvement and dissemination of knowledge on methods, policies and technologies for increasing the sustainability of development by de-coupling growth from natural resources and replacing them with knowledge based economy, taking into account its economic, environmental and social pillars, as well as methods for assessing and measuring sustainability of development, regarding energy, transport, water, environment and food production systems and their many combinations.
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