通过形成杂化石蜡/灰分复合材料来提高相变材料的充放电速率,从而形成有效的储热系统

IF 1.4 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY AIMS Materials Science Pub Date : 2023-01-01 DOI:10.3934/matersci.2023005
B. Suyitno, D. Rahmalina, R. Rahman
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引用次数: 11

摘要

低温潜热储存(LHS)系统适用于将石蜡作为储存材料。然而,由于热导率(TC)低,它们在实际实施中面临困难。本研究将火山灰作为一种环保、经济的材料来提高石蜡的TC。制备了灰分比分别为10%、30%和50%的石蜡/灰分复合材料。进行了表征,以评估平均TC和性能。通过对静态充放电循环进行热性能评价。石蜡的平均TC为0.214 W/m·K。添加火山灰后,温度提高到19.598 W/m·K。使该复合材料的充放电性能优于纯石蜡。复合材料的充电速率为3.83 ~ 5.12℃/min。石蜡比为50/ash50的复合材料在4.21℃/min时放电速率最高。复合材料的冻结温度受灰分比例的影响,可以作为调整石蜡基储能(TES)凝固点的合适方法。详细的结果,表征和热性能评估的文章中进行了全面的描述。综合结果表明,火山灰适用于提高石蜡基TES的TC和充放电速率。
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Increasing the charge/discharge rate for phase-change materials by forming hybrid composite paraffin/ash for an effective thermal energy storage system
Low-temperature latent heat storage (LHS) systems are suitable for incorporating paraffin as the storage material. However, they face difficulty in actual implementation due to low thermal conductivity (TC). The present study used volcanic ash as an environmentally friendly and cost-effective material to increase the TC of paraffin. Three composites of paraffin/ash were prepared with ash proportions of 10 wt%, 30 wt% and 50 wt%. Characterizations were done to evaluate the average TC and properties. Thermal performance evaluation was conducted by analyzing the static charge/discharge cycle. The average TC for paraffin was 0.214 W/m·K. Adding volcanic ash improved the TC to 19.598 W/m·K. It made the charge/discharge performance of the composite better than that of pure paraffin. The charge rate for the composite ranged from 3.83 ℃/min to 5.12 ℃/min. The highest discharge rate was obtained at 4.21 ℃/min for the composite paraffin50/ash50. The freezing temperature for the composite is influenced by the ash proportion, which can be taken as a suitable approach to adjust the freezing point of paraffin-based thermal energy storage (TES). The detailed results for the characterization and thermal performance evaluation are described thoroughly within the article. The overall result indicates that volcanic ash is applicable for improving the TC and charge/discharge rate of paraffin-based TES.
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来源期刊
AIMS Materials Science
AIMS Materials Science MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
3.60
自引率
0.00%
发文量
33
审稿时长
4 weeks
期刊介绍: AIMS Materials Science welcomes, but not limited to, the papers from the following topics: · Biological materials · Ceramics · Composite materials · Magnetic materials · Medical implant materials · New properties of materials · Nanoscience and nanotechnology · Polymers · Thin films.
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