首页> 外文会议>International High Performance Buildings Conference at Purdue >Review of Inorganic Salt Hydrates with Phase Change Temperature in Range of 5°C to 60°C and Material Cost Comparison with Common Waxes
【24h】

Review of Inorganic Salt Hydrates with Phase Change Temperature in Range of 5°C to 60°C and Material Cost Comparison with Common Waxes

机译:用相变温度的无机盐水合物在5°C至60℃的范围内,与普通蜡的材料成本比较

获取原文

摘要

Phase change materials (PCMs) with desirable phase change temperatures can be used to provide a constant temperature thermal source or sink for diverse applications. As such, incorporating PCMs into building materials, equipment, or appliances can shift and/or reduce the energy load. The motivation of this work is to identify low-cost inorganic salt hydrate PCMs that can complement current building systems and designs, and compare them with common paraffins. In this work, we analyzed inorganic salt hydrates with phase change temperatures in the range of 5-60°C, to target both space heating and cooling applications. The properties of the salt hydrates were compared with paraffins over the same temperature range. The results showed that PCMs with a melting temperature above 20°C, salt hydrates have advantages over paraffins including higher thermal energy density (45-120 kWh/m~3 for salt hydrates; 45-60 kWh/m~3 for paraffins) and generally lower material energy cost (1-20 $/kWh for salt hydrates; 20-30 $/kWh for comparable paraffins). For PCMs with a melting temperature less than 20°C, the material cost is higher for both salt hydrates and paraffins (30-110 $/kWh for both classes of materials) and salt hydrates retain their advantage of greater thermal energy density (50-120 kWh/m~3 for salt hydrates; 45-60 kWh/m~3 for paraffins). In all cases, factors including thermal cyclability, stability, congruency, corrosion, and supercooling must be considered when comparing paraffins and salt hydrates for a particular application. Finally, we give an overview of enhancement techniques for salt hydrate PCMs and find that limited efforts have been pursued to tune salt hydrate phase change temperatures, with a wider range of studies investigating stabilization and minimization of supercooling. This analysis shows the potential of developing salt hydrate PCMs for low-cost heating and cooling thermal energy storage systems for a range of applications.
机译:具有期望的相变温度的相变材料(PCM)可用于为各种应用提供恒温热源或水槽。因此,将PCM融入建筑材料,设备或设备中,可以转移和/或降低能量负荷。这项工作的动机是识别能够补充当前建筑系统和设计的低成本无机盐水液PCM,并将它们与常见的石蜡进行比较。在这项工作中,我们在5-60℃的范围内分析了相变温度的无机盐水合物,以瞄准空间加热和冷却应用。将盐水合物的性质与在相同温度范围内的链烷烃进行比较。结果表明,具有高于20℃的熔化温度的PCM,盐水合物具有优于链烷烃的优点,包括较高的热能密度(45-120kWh / m〜3,盐水合物;链烷烃45-60 kWh / m〜3)和通常更低的材料能源成本(盐水合物1-20 $ / kWh;可比较的石蜡20-30美元/千瓦时)。对于具有熔点低于20℃的PCM,材料成本两者的盐的水合物和链烷烃及盐水合物(对于两种类型的材料30-110 $ / kWh)的较高保留其更大的热能量密度的优点(50- 120千瓦时/米〜3盐水合物; 45-60千瓦时/米〜3链烷烃)。在所有情况下,在比较链烷烃和盐水合物以进行特定应用时,必须考虑在所有情况下,包括热性可接受性,稳定性,同时性,腐蚀和过冷等因素。最后,我们概述了盐水合物PCM的增强技术,并发现已经追求有限的努力来调整盐水合物相变温度,以及研究稳定性和最小化过冷的研究。该分析表明,在一系列应用中,开发用于低成本加热和冷却热能储存系统的盐水液PCM的潜力。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号