...
首页> 外文期刊>Applied Energy >Boosting the performance of a Reverse Electrodialysis - Multi-Effect Distillation Heat Engine by novel solutions and operating conditions
【24h】

Boosting the performance of a Reverse Electrodialysis - Multi-Effect Distillation Heat Engine by novel solutions and operating conditions

机译:通过新颖的解决方案和运行条件,提高反向电渗析-多效蒸馏热机的性能

获取原文
获取原文并翻译 | 示例

摘要

This work presents a performance analysis of a waste-heat-to-power Reverse Electrodialysis Heat Engine (RED-HE) with a Multi-Effect Distillation (MED) unit as the regeneration stage. The performance of the system is comparatively evaluated using two different salts, sodium chloride and potassium acetate, and investigating the impact of different working solutions concentration and temperature in the RED unit. For both salt solutions, the impact of membrane properties on the system efficiency is analysed by considering reference ionic exchange membranes and high-performing membranes. Detailed mathematical models for the RED and MED units have been used to predict the thermal efficiency of the closed-loop heat engine. Results show that, under the conditions analysed, potassium acetate provides higher efficiency than sodium chloride, requiring a smaller MED unit (lower number of effects). The maximum thermal efficiency obtained is 9.4% (43% exergy efficiency) with a RED operating temperature of 80 degrees C, KAc salt solution, adopting high-performing ion exchange membranes, and with 12 MED effects. This salt has been identified as more advantageous than sodium chloride from a thermodynamic point of view for the RED-HE technology and is also recommended for a cost-effective technology implementation.
机译:这项工作介绍了以多效蒸馏(MED)单元为再生阶段的废热发电逆电渗析热机(RED-HE)的性能分析。使用两种不同的盐(氯化钠和乙酸钾)比较了系统的性能,并研究了RED单元中不同工作溶液浓度和温度的影响。对于两种盐溶液,均通过考虑参考离子交换膜和高性能膜来分析膜性能对系统效率的影响。 RED和MED单元的详细数学模型已用于预测闭环热机的热效率。结果表明,在所分析的条件下,乙酸钾比氯化钠具有更高的效率,需要的MED单位更小(效果数更少)。在RED工作温度为80摄氏度,KAc盐溶液,采用高性能离子交换膜和12种MED效果的情况下,获得的最大热效率为9.4%(能效效率为43%)。从热力学角度来看,对于RED-HE技术而言,该盐比氯化钠更具优势,并且还建议将该盐用于经济高效的技术实施中。

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