首页> 外文期刊>Energy Conversion & Management >Thermoeconomic assessment of a geothermal based combined cooling, heating, and power system, integrated with a humidification-dehumidification desalination unit and an absorption heat transformer
【24h】

Thermoeconomic assessment of a geothermal based combined cooling, heating, and power system, integrated with a humidification-dehumidification desalination unit and an absorption heat transformer

机译:热经济评估地热基于地热的组合冷却,加热和电力系统,与加湿除湿脱盐单元和吸收热变压器集成

获取原文
获取原文并翻译 | 示例
           

摘要

Population growth, economic challenges, and the environmental crisis force scientists and designers to pay more attention to clean, sustainable, and renewable-based energy systems. In this regard, due to the unlimited geothermal potential in many countries, the geothermal energy resource can be an economical alternative. Therefore, in the present work, a novel multi-generation system, based on a 100% geothermal resource, for power, cooling, heating, and desalination has been designed and analyzed, thoroughly. The system is evaluated from the energy, exergy, and thermo-economic viewpoints, and providing high heating/cooling potentials while reducing the thermoeconomic indexes is the major achievement of this study. The results demonstrate that the system?s net power output, freshwater production rate, heating, and cooling capacities are 78.47 kW, 92.1 m3/day, 6251 kW, and 4991 kW, respectively. Moreover, the highest amount of exergy destruction occurs in the absorption heat transformer (42%) and the absorption chiller (35%), respectively. In addition, the chiller?s absorber has the highest cost rate of exergy destruction, and the turbine and the evaporator of the organic Rankine cycle have the highest investment costs. It is found that energy and exergy efficiencies are 60.55% and 17.05%, respectively for summer, and 70.58% and 43.59%, respectively for winter, and the system?s total cost rate is 44.12 $/h with the payback period of 5.63 years. Furthermore, the parametric study shows that increasing the ambient temperature and decreasing the terminal temperature difference of the heat transformer?s evaporator lead to higher exergy efficiency and lower total system cost rate.
机译:人口增长,经济挑战,环境危机力量,科学家和设计师更加关注干净,可持续和可再生能源系统。在这方面,由于许多国家的无限地热潜力,地热能源资源可以是一个经济的替代品。因此,在本作本作的工作中,基于100%地热资源进行电源,冷却,加热和海水淡化的新型多代系统已经设计和分析。该系统由能量,暴力和热经济观点评估,并提供高热/冷却电位,同时降低热经济指标是本研究的主要成就。结果表明,系统净功率输出,淡水产量,加热和冷却能力分别为78.47千瓦,92.1m3 /天,6251千瓦和4991千瓦。此外,在吸收热变压器(42%)和吸收式冷却器(35%)中分别发生最高的漏洞破坏。此外,冷却器的吸收器具有最高的漏斗成本率,以及有机朗肯循环的涡轮机和蒸发器具有最高的投资成本。有人发现,夏季分别为60.55%和17.05%,分别为冬季70.58%和43.59%,系统的总成本率为44.12美元,回收期为5.63年。此外,参数研究表明,增加环境温度和降低热变压器的蒸发器的末端温度差,导致更高的效率和更低的总系统成本率。

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