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Techno-economic optimization of solar thermal integrated membrane distillation for cogeneration of heat and pure water

机译:用于热和纯水热电联产的太阳能热集成膜蒸馏的技术经济优化

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The aim of this paper is to evaluate optimum design criteria for developing solar thermal integrated membrane distillation system for cogeneration of pure water and heat. The temporal and seasonal variability of the driving variables, such as ambient temperature and solar irradiance requires dynamic simulation of combined system using tools such as TRNSYS. Dynamic simulation and parametric analysis enables to design a functional system and then optimizes the design. In this study, the application of cogeneration system for residential households in United Arab Emirates is considered for per capita production of 4l/day of pure water and 50l/day of domestic hot water. The performance of cogeneration is optimized by varying various design parameters such as collector tilt angle, thermal storage volume and area of the solar collector field. Cogeneration solar fraction and payback period are considered as performance indicators for energetic and economic optimization. Further simulations are extended from small to large family application and for utilizing either flat plate (FPC) or evacuated tubular collector (ETC) systems. Optimized cogeneration system utilizes more than 80% of the available solar energy gain and operates at 45% and 60% collector efficiencies for FPC and ETC systems respectively Also, combined and system efficiencies of the cogeneration system are compared with standalone operational efficiencies for solar heaters and solar membrane distillation systems. Results show that, cogeneration operation reduces 6-16% of thermal energy demand and also enables 25% savings in electrical energy demand. Payback period could be reduced by 2.5-3 years by switching from regular solar water heating to cogeneration systems along with 4-fold increase in net cumulative savings.
机译:本文的目的是评估开发纯水和热能联产的太阳能热集成膜蒸馏系统的最佳设计标准。驱动变量的时间和季节变化(例如环境温度和太阳辐照度)要求使用TRNSYS等工具对组合系统进行动态仿真。动态仿真和参数分析可以设计功能系统,然后优化设计。在这项研究中,考虑到热电联产系统在阿拉伯联合酋长国居民家庭中的应用,其人均日纯水产量为4l /天,生活热水为50l /天。通过改变各种设计参数(例如集热器倾斜角,储热量和太阳能集热器区域的面积),可以优化热电联产的性能。热电联产的太阳能分数和投资回收期被视为能源和经济优化的性能指标。进一步的仿真已从小型家庭应用扩展到大型家庭应用,并利用了平板(FPC)或真空管状集热器(ETC)系统。优化的热电联产系统利用了超过80%的可用太阳能,分别对FPC和ETC系统的集热效率分别为45%和60%,并且将热电联产系统的综合效率和系统效率与太阳能加热器和独立热电系统的独立运行效率进行了比较。太阳膜蒸馏系统。结果表明,热电联产运行减少了6-16%的热能需求,并且还节省了25%的电能需求。通过从常规的太阳能热水系统转换为热电联产系统,投资回收期可减少2.5-3年,同时净累积节省额将增加4倍。

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