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Water-energy nexus: A thermoeconomic analysis of polygeneration systems for small Mediterranean islands

机译:水能Nexus:小地中海岛的多结石系统热经济分析

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This paper focuses on the energy-water nexus, aiming at developing novel systems producing simultaneously energy and water. This work investigates two solar polygeneration plants for the production of thermal and cooling energy, electricity, and desalinated water for two small Mediterranean islands. In this case, seawater and solar energy are largely available, whereas freshwater is scarce and extremely expensive. The work also aims to compare different technologies included in the polygeneration systems. In particular, the first plant is based on concentrating photovoltaic/thermal solar collectors, producing electric and thermal energy. The thermal energy is used to produce space heating, domestic hot water and space cooling by means a single-stage Lithium Bromide/Water absorption chiller. An electric auxiliary chiller is also included. A multi-effect distillation unit is included for freshwater production supplied by the concentrating photovoltaic/thermal collectors solar energy and an auxiliary biomass-fired heater. In the second plant, a photovoltaic field is coupled with electric driven technologies, such as heat pumps for space heating, cooling and domestic hot water production and a reverse osmosis unit. The solar electrical energy excess is delivered to the grid. The third polygeneration plant includes the same components as the first layout but it is equipped with a reverse osmosis unit. Two main case studies, Favignana and Salina islands (South Italy) are selected. The heating, cooling and electric hourly loads of some buildings located in both investigated weather zones are calculated in detail. In particular, space heating and cooling loads are calculated by means of the Type 56 of TRNSYS (version 17), coupled to the Google SketchUp TRNSYS3d plug-in. The buildings geometry, envelope, windows, lighting, machineries heat gains schedule, as well as the buildings users' occupation and activity are simulated by means of the Type 56. TRNSYS is also used to accurately model all of the plant components. The work also includes comprehensive energy, environmental and economic analyses to maximize the plants profitability, evaluated by considering both operating and capital costs. Sensitivity analyses aiming at establishing the optimal values of the most important design parameters are also performed. The developed plants achieve important savings in terms of carbon dioxide emissions due to the use of renewable energy sources and the high efficiency of the included technologies. The best economic indexes are obtained for the layout using electricity-driven technologies, resulting in very profitable operation with a payback period of about 6.2 years.
机译:本文重点介绍了能源水Nexus,旨在开发同时生产能量和水的新型系统。这项工作调查了两种太阳能多种子厂,用于生产热量和冷却能量,电力和脱盐水,用于两个小地中海岛屿。在这种情况下,海水和太阳能在很大程度上可用,而淡水是稀缺和极其昂贵的。该工作还旨在比较多种子态系统中包含的不同技术。特别地,第一植物基于浓缩光伏/热太阳能集热器,产生电气和热能。通过单级锂溴/吸水冷却器,热能用于产生空间加热,家庭热水和空间冷却。还包括电动辅助冷却器。包括由浓缩光伏/热收集器太阳能和辅助生物质烧制加热器供应的淡水生产的多效蒸馏装置。在第二植物中,光伏电磁场与电动驱动技术相结合,例如用于空间加热,冷却和国内热水生产和反渗透单元的热泵。太阳能电能过剩送到电网上。第三种多项细分厂包括与第一布局相同的组件,但它配备有反渗透单元。选定了两种主要案例研究,法维尼亚纳和萨利纳群岛(南意大利)。详细计算了位于调查的天气区的一些建筑物的加热,冷却和电小时荷载。特别地,通过TRNSYS(版本17)的类型56计算空间加热和冷却载荷,耦合到Google SketchUp TRNSYS3D插件。通过56型模拟建筑物几何形状,信封,窗口,照明,机械热量和活动,以及建筑物用户的职业和活动。Trnsys还用于准确模拟所有工厂组件。该工作还包括全面的能源,环境和经济分析,以最大限度地提高植物盈利能力,通过考虑运营和资本成本来评估。还执行了旨在建立最重要的设计参数最佳值的敏感性分析。由于使用可再生能源和包括的技术的高效率,开发工厂在二氧化碳排放方面实现了重要的节省。使用电力驱动技术的布局获得最佳的经济指标,从而实现了非常有利可图的运营,回收期约为6.2岁。

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