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A novel renewable polygeneration system for a small Mediterranean volcanic island for the combined production of energy and water: Dynamic simulation and economic assessment

机译:一种用于地中海小火山岛的新型可再生多联产系统,用于能源和水的联合生产:动态模拟和经济评估

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This paper investigates the integration of solar and geothermal energy in a novel polygeneration system producing simultaneously: electricity, thermal energy, cooling energy and fresh water. The polygeneration system under analysis includes concentrating photovoltaic/thermal solar collectors (CPVT), a Geothermal Well (GW) a multi-effect distillation (MED) system for seawater desalination, a single-stage LiBr-H_2O absorption chiller and additional components, such as: storage tanks, heat exchangers and balance of plant devices. The CPVT produces simultaneously electrical energy and thermal energy, at a maximum temperature of about 100 ℃. The electrical energy is delivered to the grid, whereas the thermal energy can be used for different scopes. First, the thermal energy can be used for heating purposes and/or Domestic Hot Water production. As an alternative, solar thermal energy can be used to drive an absorption chiller, producing chilled water for space cooling. Finally, solar energy, in combination with the thermal energy produced by low-enthalpy (about 80 ℃) geothermal wells, may be used by the MED system to convert seawater into desalinated water. Geothermal energy is also used to produce Domestic Hot Water at 45 ℃. The system is dynamically simulated by means of a zero-dimensional transient simulation model. The simulation model also includes detailed control strategies, for the management of the different technologies included in such a complex system. The system is assumed to be operated in some of the several small volcanic islands in the Mediterranean Sea, assuming Pantelleria (Trapani, Italy) as main case study. Here, the availability of solar and geothermal energy is high whereas the availability of fresh water is scarce and its cost consequently high. Results show an excellent energetic performance of the system under investigation. From the economic point of view, the profitability of the system dramatically increases when user Domestic Hot Water demand is high.
机译:本文研究了太阳能和地热能在新型多联产系统中的集成,该系统同时产生:电,热能,冷却能和淡水。受分析的多联产系统包括聚光光伏/热太阳能收集器(CPVT),地热井(GW),用于海水淡化的多效蒸馏(MED)系统,单级LiBr-H_2O吸收式冷却器和其他组件,例如:储罐,热交换器和工厂设备的平衡。 CPVT可同时产生电能和热能,最高温度约为100℃。电能被传递到电网,而热能可以用于不同的范围。首先,热能可用于加热目的和/或生活热水生产。作为替代,太阳能可用于驱动吸收式制冷机,产生用于空间冷却的冷冻水。最后,MED系统可以使用太阳能和低焓(约80℃)地热井产生的热能将海水转化为淡化水。地热能还用于生产45℃的生活热水。通过零维瞬态仿真模型对系统进行动态仿真。仿真模型还包括详细的控制策略,用于管理此类复杂系统中所包含的不同技术。假设以Pantelleria(意大利Trapani)为主要案例研究,该系统将在地中海的几个小火山岛中运行。在这里,太阳能和地热能的利用率很高,而淡水的利用率却很低,因此其成本很高。结果表明,所研究的系统具有出色的能量性能。从经济角度来看,当用户生活热水需求高时,系统的盈利能力将大大提高。

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