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Distributed generation and water production: A study for a region in central Italy

机译:分布式发电和水生产:对意大利中部地区的研究

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This study examines the use of distributed power plants coupled to desalination systems to achieve combined production of electrical energy and of water for drinking and similar purposes in Marches, an Adriatic region in central Italy. To reduce Marches' large electricity deficit, the regional government has drawn up an environmental and energy plan promoting distributed generation through power plants built right where the electricity is consumed. At the same time, the region's abundant water resources are increasingly threatened by aquifer pollution, due particularly to fertilizers and to the phenomenon of saltwater intrusion near the coast. Distributed electrical energy generation combined with water production can help meet the goal of reducing the electrical deficit while at the same time improving ground-water quality and reducing the hydrogeological risk. The solution is also efficient, since the more the useful heat recovered by the energy system, the higher its global efficiency. Furthermore, coupling power plants to desalination units is also an excellent application of cogeneration systems, allowing useful recovery of thermal energy in the summer. The study examines different sized plants for the distributed generation of water and power in Marches, from small units to thermal desalination systems that can be coupled to existing power plants. It shows that although endowing existing large power plants with MED (multiple effect distillation) units makes it possible to meet 58% of the freshwater demand in Marches, it further increases the electricity deficit, whereas coupling small or medium-sized distributed power plants to reverse osmosis systems allows meeting 75% of the demand for freshwater and reduces the electrical energy demand by up to 50% in the more energy-intensive districts.
机译:这项研究考察了意大利中部亚得里亚海地区Marches的分布式发电厂与海水淡化系统的结合使用,以实现电能和水的联合生产,以用于饮用水和类似目的。为了减少三月份的大量电力赤字,地方政府制定了一项环境和能源计划,以促进通过直接在用电量处建造的电厂进行分布式发电。同时,该地区丰富的水资源日益受到含水层污染的威胁,特别是由于肥料和沿海地区咸水入侵的现象。分布式发电与水生产相结合可以帮助实现减少电力短缺的目标,同时提高地下水质量并降低水文地质风险。该解决方案也是有效的,因为能源系统回收的有用热量越多,其整体效率就越高。此外,将发电厂耦合至海水淡化装置也是热电联产系统的出色应用,可在夏季有效回收热能。这项研究研究了3月不同规模的发电厂的水和电的分布式发电,从小型机组到可以与现有发电厂耦合的热脱盐系统。结果表明,尽管使用MED(多效蒸馏)装置给现有的大型发电厂供电,可以满足3月淡水需求的58%,但它进一步增加了电力赤字,而将中小型分布式发电厂耦合到反向渗透系统可以满足75%的淡水需求,并在能耗较高的地区减少多达50%的电能需求。

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