Design and Integration of a Renewable Energy Based Polygeneration System With Desalination for an Industrial Plant

Lucero Cynthia Luciano De La Cruz, Cesar Celis
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Abstract

Polygeneration improves energy efficiency and reduces both energy consumption and pollutant emissions compared to conventional generation technologies. A polygeneration system is a variation of a cogeneration system, in which more than two outputs, i.e., heat, power, cooling, water, energy or fuels, are accounted for. In particular, polygeneration systems integrating solar energy and water desalination represent promising technologies for energy production and water supply. They are therefore interesting options for coastal regions with a high solar potential, such as those located in southern Peru and northern Chile. Notice that most of the Peruvian and Chilean mining industry operations intensive in electricity and water consumption are located in these particular regions. Accordingly, this work focus on the design and integration of a polygeneration system producing industrial heating, cooling, electrical power and water for an industrial plant. In particular, the design procedure followed in this work involves integer linear programming modeling (MILP). The technical and economic feasibility of integrating renewable energy technologies, thermal energy storage, power and thermal exchange, absorption chillers, cogeneration heat engines and desalination technologies is particularly assessed. The polygeneration system integration carried out seeks to minimize the system total annual cost subject to CO2 emissions restrictions. Particular economic aspects accounted for include investment, maintenance and operating costs.
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基于可再生能源的多电联产系统与工业装置海水淡化的设计与集成
与传统发电技术相比,多联产提高了能源效率,减少了能源消耗和污染物排放。多联产系统是热电联产系统的一种变体,其中包括两种以上的输出,即热、电、冷却、水、能源或燃料。特别是,结合太阳能和海水淡化的多路发电系统是能源生产和供水方面有前途的技术。因此,对于太阳能潜力巨大的沿海地区,例如位于秘鲁南部和智利北部的地区,它们是有趣的选择。请注意,秘鲁和智利的大部分采矿业都是用电和用水密集的地区。因此,这项工作的重点是设计和集成为工业工厂生产工业加热、冷却、电力和水的多联产系统。特别地,在这项工作中遵循的设计过程涉及到整数线性规划建模(MILP)。特别评估了综合可再生能源技术、热能储存、电力和热交换、吸收式冷却器、热电联产热机和海水淡化技术的技术和经济可行性。所进行的多电联产系统集成旨在最大限度地减少受二氧化碳排放限制的系统年度总成本。具体的经济方面包括投资、维护和运营成本。
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