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A design on sustainable hybrid energy systems by multi-objective optimization for aquaculture industry

机译:水产养殖业多目标优化可持续混合能源系统的设计

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This paper presents an optimal design for sustainable hybrid energy systems for the aquaculture sector, which inherently requires intensive energy. The designed system is energized by renewable resources to produce pure oxygen in situ through water electrolysis for oxygenation according to the changes of dissolved oxygen of species under culture. Moreover, the by-product hydrogen from the electrolysis process is used to generate backup power for an eventual power failure. The mathematical models of the system were developed for simulation and optimization to assess the performance of the system regarding technical, economic, and environmental aspects as multi-objective functions in autonomous mode as well as on-grid mode. The merits of the proposed system are demonstrated at a shrimp farm. Furthermore, the optimal results and their sensitivity analysis showed that the sustainable hybrid energy system operating in grid-connected mode, which possesses such attractive features as producing onsite pure oxygen for oxygenation and utilizing the by-product hydrogen for generating backup power, could bring significant benefits for farmers thanks to a notable reduction in the annualized cost of the system as well as CO2 emission in comparison with the conventional system, which is powered by the national grid to run common paddlewheel aerators for oxygenation. (C) 2020 Elsevier Ltd. All rights reserved.
机译:本文为水产养殖部门的可持续混合能源系统提供了最佳设计,其固有地需要密集的能量。设计系统通过可再生资源通电,通过培养物种溶解氧的溶解氧的变化来产生纯氧通过水电解而产生氧化。此外,来自电解过程的副产物氢用于为最终电源故障产生备用电源。系统的数学模型是为模拟和优化开发的,以评估系统的性能,以及在自主模式中的多目标函数以及网格模式下的多目标函数。在虾农场证明了所提出的系统的优点。此外,最佳结果及其敏感性分析表明,在网格连接模式下运行的可持续混合能量系统,其具有生产现场纯氧的氧化和利用副产物氢以产生备用电源,可以带来显着由于系统的年产量和CO2排放的显着降低,与传统系统相比,农民的福利,这是由国家电网供电的,以运行氧气的公共桨轮曝气器。 (c)2020 elestvier有限公司保留所有权利。

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