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首页> 外文期刊>Journal of Cleaner Production >Multi-objective optimal analysis on the distributed energy system with solar driven metal oxide redox cycle based fuel production
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Multi-objective optimal analysis on the distributed energy system with solar driven metal oxide redox cycle based fuel production

机译:基于太阳氧化氧化氧化钠氧化铈氧化铈循环的分布式能量系统多目标最优分析

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摘要

Solar energy driven cerium dioxide (CeO2) thermochemical cycle based fuel production is considered to be a promising technology that can integrate with a combined cooling, heating and power (CCHP) system owing to the pollution free property and favorable chemical reaction kinetics characteristics. In this study a combined cooling, heating, power and fuel (CCHPF) distributed energy system is devised to improve the energy utilization efficiency and reduce the dependence on conventional fossil fuels. To realize the efficient and cost-effectively operations of the system, a constrained multi-objective optimization problem with aims of maximizing primary energy saving ratio (PESR) and minimizing CO2 emission and energy cost is proposed to search for the optimal operation strategy and schedule. A potent optimization method that capitalizes on the advantages of the non-dominated sorting genetic algorithm-II (NSGA-II) and the random walk with directional exploitation (RWDE) algorithm is developed to solve the proposed optimization problem more effectively. The fuzzy decision making method is tailored to determine the final operation strategies of the CCHPF system from the obtained Pareto front according to the decision maker preferences. Numerical results show that the proposed system realizes the supply-demand balance, the optimal dispatch of the energy and the efficient economic operation. In comparison with existing CCHP systems, the energy utilization efficiency of the developed CCHPF system increases by 0.60% and 17.65%, CO2 emission decreases by 13.79% and 3.77%, as well as economic cost reduces 0.29% and 6.33% on a typical winter and summer days, respectively. The research findings provide new insights for improving the coordinated operation of distributed renewable energy system and alleviating energy crisis and environmental pollution. (C) 2019 Elsevier Ltd. All rights reserved.
机译:太阳能驱动的二氧化铈(CEO2)热化学循环基于基于燃料生产的燃料生产被认为是由于污染性能和有利化学反应动力学特性而与组合的冷却,加热和功率(CCHP)系统集成。在该研究中,设计了组合的冷却,加热,功率和燃料(CCHPF)分布式能量系统,以提高能量利用效率,并减少对传统化石燃料的依赖。为了实现系统的有效和成本有效的操作,提出了一种有限的多目标优化问题,其目的是最大化初级节能比(PESR)和最小化CO2发射和能量成本,以搜索最佳操作策略和时间表。一种有效的优化方法,利用非主导的分类遗传算法-II(NSGA-II)的优点和具有定向开发(RWDE)算法的随机步行,以更有效地解决所提出的优化问题。根据决策者偏好,根据决策者偏好确定模糊决策方法以确定CCHPF系统的最终操作策略。数值结果表明,该制定的系统实现了供需平衡,能源的最佳调度和高效的经济运行。与现有的CCHP系统相比,发达的CCHPF系统的能量利用效率增加了0.60%和17.65%,二氧化碳排放量减少了13.79%和3.77%,以及经济成本在典型的冬季降低0.29%和6.33%。夏日分别。研究结果为改善分布式可再生能源体系的协调运营,减轻能源危机和环境污染提供了新的洞察。 (c)2019 Elsevier Ltd.保留所有权利。

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