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Risk-constrained optimal operation of fuel cell/photovoltaic/battery/grid hybrid energy system using downside risk constraints method

机译:利用下行风险约束方法风险约束燃料电池/光伏/电池/电池/电池混合能量系统的最佳运行

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Residential consumers have electrical and thermal loads. Therefore they can be utilized hybrid thermal and electrical energy systems to procure their required energy. In the proposed system, in order to supply residential loads, a hybrid energy system (HES) is proposed which consists of photovoltaic/solid oxide fuel cell/thermal and electrical storages/boiler. Also, the uncertain parameters such as thermal and electrical loads, electricity market price, and solar irradiation are considered in the stochastic formulation. Uncertain parameters can be led to financial risks in the system operation. In order to measure imposed risks, in this paper, a novel risk management method called downside risk constraints method is used to model the financial risks imposed from the uncertain parameters. According to obtained results, the operator of the hybrid energy systemby utilization of the downside risk constraints method has obtained a strategy that is scenario independent. In other words, the downside risk constraints method by minimizing the imposed risks introduced a zero-risk strategy which operation cost would not increase by changing the scenario. Results are shown that system operators by paying 1.3% more expected cost ($ 40.22 instead of $ 39.69), can make its operation independent of the scenario. Also, riskbased operational strategies of the proposed hybrid energy system are reported in the results as graphical results. The proposed risk-measurement operation problem of the designed hybrid energy system is formulated as a mixed-integer linear programming (MILP) model and modeled by GAMS software using CPLEX solver. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:住宅消费者具有电气和热负荷。因此,它们可以利用混合热和电能系统来采购所需的能量。在所提出的系统中,为了提供住宅载荷,提出了一种混合能量系统(HES),其由光伏/固体氧化物燃料电池/热和电气储物/锅炉组成。此外,在随机配方中考虑了不确定的参数,例如热和电负载,电力市场价格和太阳照射。不确定的参数可以导致系统操作中的财务风险。为了衡量施加的风险,本文采用了一种新的风险管理方法,称为下行风险限制方法来模拟不确定参数施加的金融风险。根据获得的结果,杂交能量系统的运营商利用下行风险限制方法已经获得了一个独立的情景的策略。换句话说,通过最小化施加的风险来推出下行风险限制方法引入了通过改变方案来增加运营成本的零风险策略。结果表明,系统运营商通过支付1.3%的预期成本(40.22美元而不是39.69美元),可以独立于场景。此外,拟议的混合能源系统的风险运算策略在结果中报告为图形结果。所设计的混合能量系统的建议风险测量操作问题被配制为混合整数线性编程(MILP)模型,并由使用CPLEX求解器建模的GAMS软件。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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