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Probabilistic Multiobjective Operation Management of MicroGrids With Hydrogen Storage and Polymer Exchange Fuel Cell Power Plants

机译:具有储氢和聚合物交换燃料电池电站的微电网的概率多目标运行管理

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This paper models and solves the operation management problem of MicroGrids (MGs) including cost and emissions minimization under uncertain environment. The proposed model emphasizes on fuel cells (FCs) as a prime mover of combined heat and power (CHP) systems. An electro-chemical model of the proton exchange membrane fuel cell (PEMFC) is used and linked to the daily operating cost and emissions of the MGs. A reformer is considered to produce hydrogen for PEMFCs. Moreover, in high thermal load intervals, in order to make the MG more efficient, a part of produced hydrogen is stored in a hydrogen tank. The stored hydrogen can be reused by PEMFCs to generate electricity or be sold to other hydrogen consumers. A probabilistic optimization algorithm is devised which consists of 2m + 1 point estimate method to handle the uncertainty in input random variables (IRVs) and a multi-objective Self-adaptive Bee Swarm Optimization (SBSO) algorithm to minimize the cost and emissions simultaneously. Several techniques are proposed in the SBSO algorithm to make it a powerful black-box optimization tool. The efficiency of the proposed approach is verified on a typical grid-connected MG with several distributed energy sources.
机译:本文建模并解决了微电网(MG)的运行管理问题,包括在不确定环境下的成本和排放最小化。提出的模型强调燃料电池(FC)作为热电联产(CHP)系统的原动力。使用质子交换膜燃料电池(PEMFC)的电化学模型,并将其与MG的日常运营成本和排放联系起来。认为重整器可为PEMFC生产氢气。此外,在高热负荷间隔内,为了提高MG的效率,一部分产生的氢气存储在氢气罐中。所存储的氢气可被PEMFC重复利用以发电或出售给其他氢气使用者。设计了一种概率优化算法,该算法由2m +1点估计方法组成,以处理输入随机变量(IRV)的不确定性,并采用多目标自适应蜂群优化(SBSO)算法以同时最小化成本和排放。 SBSO算法中提出了几种技术,以使其成为功能强大的黑盒优化工具。在具有多个分布式能源的典型并网MG上验证了该方法的效率。

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