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A simplified competitive swarm optimizer for parameter identification of solid oxide fuel cells

机译:用于固体氧化物燃料电池参数识别的简化竞争群优化器

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摘要

Identifying reliable and accurate parameters of a solid oxide fuel cell (SOFC) is very important to simulate and analyze its dynamic conversion behavior. In this paper, a simplified variant of competitive swarm optimizer (SCSO) is proposed to solve the parameter identification problem of SOFC models. CSO performs well especially on unimodal optimization problems. However, it is with the drawbacks of "two steps forward, one step back" and deviating from the promising direction, resulting in low searching efficiency when solving complex multimodal optimization problems. SCSO adopts two simplified components to conquer the drawbacks: (i) a simplified learning equation: the losers just learn from the winners excluding the mean position of the population; and (ii) a renewed way of random numbers: random numbers are renewed for each loser rather than for each dimension of each loser. SCSO is applied to a Siemen Energy cylindrical cell and a 5-kW dynamic tubular stack. In addition, the influence of weight parameter and the benefit of simplified components are also experimentally investigated. Results present that SCSO is highly competitive in terms of accuracy, robustness, convergence and statistics compared with other advanced algorithms.
机译:识别固体氧化物燃料电池(SOFC)的可靠和准确的参数对于模拟和分析其动态转换行为非常重要。为了解决SOFC模型的参数辨识问题,提出了一种竞争群优化器(SCSO)的简化形式。 CSO在单峰优化问题上的表现尤其出色。但是,它的缺点是“前进两步,后退一步”并且偏离了有希望的方向,导致在解决复杂的多峰优化问题时搜索效率低下。 SCSO采用了两个简化的组件来克服缺点:(i)简化的学习方程式:失败者只是向获胜者学习,而排除了人口的平均地位; (ii)更新随机数的方式:为每个失败者而不是每个失败者的每个维度更新随机数。 SCSO被应用于Siemen Energy圆柱形电池和5kW动态管状电池组。此外,还通过实验研究了重量参数的影响和简化组件的好处。结果表明,与其他高级算法相比,SCSO在准确性,鲁棒性,收敛性和统计性方面具有很高的竞争力。

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