Optimal scheduling of uncertain wind energy and demand response in unit commitment using binary grey wolf optimizer (BGWO)

Srikanth Reddy K, L. Panwar, B. K. Panigrahi, R. Kumar
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引用次数: 6

Abstract

The uncertain wind energy handling is a vital aspect of modern power system operational planning with considerable wind penetration. The handling of same is a techno-economic constrained procedure considering its effect on energy and reserve scheduling of whole generation mix. This paper presents a dynamic penalty cost based methodology to solve power system resource scheduling problem with uncertain wind energy, thermal units and responsive loads using binary grey wolf optimizer (BGWO). The proposed methodology considers the effect of uncertain wind energy in terms of total rescheduling cost, total energy balancing cost and total reserve cost. The unit commitment procedure is solved using BGWO and the economic dispatch of committed thermal units alongside the wind energy, responsive load scheduling is solved using Lambda iteration technique. In addition, two different levels of wind uncertainty level are considered to examine the variation techno-economic aspects of proposed methodology. The simulation results are presented and discussed with respect to various performance attributes and the same demonstrate the superior performance of proposed dynamic penalty cost models over existing static cost models.
基于二元灰狼优化器(BGWO)的机组承诺不确定风能和需求响应优化调度
风能处理的不确定性是现代电力系统运行规划的一个重要方面。考虑到其对整个发电组合的能量和储备调度的影响,其处理是一个技术经济约束过程。本文提出了一种基于动态惩罚成本的方法,利用二元灰狼优化器(BGWO)求解风电、火电机组和响应负荷不确定的电力系统资源调度问题。该方法从总重新调度成本、总能量平衡成本和总储备成本三个方面考虑了不确定风能的影响。采用BGWO法求解机组投入过程,采用Lambda迭代法求解已投入热电机组与风电的经济调度,响应式负荷调度。此外,考虑了两种不同级别的风不确定性水平,以检查所提出方法的技术经济方面的变化。针对不同的性能属性给出了仿真结果并进行了讨论,同样证明了所提出的动态惩罚成本模型优于现有的静态成本模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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