首页> 外文期刊>Electric Power Components and Systems >Solution to Security-constrained Non-convex Pumped-Storage Hydraulic Unit Scheduling Problem by Modified Subgradient Algorithm Based on Feasible Values and Pseudo Water Price
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Solution to Security-constrained Non-convex Pumped-Storage Hydraulic Unit Scheduling Problem by Modified Subgradient Algorithm Based on Feasible Values and Pseudo Water Price

机译:基于可行值和伪水价的改进次梯度算法求解安全受限的非凸抽水蓄能式机组调度问题

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摘要

A security-constrained power dispatch problem with a non-convex cost function for a lossy electric power system area including a pumped-storage hydraulic unit is formulated. Then, an iterative solution method based on a modified subgradient algorithm operating on feasible values and pseudo water price for the pumped-storage hydraulic unit is used to solve it. In the iterative proposed solution method, the modified subgradient algorithm based on feasible values is used to solve the dispatch problem in each subinterval, while the pseudo water price for the pumped-storage hydraulic unit is employed to adjust the net amount of water used by the pumped-storage hydraulic unit during the considered operation period. Since all equality and inequality constraints in the proposed non-linear optimization model of a subinterval are functions of bus voltage magnitudes and phase angles, the off-nominal lap settings, and susceptances values of SVAR systems, they are taken as independent variables. Load flow equations are added into the model as equality constraints. The unit generation constraints, transmission line capacity constraints, bus voltage magnitude constraints, off-nominal tap setting constraints, and SVAR system susceptance value constraints are added into the optimization problem as inequality constraints. Since the modified subgradient algorithm based on feasible values requires that all inequality constraints should be expressed in equality constraint form, all inequality constraints are converted into equality constraints by the method, which does not add any extra independent variable into the model, before its application to the optimization model. Since the method does not add any extra independent variable into the model, the solution time is reduced further. The proposed dispatch technique is tested on a sample power system that has 12 buses with 5 thermal units and a pumped-storage hydraulic unit. Optimal total cost value for the power system without any pumped-storage unit is calculated first. Later, the same optimal total cost value for the power system with the pumped-storage unit is recalculated, and the obtained saving in the optimal total cost value, due to the employment of the pumped-storage unit, is presented. The solution times for the dispatch problems with and without the pumped-storage unit is also presented. At the end, the modified subgradient algorithm based on feasible values is applied directly to the dispatch problem with a pumped-storage unit. It is demonstrated that the proposed solution method, where the modified subgradient algorithm based on feasible values is employed to solve an interval's dispatch problem, gives a solution time that is smaller than that obtained from the direct application of the modified subgradient algorithm based on feasible values to the dispatch problem with the pumped-storage unit.
机译:针对具有抽水蓄能液压单元的有损电力系统区域,提出了一种具有非凸成本函数的安全约束的电力调度问题。然后,基于改进的次梯度算法,对抽水蓄能式液压机组采用了可行值和伪水价的迭代求解方法。在迭代提出的求解方法中,基于可行值的改进次梯度算法用于解决每个子间隔中的调度问题,而抽水蓄能式液压装置的伪水价用于调整供水系统的净用水量。在考虑的运行期间内抽水蓄能液压单元。由于所提出的子区间非线性优化模型中的所有等式和不等式约束都是总线电压幅度和相角,SVAR系统的标称搭接设置和电纳值的函数,因此将它们视为独立变量。将潮流方程作为等式约束添加到模型中。单元生成约束,传输线容量约束,总线电压幅度约束,标称抽头设置约束和SVAR系统电纳值约束作为不等式约束添加到优化问题中。由于基于可行值的改进次梯度算法要求所有不等式约束均应以等式约束形式表示,因此该方法将所有不等式约束转换为等式约束,该方法不会在模型中应用任何额外的自变量。优化模型。由于该方法不会在模型中添加任何额外的自变量,因此求解时间会进一步减少。提议的调度技术在具有12个母线,5个热力单元和一个抽水蓄能液压单元的示例电力系统上进行了测试。首先计算不带任何抽水蓄能装置的电力系统的最佳总成本值。之后,重新计算具有抽水式存储单元的电力系统的最佳总成本值,并介绍由于使用抽水式存储单元而获得的最佳总成本值节省量。还介绍了带和不带抽水存储单元的调度问题的解决时间。最后,将基于可行值的改进次梯度算法直接应用于抽水蓄能机组的调度问题。证明了所提出的求解方法,其中使用基于可行值的改进的次梯度算法来解决区间的调度问题,其求解时间比从直接应用基于可行值的改进的次梯度算法获得的求解时间短。抽水存储单元的调度问题。

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