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首页> 外文期刊>電気学会論文誌 B:電力·エネルギー部門誌 >Total Transfer Capability Assessment Incorporating Corrective Controls for Transient Stability using TSCOPF
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Total Transfer Capability Assessment Incorporating Corrective Controls for Transient Stability using TSCOPF

机译:总输电能力评估,结合使用TSCOPF的暂态稳定校正控制

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Advancements have been made towards inclusion of both static and dynamic security into transfer capability calculation. However, to the authors' knowledge, work on considering corrective controls into the calculation has not been reported yet. Therefore, we propose a Total Transfer Capability (TTC) assessment considering transient stability corrective controls. The method is based on the Newton interior point method for nonlinear programming and transfer capability is approached as a maximization of power transfer with both static and transient stability constraints are incorporated into our Transient Stability Constrained Optimal Power Flow (TSCOPF) formulation. An interconnected power system is simulated to be subjected to a severe unbalanced 3-phase 4-line to ground fault and following the fault, generator and load are shed in a pre-defined sequence to mimic actual corrective controls. In a deregulated electricity market, both generator companies and large load customers are encouraged to actively participate in maintaining power system stability as corrective controls upon agreement of compensation for being shed following a disturbance. Implementation of this proposal on the actual power system operation should be carried out through combining it with the existing transient stabilization controller system. Utilization of these corrective controls results in increasing TTC as suggested in our numerical simulation. As Lagrange multipliers can also describe sensitivity of both inequality and equality constraints to the objective function, then selection of which generator or load to be shed can be carried out on the basis of values of Lagrange multipliers of its respective generator's rotor angle stability and active power balance equation. Hence, the proposal in this paper can be utilized by system operator to assess the maximum TTC for specific loads and network conditions.
机译:在将静态和动态安全性都纳入传输能力计算方面已经取得了进展。然而,据作者所知,尚未考虑将校正控制纳入计算的工作。因此,我们建议考虑瞬态稳定性校正控制的总传输能力(TTC)评估。该方法基于牛顿内点法进行非线性规划,并且随着静态和瞬态稳定性约束的功率传递最大化,都将其传递能力引入了暂态稳定约束最优潮流(TSCOPF)公式中。对互连的电源系统进行仿真,使其经受严重的不平衡3相4线接地故障,并在故障之后,按照预定的顺序释放发电机和负载,以模拟实际的校正控制。在放松管制的电力市场中,鼓励发电公司和大负荷客户积极参与维护电力系统的稳定性,作为对因骚乱而流失的赔偿达成一致的纠正措施。通过将其与现有的暂态稳定控制器系统结合起来,可以在实际的电力系统运行中实施该建议。如我们的数值模拟中所建议的,使用这些校正控制会导致TTC增加。由于拉格朗日乘数还可以描述不等式和等式约束对目标函数的敏感性,因此可以根据拉格朗日乘数的值(其各自发电机的转子角稳定性和有功功率)来选择要减少的发电机或负载平衡方程。因此,系统运营商可以利用本文中的建议来评估特定负载和网络条件下的最大TTC。

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