Stochastic optimal power flow framework with incorporation of wind turbines and solar PVs using improved liver cancer algorithm
المؤلف | Khan, Noor Habib |
المؤلف | Wang, Yong |
المؤلف | Habib, Salman |
المؤلف | Jamal, Raheela |
المؤلف | Gulzar, Muhammad Majid |
المؤلف | Muyeen, S. M. |
المؤلف | Ebeed, Mohamed |
تاريخ الإتاحة | 2024-12-17T09:32:27Z |
تاريخ النشر | 2024-10-26 |
اسم المنشور | IET Renewable Power Generation |
المعرّف | http://dx.doi.org/10.1049/rpg2.13113 |
الاقتباس | Khan, N. H., Wang, Y., Habib, S., Jamal, R., Gulzar, M. M., Muyeen, S. M., & Ebeed, M. (2024). Stochastic optimal power flow framework with incorporation of wind turbines and solar PVs using improved liver cancer algorithm. IET Renewable Power Generation. |
الرقم المعياري الدولي للكتاب | 17521416 |
الملخص | The present study introduces a nature inspired improved liver cancer algorithm (ILCA) for solving the non-convex engineering optimization issues. The traditional LCA (t-LCA) inspires from the conduct of liver tumours and integrates biological ethics during the optimization procedure. However, t-LCA facing stagnation issues and may trap into local optima. To avoid such issues and provide the optimal solution, there are some modifications are implemented into the internal structure of t-LCA based on Weibull flight operator, mutation-based approach, quasi-opposite-based learning and gorilla troops exploitation-based mechanisms to enhance the overall strength of the algorithm to obtain the global solution. For validation of ILCA, the non-parametric and the statistical analysis are performed using benchmark standard functions. Moreover, ILCA is applied to resolve the stochastic renewable-based (wind turbines + PVs) optimal power flow problem using a modified RER-based IEEE 57-bus. The objective of this work is to |
اللغة | en |
الناشر | John Wiley and Sons inc |
الموضوع | optimisation power control renewable energy sources |
النوع | Article |
رقم العدد | 14 |
رقم المجلد | 18 |
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