This work is licensed under the Creative Commons Attribution 4.0 International License.
[1] Mishra, S., Das, D., & Paul, S. (2017). A comprehensive review on power distribution network reconfiguration. Energy Systems, 8, 227-284.MishraS.DasD.PaulS. (2017). A comprehensive review on power distribution network reconfiguration. Energy Systems, 8, 227-284.Search in Google Scholar
[2] Lee, C., Liu, C., Mehrotra, S., & Bie, Z. (2014). Robust distribution network reconfiguration. IEEE Transactions on Smart Grid, 6(2), 836-842.LeeC.LiuC.MehrotraS.BieZ. (2014). Robust distribution network reconfiguration. IEEE Transactions on Smart Grid, 6(2), 836-842.Search in Google Scholar
[3] Karimi, M., Mokhlis, H., Naidu, K., Uddin, S., & Bakar, A. A. (2016). Photovoltaic penetration issues and impacts in distribution network–A review. Renewable and Sustainable Energy Reviews, 53, 594-605.KarimiM.MokhlisH.NaiduK.UddinS.BakarA. A. (2016). Photovoltaic penetration issues and impacts in distribution network–A review. Renewable and Sustainable Energy Reviews, 53, 594-605.Search in Google Scholar
[4] Tan, S., Xu, J. X., & Panda, S. K. (2013). Optimization of distribution network incorporating distributed generators: An integrated approach. IEEE Transactions on power systems, 28(3), 2421-2432.TanS.XuJ. X.PandaS. K. (2013). Optimization of distribution network incorporating distributed generators: An integrated approach. IEEE Transactions on power systems, 28(3), 2421-2432.Search in Google Scholar
[5] Kalambe, S., & Agnihotri, G. (2014). Loss minimization techniques used in distribution network: bibliographical survey. renewable and sustainable energy reviews, 29, 184-200.KalambeS.AgnihotriG. (2014). Loss minimization techniques used in distribution network: bibliographical survey. renewable and sustainable energy reviews, 29, 184-200.Search in Google Scholar
[6] Ehsan, A., & Yang, Q. (2019). State-of-the-art techniques for modelling of uncertainties in active distribution network planning: A review. Applied energy, 239, 1509-1523.EhsanA.YangQ. (2019). State-of-the-art techniques for modelling of uncertainties in active distribution network planning: A review. Applied energy, 239, 1509-1523.Search in Google Scholar
[7] Imran, A. M., Kowsalya, M., & Kothari, D. P. (2014). A novel integration technique for optimal network reconfiguration and distributed generation placement in power distribution networks. International Journal of Electrical Power & Energy Systems, 63, 461-472.ImranA. M.KowsalyaM.KothariD. P. (2014). A novel integration technique for optimal network reconfiguration and distributed generation placement in power distribution networks. International Journal of Electrical Power & Energy Systems, 63, 461-472.Search in Google Scholar
[8] Tazvinga, H., Thopil, M., Numbi, P. B., & Adefarati, T. (2017). Distributed renewable energy technologies. Handbook of Distributed Generation: Electric Power Technologies, Economics and Environmental Impacts, 3-67.TazvingaH.ThopilM.NumbiP. B.AdefaratiT. (2017). Distributed renewable energy technologies. Handbook of Distributed Generation: Electric Power Technologies, Economics and Environmental Impacts, 3-67.Search in Google Scholar
[9] Borges, C. L. T. (2012). An overview of reliability models and methods for distribution systems with renewable energy distributed generation. Renewable and sustainable energy reviews, 16(6), 4008-4015.BorgesC. L. T. (2012). An overview of reliability models and methods for distribution systems with renewable energy distributed generation. Renewable and sustainable energy reviews, 16(6), 4008-4015.Search in Google Scholar
[10] Abdmouleh, Z., Gastli, A., Ben-Brahim, L., Haouari, M., & Al-Emadi, N. A. (2017). Review of optimization techniques applied for the integration of distributed generation from renewable energy sources. Renewable Energy, 113, 266-280.AbdmoulehZ.GastliA.Ben-BrahimL.HaouariM.Al-EmadiN. A. (2017). Review of optimization techniques applied for the integration of distributed generation from renewable energy sources. Renewable Energy, 113, 266-280.Search in Google Scholar
[11] Hong, T., & Fan, S. (2016). Probabilistic electric load forecasting: A tutorial review. International Journal of Forecasting, 32(3), 914-938.HongT.FanS. (2016). Probabilistic electric load forecasting: A tutorial review. International Journal of Forecasting, 32(3), 914-938.Search in Google Scholar
[12] Xiao, J., Wang, Y., Luo, F., Bai, L., Gang, F., Huang, R., … & Zhang, X. (2018). Flexible distribution network: definition, configuration, operation, and pilot project. IET Generation, Transmission & Distribution, 12(20), 4492-4498.XiaoJ.WangY.LuoF.BaiL.GangF.HuangR.ZhangX. (2018). Flexible distribution network: definition, configuration, operation, and pilot project. IET Generation, Transmission & Distribution, 12(20), 4492-4498.Search in Google Scholar
[13] Xiao, J., Zu, G., Wang, Y., Zhang, X., & Jiang, X. (2020). Model and observation of dispatchable region for flexible distribution network. Applied Energy, 261, 114425.XiaoJ.ZuG.WangY.ZhangX.JiangX. (2020). Model and observation of dispatchable region for flexible distribution network. Applied Energy, 261, 114425.Search in Google Scholar
[14] Yang, Y., Pei, W., Huo, Q., Sun, J., & Xu, F. (2018). Coordinated planning method of multiple micro-grids and distribution network with flexible interconnection. Applied Energy, 228, 2361-2374.YangY.PeiW.HuoQ.SunJ.XuF. (2018). Coordinated planning method of multiple micro-grids and distribution network with flexible interconnection. Applied Energy, 228, 2361-2374.Search in Google Scholar
[15] Huang, S., Wu, S., Zhang, J., Sun, B., & Han, T. (2020, August). Research on and application of fault disposal in flexible interconnection distribution network. In 2020 IEEE international conference on advances in electrical engineering and computer applications (AEECA) (pp. 639-642). IEEE.HuangS.WuS.ZhangJ.SunB.HanT. (2020, August). Research on and application of fault disposal in flexible interconnection distribution network. In 2020 IEEE international conference on advances in electrical engineering and computer applications (AEECA) (pp. 639-642). IEEE.Search in Google Scholar
[16] Zhao, Y., Xiong, W., Yuan, X., & Zou, X. (2022). A fault recovery strategy of flexible interconnected distribution network with SOP flexible closed-loop operation. International Journal of Electrical Power & Energy Systems, 142, 108360.ZhaoY.XiongW.YuanX.ZouX. (2022). A fault recovery strategy of flexible interconnected distribution network with SOP flexible closed-loop operation. International Journal of Electrical Power & Energy Systems, 142, 108360.Search in Google Scholar
[17] Cai, H., Yuan, X., Xiong, W., Zheng, H., Xu, Y., Cai, Y., & Zhong, J. (2022). Flexible interconnected distribution network with embedded DC system and its dynamic reconfiguration. Energies, 15(15), 5589.CaiH.YuanX.XiongW.ZhengH.XuY.CaiY.ZhongJ. (2022). Flexible interconnected distribution network with embedded DC system and its dynamic reconfiguration. Energies, 15(15), 5589.Search in Google Scholar
[18] Wu, H., He, Y., Lin, X., Bi, R., Hua, Y., Sun, M., & Xu, B. (2023). Optimal configuration of flexible Interconnection devices for transferring photovoltaic power in active distribution network. Journal of Electrical Engineering & Technology, 18(2), 793-804.WuH.HeY.LinX.BiR.HuaY.SunM.XuB. (2023). Optimal configuration of flexible Interconnection devices for transferring photovoltaic power in active distribution network. Journal of Electrical Engineering & Technology, 18(2), 793-804.Search in Google Scholar
[19] Wang, X., Yang, W., & Liang, D. (2021). Multi-objective robust optimization of hybrid AC/DC distribution networks considering flexible interconnection devices. IEEE Access, 9, 166048-166057.WangX.YangW.LiangD. (2021). Multi-objective robust optimization of hybrid AC/DC distribution networks considering flexible interconnection devices. IEEE Access, 9, 166048-166057.Search in Google Scholar
[20] Wu, T., Zheng, Y., Wu, H., Dong, H., & Wang, X. (2019). Power transfer and multi-control mode of a distribution network based on a flexible interconnected device. IEEE Access, 7, 148326-148335.WuT.ZhengY.WuH.DongH.WangX. (2019). Power transfer and multi-control mode of a distribution network based on a flexible interconnected device. IEEE Access, 7, 148326-148335.Search in Google Scholar
[21] Yan, X., Wang, Q., & Bu, J. (2024). High penetration PV active distribution network power flow optimization and loss reduction based on flexible interconnection technology. Electric Power Systems Research, 226, 109839.YanX.WangQ.BuJ. (2024). High penetration PV active distribution network power flow optimization and loss reduction based on flexible interconnection technology. Electric Power Systems Research, 226, 109839.Search in Google Scholar