Welcome to Scholar Publishing Group

Distributed Processing System, 2022, 3(1); doi: 10.38007/DPS.2022.030105.

Three Phase Power Flow Calculation of Weak Loop Distribution Network with Multiple Distributed Generators

Author(s)

Umma Sadia

Corresponding Author:
Umma Sadia
Affiliation(s)

University of Peshawar, Pakistan

Abstract

As a beneficial supplement to centralized power generation(PG), distributed PG has attracted more and more attention in the world because of its many advantages, such as safety and reliability, low pollution, energy saving and economy, flexible installation location and so on. At present, many scholars at home and abroad have analyzed and studied the power flow algorithm of distribution network with distributed generation(DG) from different angles, and have made some achievements. In this paper, Three phase power flow calculation(TPPFC) of weak loop distribution network(LDN) with multiple distributed generators is analyzed and studied. The influence of human DG on power flow of distribution network and the modeling of various DG and load are analyzed; The three-phase power flow(TPPF) algorithm is discussed. Finally, through the simulation experiment of the TPPFC of the weak LDN with multiple distributed generators, the application of distributed generators to the distribution system(DS) is discussed. The simulation calculation of the IEEE-14 node DS and the ieee-33 node DS with distributed generators is accurate and fast.

Keywords

Distributed Generation, Weak Loop Distribution Network, Three-Phase Power Flow Calculation,Power Generation

Cite This Paper

Umma Sadia. Three Phase Power Flow Calculation of Weak Loop Distribution Network with Multiple Distributed Generators. Distributed Processing System (2022), Vol. 3, Issue 1: 36-45. https://doi.org/10.38007/DPS.2022.030105.

References

[1] Dobbe R, Sondermeijer O, Fridovich-Keil D, et al. Toward Distributed Energy Services: Decentralizing Optimal Power Flow With Machine Learning. IEEE Transactions on Smart Grid, 2019, PP(99):1-1.

[2] Nirbhavane P, Corson L, Rizvi S, et al. TPCPF: Three-phase Continuation Power Flow Tool for Voltage Stability Assessment of Distribution Networks with Distributed Energy Resources. IEEE Transactions on Industry Applications, 2021, PP(99):1-1.

[3] Carpinelli G, Bracale A, Caramia P, et al. Three-phase photovoltaic generators modeling in unbalanced short-circuit operating conditions. International Journal of Electrical Power & Energy Systems, 2019, 113(DEC.):941-951. https://doi.org/10.1016/j.ijepes.2019.06.011

[4] Nasrollahi M, Arandian B, Baharizadeh M. Robust optimum distribution network scheduling with DGs, electric vehicles, and storage units. International Journal of Energy Research, 2022, 46(7):9431-9443. https://doi.org/10.1002/er.7815

[5] Ashrafi H, Ahmadi N, Pourmahmoud N, et al. Performance improvement of proton‐exchange membrane fuel cells through different gas injection channel geometries. International Journal of Energy Research, 2022, 46(7):8781-8792. https://doi.org/10.1002/er.7755

[6] Fear E J, Kennerley A J, Rayner P J, et al. SABRE hyperpolarized anticancer agents for use in 1H MRI. Magnetic Resonance in Medicine, 2022, 88(1):11-27. https://doi.org/10.1002/mrm.29166

[7] Bazrafshan M, Gatsis N, Dall'Anese E. Placement and Sizing of Inverter-Based Renewable Systems in Multi-Phase Distribution Networks. IEEE Transactions on Power Systems, 2019, 34(2):918-930.

[8] Marini A, Mortazavi S S, Piegari L, et al. An efficient graph-based power flow algorithm for electrical DSs with a comprehensive modeling of DGs. Electric Power Systems Research, 2019, 170(MAY):229-243. https://doi.org/10.1016/j.epsr.2018.12.026

[9] Li H W, Zhu H, Pan L. A three-phase linear load flow solution based on loop-analysis theory for DS. Compel, 2019, 38(2):703-723.

[10] Abdelhafez A, Mokheimer E M A, Haque A, et al. Analysis of methane, propane, and syngas oxy‐flames in a fuel‐flex gas turbine combustor for carbon capture. International Journal of Energy Research, 2022, 46(7):8657-8675. https://doi.org/10.1002/er.7745

[11] Alves H D N. An Interval Arithmetic-Based Power Flow Algorithm for Radial Distribution Network with DG. Journal of Control, Automation and Electrical Systems, 2019, 30(5):802-811.

[12] Markana A, Trivedi G, Bhatt P. Multi-objective optimization based optimal sizing & placement of multiple distributed generators for distribution network performance improvement. RAIRO - Operations Research, 2021, 55(2):899-919. https://doi.org/10.1051/ro/2021045

[13] Chanhome A, Chaitusaney S. Development of three‐phase unbalanced power flow using local control of connected photovoltaic systems. IEEJ Transactions on Electrical and Electronic Engineering, 2020, 15(6):833-843. https://doi.org/10.1002/tee.23125

[14] Usman M, Cervi A, Coppo M, et al. Bus injection relaxation based OPF in multi-phase neutral equipped distribution networks embedding wye- and delta-connected loads and generators. International Journal of Electrical Power & Energy Systems, 2020, 114(Jan.):105394.1-105394.16.

[15] Stai E, Wang C, Leboudec J Y. On the Solution of the Optimal Power Flow for Three-Phase Radial Distribution Networks with Energy Storage. IEEE Transactions on Control of Network Systems, 2020, PP(99):1-1.

[16] Kumar M, Sharma H. Energy efficient flow path for improving electrolyte distribution in a vanadium redox flow battery. International Journal of Energy Research, 2022, 46(6):8424-8432. https://doi.org/10.1002/er.7603

[17] Tu J, Huang X, Zhang X, et al. Effects of the central graphite column dimension and pebble size on power density distribution in annular core pebble‐bed HTR. International Journal of Energy Research, 2022, 46(6):8076-8092. https://doi.org/10.1002/er.7711

[18] Murari K, Padhy N P. Graph-theoretic based approach for the load-flow solution of three-phase distribution network in the presence of DGs. IET Generation, Transmission & Distribution, 2020, 14(9):1627-1640. https://doi.org/10.1049/iet-gtd.2019.1176