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Journal ArticleDOI

Reconfiguration of electric distribution networks for resistive line losses reduction

D. Shirmohammadi, +1 more
- 01 Apr 1989 - 
- Vol. 4, Iss: 2, pp 1492-1498
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TLDR
In this paper, the authors describe a heuristic method for the reconfiguration of distribution networks in order to reduce their resistive line losses under normal operating conditions, characterized by convergence to the optimum or a near-optimum solution and the independence of the final solution from the initial status of the network switches.
Abstract
The authors describe a heuristic method for the reconfiguration of distribution networks in order to reduce their resistive line losses under normal operating conditions. The proposed approach is characterized by convergence to the optimum or a near-optimum solution and the independence of the final solution from the initial status of the network switches. The methodology has been implemented in a production-grade computer program, DISTOP (Distribution Network Optimization). The compensation-based power flow technique developed at Pacific Gas and Electric Company for the efficient solution of weakly meshed distribution networks is an essential part of this loss reduction methodology. Important implementation aspects of the methodology and the results of its application to several realistic distribution networks are presented. Numerous test results have indicated that the proposed technique is computationally robust and efficient and, hence, suitable for both planning and operations studies. >

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Citations
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A technique to boost Reliability and Efficiency of a Radial Distribution Network by considering the effect of Protective Devices and System Restructuring

TL;DR: In this article , the authors proposed a distribution system restructuring technique with the aid of differential evolution infused Krill Herd Sine Cosine Algorithm to improve the reliability and efficiency of a power distribution network.
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Alternative feeder concepts in urban distribution networks

TL;DR: The proposed mathematical model could serve as a useful tool in planning new or expanding existing distribution networks and takes into account the uncertainty of various basic data by modeling them as grey inputs, which can have any value within the intervals of values experienced in practice.
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A Comparative analysis of Various Power loss minimization techniques for Distribution Network

TL;DR: In this paper, the authors provide a comprehensive review or comparative analysis of various methodologies for loss reduction in an electrical power system and present reconfiguration techniques simultaneous with loss reduction and reliability too.
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Optimal electric distribution network configuration using adaptive sunflower optimization

TL;DR: In this paper, the authors presented a method of network reconfiguration using adaptive sunflower optimization (ASFO) to minimize power loss of the distribution system, which is inspired from moving of sunflower to the sun.
References
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Journal ArticleDOI

Distribution feeder reconfiguration for loss reduction

TL;DR: In this paper, a scheme that utilizes feeder reconfiguration as a planning and/or real-time control tool to restructure the primary feeder for loss reduction is presented.
Journal ArticleDOI

A compensation-based power flow method for weakly meshed distribution and transmission networks

TL;DR: In this article, a power flow method is described for solving weakly meshed distribution and transmission networks, using a multiport compensation technique and basic formations of Kirchoff's laws.
Journal ArticleDOI

Normal State Optimal Load Allocation in Distribution Systems

TL;DR: In this article, the authors presented an algorithm and presented computer results for minimizing the losses in a loop distribution system based on the remote operation of sectionalizing switches on feeders interconnecting different substations.
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