Cost Aware Expansion Planning with Renewable DGs using Particle Swarm Optimization and Cuckoo Search Algorithm

Abstract

This Paper is an attempt to develop the expansion-planning algorithm using meta heuristics algorithms. Expansion Planning is always needed as the power demand is increasing every now and then. Thus for a better expansion planning the meta heuristic methods are needed. The cost efficient Expansion planning is desired in the proposed work. Recently distributed generation is widely researched to implement in future energy needs as it is pollution free and capability of installing it in rural places. In this paper, optimal distributed generation expansion planning with Particle Swarm Optimization (PSO) and Cuckoo Search Algorithm (CSA) for identifying the location, size and type of distributed generator for future demand is predicted with lowest cost as the constraints. Here the objective function is to minimize the total cost including installation and operating cost of the renewable DGs. MATLAB based `simulation using M-file program is used for the implementation and Indian distribution system is used for testing the results.

Authors and Affiliations

Hanumesh . , Dr. Sudarshana Reddy H. R

Keywords

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  • EP ID EP390087
  • DOI 10.9790/9622- 0702030713.
  • Views 154
  • Downloads 0

How To Cite

Hanumesh . , Dr. Sudarshana Reddy H. R (2017). Cost Aware Expansion Planning with Renewable DGs using Particle Swarm Optimization and Cuckoo Search Algorithm. International Journal of engineering Research and Applications, 7(2), 7-13. https://europub.co.uk/articles/-A-390087