Calculation of the cost of electricity in the conditions of high penetration of solar energy and the use of storage systems in Iran's power network

Document Type : Original Article

Authors

1 Faculty of Mechanical and Energy Engineering, Shahid Beheshti University, Tehran, Iran

2 Faculty of Mechanical and Energy engineering, Shahid Beheshti University, Tehran, Iran.

Abstract
Much of the focus in renewable energy capacity building centers on variable renewable energy sources such as solar and wind. In Iran, long-term plans for harnessing solar energy persist despite its inherent variability. The utilization of these renewables incurs both direct and indirect costs for the power network. Variable renewable energies necessitate compensation for their intermittency through flexible power plants and storage systems This would further elevate the cost of electricity that is sold to consumers. This study explores the financial implications of solar energy integration and the requisite storage systems as a result of solar energy penetration. Since investigating a variables effect requires to keep others constant, it has been assumed that the utilization factor of flexible production power plants remains constant. Four storage systems are scrutinized: pumped hydro storage, batteries, hydrogen production alongside fuel cells, and hydrogen-gas combination in a gas turbine. The results indicate that the levelized cost of electricity in the four scenarios are $0.3, $0.09, $1.42, and $0.89 per kilowatt-hour, respectively. These values suggest that pumped-storage power plants, followed by grid-scale batteries, can provide energy storage at the lowest cost.

Keywords

Subjects


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Volume 12, Issue 2 - Serial Number 24
September 2025
Pages 151-161

  • Receive Date 21 May 2024
  • Revise Date 30 January 2025
  • Accept Date 20 February 2025