Technical, Financial, and Environmental Feasibility Analysis of a Hybrid Diesel-Solar Power-BESS System in the Isolated Merasa Grid

Authors

  • Afdhal Kurnia Surakhman Institut Teknologi PLN
  • Muhammad Ahsin Sidqi Institut Teknologi PLN

DOI:

https://doi.org/10.59141/jiss.v7i8.2528

Keywords:

dedieselization, homer pro, pltd, plts, isolated system

Abstract

The reliance on diesel power plants (PLTD) in isolated electrical systems results in high fuel consumption, increased operational costs, and substantial greenhouse gas emissions. This study aims to evaluate the technical, financial, and environmental feasibility of integrating solar photovoltaic (PV) systems and battery energy storage into the existing PLTD-based Merasa grid in Berau Regency, East Kalimantan. Four alternative hybrid configurations—varying PV capacities from 300 to 700 kWp and battery storage capacities from 1,200 to 1,500 kWh—were modeled and simulated using HOMER Pro based on the 2025 load profile, solar radiation data, component specifications, and cost parameters. The performance of each scenario was assessed in terms of fuel consumption, renewable fraction, capacity shortage, net present cost (NPC), levelized cost of energy (LCOE), net present value (NPV), internal rate of return (IRR), payback period, and greenhouse gas (GHG) emission reductions. The results indicate that the optimal configuration consists of a 600 kWp solar PV system and a 1,500 kWh battery storage system (utilizing Gen. 1 and Gen. 5 generators), achieving annual fuel consumption of 4,847 L/year, a renewable fraction of 96.7%, zero capacity shortage, an NPC of IDR 26.64 billion, an LCOE of IDR 2,852.97/kWh, an NPV of IDR 21.34 billion, an IRR of 15.3%, a payback period of 6.17 years, and a 96.51% reduction in GHG emissions compared with the existing PLTD-only system. This configuration is recommended as the most feasible alternative based on its combined technical, financial, and environmental performance; however, final implementation should consider land availability for solar PV installation.

References

Arif, M., Prabowo, E., & Yasser, R. (2025). Feasibility study of off-grid solar power for auxiliary power substitution in the 2×3 MW Malinau PLTU WTP system.

Bhandari, R. (2018). Solar power systems and renewable energy technologies for sustainable development. Renewable and Sustainable Energy Reviews, 82, 2025–2037.

Hidayat, F., Winardi, B., & Nugroho, A. (2019). Economic analysis of solar power plant planning (PLTS) at the Department of Electrical Engineering, Diponegoro University. Transient, 7(4), 875.

Karnanto, B., Winasis, W., & Ramadhani, Y. (2023). Design and analysis of techno-economics of solar power generation diesel generator-photovoltaic using HOMER on Sambu Island, Riau Islands. Indonesian Journal of Education and Technology (JPTI), 3(5), 201–214. https://doi.org/10.52436/jpti.289

Kusuma, A. B. A., & Dalimi, R. (2025). Analysis of the technology and economics of dedieselization of PLTD Merawang into a renewable energy-based plant on Bangka Island, Bangka Belitung. COMSERVA: Journal of Research and Community Service, 5(1), 302–323.

Lekbir, A., Hassani, S., Nor Liyana, P., Mekhilef, S., Tey, K. S., Samatar, A. M., & Alshammari, O. (2025). Comparative assessment of photovoltaic technologies and their performance characteristics. Scientific Reports, 15, 15517. https://doi.org/10.1038/s41598-025-99939-0

Ma, T., Yang, H., & Lu, L. (2014). Development of hybrid energy systems based on renewable energy technologies for remote areas. Renewable and Sustainable Energy Reviews, 39, 113–123.

Mahfud, A. U., Sutarto, S., Saefudin, S., Nugroho, H. A., Pujianto, M. E., Subri, M., Muntasiroh, L., & Afif, I. Y. (2025). The implementation of solar power plants (PLTS) uses an off-grid system to increase community energy independence. Journal of Engineering Community Service, 7(2).

Maleki, A., & Askarzadeh, A. (2014). Optimal sizing of a PV/wind/diesel system using HOMER for an off-grid application. Sustainable Energy Technologies and Assessments, 5, 1–10.

Maulana, R. (2024). Pre-feasibility study of PV-battery-PLTD hybrid system in rural areas of the Maluku region. ELPOSYS: Journal of Electrical Systems, 11(2).

(Persero), PT. P. L. N. (2019). Circular of the Board of Directors of PT PLN (Persero) Number 0001.E/DIR/2019 dated May 22, 2019. PT PLN (Persero).

Rahmawati, L. A., & Dalimi, R. (2023). Analyze the configuration and capacity design of on-grid systems with implementation on PV during peak load times using HOMER. Energy and Electricity: Scientific Journal, 15(2). https://doi.org/10.33322/energy.v15i2.2260

Rehman, S. (2021). Hybrid power systems -- sizes, efficiencies, and economics. Energy Exploration & Exploitation, 39, 3–43. https://doi.org/10.1177/0144598720965022

Rianto, H., & Adi, T. W. (2024). Economic analysis and optimization of diesel, solar and hydrogen hybrid power generation systems on Sebesi Island, Lampung Province. Action Research Literate, 8(11).

Samodrawati, D., & Sukasri, D. (2024). Optimizing the capacity of Nusa Penida hybrid solar PV using the HOMER application. Journal of Technology, 12(1), 15–26. https://doi.org/10.31479/jtek.v12i1.350

Saputra, I. H., & Prabowo, E. (2024). The effect of the implementation of Machine Learning Base Operation Mode Decision Making (MOMA) on the reduction of SFC PLTD Tahuna and the increase in energy production of Sangihe Hybrid Solar Power Plant 1.3 MWp.

Sari, D. A. K., Wijaya, F. D., & Ali, H. R. (2022). Optimization of hybrid power generation systems on Enggano Island. National Journal of Electrical Engineering and Information Technology, 11(2).

Sumbyarti, P. A., Sidqi, M. A., & Muslim, J. (2025). Technical and economic study of hybrid power plants on Batu Atas Island, Southeast Sulawesi Province for energy transition.

The Electricity Supply Business Plan (RUPTL) PT PLN (Persero) 2021-2030, Rencana Usaha Penyediaan Tenaga Listrik 2021-2030 (2021).

Vatankhah Ghadim, H., Haas, J., Breyer, C., Gils, H. C., Read, E. G., Xiao, M., & Peer, R. (2025). Are we too pessimistic? Cost projections for solar photovoltaics, wind power, and batteries are over-estimating actual costs globally. Applied Energy, 390. https://doi.org/10.1016/j.apenergy.2025.125856

Downloads

Published

2026-08-30

How to Cite

Surakhman, A. K., & Sidqi, M. A. (2026). Technical, Financial, and Environmental Feasibility Analysis of a Hybrid Diesel-Solar Power-BESS System in the Isolated Merasa Grid. Jurnal Indonesia Sosial Sains, 7(8), 3781–3787. https://doi.org/10.59141/jiss.v7i8.2528