Design, Simulation, and Economic Evaluation of a 6.5 kVA Solar Photovoltaic System for Demand-Side Energy Control in a Nigerian Residential Facility
Authors
Department of Electrical Engineering, Mewar University, Chittorgarh, Rajasthan (India)
Department of Electrical Engineering, Mewar University, Chittorgarh, Rajasthan (India)
Department of Electrical and Information Engineering (EIE), Covenant University, Ota, Ogun State (Nigeria)
Article Information
DOI: 10.51244/IJRSI.2026.1307000095
Subject Category: Engineering
Volume/Issue: 13/7 | Page No: 1281-1303
Publication Timeline
Submitted: 2026-07-18
Accepted: 2026-07-24
Published: 2026-07-30
Abstract
This paper presents the design, hourly simulation, and techno-economic evaluation of a 6.5 kVA hybrid solar photovoltaic (PV) system designed for demand-side energy control (DSM) at a residential facility in Redemption City, Mowe, Ogun State, Nigeria. Rather than sizing PV components from first principles, the study verifies the technical adequacy of a fixed, commercially available equipment set — a 6.5 kVA hybrid inverter, a 51.2 V/200 Ah (10.24 kWh) lithium-ion phosphate (LFP) battery pack, and six 650W N-type bifacial monocrystalline modules (3.9 kWp total) — against an audited residential load. An energy audit established a solar-supported connected load of 2,234 W and a daily energy demand of 20.144 kWh, while two water heaters and two microwave ovens (5,400 W combined) were deliberately segregated onto the utility grid as a demand-side control measure. An hourly energy-balance simulation model was developed in place of licensed commercial PV design software to evaluate system performance under sunny-day, cloudy-day, and consecutive low-irradiance conditions, incorporating a DSM scheme that scheduled the flexible air-conditioning load to coincide with peak solar generation hours. With DSM active, the system met 100% of the daily demand on a representative day with zero grid import, compared with 4.76 kWh of grid import on the same day without DSM — a 100% reduction in short-term grid dependency attributable to load scheduling alone. On an annual basis, the array is estimated to yield 5,816.7 kWh (specific yield 1,491.5 kWh/kWp/year; performance ratio 0.78 inclusive of a 10% bifacial gain), covering 79.1% of the 7,352.6 kWh annual solar-supported load, with the residual 1,615.2 kWh/year (22.0%) supplied from the grid even under active DSM. Economic evaluation of the ₦4,216,300 installed system indicates a simple payback period of 4.9 years, a discounted payback of approximately 8 years at a 12% discount rate, a positive net present value of ₦2,211,978 over a 20-year life, an internal rate of return of about 19.9%, and a levelized cost of energy of approximately ₦49.6/kWh — roughly one-third of the ₦150/kWh blended grid/generator avoided-cost benchmark. The system is estimated to avoid approximately 4.02 tonnes of CO₂ emissions annually. The results demonstrate that deliberate load segregation, prioritization, and time-shifting can substantially extend the effective utility of a modestly sized, budget-constrained hybrid solar PV installation without full energy self-sufficiency, offering a replicable, economically attractive pathway for residential solar adoption in high-insolation but grid-constrained regions such as southwestern Nigeria.
Keywords
solar photovoltaic system; demand-side management; bifacial solar module
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References
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