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Modelling and Simulation of Multistep Constant Current Fast Charging for Lithium-Ion Batteries Using a PID Controlled Synchronous Buck Converter Monika Fahmi; Deni Tri Laksono; Dedi Tri Laksono
Journal of Renewable Energy and Smart Device Vol. 3 No. 2 April 2026
Publisher : PT. Global Research Collaboration

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.66314/joresd.v3i2.708

Abstract

High-current fast charging of lithium-ion batteries in electric motorcycles is challenged by current instability, voltage overshoot, and accelerated degradation caused by nonlinear electrochemical and thermal dynamics. Conventional single-stage buck converters exhibit limited capability in maintaining precise current regulation across wide state-of-charge (SoC) variations, thereby constraining both efficiency and operational safety. This study proposes a novel adaptive multistep constant-current (MS-CC) fast charging framework specifically tailored for electric motorcycle applications, implemented using a PID-controlled synchronous buck converter. Unlike existing MS-CC approaches, the proposed method introduces a unified control architecture that dynamically schedules five discrete current levels based on real-time voltage thresholds, enabling seamless transition between charging stages without inducing transient spikes. The system is modeled and validated in MATLAB/Simulink, with PID parameters tuned via the Ziegler–Nichols closed-loop method. Simulation results show that the charging current accurately tracks its reference within 0.25% across all stages, with negligible overshoot and stable transient performance. From a practical standpoint, the proposed strategy aligns with the operational constraints of electric motorcycles, such as compact onboard chargers, limited thermal management capacity, and frequent fast-charging cycles. Furthermore, the method reduces switching and conduction losses, mitigates thermal stress, and enhances overall charging efficiency while preserving electrochemical stability. These findings demonstrate that the proposed MS-CC control scheme not only advances the state-of-the-art in charging control strategies but also provides a viable, implementation-ready solution for next-generation electric motorcycle charging systems.
Techno-Economic Performance of a 70.2 kWp On-Grid Rooftop Photovoltaic System Under Indonesia's Zero-Export Regulation: Curtailment Risk and Load-Growth Headroom at PNP Pelalawan Campus Dedi Tri Laksono; Deni Tri Laksono; Monika Faswia Fahmi; Abd. Malik Tandifa
Journal of Renewable Energy and Smart Device Vol. 4 No. 1 August 2026
Publisher : PT. Global Research Collaboration

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.66314/joresd.v4i1.1320

Abstract

Indonesia's Ministerial Regulation (Permen ESDM) No. 2/2024 abolished the export-import (net-metering) scheme for rooftop photovoltaic (PV) systems, effectively imposing a zero-export policy in which surplus generation fed into the grid is no longer compensated. This study evaluates the techno-economic performance of a 70.2 kWp fixed-tilt, bifacial on-grid rooftop PV system designed for the Pelalawan satellite campus (PSDKU) of Politeknik Negeri Padang (PNP) under this new regulatory regime. The system — 120 Trina Solar TSM-NEG19RC-585 bifacial modules and two Huawei SUN2000-30KTL-M3 string inverters — was modeled in PVsyst V7.4.6 using Meteonorm 8.1 weather data and a monthly load profile calibrated to the campus's metered base consumption of 32,105 kWh/year. Results show a specific yield of 1,273 kWh/kWp/year and a Performance Ratio of 76.27%, with temperature loss (−5.82%) dominating the loss cascade while DC and AC ohmic wiring losses remain below 1%, confirming a technically sound electrical design. However, load-matching analysis shows that only 14.9% of array output (14,020 kWh/year) is self-consumed, while 75,342 kWh/year (80.2%) is exported to the grid. Under the legacy net-metering assumption this configuration appears profitable (LCOE 661.72 IDR/kWh, NPV +IDR 282.9 million, 8.5-year payback), but recalculated strictly on self-consumption savings under Permen ESDM No. 2/2024, it yields a 25-year net loss of approximately IDR 952.5 million — proving that the design, while technically excellent, is not economically efficient at the campus's present base load. We argue that this apparent oversizing instead constitutes latent headroom for PNP Pelalawan's anticipated load growth and outline the interim mitigation and monitoring measures needed to justify retaining the larger capacity.