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ARTICLE 2025 Vol 4 · No 10 EN eab8a888e37e

LOAD FORECASTING AND EQUIPMENT OPTIMIZATION IN RENEWABLE ENERGY INTEGRATION

Research Focus International Scientific Journal, 4(10), 26–32 · ISSN 2181-3833

Annotatsiya

This paper presents a two-layer integrated framework for load forecasting and equipment optimization under renewable energy integration. The first layer delivers day-ahead and near real-time forecasts using a hybrid LSTM–Transformer model trained on SCADA/AMI data enriched with weather and calendar features. The second layer performs multi-objective MILP optimization combined with Model Predictive Control (MPC) to coordinate capacitor banks, voltage regulators/OLTC, inverter PQ dispatch, demand response (DR) signals, and energy storage, while explicitly accounting for forecast uncertainty. Simulation results indicate reduced technical losses and voltage violations, lower renewable curtailment, transformer loading relief, and improved operational costs. By unifying the forecast–control loop within a smart-grid context, the proposed approach enhances network resiliency and overall energy efficiency.

Kalit so‘zlar

smart gridload forecastingLSTMTransformerMILPMPCdemand response (DR)reactive power controlinverter dispatchOLTCSCADA/AMIrenewable integrationloss reductionvoltage stability.

Iqtibos keltirish

Shadiyarovich, Turaxanov Sherzod (2025). LOAD FORECASTING AND EQUIPMENT OPTIMIZATION IN RENEWABLE ENERGY INTEGRATION. Research Focus International Scientific Journal, 4(10), 26–32. https://doi.org/10.66073/researchfocus.v4i10.1794

Identifikator
https://rf-library.uz/article/eab8a888e37e/load-forecasting-and-equipment-optimization-in-renewable-energy-integration
DOI
10.66073/researchfocus.v4i10.1794
Litsenziya
Copyright (c) 2025 Research Focus International Scientific Journal
Nashriyot
LLC Ilm-fan va innovatsiyalar akademiyasi
Repozitoriyga qo‘shildi
2026-08-07