Dataset for: Physics-informed multi-task deep learning and explainable AI framework for simultaneous prediction of MRR and surface roughness in ECM–EDM of Al–VC composites
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This dataset contains experimental results from electrochemical machining (ECM) and electrical discharge machining (EDM) of aluminum–vanadium carbide (Al–VC) composites. The data were used to develop a physics-informed multi-task deep learning framework for simultaneous prediction of material removal rate (MRR) and surface roughness (Ra). The dataset integrates ECM (with and without baffled tools) and EDM experiments into a unified modeling structure. Physical constraints derived from Faraday’s law and discharge energy relations were incorporated during model training. The dataset supports the manuscript submitted to Materials and Manufacturing Processes (Taylor & Francis).
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Zenodo创建时间:
2026-02-24



