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February 23, 2026The International Journal of Advanced Manufacturing Technology0 citationsOpen Access

Flow field design and process parameter experiments in electrochemical machining of involute internal spline

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YHYi HuangYXYan XuCFCong Fang

Key Points

  • This research aims to enhance the electrochemical machining process for involute internal splines in high-hardness materials.
  • Developed a hybrid machining approach combining rough electrochemical machining and precision slotting.
  • Evaluated electrolyte flow direction for improved distribution during spline machining.
  • Validated three flow field optimisation methods through simulation: guided flow head, cathode working teeth, and circular rectifier.
  • Achieved optimal machining with 8% NaNO3 concentration and 12V voltage.
  • Obtained maximum tooth profile deviation of 20.7 μm and helical deviation of 8.5 μm.
  • Maintained processing time per piece under 1 hour, demonstrating high precision and efficiency.

Abstract

Abstract Machining complex internal structures in high-hardness materials poses significant challenges, as conventional cutting methods often suffer from excessive tool wear and extended production cycles. This study introduces a hybrid approach that combines rough electrochemical machining (ECM) with precision slotting to efficiently shape involute internal splines in intricate high-hardness components. To enhance electrolyte distribution and stabilize the spline ECM process, the electrolyte flow direction was first evaluated to identify the most effective orientation. Based on this preliminary assessment, three flow field optimisation methods—guided flow head, cathode working teeth, and circular rectifier—were developed and validated through simulation. Experimental setups featured two distinct cathode designs and a dedicated ECM fixture and system. Key process parameters, including electrolyte concentration and composition, machining voltage, and cathode feed rate, were experimentally evaluated to determine optimal conditions for spline ECM. The results demonstrated that an electrolyte concentration of 8% NaNO 3 , a machining voltage of 12 V, and a cathode feed rate of 3.0 to 3.5 mm/min yielded optimal outcomes. Following precision slotting, the maximum tooth profile deviation was 20.7 μm and the maximum helical deviation was 8.5 μm, both meeting target accuracy requirements. Furthermore, the cumulative processing time per piece remained under 1 h, achieving high precision and efficiency in shaping semi-blind hole involute internal splines. This study provides valuable insights into flow field design and process parameter optimisation in spline ECM, highlighting the potential of this combined process for the scalable production of intricate internal cavity components from hard-to-machine materials.

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Cite This Study

Huang et al. (2026) studied this question.

synapsesocial.com/papers/699ba07072792ae9fd87010fhttps://doi.org/10.1007/s00170-025-17366-x
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1A combined process of electrochemical machining and slotting for semi-blind hole involute internal splines enhanced by a new cathode design2024
  2. 2Flow field design and simulation in electrochemical machining for closed integral components2024 · 3 citations
  3. 3A Comparative Analysis of the Two Electrolyte Flow Configurations in Electrode Tool to Improve Efficiency in Electrochemical Machining2026
  4. 4Method for controlling the area of the electrolyte outlets in the flow field simulation and experimental verification of electrochemical machining2024
  5. 5A Study on Electrochemical Machining Performance using Novel Electrolyte Compositions2025