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3D Wound Core Curve Cutting Machine for Transformer Cores - High Precision from China Suppliers and Factory

Introducing our state-of-the-art 3D wound core curve cutting machine, designed specifically for transformer core manufacturing in China. As a leading supplier and factory, we provide advanced CNC technology that guarantees precision cutting with high accuracy and efficiency. This machine is perfect for producing stereo laminated iron cores, effortlessly managing complex curves to enhance production quality while minimizing waste. Its user-friendly design features automated functionalities that simplify operation, ensuring compliance with industrial standards. Upgrade your manufacturing processes with our innovative cutting solutions today!

    Product Specification

    Code SHKL-400
    Cutting type straight/curve
    Max feeding width 400MM
    Cutting speed 0-60M/min
    Cutting method Cut one into two strip
    Material utilization 99%
    Cutting accuracy ±0.3MM
    Cutting burr ≤0.03MM
    Speed adjusting way Stepless speed adjust

    Advantages

    • 🎯
      1. Superior Precision Leverages advanced CNC technology and high-precision servo systems to achieve cutting accuracy of up to ±0.02mm, ensuring consistent curve profiles that perfectly match stereo laminated iron core lamination requirements.
    • 2. High Efficiency Integrates automatic material feeding, curve programming and waste collection. It reduces manual intervention, cuts labor intensity significantly, and boosts production efficiency by over 30% compared to traditional equipment.
    • 🔧
      3. Strong Adaptability Equipped with intelligent sensors for real-time silicon steel sheet thickness monitoring and automatic parameter adjustment, enabling smooth handling of different grades of silicon steel and complex curve cutting tasks.
    • 🏗️
      4. Stable & Durable Operation Features a rigid frame structure that minimizes vibration during high-speed cutting, maintaining long-term cutting stability. This also extends the equipment's service life and reduces maintenance frequency.
    • 🛡️
      5. User-Friendly & Safe Comes with an intuitive HMI for easy operation and real-time process monitoring. Built-in safety interlocks and emergency stop functions effectively prevent operational hazards, ensuring workplace safety.
    • 🔗
      6. Seamless Workflow Integration Compatible with CAD/CAM systems, allowing direct import of design files. It eliminates manual programming errors and streamlines the entire process from core design to finished product cutting.
    • ♻️
      7. Waste Reduction Precise cutting control minimizes material waste, lowering raw material costs for transformer core manufacturing while improving the overall quality of finished cores.

    Details Display

    3D Wound Core Curve 1 3D Wound Core Curve 2
    3D Wound Core Curve 3 3D Wound Core Curve 4

    Application

    • 1 Power Transformer Manufacturing

      It precisely cuts silicon steel sheets into the curved profiles required for 3D wound cores—key components of high-efficiency power transformers (e.g., distribution transformers, power plant main transformers). This ensures tight core lamination, reducing magnetic loss and improving transformer energy efficiency.

    • 2 Special Transformer Production

      Suitable for manufacturing cores of special-purpose transformers, such as traction transformers for railways, rectifier transformers for industrial electrolysis, and dry-type transformers for buildings. It adapts to diverse curve designs and silicon steel grades to meet the transformers' unique performance demands.

    • 3 High-Frequency Transformer & Inductor Making

      For high-frequency transformers (used in new energy vehicles, photovoltaic inverters) and inductors, it cuts thin-gauge silicon steel or amorphous alloy sheets into precise curved shapes. This supports the miniaturization and high-frequency operation of these electronic components.

    • 4 Renewable Energy Equipment

      It supplies accurately cut 3D wound core parts for transformers in renewable energy systems, including wind power converters and solar grid-connected inverters. This helps optimize the energy transmission efficiency of wind and solar power projects.

    Frequently Asked Questions

    Q What is the maximum feeding width of the SHKL-400 curve cutting machine?
    A The SHKL-400 supports a maximum feeding width of 400mm, making it suitable for a wide range of silicon steel sheet sizes commonly used in transformer core manufacturing.
    Q What cutting accuracy can the SHKL-400 achieve?
    A The machine achieves a cutting accuracy of ±0.3mm with a cutting burr of ≤0.03mm. Its advanced CNC and servo systems can reach up to ±0.02mm precision, ensuring consistently high-quality curve profiles for stereo laminated iron cores.
    Q Is the SHKL-400 compatible with CAD/CAM design software?
    A Yes. The SHKL-400 is fully compatible with CAD/CAM systems, allowing operators to directly import design files. This eliminates manual programming errors and streamlines the workflow from core design to finished product cutting.
    Q What types of materials can the SHKL-400 handle?
    A The machine is designed for silicon steel sheets of various grades and thicknesses. Its intelligent sensors automatically monitor material thickness and adjust cutting parameters in real time, enabling it to handle amorphous alloy sheets and thin-gauge materials used in high-frequency transformers as well.
    Q How does the SHKL-400 improve production efficiency compared to traditional equipment?
    A By integrating automatic material feeding, curve programming, and waste collection into a single workflow, the SHKL-400 significantly reduces manual intervention and labor intensity. Overall production efficiency is boosted by over 30% compared to conventional cutting equipment.
    Q What safety features are built into the SHKL-400?
    A The SHKL-400 is equipped with an intuitive HMI for real-time process monitoring, built-in safety interlocks, and emergency stop functions. These features effectively prevent operational hazards and ensure a safe working environment for operators.