ABB VE 36 A cogeneration turbine during overhaul
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ABB VE 36 A turbine maintenance & blade replacement

How do you solve steam turbine efficiency loss? Read how Energetic combined turbine inspection, babbitt bearing refurbishment, and reverse engineering.

Major Steam Turbine Overhaul After 10 Years of Operation

After more than a decade of continuous operation, an ABB VE 36 A (8640 kW) cogeneration steam turbine required a full steam turbine overhaul service. Energetic Machinery was selected to perform a comprehensive steam turbine maintenance and repair project aimed at restoring efficiency and extending the lifecycle of this critical industrial rotating equipment. Prior to the shutdown, a no-stop turbine inspection was carried out to assess operational performance and identify key risks. The analysis revealed a noticeable efficiency loss, prompting a full overhaul strategy focused on performance optimization and reliability improvement.

ABB VE 36 A rotor lifted vertically for inspection

Complete Turbine Inspection & Condition Assessment

Identifying Efficiency Loss and Component Wear

A full steam path inspection was conducted on-site, combined with inspection of auxiliary systems such as the gearbox and oil system—part of a comprehensive turbomachinery service approach. During the rotor inspection, engineers identified severe erosion damage on the last stage turbine blades. This type of wear is common in long-term operation and can significantly impact turbine efficiency and performance. Key findings:

  • Severe erosion on last-stage turbine blades
  • Damaged seal strip grooves due to wear
  • General efficiency loss across the turbine These findings confirmed the need for a complete steam turbine overhaul rather than partial repair.

Erosion damage on last-stage blades vs. refurbished blade set

Reverse Engineering & Turbine Blade Replacement

Manufacturing New Blades with Improved Performance

Due to the extent of blade damage, Energetic Machinery implemented reverse engineering spare parts manufacturing to reproduce the last stage blades. The process included:

  • Detailed measurement and design of existing blades
  • Manufacturing of new turbine blades using advanced techniques
  • Heat treatment to improve erosion resistance The newly produced blades were installed with optimized features such as damping wires and locking pins, ensuring improved durability and performance. This non-OEM solution allowed faster delivery and enhanced performance compared to original components.

Newly manufactured last-stage turbine blade

Rotor Repair & Seal Strip Restoration

Cost-Effective Repair Without Thermal Damage

The rotor underwent a complete rotor repair and reconditioning process. One of the critical challenges was the restoration of damaged seal strip grooves. Instead of welding—which can introduce thermal stress and material deformation—the team applied a precision machining approach:

  • Individual machining of each seal groove
  • Custom manufacturing of new seal strips
  • Avoidance of heat-induced structural changes This innovative method provided a cost-effective maintenance solution while preserving the integrity of the rotor material.

Precision machining of seal strip grooves on the stationary blade carrier

Bearing Repair & High-Speed Rotor Balancing

Ensuring Stability in High-Speed Operation

As part of the overhaul, hydrodynamic bearing repair and babbitt bearing refurbishment were performed to restore load capacity and lubrication performance. Additional activities included:

  • Replacement of seal strips in stationary blade carriers
  • High-speed rotor balancing according to ISO standards
  • Overspeed testing to validate rotor integrity These steps are essential for minimizing vibration, improving efficiency, and ensuring long-term reliability of high-speed rotating equipment.

Refurbished tilting-pad hydrodynamic journal bearing

Start-Up Support & Operational Results

Fast Turnaround and Improved Performance

The complete overhaul was executed within a downtime of less than eight weeks. After reassembly, Energetic Machinery supported the start-up phase, particularly addressing challenges related to the turbine's outdated control system. Results achieved:

  • Restored turbine efficiency and output
  • Improved reliability and reduced wear
  • Extended lifecycle of turbine components
  • Reduced risk of unplanned downtime This project demonstrates the effectiveness of combining steam turbine overhaul, reverse engineering, and precision repair techniques.

FAQ – Steam Turbine Maintenance & Overhaul

How often should a steam turbine be serviced?

Service intervals depend on operating conditions, but regular steam turbine maintenance and inspections are essential to prevent efficiency loss and failures.

What are the warning signs that a turbine needs an overhaul?

Common indicators include efficiency loss, blade erosion, increased vibration, and seal damage.

What is included in a steam turbine overhaul service?

A full steam turbine overhaul includes inspection, disassembly, root cause analysis, repair or replacement of components, reassembly, and testing.

Can turbine components be replaced without OEM support?

Yes, reverse engineering spare parts allow obsolete or damaged components to be reproduced as high-quality OEM alternatives.

How can turbine efficiency be improved?

Efficiency can be improved through blade replacement, seal optimization, rotor balancing, and regular maintenance.

Conclusion: Extending Turbine Life with Expert Overhaul

This case study highlights how a structured steam turbine overhaul service can restore performance and reliability in aging cogeneration turbines. By combining turbine inspection, reverse engineering, and precision repair, Energetic Machinery delivers cost-effective solutions that extend asset life and optimize industrial performance.

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