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تركز شركة Honscn على خدمات التصنيع باستخدام الحاسب الآلي الاحترافية منذ عام 2003.

CNC Machined 7075-T6 Aluminum Rotor for High-Speed Turbine Generator Applications

Product Overview

Product Name

High-Speed Turbine Generator Rotor

CNC Machined 7075-T6 Aluminum Rotor for High-Speed Turbine Generator Applications 1

Application

Used in a customized turbine generator system developed by the customer for oil and gas industry applications.

Material

7075-T6 Aerospace Grade Aluminum Alloy

7075-T6 was selected because of its excellent strength-to-weight ratio, high fatigue resistance, and suitability for high-speed rotating components where weight reduction is critical.

Key Specifications

  • Final Outer Diameter (OD): 90.00 mm ±0.01 mm
  • Overall Length: 150.00 mm ±0.02 mm
  • Central Bore Diameter: 72.00 mm ±0.01 mm
  • Wall Thickness: 9 mm radial thickness
  • OD Surface Finish: Mirror polishing, Ra ≤0.2 μm
  • Dynamic Balance Requirement: G2.5 or better at 100,000 RPM
  • Edge Treatment: 0.1–0.2 mm chamfering on all edges

Thread Features

The rotor includes precision internal threads on the central bore:

  • Thread type: UNJF / MJ fine thread specification
  • Pitch: 1.5 mm
  • Thread depth: 1.5 mm per side
  • Thread length: Minimum 35 mm
  • One side: Left-hand thread
  • One side: Right-hand thread

The opposite thread directions were designed to provide a self-tightening effect during high-speed rotation.

Manufacturing Challenges

1. Extremely Tight Dimensional Tolerances for High-Speed Rotation

The biggest challenge was maintaining dimensional stability during machining.

For a rotor operating at 100,000 RPM, even a small amount of runout or imbalance can create vibration issues.

The requirements included:

  • OD, bore, thread, and blade features must maintain 0.01 mm TIR concentricity
  • Bore and outer diameter must remain perfectly aligned
  • Thread machining must maintain precise positioning without burrs

Traditional machining methods could easily introduce deformation or misalignment, especially when removing large amounts of material from 7075-T6 aluminum.

2. Complex Rotor Structure and Difficult Blade Formation

The rotor design included thin blade-like features that needed to be integrated with the main body.

The challenge was that these blades were:

  • Thin and easy to deform
  • Difficult to machine as a one-piece structure
  • Sensitive to cutting force and vibration

Attempting complete one-piece CNC machining would create risks such as:

  • Excessive tool vibration
  • Blade deformation
  • Low machining efficiency
  • Difficulty controlling final geometry

A different manufacturing approach was required.

3. Mirror Surface Finish Requirement

The external surface required a mirror polishing finish with Ra 0.2 μm or better.

For high-speed rotating parts, surface quality directly affects:

  • Air resistance
  • Rotational efficiency
  • Heat generation
  • Long-term stability

However, 7075-T6 aluminum is relatively soft compared with steel, meaning polishing can easily create:

  • Uneven reflections
  • Rounded edges
  • Surface scratches
  • Local deformation

Maintaining both precision geometry and a high-quality polished surface required careful process control.

Our CNC Machining Solution

1. Optimized Step-by-Step Manufacturing Process

Instead of forcing the entire rotor to be machined from a single piece, our engineering team developed a more practical process:

Step 1: CNC Machining of the Main Rotor Body

The main rotor structure was first machined from 7075-T6 aluminum billet.

During this stage, we focused on:

  • Outer diameter accuracy
  • Central bore machining
  • Thread positioning
  • Overall concentricity control

Multiple inspection points were added during machining to prevent cumulative errors.

Step 2: Independent Blade Manufacturing

Due to the complexity and thin structure of the blades, the blade sections were manufactured separately.

This approach helped us achieve:

  • Better dimensional control
  • Reduced machining stress
  • Improved surface quality
  • More stable production consistency

After machining, the blade components were carefully positioned and assembled with the rotor body.

Step 3: Precision Assembly and Finishing

After the blade integration process, the complete rotor went through additional finishing procedures:

  • Alignment inspection
  • Surface refinement
  • Precision polishing
  • Final dimensional verification

Special attention was given to maintaining:

  • Blade position accuracy
  • Rotor symmetry
  • Surface smoothness

2. Precision Thread Machining

The internal fine threads required special attention because they directly affect assembly reliability under high rotational loads.

Our process included:

  • Dedicated thread machining tools
  • Controlled cutting parameters
  • Multiple inspections after machining

The final threads were verified for:

  • Clean thread profile
  • No burrs
  • Correct pitch
  • Proper concentricity with the rotor axis

3. Dynamic Balancing and Quality Inspection

Before delivery, the finished rotor underwent final inspection procedures:

  • Dimensional inspection of critical features
  • Concentricity verification
  • Thread inspection
  • Surface quality inspection
  • Dynamic balancing test

The rotor was balanced to meet the required G2.5 or better standard at 100,000 RPM.

Project Results

Through process optimization and close engineering cooperation, we successfully delivered a rotor that met the customer's demanding performance requirements.

Key Achievements:

High precision machining
Critical dimensions were controlled within ±0.01 mm requirements.

Stable high-speed rotation performance
The rotor passed dynamic balance requirements for 100,000 RPM operation.

Complex structure successfully manufactured
The separate blade manufacturing approach solved the biggest machining challenge and ensured structural accuracy.

Premium surface quality achieved
The mirror-polished aluminum surface met the customer's aerodynamic performance requirements.

Why the Customer Chose Our CNC Machining Capability

This project was not simply about producing an aluminum part. It required a combination of:

  • 7075-T6 precision machining experience
  • Complex structural manufacturing capability
  • High-speed rotating component knowledge
  • Advanced surface finishing technology
  • Flexible engineering problem-solving

By redesigning the manufacturing process around the actual machining challenges, we helped the customer transform a difficult rotor design into a reliable production-ready component.

For projects involving high-strength aluminum parts, turbine components, precision rotors, or other high-speed rotating assemblies, our engineering team can provide customized CNC manufacturing solutions from prototype development to production.

السابق
100 ألف وحدة من مسامير تثبيت الهياكل الطبية الدقيقة لشركة ألمانية رائدة في مجال التكنولوجيا الطبية

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