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Optimal tool design in micro-milling of difficult-to-machine materials
Lorcan O'Toole1, Feng-Zhou Fang1,2
1Centre of Micro/Nano Manufacturing Technology (MNMT-Dublin), University College Dublin, Dublin 4, Ireland.
This study introduces an optimized micro-end mill tool design for difficult-to-machine materials, enhancing manufacturing efficiency and product quality by reducing tool wear and breakage.
Area of Science:
- Manufacturing Engineering
- Materials Science
- Mechanical Engineering
Background:
- Commercial micro-end mill tools suffer from tool wear and breakage, especially with difficult-to-machine (DTM) materials.
- Scaling down macro-tool designs to micro-scale results in poor rigidity, strength, and weak cutting edges, leading to manufacturing inefficiencies and poor surface quality.
- DTM materials like superalloys and ceramics are crucial for orthopaedic implants and micro-feature molds.
Purpose of the Study:
- To establish an optimal design process for micro-end mill tools tailored for DTM materials.
- To enhance tool stiffness and mechanical strength to minimize wear, chipping, and breakage.
- To improve the efficiency and surface quality in micro-milling DTM materials.
Main Methods:
- A design process was developed focusing on stiffness and strength for DTM materials.
- Static stress and deflection finite element analysis (FEA) was performed to evaluate tool design.
- FEA results were optimized to establish a verified optimum tool design.
- An experimental study compared the optimized design against commercial tools.
Main Results:
- The optimized micro-end mill design demonstrated improved stiffness and mechanical strength.
- FEA identified and mitigated design flaws related to stress distribution and deformation at the cutting edge.
- Experimental results showed reduced cutting forces and tool wear, along with enhanced surface quality compared to commercial tools.
Conclusions:
- The developed design process yields an optimal micro-end mill tool for machining DTM materials.
- The optimized tool design significantly reduces tool wear and breakage, leading to more efficient and reliable manufacturing.
- This advancement is critical for producing high-quality orthopaedic implants and micro-feature molds.
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