Applications and Processes
All applications and processes articles from the Boze Titanium Manufacturing Center — engineering guides, case studies, and manufacturing insights for buyers and engineers.
CNC vs EDM for Titanium Parts: Which Process Should You Choose?
An engineering comparison of CNC machining and electrical discharge machining for titanium component production — geometric capabilities, surface integrity, tolerance ranges, cost structures, production quantity effects, and a decision framework for selecting the appropriate process for your part.
EDM Broaching for Titanium Parts: Complex Internal Profiles and Precision Features
A technical analysis of EDM broaching for titanium components — how the process differs from conventional broaching and standard EDM, the types of internal profiles it can produce, electrode design and wear management, surface integrity considerations, and when EDM broaching is the most practical option for complex internal titanium features.
EDM Titanium Machining: When Electrical Discharge Machining Is the Better Choice
An engineering assessment of electrical discharge machining for titanium components — when EDM outperforms conventional cutting, material removal rate limitations, surface integrity considerations, electrode wear management, and practical process selection rules for aerospace and medical applications.
Micro Machining Titanium: EDM, CNC and Precision Manufacturing Methods
An engineering overview of micro machining methods for titanium components — CNC micro milling and micro turning capabilities, micro EDM for high-aspect-ratio features, process selection for micro features, surface integrity at the microscale, and practical limitations of each method for aerospace, medical, and precision industrial applications.
Titanium Wire EDM for Bearing Seats and Precision Features
A technical guide to using wire EDM for precision bearing seats and dimensional features in titanium components — process capability for tight tolerances, surface integrity requirements for bearing interfaces, wire selection and skim cut strategies, and practical considerations for aerospace and medical bearing applications.
High-Precision Titanium Investment Casting — Net-Shape Component Solutions for Complex Geometries
An engineering analysis of titanium investment casting for complex-geometry components — process mechanisms including vacuum induction melting and ceramic mold interaction, near-net-shape capability for material waste reduction, cost comparison with forging and CNC milling for batch production, post-casting quality controls including HIP and X-ray NDT, and DFM guidelines for cast titanium parts.
Aerospace Titanium Components — Manufacturing Challenges and Engineering Solutions
An engineering analysis of manufacturing challenges specific to aerospace titanium components — thin-wall structural parts, tight tolerance requirements, material traceability and certification compliance, and process control strategies for AS9100D production environments.
Medical Titanium Implants — Manufacturing Standards and Precision Requirements
An engineering analysis of manufacturing requirements for medical titanium implants — material specifications for Grade 23 ELI, surface finish and cleanliness requirements, tolerances for implant mating features, and the process control and validation requirements for ISO 13485 production environments.
Semiconductor Titanium Components — Precision Requirements for Critical Applications
An engineering analysis of titanium components in semiconductor manufacturing equipment — material purity requirements, precision machining tolerances for vacuum chamber hardware, surface finish specifications for plasma-facing components, and cleanroom manufacturing considerations.
Titanium Additive Manufacturing vs CNC Machining — Process Selection for Production Components
An engineering comparison of additive manufacturing and CNC machining for titanium components — geometric capability differences, material property comparisons between as-built and wrought material, surface finish and tolerance capability, cost drivers for each process, and hybrid approaches combining both technologies.
Titanium Welding Challenges and Best Practices for CNC Machined Assemblies
An engineering analysis of titanium welding for machined assemblies — weld joint design for titanium, inert gas shielding requirements, distortion control in welded assemblies, post-weld heat treatment considerations, and interface management between machining and welding operations.
One Metal. One Focus. Infinite Precision.
Founded in 2011 in Baoji's Titanium Valley, BOZE Metal is dedicated exclusively to titanium — from raw material to precision engineering. AS9100D, ISO 13485 & ISO 9001 certified with 500+ clients across Aerospace, Medical & Motorsport industries, we deliver end-to-end precision titanium CNC machining with full material traceability from source to component.
Boze Titanium Manufacturing Center is operated by Baoji Boze Metal Products Co., Ltd.