Advanced Titanium Manufacturing Capabilities & Infrastructure
Scalable, certified precision manufacturing delivering micron-level tolerances, multi-axis geometry, and 100% material traceability for aerospace, medical, and defense applications.
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High-Precision Titanium Machining Processes
Three-axis, five-axis, Swiss turning, and wire EDM — every subtractive manufacturing discipline engineered specifically for titanium's unique metallurgical challenges.
5-Axis CNC Milling
Full 5-axis simultaneous contouring for complex aerospace monolithic bulkheads, medical orthopedic implants, and thin-wall structural components. Zero-interruption machining reduces setup errors and shortens lead times.
Precision Swiss Lathe Turning
Sliding-headstock Swiss-type turning for micro-scale titanium fasteners, bone screws, dental abutments, and long-shaft components. High-volume production maintains micron-level repeatability across millions of parts.
Wire EDM & EDM Sinking
Thermal erosion with zero mechanical stress for ultra-hard titanium alloys. Produces sharp internal corners (wire ø 0.1 mm), micro-slots, and delicate thin-wall features impossible with conventional tooling.
Precision Machining Specifications
Certified precision metrics for procurement engineers — every tolerance range verified through in-house CMM metrology per ASME Y14.5 and ISO 2768 standards.
| Parameter | Production Capability | Applicable Material |
|---|---|---|
| Dimensional Tolerance (Milling) | ±0.005 mm (typical), ±0.002 mm (precision) | Grade 5, Grade 23, Grade 2 |
| Surface Finish (Ra) | 0.4 µm (standard), 0.2 µm (precision), 0.05 µm (ultra-finish) | All Titanium Alloys |
| Max Machining Size | Up to 1,200 mm × 800 mm × 600 mm | Grade 5 / Ti-6Al-4V Blocks |
| Wall Thickness (Min) | 0.5 mm (Thin-wall structural components) | Grade 5 (Ti-6Al-4V) |
| Spindle Speed (Milling) | Up to 20,000 RPM (HSK-A63 tooling) | Grade 5, Grade 23, Grade 2 |
| Threading Capacity | M1.6 – M30 internal/external threading | All Titanium Alloys |
Can We Machine Your Component?
A process-by-process capability summary for procurement engineers. Every value below reflects our actual equipment fleet, metrology lab, and production records — not a marketing sheet.
| Process | Capability / Key Spec | Equipment Class | Typical Titanium Applications |
|---|---|---|---|
| 5-Axis CNC Milling | Positioning accuracy ±0.005 mm; simultaneous 5-axis; single-setup complex geometry; HSK-A63 spindle | DMG Mori DMU 50/65, Mazak VARIAXIS i-500, Hermle C 32 U | Aerospace structural parts, housings, brackets, impellers |
| Turn-Mill (Done-in-One) | Combined turning + milling in one clamping; eliminates re-fixturing error | Nakamura-Tome NTRX-300, DMG Mori NTX 1000/2000, Mazak INTEGREX i-200 | Rotational components, fittings, valve bodies, medical implants |
| Wire EDM | ±0.002 mm accuracy; Ra 0.4 µm finish; 0.05–0.33 mm wire; stress-free profiling | Sodick ALN400G/600G, Mitsubishi MV1200S/2400S, Makino U6 | Precision profiles, thin-wall parts, complex contours |
| Through-Spindle High-Pressure Coolant | 70–150 bar at 40–80 L/min — the single most impactful upgrade for titanium MRR and tool life | ChipBLASTER, LNS, MP Systems class | All titanium machining operations |
| Automatic Tool Magazine | 60–120 tool capacity; HSK-A63 interface; RFID; sister-tool switching for unattended runs | Chain / rack-type magazines | Lights-out production, complex multi-tool parts |
| Vacuum / Nitrogen Heat Treatment | Stress relief, annealing, solution heat treatment; ±5°C uniformity | Ipsen TITAN, ALD MonoTherm, TAV H-Series (AMS 2750F Class 2) | Residual stress control for precision titanium parts |
| CMM Metrology | Accuracy (1.8 + L/300) µm; scanning probe; AS9102 FAI reporting | Zeiss CONTURA/PRISMO, Hexagon Global S, Mitutoyo CRYSTA-Apex V | Dimensional verification of all complex geometries |
| Laser Tracker / 3D Scanning | ±15 µm + 6 µm/m accuracy; large-volume inspection | Hexagon Leica AT960, FARO Vantage S/E, API Radian | Large assemblies, fixtures, machine geometry verification |
| Anodizing & Surface Treatment | Type II & Type III anodizing; passivation; PVD coating capability | In-house anodizing line (AMS 2488, ASTM B600, RoHS, REACH) | Aerospace color-coding, wear resistance, medical passivation |
| Automatic Bar Feeding | Ø3–65 mm bar range; 12–20 bar capacity; remnant < 150 mm | LNS Alpha SL65, IEMCA Boss 338/552, FMB Turbo 5-65 | High-volume titanium fasteners, pins, small turned parts |
Rigorous Quality Infrastructure & EEAT Alignment
Every titanium component is backed by certified quality systems, full chain-of-custody material traceability, and multi-stage inspection — aligning with Google's Experience, Expertise, Authoritativeness, and Trustworthiness (EEAT) framework.
● Quality Management Certifications
AS9100 Rev D
Aerospace Quality Management Standard
Full-scope AS9100D quality management system covering design, development, production, and distribution of titanium aerospace components. Regular surveillance audits ensure continuous compliance.
ISO 13485:2016
Medical Device QMS
Process controls aligned with ISO 13485 for the manufacture of medical-grade titanium components, including surgical implants, orthopedic instruments, and dental prosthetics.
ISO 9001:2015
General Quality Management
Foundational quality management framework with documented processes for continuous improvement, corrective/preventive action, and customer-focused output. across all departments.
● Material Traceability Systems
EN 10204 Type 3.1 MTRs
Every incoming titanium raw material batch is accompanied by EN 10204 Type 3.1 mill certificates documenting chemical composition, mechanical properties, and heat number traceability to the originating ingot.
Positive Material Identification (PMI)
100% PMI verification of titanium alloy chemistry via Optical Emission Spectrometry (OES) and X-Ray Fluorescence (XRF) analyzers, ensuring material grade conformity before any machining operation.
Digital Chain-of-Custody
End-to-end digital lot traceability from receiving inspection through final packaging, with serialization and barcode tracking at every manufacturing operation.
Non-Destructive Testing (NDT)
Fluorescent Penetrant Inspection (FPI) for surface flaw detection and ultrasonic (UT) for subsurface volumetric examination. NDT performed per NADCAP-compliant procedures for critical aerospace and medical applications.
Frequently Asked Engineering Questions
Direct technical answers to the high-intent procurement and engineering questions most frequently searched on Google by titanium component buyers.
How does BOZE CNC ensure tool-wear control when machining Grade 5 Titanium?
We employ high-rigidity 5-axis machines, custom carbide-coated tooling (AlTiN + TiAlN multi-layer PVD coatings), and high-pressure through-spindle coolant (> 70 bar / 1,015 PSI) to actively suppress work-hardening and cutting heat generation during Ti-6Al-4V machining. Tool-path strategies incorporate variable helix angles and trochoidal milling to distribute thermal load evenly, maintaining micron-level dimensional stability across extended production runs. Tool wear is monitored in-cycle via spindle load & acoustic emission sensors.
Can Ti-6Al-4V be CNC machined to 5-micron tolerances for medical implants?
Yes. Our temperature-controlled production environment (20 ±1°C) combined with high-rigidity 5-axis CNC platforms and real-time thermal compensation systems enables consistent achievement of ±0.005 mm (5-micron) dimensional tolerances on Ti-6Al-4V ELI (Grade 23) medical implant components. First-article inspection (FAI) per AS9102 and 100% dimensional reporting via ZEISS CMM with 1.9 μm accuracy provides full verification. Cpk ≥ 1.67 is maintained on all critical implant features.
What is the typical lead time for a custom titanium CNC machined part?
Standard lead times range from 2–4 weeks for rapid prototyping (1–10 pcs) and 4–8 weeks for production volumes (100–5,000+ pcs), depending on complexity, material certification requirements, and surface finishing specifications. Expedited DFM review is available within 24 hours of CAD submission. Our in-house raw material inventory covering Grade 2, Grade 5, and Grade 23 eliminates mill sourcing delays for standard stock sizes.
Do you provide full material traceability and certified test reports?
Absolutely. Every shipment includes EN 10204 Type 3.1 Mill Test Reports (MTRs) documenting chemical composition, mechanical properties, and heat treatment traceability. We maintain full chain-of-custody documentation from mill to finished component. Independent third-party inspection by SGS, TÜV, or Bureau Veritas is available on request. All inspection data is archived and retrievable for the life of the product.
Which quality certifications does BOZE CNC hold for titanium manufacturing?
BOZE CNC operates under a quality framework aligned with AS9100 Rev D (aerospace), ISO 13485:2016 (medical devices), and ISO 9001:2015. Our manufacturing processes and quality management systems are designed to meet the stringent requirements of aerospace, medical, defense, and industrial applications. We maintain NDT capabilities performed per NADCAP-compliant procedures and follow AS9102 first-article inspection protocols.
Have a specific technical question about your titanium project?
Submit Engineering RFQOne 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.