Material Selection Hub · Xiamen, China
Stainless Steel & Titanium CNC Machining in China

Precision CNC machining of stainless steel and titanium components from your drawings. We work with 304, 316L, 17-4 PH and Ti-6Al-4V, with grade-specific process control, dimensional inspection and material documentation.

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Stainless steel and titanium CNC-machined brackets side by side

At a Glance

Stainless grades304/304L, 316/316L, 17-4 PH
Titanium gradesGrade 2, Grade 5 (Ti-6Al-4V)
Processes3/4/5-axis milling, turning
Tight features±0.005 mm, qualified per feature
InspectionCMM, dimensional report, material cert
BaseXiamen, China · Since 1998
Quick answer

Stainless steel is chosen for corrosion resistance and durability at moderate weight; titanium is chosen when strength-to-weight and corrosion resistance justify the higher cost. Both are CNC-machined from your drawing, but they machine very differently. Stainless work-hardens; titanium runs hot and wears tools faster. We adjust tool engagement, workholding and cooling to the grade and geometry, not to a generic cutting-parameter table.

Stainless Steel vs Titanium: At a Glance

The material name is only the starting point. Your grade, standard, stock form, condition, geometry and documentation requirements determine the manufacturing route. The table below is a starting point for comparison, not a verdict.

FactorStainless steelTitanium
Corrosion resistanceGood to excellent, grade-dependentExcellent in many environments
WeightDenser (~7.9 g/cm³)About 45% lighter (~4.5 g/cm³)
Strength-to-weightGoodExcellent
Machining difficultyGrade-dependent; work-hardening on austenitic gradesTypically higher; low thermal conductivity, tool wear
Material costLower for common gradesHigher
Typical buyer driverCorrosion, durability, costWeight, performance, biocompatibility

Stainless or Titanium? Choose by Application

Choose stainless when

Corrosion at moderate weight

Weight is not the primary concern, corrosion resistance is required, and 304 or 316L provides adequate performance. Lower material and machining cost.

Choose titanium when

Weight reduction matters

Strength-to-weight ratio, biocompatibility or severe corrosion justifies the higher material and machining cost. Common in aerospace, medical and motorsport.

Stainless Steel CNC Machining

Stainless steel is selected when corrosion resistance, mechanical strength, hygiene or temperature performance outweigh cost. We machine the grades most often called out on industrial drawings:

304 / 304L

General-purpose

Good corrosion resistance and formability. Used in housings, brackets, food equipment and general machinery where 316L is not required.

316 / 316L

Higher corrosion resistance

Molybdenum-alloyed for chloride and chemical resistance. Common in marine, pharmaceutical, food processing and medical hardware.

17-4 PH

Precipitation-hardened

High strength and hardness after heat treatment. Used in shafts, valve components and high-load structural parts. Specify the condition (H900, H1025, etc.).

CNC machining a 316L stainless steel bracket with coolant
CNC machining a 316L stainless bracket. Austenitic stainless work-hardens under the cutter, so tool engagement and feed rate are controlled to avoid rubbing.

Why Stainless Machining Needs Process Control

Not all stainless is equally easy to machine. 303 cuts more freely than 316L; 17-4 PH in the hardened condition behaves differently from annealed stock. The risk areas:

Work hardening
Austenitic grades (304, 316) harden if the cutter rubs rather than cuts.
Control: consistent feed, sharp tool, avoid dwell in the cut; use climb milling where suitable.
Heat at the cutting edge
Stainless does not dissipate heat like mild steel.
Control: coolant directed at the cutting zone, controlled engagement, tool grade matched to the alloy.
Chip evacuation
Long, stringy chips in deep pockets or bores can recut and damage the surface.
Control: chip-breaker geometry, air or coolant blast, programmed retracts where needed.

Titanium CNC Machining

Titanium is selected for high strength-to-weight, corrosion resistance and biocompatibility. The grades we most often machine:

Grade 2

Commercially pure

Good ductility and corrosion resistance, lower strength. Used in chemical processing and where formability matters more than high strength.

Grade 5 / Ti-6Al-4V

The workhorse alloy

The most widely used titanium alloy. Heat-treatable, high strength-to-weight. Common in aerospace brackets, medical components and motorsport.

Grade 23 / ELI

Extra low interstitial

Tougher and more ductile than Grade 5. Used in medical and specialized applications where fracture toughness matters.

5-axis CNC machining a titanium aerospace bracket
5-axis machining a titanium bracket. The tilted spindle keeps the cutter short and rigid, reducing deflection on complex curved geometry.

Why Titanium Is Harder to Machine

Low thermal conductivity
Heat stays at the cutting edge instead of flowing into the chip.
Control: through-tool coolant, consistent chip load, replace tools on a planned interval.
Tool wear and adhesion
Titanium can weld to the cutting edge under poor conditions.
Control: sharp positive-geometry tools, correct speed/feed, no rubbing passes.
Thin-wall and deep-cavity deflection
Titanium is springy and cuts with high radial force.
Control: minimum tool overhang, symmetric clamping, light finishing passes, 5-axis tilt where it helps.

5-Axis Titanium Machining

Not every titanium part needs 5-axis. It becomes useful when the geometry requires multi-face access, angled holes, deep pockets or contoured surfaces where a long, slender tool would deflect. Tilting the spindle keeps the cutter short and rigid, and reduces re-fixturing that can move the datum between setups.

Grade, Standard, Stock Form and Condition

These four terms are not interchangeable. A complete material callout on the drawing should specify all four:

TermWhat it meansExample
Grade / alloyThe material composition316L, 17-4 PH, Ti-6Al-4V
StandardThe procurement specificationASTM A276, ASTM B348, AMS 4928 (confirm matches stock form)
Stock formHow the raw material arrivedBar, plate, tube, billet, forging
ConditionHeat-treated or annealed stateAnnealed, H900, H1025, solution-treated + aged
Drawing note: The applicable standard depends on stock form — ASTM A276 covers stainless bar, while A240 covers plate/sheet. Confirm the standard matches the form and condition on your RFQ.

Material Traceability & Documentation

A material certificate proves the raw stock meets its specification. A part inspection report proves the finished component meets the drawing. They are different documents, and both matter for medical, aerospace and regulated projects.

DocumentWhat it confirms
Material certificate / MTRHeat/lot, chemistry and mechanical properties of the incoming stock
Dimensional inspection reportCritical features measured against the released drawing revision
FAIFirst-article inspection where the project requires it

Surface Finishing by Material

Stainless

Passivation, electropolishing, polishing, bead blast

CNC machining is in-house; selected finishing processes are managed through qualified partners to your specification.

Titanium

Anodizing, bead blast, polishing, cleaning

Finish options depend on grade and application. Confirm the required finish on the drawing — passivation or plating suitability is checked per project.

Applications by Material

IndustryStainless steelTitanium
Medical316L housings, surgical hardwareGrade 5 / Grade 23 components
AerospaceSelected structural fittingsGrade 5 brackets, lightweight components
Marine / chemical316L valves, fittings, hardwareCorrosion-resistant components where weight matters
Food / pharmaProcess equipment componentsProject-specific
Motorsport / industrialShafts, brackets, housingsLightweight high-performance parts

What to Specify in a Stainless or Titanium RFQ

The more completely the RFQ describes the material and application, the fewer surprises later. Send:

Material

  • Exact grade (304, 316L, 17-4 PH, Gr5, etc.)
  • Standard and stock form
  • Condition / heat treatment
  • Material certificate requirement

Part & project

  • 3D CAD + 2D drawing, revision noted
  • Critical dimensions, GD&T, surface finish
  • Quantity (prototype / annual / per batch)
  • Application environment and inspection level

Two Materials, Two Machining Approaches

316L stainless bracket being CNC machined
  • Material316L stainless, annealed bar
  • Process3-axis milling + tapping
  • ChallengeWork-hardening, chip control
  • FinishPassivation where specified
5-axis titanium bracket being machined
  • MaterialTi-6Al-4V Grade 5
  • Process5-axis milling
  • ChallengeHeat, tool wear, thin sections
  • InspectionCMM on critical datums

Frequently Asked Questions

What stainless steel grades can you CNC machine?
We commonly machine 304/304L, 316/316L and 17-4 PH. Other grades can be sourced on request — send the drawing and we will confirm material availability before quoting.
What titanium grades can you machine?
Grade 2 (commercially pure), Grade 5 (Ti-6Al-4V) and Grade 23 (ELI) are the grades we work with most often. Grade and condition are confirmed against your drawing before production.
Is 17-4 PH difficult to machine?
It depends on condition. Annealed 17-4 PH machines more readily; hardened stock (H900, H1025) is more abrasive and requires tougher tooling. Specify the condition on the RFQ so we plan the right process.
Does titanium always need 5-axis machining?
No. Simple titanium parts machine well on 3-axis. 5-axis is selected when the geometry has multi-face access, deep cavities or contoured surfaces where a short, rigid cutter helps. We recommend the simplest process that meets the drawing.
Can you provide material certificates (MTR)?
Yes, when the incoming stock is supplied with traceability and the RFQ requests it. Material certificates cover the raw stock; part inspection reports cover the finished component. They are separate documents.
What tolerances are achievable on stainless and titanium?
Tight tolerances down to about ±0.005 mm can be held on qualified features, depending on part size, wall thickness, datum structure and machine condition. We do not quote a universal tolerance — it is assigned per feature on the drawing.
Can 316L be passivated after CNC machining?
Yes. Passivation and electropolishing are managed through qualified finishing partners to your specification. Confirm the required finish and any standard on the drawing.
Stainless or titanium — which should I choose?
Choose stainless when corrosion resistance at moderate weight and lower cost is enough. Choose titanium when weight reduction or strength-to-weight justifies the higher material and machining cost. Send your drawing and operating conditions and we can review the fit.
Wei Chen, Manufacturing Engineer at Goldcattle
Wei Chen
Manufacturing Engineer, Xiamen Goldcattle

Wei reviews incoming stainless and titanium drawings, selects the machining route and signs off on first-article inspection. He focuses on grade-specific workholding, tool engagement and material documentation for prototype and repeat production.

Request a Stainless or Titanium CNC Quote

Send your CAD, drawing and required material grade. We will review geometry, grade, workholding and inspection scope, and come back with a machining approach and lead time.

Xiamen Goldcattle · Manufacturing since 1998 · 3/4/5-axis CNC · CMM inspection on qualified features · Material certificates where supplied

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