CNC Surface Finishing · Engineer-Reviewed · EU / US Procurement

CNC Surface Finishing Services for Precision Machined Parts

We provide coordinated surface finishing for CNC machined parts, from as-machined surfaces to anodizing, hard anodizing, bead blasting, polishing, brushing, passivation, electropolishing, plating, powder coating and other application-specific treatments. The right finish depends on the base material, corrosion environment, wear requirements, appearance, dimensional requirements and applicable specification.

Material → finish matching Dimensional control Masking of critical features Inspection & documentation Machining → finishing → one workflow
See Finish Matrix

CNC Surface Finishing Capabilities at a Glance

The matrix below matches each finish to the materials it suits, the job it does, and how it affects dimensions. It is the starting point for specifying a finish — not a finish catalog. Use it together with the selection framework and the material compatibility matrix further down.

Finish Best For Common Materials Main Benefit Dimensional Impact
As MachinedFunctional / internal partsMost materialsLowest costMinimal
Bead BlastingUniform matte appearanceAluminum / steel / stainlessCosmetic + textureCan alter surface texture
Anodizing (Type II)Corrosion + color (aluminum)AluminumProtection + appearanceCoating adds thickness
Hard Anodizing (Type III)Wear resistanceAluminumHarder surfaceMore dimensional impact
BrushingCosmetic metal surfacesStainless / aluminumDirectional satin appearanceLow
PolishingSmooth / reflective surfaceStainless / aluminum / brassAppearance + smoothnessMaterial removal
PassivationCorrosion resistanceStainless steelSurface cleanliness / corrosion resistanceVery low
ElectropolishingSmooth stainless surfacesStainless steelCleanability + corrosion performanceMaterial removal
Powder CoatingDurable colored coatingAluminum / steelProtection + colorCoating thickness
Electroless NickelWear / corrosionSteel / aluminum / others*Functional coatingCoating thickness
Zinc PlatingCorrosion protectionSteelSacrificial protectionCoating thickness
Black OxideBlack appearance + mild protectionSteelLow-reflective finishLow
PVDWear / appearanceVarious metals*Hard decorative coatingUsually low

* Specific material compatibility depends on the actual process and should be confirmed against the project. The right match is material + function + finish + specification, not the longest finish list.

What Is the Difference Between Surface Roughness, Surface Treatment and Cosmetic Finish?

Procurement teams often use these three terms interchangeably. They are not the same, and mixing them up is the most common cause of a finish that does not match expectations. State all three separately on the drawing.

TEXTURE

Surface Roughness

How rough or smooth the actual surface is — a measurable property of the machined or treated surface.

e.g. Ra 0.8 µm
TREATMENT

Surface Treatment / Coating

A process that adds, converts or removes surface material — changes corrosion, wear or appearance.

e.g. Anodizing
APPEARANCE

Cosmetic Appearance

How the finished part looks — color, uniformity, grain direction, scratch limits, under defined light.

e.g. Black anodized, uniform matte, no visible scratches

"Anodized black" is not a roughness specification. "Bead blasted" is not a roughness specification. Roughness comes from machining or polishing; treatment and appearance come from the finishing step. The final result is the combination of both. Our CNC Machining RFQ Guide explains how to separate surface roughness, surface treatment and cosmetic acceptance in one request.

How to Choose the Right Surface Finish

Work through these six steps in order. The answer is rarely "the best finish" — it is the finish that fits your material, function and dimensions.

1

Base material

What is the part made from?

AluminumStainlessSteelBrassCopperTitanium
2

Surface function

What must the surface do?

CorrosionWearLow frictionConductivityChemicalCleanability
3

Appearance

How should it look?

MatteSatinGlossMirrorBlackColor
4

Critical dimension

Any bore, thread, seal or mating face?

Bearing boreThreadSealing faceMating surface
5

Roughness

What Ra / Rz is required?

Ra 0.8Ra 1.6Ra 3.2
6

Specification

Any standard to meet?

ASTMISOMILCustomer spec

If a critical dimension exists, decide up front whether the finish adds or removes material — that drives machining allowance and masking, not a last-minute note.

As-Machined Finish

As-machined is not "no finish." It is a defined condition: the CNC-produced surface is left without a subsequent coating or decorative treatment. Tool marks are normally visible and the roughness depends on the machining process.

Internal partsHidden surfacesFunctional componentsCost-sensitive components

Advantage: Lowest finishing cost — no extra process, lead time or risk.

Consideration: Tool marks are normally visible; roughness varies with tool, feed and pass. As-machined roughness is typically in a reference range such as Ra 1.6–6.3 µm, but treat that as a planning range, not a guarantee for every CNC surface — confirm the achievable Ra for your geometry and toolpath.

For many functional parts, as-machined is the correct, economical choice. Specify a roughness only where surface texture affects function; otherwise leave it as-machined and save cost.

Anodizing for CNC Aluminum Parts

Anodizing is an electrochemical conversion of the aluminum surface into a controlled oxide layer. It is the most common finish for aluminum CNC parts because it adds corrosion resistance and accepts color. There are two families buyers should know.

Type II Anodizing

Best for cosmetic parts, corrosion resistance, consumer and electronics products, brackets and housings. Type II gives a decorative, corrosion-protective coating and accepts a broad color range.

Type III Hard Anodizing

Best for wear resistance, sliding parts, and aerospace / industrial components. Type III (hard coat) produces a thicker, harder layer with stronger wear performance, at a larger dimensional impact and a more limited color range.

RequirementType IIType III (Hard)
AppearanceExcellentGood
Color optionsBroadMore limited
Corrosion protectionGoodExcellent
Wear resistanceGoodExcellent
Coating thicknessLowerHigher
Tight dimensional fitAccount for coatingAccount for carefully

Type III is not "always better." Select Type III when wear resistance and coating thickness justify the cost and dimensional allowance. Where color consistency and appearance lead, Type II is usually the right call. Anodizing adds thickness to all surfaces — critical bores and threads should be masked or machined undersize.

Will Surface Finishing Change Part Dimensions?

Yes. Some processes add material, some remove material, and some change only the surface condition. Critical mating dimensions should be reviewed before finishing, so the machine allowance and masking are planned in.

AnodizingAdds an oxide layerAdds
PlatingAdds coating thicknessAdds
PolishingRemoves materialRemoves
ElectropolishingRemoves a controlled amountRemoves
BlastingChanges surface textureTexture
PassivationMinimal dimension changeVery low

Stating "surface finish does not affect dimensions" is incorrect for many processes. Build the finish into the tolerance stack-up: machine undersize where a coating is added, mask where coating must not enter.

Stainless Steel Passivation

Passivation chemically treats cleaned stainless steel to promote its protective passive surface condition and improve corrosion resistance. It is a surface-conditioning step, not a coating — so dimensional change is minimal.

ASTM A967 / A967M covers chemical passivation treatments for stainless steel parts and the confirmation tests used to verify the result. Where your drawing or purchase order specifies ASTM A967, we review the applicable class and confirmation test and plan production and inspection accordingly. Confirm the required class and test at quotation — we do not claim blanket "ASTM A967 compliance" unless the specific class and test are part of the agreed process.

Passivation is most often paired with machined 316L / 304 parts for marine, medical, food and chemical service. See our Stainless Steel CNC Machining page for material and application context.

Electropolishing vs Mechanical Polishing

Both make stainless steel smoother, but they are different processes with different purposes. Confusing them leads to the wrong spec.

Mechanical PolishingElectropolishing
ProcessMechanical abrasionElectrochemical removal
Main goalSmooth / shiny appearanceSmooth + cleanable surface
Stainless steel
Removes materialYesYes
Typical useCosmeticMedical / hygienic / precision
Surface treatment typeMechanicalElectrochemical

Electropolishing removes a thin surface layer electrochemically to improve smoothness, cleanability and corrosion performance — it is not simply "making stainless shine." It is the common choice for hygienic and medical stainless surfaces.

Bead Blasting / Media Blasting

Bead blasting propels a fine media at the part to produce a uniform matte or satin texture. Buyers should think about three things, not just "matte."

LOOK

Appearance

Uniform matte / satin texture across the part.

FUNCTION

Function

Can mask minor machining marks and give consistent texture.

RISK

Risk

Edges and dimensions can be affected by media, pressure and exposure.

Masking of critical bores, threads and mating surfaces should be specified where needed, so blasting does not change a feature that must stay to size.

Brushed / Satin Finish

Brushing produces a directional grain. For EU / US customers the deciding detail is usually grain direction, not merely "brushing available."

Brushing suits stainless steel enclosures, consumer products, electronics, and kitchen / appliance parts. Specify the grain direction on the drawing — consistent orientation across visible faces is what reads as a quality brushed finish. Scratch direction, visible orientation and edge condition should be part of the cosmetic acceptance note.

Polishing and Buffing

Do not stop at "polishing." Where surface function depends on roughness, specify the Ra — polishing with no roughness target is not a controllable specification.

Reflective or near-mirror surfaces are achievable on stainless, aluminum and brass, but the actual result depends on the material, geometry and polishing route. A reference capability such as Ra 0.025–0.4 µm can be quoted for suitable parts, but state it as a target to confirm against your geometry — not a universal guarantee for every polished feature.

Electroplating and Electroless Plating

Plating adds a metal coating for corrosion, wear or appearance. Each type has a different job; all share one rule — the coating thickness, substrate, masking and post-treatment must be specified with the process.

Electroless Nickel Plating

For wear, corrosion, a uniform-thickness functional coating and build-up of dimension. Deposits evenly, which helps on complex shapes.

Zinc Plating

Mainly for steel corrosion protection — a sacrificial layer that slows rust.

Nickel Plating

Balances corrosion, wear and appearance.

Chrome Plating

Mostly decorative, with wear and hardness benefits where specified.

All coatings add thickness and change dimensions. Critical features should be masked or machined to allow for the deposit.

Powder Coating

Powder coating gives a durable, colored, corrosion-resistant layer suited to outdoor and industrial use.

The key buyer point: powder coating is relatively thick compared with many anodizing or conversion processes, so dimensional interfaces may require masking or post-processing. Design the allowance for the coating thickness, or plan to mask and re-machine interfaces.

Black Oxide

Black oxide gives carbon and alloy steel a black, low-reflective appearance with relatively small dimensional change.

Black oxide itself provides limited corrosion protection and is often supplemented by oil or another protective treatment. Do not specify it as "corrosion resistant" on its own — pair it with the right post-treatment and environment.

Chemical Conversion Coating / Alodine

Chemical conversion coatings are common on aluminum where a balance of corrosion resistance and electrical conductivity is needed — including aerospace-related applications.

This is a professional search term EU / US buyers use, and a different choice from anodizing where conductivity must be preserved. Confirm applicability and the exact specification for your project.

PVD and Other Functional Coatings

PVD (physical vapor deposition) and similar processes apply a hard, thin functional or decorative coating to suitable metals — used for wear resistance and appearance.

These coatings are usually low in dimensional impact but material- and geometry-specific. Treat them as a qualified, application-specific option rather than a default finish, and confirm compatibility with the base material.

Which Surface Finish Works With Which Material?

This is the table to bookmark. It matches each finish to the materials it suits. Build the finish from your actual material and process chain — do not assume any finish works on any material.

FinishAluminumStainlessSteelBrass / CopperTitanium
As Machined
AnodizingLimited*
Hard AnodizingLimited*
Bead Blasting
Polishing
Brushing
Passivation
ElectropolishingLimited*
Black OxideLimited*
Powder CoatingLimited*Limited*
Electroless Nickel✅*✅*✅*✅*
Standard / typical Limited* Possible for specific grades / processes — confirm Not typical for this material

Confirm the exact compatibility against your material grade and process chain. This table reflects a typical finishing capability, not a universal guarantee for every alloy.

Which Surface Finish Is Best for Your Application?

Start from the problem, not the finish name. Match the need to the finish.

Corrosion resistance?Anodizing / Passivation / Plating
Wear resistance?Hard Anodizing / Electroless Nickel / PVD
Cosmetic appearance?Brushing / Polishing / Anodizing / Powder Coating
Matte appearance?Bead Blasting
Mirror surface?Polishing
Medical / hygienic stainless?Electropolishing / Passivation
Low-reflective black steel?Black Oxide
Durable color / outdoor?Powder Coating
ApplicationRecommended Finish
Electronics housingsAnodizing / powder coating
Aerospace aluminumAnodizing / conversion coating*
Medical stainless steelPassivation / electropolishing
Marine partsAnodizing / passivation / suitable plating
Industrial wear partsHard anodizing / electroless nickel
Consumer productsBrushing / polishing / anodizing
Machine fixturesAs-machined / black oxide
Outdoor equipmentPowder coating / suitable anodizing

* Specific standard depends on the project requirement. Pair the application with the material and the dimensional constraints before locking the finish.

Surface Roughness: Ra, Rz and Specification

Do not specify "smooth surface" alone. Use a measurable roughness requirement when surface texture affects function.

Ra

Arithmetic average roughness — the most common single parameter buyers see on drawings. Easy to quote, but it is only one number for the surface.

Rz

Average maximum height of the profile — captures peak-to-valley variation. Useful when scratches or chip seals matter more than the average.

ISO 21920-1:2021 and ISO 21920-2:2021 define surface texture indication and parameters. Specify surface texture per the applicable drawing standard / ISO 21920 rather than an undefined "smooth." Typical planning ranges we work to:

Ra 0.8 µmFine / functional
Ra 1.6 µmCommon CNC
Ra 3.2 µmStandard machining
Ra 0.025–0.4 µmPolished (confirm)

These are reference capabilities, not a guarantee for every feature. Material, geometry and the polishing or machining route set the achievable value — confirm Ra / Rz against your drawing.

Masking Critical Features During Surface Finishing

A finish that enters a bore, thread or seal face can scrap an otherwise good part. Specify masking on the drawing where coating or treatment must not reach.

  • Threads
  • Bearing bores
  • Sealing surfaces
  • Electrical contact areas
  • Datum features
  • Press-fit surfaces

Masking adds a step and a cost, but it is far cheaper than a rejected batch. Call out masked features explicitly rather than assuming the finisher will know.

Coating Thickness and Dimensional Control

Each process handles dimensions differently, and that must be planned before finishing.

AnodizingCoating thickness must be in the tolerance stack-upPlan
PlatingCoating adds materialPlan
Powder CoatingRelatively thickPlan
PolishingRemoves materialPlan

Identify critical dimensions before finishing so machining allowance and masking can be planned. That is the difference between a finish page and a finish capability page.

Cosmetic Requirements and Color Control

"No scratches" is not a spec. Define what cosmetic acceptance means, and for color, name the reference.

Viewing distanceHow far away is the part judged?
LightingUnder what light is color checked?
Visible areaWhich faces are exposed vs hidden?
Scratch / dent limitsWhat size is acceptable?
Color consistencyHow much variation is allowed?
Grain directionWhich way should brushing run?
Edge conditionBurrs, break edges, radius?
Surface textureMatte / satin / gloss, defined
Pantone RAL Color sample Delta E tolerance

For production cosmetic parts, define the color reference, allowable variation, surface texture and inspection lighting where color consistency is critical. Naming only "Black / Red / Blue" leaves too much undefined.

Surface Finish Quality Control

Different finishes are verified differently. The flow below is the typical path; the checks applied depend on the finish and the inspection plan.

CNC MachiningPart produced to drawing
Pre-Finish InspectionConfirm dimensions before treatment
Clean / PrepDegrease, mask critical features
Surface TreatmentAnodize / plate / passivate / etc.
Color / AppearanceVisual check vs reference
Thickness / Roughness*Where the plan requires
Final DimensionalVerify critical features
PackagingProtected for transit

* Thickness and roughness checks are applied per the agreed inspection plan, not "100% on every part" by default. Tell us which checks you need documented.

CMM inspecting a precision machined part at Goldcattle, supporting final dimensional verification after surface finishing
Final dimensional inspection on a CMM is part of the finish quality chain — pre-finish and post-finish checks protect critical features.

Surface Finish Inspection and Documentation

What can be documented per finish. Ask for the records you need in the RFQ — coating thickness, roughness, color and dimensional reports are all possible where specified.

FinishPossible QC Check
AnodizingColor / appearance / thickness
Hard anodizingThickness / hardness / appearance
PlatingThickness / adhesion / appearance
Powder coatingThickness / adhesion / appearance / color
PassivationProcess documentation / applicable test
ElectropolishingAppearance / roughness / cleanliness
PolishingRa / appearance
Bead blastingTexture / appearance
BrushingGrain direction / appearance

"Possible" means the check is available where the inspection plan requires it — we do not claim every item is inspected on every order by default.

CNC Machining + Surface Finishing in One Workflow

Instead of managing separate machining and finishing vendors, the finished-part requirement can run through one manufacturing workflow.

CAD / DrawingRequirement defined
CNC Milling / TurningIn-house machining
DeburringEdge condition
Surface PrepClean + mask
Anodize / Plate / PassivateFinished to spec
Final InspectionDimension + appearance
PackagingShipped finished

Coordinating machining and finishing in one workflow reduces hand-off risk and makes the finish accountable to the same drawing as the part. See our Materials Hub for material selection that feeds into finishing.

Goldcattle CNC machining floor where machined parts are produced before coordinated surface finishing
In-house CNC machining is the first step; finishing is planned against the same drawing and tolerance stack-up.

Surface Finishing Case Studies

Real combinations of material, finish and verification — the proof behind "we can finish it."

6061-T6 Aluminum Housing

Consumer / electronics enclosure

Material
6061-T6 aluminum
Process
CNC milling
Finish
Bead blast → black anodize
Control
Bores masked; dimensional inspection
Uniform matte black achieved by blasting before anodize; critical bores masked so threads stayed to size.
316L Stainless Steel Valve Component

Fluid / medical-grade part

Material
316L stainless
Process
CNC turning + milling
Finish
Polish → passivation
Inspection
CMM + cert
Polished flow surfaces for cleanability, then passivation for corrosion performance in fluid service.
7075 Aerospace Bracket

High-strength structural part

Material
7075 aluminum
Process
5-axis CNC machining
Finish
Type III hard anodize + masking
Control
Coating allowance built in
Hard coat selected for wear; mating features masked and machined to allow for coating thickness.
Steel Industrial Shaft

Wear / corrosion part

Material
Alloy steel
Process
CNC turning
Finish
Black oxide / plating
Inspection
Final dimensional check
Low-reflective finish with post-treatment for corrosion; diameters masked to hold fit.

How Much Does CNC Surface Finishing Cost?

Finishing cost is driven by the part and the spec, not a flat "$/piece." A poor finish choice costs more in rework and rejection than the finish itself.

Finished-Part Cost = Machining + Finishing + Masking + Color + Coating Thickness + Inspection + Special Specification
Cost driverWhat changes the price
Part size / areaMore surface = more process
Batch quantityRack / minimum charge applies
MaskingAdds labor per feature
ColorCustom Pantone / RAL vs standard
Coating thicknessTighter tolerance = more control
InspectionThickness / roughness / report
Special specASTM / ISO / customer standard

Illustrative cost drivers only, not a market price. The finishing itself may be inexpensive next to the cost of poor selection, rework or cosmetic rejection — specify the finish, not just a name.

What Should You Specify in a Surface Finishing RFQ?

A finish RFQ is only as good as what you put in it. Give us these so we can quote accurately.

  • Base Material — e.g. 6061-T6, 316L, alloy steel.
  • Surface Finish — e.g. Type II anodizing, not just "anodizing."
  • Color — e.g. Black, with Pantone / RAL reference where it matters.
  • Coating Thickness — state if required; otherwise we propose per spec.
  • Surface Roughness — e.g. Ra 1.6 µm, with Ra / Rz and measurement reference.
  • Cosmetic Requirement — e.g. no visible scratches on exposed surfaces, under stated light.
  • Masking — e.g. no coating on Ø10 H7 bore.
  • Standard — e.g. ASTM A967, ISO 21920, customer drawing standard.
  • Inspection — color / thickness / roughness / dimensional report as needed.

This splits roughness, treatment and cosmetic exactly as our CNC Machining RFQ Guide recommends — the same logic, applied to finishing.

CNC Surface Finishing Capabilities at Goldcattle

Goldcattle is a one-stop OEM/ODM custom manufacturer (Founded in 1998) machining metals and engineering plastics from prototype to production. The lists below show what we run routinely by material family.

Aluminum

Type II AnodizingHard AnodizingBead BlastingBrushingPolishingPowder CoatingConversion Coat*

Stainless Steel

PassivationElectropolishingPolishingBrushingBead Blasting

Steel

Black OxideZinc Plating*Nickel Plating*Powder Coating

Brass / Copper

PolishingPlating*Brushing

Process control

In-house CNC machining
Finish selection support
Masking of critical features
Dimensional control
CMM inspection
RFQ / spec review

years of OEM/ODM experience across six processes, with in-house production and 24-hour engineering response.

In-house vs qualified partner

CNC machining is performed in-house. Some finishing processes are completed through our qualified finishing network and managed to the project specification. Where a finish is done externally, we still own the result against your drawing.

Transparency beats pretending everything is in-house — EU / US buyers verify supply chains during supplier audits.

* Specific material compatibility and process availability should be confirmed against your grade and project. We would rather confirm the exact finish than promise a long list we cannot verify.

Frequently Asked Questions

What surface finishes are available for CNC machined parts?
As-machined, bead blasting, anodizing (Type II and Type III), brushing, polishing, passivation, electropolishing, electroless nickel, zinc plating, powder coating, black oxide, chemical conversion and PVD. The right one depends on material, function, appearance and dimensions — see the compatibility matrix above.
What is the best finish for aluminum CNC parts?
It depends on the job. Type II anodizing is the common choice for corrosion plus color; Type III hard anodizing for wear; bead blast or brushing for a matte or satin look; powder coating for durable color. Match the finish to the function, not a default.
What is the difference between anodizing and powder coating?
Anodizing is an integral oxide layer on aluminum (thin, hard, good corrosion and color); powder coating is a thicker applied polymer layer on aluminum or steel (durable color, more dimensional impact). Powder coating adds more thickness, so plan interfaces.
What is the difference between Type II and Type III anodizing?
Type II is decorative/corrosion protection with broad color; Type III (hard coat) is thicker and harder for wear resistance, with more dimensional impact and a smaller color range. Choose Type III only when wear and thickness justify it.
Can stainless steel CNC parts be anodized?
Standard anodizing is an aluminum process; stainless steel is not anodized the same way. For stainless, use passivation, electropolishing or plating. See our Stainless Steel CNC Machining page.
What is the best finish for stainless steel?
For corrosion, passivation; for a smooth hygienic surface, electropolishing; for appearance, brushing or polishing; for wear or build-up, electroless nickel. The best finish follows the service environment.
What is the difference between passivation and electropolishing?
Passivation is a chemical surface-conditioning step that improves the passive layer with minimal dimension change; electropolishing electrochemically removes a thin layer for a smoother, cleaner, corrosion-performing surface. Electropolishing also removes material.
Does anodizing change dimensions?
Yes — anodizing adds an oxide layer to all surfaces, so critical bores and threads should be masked or machined undersize. Build the coating thickness into the tolerance stack-up.
Does plating change dimensions?
Yes — plating adds coating thickness to surfaces, changing dimensions. Mask critical features or machine to allow for the deposit.
What Ra can CNC machining achieve?
As-machined is typically a reference range such as Ra 1.6–6.3 µm depending on tool and process; polishing can reach finer values on suitable parts. State the Ra / Rz you need and we confirm it against your geometry.
What is the difference between Ra and Rz?
Ra is the arithmetic average roughness (most common drawing parameter); Rz is the average peak-to-valley height (captures variation and scratches). Specify per ISO 21920 rather than an undefined "smooth."
Can you mask threads and precision bores during finishing?
Yes — masking of threads, bores, sealing faces and datums is standard practice where coating must not enter. Call out masked features on the drawing.
Can you match a specific Pantone or RAL color?
For color finishes (anodizing dye, powder coating), yes where the process supports it — provide the Pantone / RAL reference and the allowed Delta E. Confirm on a sample for production color-critical parts.
Can you provide coating thickness reports?
Yes, where the inspection plan requires it (anodizing, plating, powder coating). Request thickness reporting in the RFQ.
Can you provide surface roughness reports?
Yes — Ra / Rz reports are available where specified, typically for polished or functionally textured surfaces.
Can you provide material certificates?
Yes — material certificates (e.g. EN 10204 3.1 where applicable) and traceability are supported from stock through final inspection. State the certificate type in the RFQ.
Can you provide inspection reports?
Yes — dimensional, appearance, thickness and roughness reports are provided where the inspection plan requires them.
Can CNC machining and surface finishing be handled by one supplier?
Yes. Goldcattle coordinates machining and finishing in one workflow against the same drawing, reducing hand-off risk. Finishing is managed to spec, with in-house CNC machining and qualified external finishing where needed.
What surface finish is best for corrosion resistance?
For aluminum, anodizing; for stainless, passivation (or electropolishing); for steel, plating or powder coating. Match the finish to the environment — chloride, chemical and outdoor duty change the answer.
What surface finish is best for wear resistance?
Hard anodizing (aluminum), electroless nickel (steel/aluminum), or PVD on suitable metals. The choice follows the base material and the wear mode.
How should I specify a CNC surface finish in an RFQ?
Give base material, finish type, color reference, coating thickness if required, roughness (Ra/Rz), cosmetic acceptance, masking, standard and inspection needs. See the RFQ checklist above and our CNC Machining RFQ Guide.

Request a CNC Surface Finishing Quote

Tell us the material, the function the surface must perform, the appearance you need and any critical dimensions. We will match the finish to the material and spec, plan masking and dimensional control, and quote it as a finished part.

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