Precision engineering-plastic parts

Nylon CNC Machining Services

Custom CNC milling and turning for PA6, PA66, cast nylon and selected filled grades. We plan tolerances around moisture, heat, stock stress and the part’s real service environment—not only the dry dimension measured at the machine.

CNC milling machine cutting a white nylon component with visible spindle, workpiece and chips
Visible CNC milling of a nylon component: spindle, workpiece, fixturing and chips shown without a dark image overlay.

±0.10 mmPractical general target; drawing review required
±0.05 mmEligible critical features after engineering review
3–5 DaysPrototype reference after requirements are confirmed
PA6 / PA66Cast, extruded and filled grades by request

Quick answer

What is nylon CNC machining?

Nylon CNC machining is a subtractive process that mills or turns parts from solid polyamide stock. It is used for low-friction, wear-resistant and electrically insulating components such as gears, rollers, bushings, guide blocks and structural spacers.

Nylon is strong and fatigue resistant for its weight, but it is hygroscopic. It absorbs moisture from air or water, which can change dimensions and mechanical behavior after machining. A reliable supplier therefore reviews the nylon grade, moisture state, operating humidity, temperature, fits and inspection condition before committing to a tight tolerance.

CNC machining is especially useful for prototypes, bridge production, replacement parts and low-to-medium volumes that do not justify injection-mold tooling.

Collection of precision CNC machined nylon parts including gears, bushings, brackets and flanges
Representative CNC machined nylon parts, including gears, bushings, brackets and flanges in natural and black nylon grades.

Machining capabilities

CNC processes for machined nylon parts

The process plan is selected around geometry, stock form, tolerance, quantity and the risk of heat or stress release.

01

CNC milling

Pockets, profiles, slots, counterbores, sealing faces and multi-sided features in plate, sheet or block stock.

02

CNC turning

Bushings, rollers, sleeves, spacers, pulleys and stepped diameters produced from rod or tube.

03

Drilling & threading

Peck drilling, tapped holes, counterbores and insert preparation with chip evacuation planned for stringy nylon chips.

04

Multi-axis machining

Cross holes, compound angles and multiple faces with fewer re-clamps when geometry and volume support the method.

Need a manufacturability check?

Upload STEP or IGES plus a PDF drawing so we can review stock, setups, critical dimensions and inspection notes.

Request a DFM Review

Material selection

Nylon grades for CNC machining

Comparison of Nylon 6, Nylon 6/6, glass-filled nylon, oil-filled nylon and flame-retardant nylon stock
Common machinable nylon options include Nylon 6, Nylon 6/6, glass-filled, oil-filled and flame-retardant grades. Final selection should follow the drawing, operating environment and required certifications.

“Nylon” is a material family, not one fixed specification. Confirm the exact polymer, filler, color, stock form, conditioning state and compliance requirement before ordering.

Grade Why buyers select it Machining and design considerations Typical part examples
PA6 / Nylon 6 Good toughness, impact behavior and value; cast stock is available in larger sections. Higher moisture response than low-absorption plastics; large or asymmetric cuts may release stock stress. Wear pads, large rollers, sheaves, guides
PA66 / Nylon 6/6 Higher stiffness and heat capability than many unfilled PA6 grades; common for precision mechanical parts. Still hygroscopic; tight fits must define measurement humidity and temperature. Gears, bushings, spacers, electrical parts
Cast nylon / MC nylon Useful for thick plate, large rod and near-net stock with good wear performance. Stock history and internal stress matter on large sections; roughing and stabilization may be required. Large pulleys, rollers, bearing blocks
PA12 Lower moisture uptake and better dimensional stability than PA6/PA66, with useful toughness. Lower stiffness and higher material cost may change the design decision. Fluid-system parts, flexible mechanical components
Glass-filled nylon Higher stiffness, creep resistance and dimensional stability. Abrasive fibers increase tool wear and may expose fibers at machined surfaces; carbide tooling is normally preferred. Structural brackets, precision housings, loaded supports
Oil- or MoS₂-filled nylon Improved bearing and wear behavior for sliding applications. Verify mating material, load, speed, temperature and lubricant compatibility. Bushings, slide pads, wear strips, guide wheels

Availability is project-specific. Regulatory, food-contact, flame, ESD or material-certification requirements must be stated before quotation.

Engineering reference

Typical nylon properties—and why the datasheet matters

Values below are broad design references for common unfilled engineering grades. Fillers, colorants, conditioning, test method, temperature and supplier formulation can change the result. The approved supplier datasheet and customer drawing govern production.

  • Low density helps replace heavier materials in moving assemblies.
  • Wear resistance and damping suit gears, rollers and sliding parts.
  • Moisture can reduce stiffness while improving toughness.
  • Thermal expansion is much higher than most metals.

Review Your Operating Conditions

Property Typical reference range Buyer implication
Density About 1.12–1.15 g/cm³ Lightweight versus aluminum or steel
Tensile strength, dry Often about 70–90 MPa Grade and moisture condition materially affect results
Melting range Roughly 215–265°C by grade Not the same as continuous service temperature
Equilibrium moisture Often about 2–3.5% by weight for common PA6/PA66 at standard room conditions May cause measurable growth from the dry state
Linear growth from moisture Often around 0.5–0.9% for unfilled PA6/PA66 at equilibrium conditions Can dominate a tight fit or tolerance stack

Precision and delivery

Nylon machining tolerances and lead times

Tolerance capability is feature-specific. Part size, wall thickness, grade, moisture state, temperature, fixturing and inspection timing all matter.

General dimensions

±0.10 mm (±0.004 in) is a practical planning target for many machined nylon features, subject to drawing review.

Critical dimensions

±0.05 mm (±0.002 in) may be feasible on eligible features with a stable grade, suitable geometry and defined measurement condition.

Prototype lead time

Starting from 3–5 business days after CAD, drawing, material, quantity, finish and inspection requirements are confirmed.

Important: A dimension that passes immediately after machining can move after the part reaches a different humidity. For bores, shafts, press fits, bearing clearances or flatness-sensitive parts, state the service humidity and whether inspection is required dry, sealed, or conditioned.
Lead-time driver Why it matters What to include with the RFQ
Material availability Specialty, filled, colored or certified stock may require procurement. Exact grade, color, stock form and certification
Part complexity Multi-axis features, deep pockets and many setups add programming and machine time. Native CAD plus dimensioned drawing
Conditioning or stabilization Moisture or stress-control steps add controlled time but reduce dimensional risk. Inspection state and operating environment
Inspection scope FAI, dimensional reports, material certificates or special gauges require planning. Inspection level and critical-feature list
Quantity Fixtures, sampling plans and batch consistency change from prototype to production. Prototype quantity and expected annual volume

Critical process control

Managing moisture, heat and internal stress

Moisture is the defining tolerance risk in nylon machining. PA6 and PA66 absorb water from the environment. The part can grow, soften or change stiffness as it approaches equilibrium.

  • Confirm whether dimensions apply in the dry or conditioned state.
  • Use sharp, polished cutting edges to reduce rubbing and heat.
  • Remove stringy chips before they wrap around the tool or workpiece.
  • Use low-stress fixturing that supports the part without crushing it.
  • Balance roughing cuts on large or asymmetric parts to reduce warpage.
  • Allow stabilization before final inspection when the risk justifies it.

Five-axis CNC machining of a complex nylon component
Five-axis machining reduces setups for complex nylon geometry while sharp tooling, heat control and chip evacuation protect dimensional stability.

Shop-floor workflow

How we plan a nylon CNC machining project

1. RFQ reviewCheck CAD, drawing, quantity, grade, end use and critical features.
2. DFM and material checkConfirm stock form, moisture condition, setups, cutters and achievable tolerances.
3. Rough and finish machineControl heat, chip load, clamping force and material removal sequence.
4. Deburr and cleanRemove burrs without smearing edges or damaging functional surfaces.
5. Stabilize if requiredAllow temperature, stress or moisture state to settle before critical inspection.
6. InspectMeasure defined characteristics under the agreed condition and sampling plan.
7. DocumentProvide requested material and dimensional records when specified in the order.
8. Protect and shipBag or separate parts to reduce contamination, abrasion and moisture change in transit.

See the workflow

From CAD review to finished parts

This machining video shows the type of controlled CNC workflow used across our precision-part projects. A nylon-specific process plan then adjusts tooling, workholding, chip evacuation and inspection for the approved PA grade.

For a useful quotation, provide the 3D model, 2D drawing, quantity, material specification and any critical fit, cosmetic or inspection requirement.

Upload Your RFQ Package

Design for manufacturability

DFM guidelines for CNC machined nylon parts

Design feature Recommended approach Risk if ignored
Wall thickness Keep walls uniform and use generous support during machining. Review walls below about 1.0 mm individually. Deflection, chatter, heat distortion or flatness loss
Internal corners Use radii compatible with standard end mills; larger radii reduce tool reach and cycle time. Extra tool changes, small cutters and higher cost
Deep pockets Limit depth-to-width ratio where possible and leave clearance for chip evacuation. Heat buildup, recutting chips and poor finish
Holes and threads Provide adequate edge distance; specify thread engagement and consider inserts for repeated assembly. Breakout, stripping, creep or chip packing
Flatness Use balanced geometry and material removal; identify only truly functional flat surfaces. Warp after unclamping or conditioning
Bore/shaft fits Define clearance at service temperature and humidity, not only nominal room conditions. Seizure, excess play or post-delivery rejection
Cosmetic surfaces Mark appearance zones and acceptable tool marks on the drawing. Unnecessary polishing or subjective disputes
Tolerance strategy Use tight tolerances only on functional features and define the inspection state. Higher cost without improved part performance

Reduce risk before the first cut

We can flag tolerance, warpage, thread and material-selection issues during quotation.

Send CAD for DFM Feedback

Finishing and inspection

Surface finish, color and quality documentation

As machined

Often the preferred functional finish. Sharp tools and stable cutting conditions help minimize fuzzing, smearing and visible tool marks.

Deburring & edge break

Manual or controlled mechanical methods remove burrs while protecting fits, threads and defined sharp edges.

Dyeing or marking

Some nylon grades accept dye or marking. Color, depth, adhesion and compatibility require sample or supplier review.

Inserts and assembly

Threaded inserts and hardware can be planned for repeated assembly, load distribution and creep resistance.

Dimensional inspection

Critical features can be checked by calibrated contact or optical methods appropriate to the part and tolerance.

Requested records

Material certificates, FAI or dimensional reports may be specified at RFQ stage and confirmed with the order.

B2B applications

Where machined nylon parts are used

Nylon is commonly specified when a component needs low weight, wear resistance, useful strength, vibration damping or electrical isolation. Suitability still depends on load, speed, temperature, moisture, chemicals and mating materials.

Industrial equipment

Wear pads, guides, rollers, sheaves, spacers and protective components.

Automation

Low-noise gears, slide blocks, nests, fixtures and conveyor components.

Electrical systems

Insulators, terminal supports, standoffs and nonconductive hardware.

Transport equipment

Lightweight bushings, brackets, guides and abrasion-resistant mechanisms.

CNC machined nylon parts used in automotive, medical, industrial, aerospace, food processing and electronics applications
Typical applications for machined nylon parts include automotive, medical, industrial, aerospace, food-processing and electronics equipment.
Four-step nylon CNC machining process from CAD review through machining, inspection and packaging
Our nylon CNC machining workflow covers CAD and DFM review, controlled machining, dimensional inspection, and protective packaging for delivery.

Material comparison

Nylon vs Delrin, PTFE, HDPE and polycarbonate

Select the material from the operating requirement, not from machinability alone.

Material Choose it when… Watch for…
Nylon / PA Wear, fatigue strength, damping and mechanical toughness are important. Moisture-related growth and changing stiffness.
Delrin / POM Dimensional stability, low moisture uptake and crisp precision features are priorities. Lower impact toughness in some conditions and different chemical limits.
PTFE Chemical resistance, low friction and high-temperature capability dominate. Creep, softness and difficult tight-tolerance control.
HDPE Low cost, chemical resistance and low moisture uptake matter more than stiffness. High thermal expansion, softness and deflection.
Polycarbonate Impact resistance, transparency or protective guarding is required. Heat, stress cracking, haze and scratch sensitivity.

Quoting checklist

What to send for an accurate nylon machining quote

Geometry

STEP, STP, IGES or X_T model plus a dimensioned PDF drawing.

Material

Exact PA grade, filler, color, stock form and any required certificate.

Demand

Prototype quantity, batch quantity and estimated annual usage.

Environment

Temperature, humidity, water exposure, chemicals, load, speed and mating material.

Acceptance

Critical dimensions, inspection state, cosmetic zones and reporting requirements.

Delivery

Required date, shipping location, packaging and any staged-delivery plan.

Ready for a quote?

A complete RFQ reduces clarification time and helps us give a realistic tolerance and delivery commitment.

Upload CAD & Drawing

Buyer FAQs

Nylon CNC machining questions

What tolerance can CNC machining hold in nylon?

±0.10 mm is a practical general planning target for many features. ±0.05 mm may be feasible on eligible critical dimensions after reviewing grade, geometry, moisture condition, temperature and inspection method. Tighter values require feature-by-feature engineering review.

How fast can machined nylon prototypes be delivered?

Prototype lead time can start from 3–5 business days after CAD, drawing, material, quantity, finish and inspection requirements are confirmed. Special stock, conditioning, complex setups, extensive reporting or larger quantities can extend delivery.

Which nylon grade is best for CNC machining?

There is no universal best grade. PA66 is a common choice for stronger, stiffer precision components; PA6 and cast nylon are useful for tough wear parts and larger sections; PA12 reduces moisture sensitivity; glass-filled grades increase stiffness and dimensional stability but wear tools faster.

Does nylon change size after machining?

Yes. Common nylons absorb moisture and can expand after machining. The drawing should state the intended service environment and whether dimensions are inspected dry, sealed or after conditioning.

Can nylon replace metal parts?

Sometimes. Nylon can reduce mass, noise, corrosion and lubrication needs in gears, rollers, bearings and guides. Load, creep, temperature, moisture, stiffness, fire performance and safety factors must be checked before substitution.

Can glass-filled nylon be CNC machined?

Yes. Glass-filled nylon can improve stiffness and dimensional stability, but the fibers are abrasive and can affect tool life and surface appearance. Tooling, speeds and inspection must be selected for the exact grade.

Can you machine nylon gears, bushings and rollers?

Yes, these are common CNC nylon part families. The RFQ should define tooth geometry or bore fit, load, speed, mating material, lubrication, temperature and humidity so the grade and clearances can be reviewed.

What files are needed for a quote?

Send a 3D CAD file, a 2D drawing with critical dimensions, the material grade, quantity, required delivery date, finish, inspection needs and information about the operating environment.

Get a drawing-specific nylon CNC machining quote

Upload your CAD, drawing, material specification and quantity. We will review geometry, moisture-sensitive tolerances, inspection requirements and a realistic delivery plan before production.

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