Delrin CNC Machining: Design, Tolerance, and RFQ Risks for POM Parts

Delrin CNC machining for custom POM plastic parts showing black and natural acetal stock, machined bushings, gears, rollers, sleeves, threaded parts, sharp tooling, caliper inspection, engineering drawing, and RFQ checklist for machining review.

Delrin CNC machining is often easier to control than PTFE, nylon, or many soft plastics.

But that does not mean every Delrin part is simple.

Delrin, also commonly discussed as POM or acetal, is widely used for custom CNC machined plastic parts because it offers a practical balance of machinability, low friction, dimensional stability, wear behavior, and cost.

It is often used for:

  • bushings
  • rollers
  • gears
  • spacers
  • wear pads
  • sleeves
  • sliders
  • guide blocks
  • valve parts
  • fixture components
  • electrical insulating parts
  • low-friction mechanical parts

Delrin can machine cleanly, hold crisp edges, and produce good surface quality with the right process. However, it still needs proper review when the part has tight tolerances, thin walls, small threads, press fits, long bores, snap-fit features, sliding surfaces, or inspection requirements.

A good Delrin machining plan should review:

  • exact material grade
  • POM homopolymer or copolymer requirement
  • stock form
  • wall thickness
  • bore and sleeve stability
  • thread design
  • sharp corner risk
  • burr control
  • moisture and temperature condition
  • surface finish
  • inspection method
  • mating parts
  • application load
  • quantity and repeatability

The goal is not to make Delrin machining complicated.

The goal is to avoid treating Delrin like metal when the part function depends on plastic behavior.


What Is Delrin CNC Machining?

Delrin CNC machining is the process of cutting Delrin or POM stock into custom parts using CNC milling, CNC turning, drilling, boring, tapping, grooving, or secondary machining operations.

Buyers may use different terms in RFQs:

  • Delrin parts
  • Delrin machining
  • CNC Delrin
  • Delrin CNC machining
  • POM CNC machining
  • POM machining
  • acetal machining
  • acetal CNC parts
  • POM bushings
  • Delrin gears
  • machined acetal components

In many RFQs, “Delrin” is used as a practical shorthand for acetal or POM plastic. However, the exact material grade still matters.

The drawing or RFQ should clarify whether the part requires:

  • Delrin brand material
  • POM homopolymer
  • POM copolymer
  • black POM
  • natural white POM
  • food-contact grade if required
  • glass-filled, PTFE-filled, or modified grade if required
  • material certificate if needed

Do not rely only on the word “Delrin” when the application has strict mechanical, chemical, food-contact, medical, or dimensional requirements.

For a broader engineering plastic comparison, see our Best Plastics for CNC Machining guide.


Why Delrin Is Popular for CNC Machined Parts

Delrin is popular because it machines cleanly and performs well in many mechanical applications.

Compared with softer plastics, Delrin usually offers better stiffness, cleaner chip formation, and more predictable feature control.

Compared with high-end plastics such as PEEK, Delrin is usually more cost-effective for moderate-temperature mechanical parts.

Compared with nylon, Delrin generally has lower moisture sensitivity, although humidity and application environment should still be reviewed.

Common reasons buyers choose Delrin include:

RequirementWhy Delrin May Help
Low frictionUseful for sliding parts, bushings, rollers, and guides
Good machinabilityProduces cleaner chips and sharper features than many softer plastics
Dimensional stabilityOften more stable than nylon in many normal environments
Wear behaviorUseful for moving mechanical parts in selected applications
Electrical insulationSuitable for many non-conductive mechanical components
Cost balanceMore affordable than many high-performance plastics
Good surface qualityCan produce clean machined surfaces with proper tools
StiffnessMore rigid than PTFE and many soft plastics
RepeatabilityUseful for prototype and low-volume mechanical parts

Delrin is often a good starting point when a plastic part needs mechanical function but does not require the high temperature or chemical resistance of PEEK.

For material comparison against PEEK and POM, see our PEEK vs POM CNC machining guide.


When Delrin May Not Be the Best Choice

Delrin is useful, but it is not always the best plastic.

Before selecting Delrin, the buyer should review the real application conditions.

Delrin may need extra review when the part has:

  • high service temperature
  • continuous heavy load
  • strong chemical exposure
  • very tight press fits
  • long-term creep risk
  • ultra-low friction requirements
  • high-wear abrasive contact
  • thin snap-fit arms
  • very small threads
  • food, medical, or regulatory requirements
  • low-outgassing requirements
  • cleanroom or semiconductor requirements
  • high moisture or outdoor exposure
  • parts that must be bonded or painted

In some cases, PEEK, PTFE, nylon, PEI, PPS, UHMW, or another plastic may be more suitable.

For example:

RequirementPossible Better Material
Higher temperature and strengthPEEK
Very low friction and chemical resistancePTFE
High impact and toughnessNylon
Very low-cost prototype housingABS
Transparent partAcrylic or polycarbonate
Higher chemical and thermal resistancePEI, PPS, or PEEK depending on use

Delrin should be chosen because its behavior matches the part function, not only because it is easy to machine.


Delrin vs POM vs Acetal: What Buyers Should Specify

Delrin, POM, and acetal are closely related terms, but they should not always be treated as identical in RFQs.

POM is the material family. Acetal is another common name for POM. Delrin is a well-known trade name often used for acetal homopolymer material.

In many standard CNC projects, buyers use these terms loosely. That may be acceptable for simple prototype parts, but it can create problems when the part has functional requirements.

The RFQ should specify:

Material ItemWhy It Matters
POM homopolymer or copolymerDifferent grades may behave differently in strength, stability, and chemical resistance
Brand requirementSome drawings require actual Delrin brand material
ColorNatural, black, or other color requirements may affect stock availability
Certificate needSome projects require material traceability
Application conditionTemperature, load, wear, or chemical exposure may affect grade choice
Regulatory needsFood-contact, medical, or industry requirements must be stated early
Filled gradePTFE-filled, glass-filled, or modified grades may change machining behavior

Buyers should also be aware of the internal structure difference between POM homopolymer and POM copolymer. Thick Delrin or POM-H rod stock may contain centerline porosity near the core of the material, depending on stock size and manufacturing method.

This may not matter for many standard bushings, rollers, spacers, gears, or non-pressure mechanical parts. However, it can become important when the part is used for fluid sealing, pressure-tight valve seats, manifold-style components, or features where internal leakage is not acceptable.

For pressure-sensitive or sealing-critical Delrin parts, the supplier may review POM copolymer, suitable stock size, stock orientation, machining position relative to the material core, or another material grade before production. If leakage risk is critical, the RFQ should clearly state the pressure, fluid, sealing requirement, and inspection method.

A better material note is:

Material: POM / acetal, black, supplier to confirm grade before production. Material certificate required if available.

If the exact grade is critical, the drawing should state it clearly.


Delrin Machining Risk Map

Delrin machining risk usually appears in specific features rather than across the whole part.

FeatureMain RiskWhat to Review
Thin wallsDeflection, chatter, or spring-backWall thickness, support, roughing sequence, final inspection
Small threadsWeak thread form or burrsThread size, engagement length, mating screw, assembly torque
Press fitsStress, cracking, or creep over timeInterference amount, load, temperature, mating part
Snap-fit armsStress concentration or breakageRadius, thickness, orientation, repeated flexing
Long boresTaper, ovality, or measurement variationTool support, boring method, inspection pressure
GearsTooth burrs, runout, or fit problemsCutter strategy, bore datum, tooth inspection
Sliding surfacesTool marks or friction variationSurface direction, finish, mating material
Sharp internal cornersStress concentrationCorner radius, cutter diameter, DFM change
Small holesDrill wander, burrs, or breakoutHole depth, drill geometry, backup support
Cosmetic facesTool marks or handling scratchesSurface finish, deburring, packaging

This risk map helps prevent a common RFQ mistake: assuming that clean machining automatically means every Delrin feature can hold metal-like tolerances.

Delrin CNC machining risk map showing thin walls, small threads, press fits, snap-fit arms, long bores, gears, sliding surfaces, sharp internal corners, small holes, cosmetic faces, burr control, stress concentration, inspection method, material grade, and packaging protection.

Tolerance Planning for Delrin CNC Parts

Delrin can often hold good tolerances for a plastic material, but tolerance still depends on geometry and inspection condition.

A thick, compact Delrin part is usually easier to control than a thin, long, flexible, or heavily pocketed part.

Tolerance planning should review:

  • part size
  • material grade
  • stock form
  • wall thickness
  • unsupported length
  • machining sequence
  • internal stress
  • clamping method
  • temperature condition
  • moisture condition
  • measurement method
  • final application
  • mating parts
  • production quantity

Although Delrin is more dimensionally stable than many soft plastics, raw stock shapes can still contain residual internal stress from extrusion, molding, or stock manufacturing. When a machining setup removes a large amount of material from only one side of a plate, housing, or thick blank, the stress balance inside the part can change.

This can lead to slight bowing, flatness change, or shape movement after unclamping, especially on flat plates, deep pockets, thin covers, and asymmetrical parts.

For tight-tolerance Delrin parts, the supplier may review stress-relieved stock, balanced two-sided material removal, staged roughing and finishing, or a short stabilization period before final sizing. This helps reduce the chance that a part looks correct during machining but shifts before final inspection or assembly.

A drawing should not apply tight tolerance to every feature by default.

Instead, separate the part into:

  • functional features
  • sliding surfaces
  • bearing bores
  • clearance holes
  • cosmetic edges
  • non-critical outer profiles
  • reference dimensions
  • assembly-critical dimensions
  • inspection-critical datums

This helps the supplier control cost and focus inspection effort where it matters.

For general tolerance planning, see our CNC machining tolerances guide.


Clamping and Fixturing for Delrin Parts

Delrin is stiffer than PTFE, but it can still move under clamping force.

If the fixture squeezes the part too hard, the machined dimension may change after the part is released.

Common fixturing risks include:

Fixturing IssuePossible Result
Excessive vise pressureSize shift or slight distortion after unclamping
Small contact areaLocal marks or dents
Poor support under pocketsChatter or uneven wall thickness
Thin walls unsupportedWall deflection during finishing
Hard jaws on cosmetic surfacesVisible surface marks
Poor support during drillingExit burrs or breakout
Unbalanced material removalWarping or flatness change

For Delrin parts, the supplier may review soft jaws, custom fixtures, low clamping pressure, larger contact areas, and staged machining when required.

The fixture should match the part function.

A simple block may not need special fixturing. A thin-walled Delrin housing, long sleeve, or precision bushing may need more careful support.


CNC Milling Delrin Parts

CNC milling is commonly used for Delrin plates, blocks, housings, slots, pockets, covers, guides, fixtures, and custom mechanical parts.

Delrin usually mills well with sharp tools and a stable cutting strategy.

Milling review may include:

  • cutter sharpness
  • chip evacuation
  • pocket depth
  • corner radius
  • wall height
  • surface finish
  • burr control
  • thin feature support
  • toolpath direction
  • roughing and finishing allowance
  • clamping contact areas
  • final inspection condition

Delrin can produce clean surfaces, but dull tools, heat buildup, or poor chip removal can still create poor edges, smeared surfaces, or burrs.

For milled Delrin parts, deep pockets and thin walls should be reviewed before quotation.

For service capability, see our CNC milling services page.


CNC Turning Delrin Parts

CNC turning is often used for Delrin bushings, sleeves, rollers, rings, washers, spacers, shafts, and valve-style components.

Turning Delrin can produce clean round parts, but round features still need review.

Common turning risks include:

  • jaw marks
  • ovality
  • taper
  • bore size variation
  • parting burrs
  • thread burrs
  • thin-wall distortion
  • surface marks
  • poor concentricity
  • inspection variation

For Delrin sleeves and bushings, the supplier should review the relationship between outer diameter, inner diameter, wall thickness, and chucking method.

A thick bushing may be stable. A long thin sleeve may need soft jaws, support, light finishing cuts, or modified inspection planning.

For rotational custom parts, see our CNC turning services page.


Delrin Threads Need Design Review

Delrin can be threaded, but plastic threads should not always be treated like metal threads.

Thread strength depends on:

  • thread size
  • engagement length
  • thread depth
  • mating material
  • assembly torque
  • repeated assembly
  • wall thickness around the thread
  • insert requirement
  • burr control
  • inspection method

Possible Delrin thread issues include:

IssueWhy It Happens
Weak internal threadShort engagement or small thread size
Thread burrsDull tool, poor entry or exit control
StrippingHigh torque or metal screw overload
Cross-threadingSoft material and poor starting alignment
Size changeTapping pressure or material recovery
Cracking around bossThin boss wall or sharp internal corners
Gauge variationThread gauge force and plastic flexibility

For repeated assembly, the supplier may review metal inserts, larger threads, longer engagement, or lower assembly torque.

A drawing note such as “M3 thread” may not be enough when the thread carries load or is assembled many times.


Delrin Bushings, Sleeves, and Sliding Parts

Delrin is commonly used for bushings and sliding parts because it has good low-friction behavior and useful wear properties in selected applications.

However, a Delrin bushing is not only a simple round part.

The supplier should review:

  • bore diameter
  • wall thickness
  • length-to-diameter ratio
  • mating shaft material
  • clearance fit
  • running speed
  • load direction
  • lubrication condition
  • temperature
  • expected wear
  • inspection method
  • surface direction

A tight bore tolerance may be reasonable for a thick, short bushing.

The same tolerance may be risky for a long, thin, unsupported sleeve.

For sliding parts, the drawing should define whether the surface is functional. Surface direction, tool marks, and burrs can affect friction and assembly behavior.


Gears and Precision Mechanical Features in Delrin

Delrin is often used for gears, cams, rollers, and precision mechanical parts.

These features need more review than simple plates.

For Delrin gears or moving components, the supplier may review:

  • bore datum
  • tooth form
  • tooth burrs
  • runout
  • concentricity
  • mating gear material
  • backlash
  • hub thickness
  • shaft fit
  • inspection method
  • production quantity
  • wear condition

A gear drawing should clearly identify which features control function.

The bore, tooth profile, and mating relationship may matter more than the outer cosmetic shape.

If a buyer only sends a 3D model without a 2D drawing, the supplier may not know which dimensions are critical.


Snap Fits and Flexible Features

Delrin can be used for clips, latches, and snap-fit parts, but these features need design review.

Snap-fit performance depends on:

  • arm thickness
  • root radius
  • flex direction
  • assembly force
  • repeated use
  • edge condition
  • notch sensitivity
  • material grade
  • molding vs machining direction
  • surface scratches
  • operating temperature

Delrin can also be sensitive to sharp internal corners in bending, impact, or repeated assembly applications. A sharp milled corner can act as a stress riser, especially at the root of a snap-fit arm, internal pocket, latch, clip, or thin flexible feature.

For Delrin snap-fit arms and flexible features, the supplier should review internal corner radius, tool marks, edge condition, part orientation, and repeated assembly requirement. A larger internal fillet radius may help reduce local stress concentration and improve the chance of stable long-term use.

The goal is not to make every Delrin corner large. The goal is to avoid placing a sharp machined corner exactly where the part needs to flex or absorb load.

Machined snap-fit features may not behave exactly like molded snap fits.

A machined sharp internal corner can increase stress concentration. A burr or tool mark near the root may reduce reliability.

For snap-fit Delrin features, the drawing should define whether the feature is functional, how often it is assembled, and what load or deflection it must survive.


Moisture and Temperature Effects

Delrin generally absorbs less moisture than nylon, but it is not completely unaffected by environment.

For most normal CNC applications, Delrin is a relatively stable plastic. However, parts with tight dimensions, long storage, changing humidity, or precision fits may still need environmental review.

Temperature can also affect dimensions.

A Delrin part measured immediately after machining may not be in the same condition as the part during final use.

The supplier may review:

  • inspection temperature
  • cooling time after machining
  • storage condition
  • humidity exposure
  • assembly environment
  • operating temperature
  • mating material expansion

This does not mean every Delrin part needs special conditioning.

It means tight-tolerance plastic parts should be reviewed under realistic use and inspection conditions.


Burrs and Edge Quality

Delrin usually cuts cleaner than many soft plastics, but burrs can still appear.

Burrs are common around:

  • drilled holes
  • milled slots
  • thread starts
  • thin edges
  • gear teeth
  • parting faces
  • pocket exits
  • small internal corners

Burr control depends on:

FactorWhy It Matters
Tool sharpnessDull tools push and smear plastic
Feed and speedPoor cutting conditions can create rough edges
Drill exit supportUnsupported exits can break out or burr
Toolpath directionExit direction affects burr location
Edge radiusSharp edges are more burr-sensitive
Deburring methodAggressive deburring can damage functional edges
Surface requirementCosmetic or sliding surfaces need extra care

A drawing should mark burr-sensitive edges when they affect assembly, sealing, sliding, or appearance.

For more on burr and edge quality, see our What Is Deburring? CNC Edge Quality, Burr Removal, and Inspection guide.


Surface Finish for Delrin CNC Parts

Delrin can produce good machined surfaces, but surface finish should still match the part function.

A surface finish requirement may be important for:

  • sliding contact
  • low-friction movement
  • bushings
  • gears
  • guide surfaces
  • cosmetic faces
  • sealing or contact faces
  • visible customer-facing parts

Surface finish depends on:

  • tool sharpness
  • feed rate
  • cutter path
  • tool marks
  • material grade
  • clamping stability
  • chip control
  • post-machining handling
  • inspection standard

A note that only says “smooth finish” may not be enough.

Better drawing notes may say:

  • which surfaces are visible
  • which surfaces are sliding
  • whether tool marks are acceptable
  • whether Ra value is required
  • whether scratches are allowed
  • whether deburring must avoid rounding a functional edge

For broader finish planning, see our CNC surface finishes guide.


Inspection Challenges for Delrin CNC Parts

Delrin inspection is usually easier than PTFE inspection, but it still needs proper planning.

Plastic parts can be affected by:

  • measurement force
  • part support
  • temperature
  • humidity
  • clamping history
  • thin-wall flexibility
  • thread gauge force
  • bore gauge pressure
  • datum selection
  • cosmetic surface handling

Inspection should focus on function.

A CMM report may be useful for some Delrin parts, but not every feature needs CMM inspection.

For critical Delrin parts, define:

FeatureInspection Review
Precision boreBore gauge method, roundness, and inspection pressure
Gear boreConcentricity, runout, and datum
Sliding surfaceSurface finish, burrs, and flatness
ThreadGauge method and assembly check
Thin wallFinal inspection after unclamping
Snap featureVisual check and functional fit
Critical hole patternDatum references and position tolerance
Cosmetic surfaceVisual standard and handling marks

For inspection planning, see our CMM inspection for CNC parts guide.


Delrin vs PTFE, Nylon, and PEEK

Delrin is often compared with PTFE, nylon, and PEEK because all four are common engineering plastics.

MaterialMain StrengthMain Risk
Delrin / POMGood machinability, low friction, dimensional stabilityGrade confusion, burrs, threads, press fits, and temperature effects
PTFEVery low friction, chemical resistance, sealing, insulationLow stiffness, creep, clamping deformation, and inspection variation
NylonToughness, impact resistance, wear behaviorMoisture absorption and dimensional change
PEEKHigh temperature, strength, chemical resistance, premium performanceHigh material cost, tool wear, grade-specific behavior

Delrin is often a strong choice for mechanical plastic parts when the application does not require extreme temperature, chemical resistance, or ultra-low friction.

PTFE may be better for low-friction sealing and chemical resistance.

PEEK may be better for high-temperature and high-performance applications.

Nylon may be better for impact and toughness, depending on moisture and application conditions.

The best material depends on geometry, load, temperature, chemical exposure, wear, inspection, and cost target.


RFQ Checklist for Delrin CNC Machining

Before requesting a Delrin CNC machining quote, provide information that helps the supplier review material, tolerance, machining route, and inspection risk.

RFQ ItemWhat to Provide
2D drawingDimensions, tolerances, datums, notes, surface finish, and critical features
3D modelSTEP / STP / IGES / X_T file
Material gradeDelrin, POM homopolymer, POM copolymer, acetal, color, and certificate needs
QuantityPrototype, low-volume batch, or repeat production
Critical featuresBores, threads, gears, sleeves, snap fits, sliding surfaces, or thin walls
Mating partsShaft, screw, gear, bearing, housing, insert, or assembly contact
Fit requirementClearance fit, sliding fit, press fit, running clearance, or functional gap
Surface finishRa value, sliding surface requirement, cosmetic standard, or scratch limit
Thread requirementThread size, engagement length, mating screw, and assembly torque if known
Application conditionLoad, speed, temperature, humidity, wear, friction, or chemical exposure
Inspection requirementCMM, bore gauge, thread gauge, runout check, visual inspection, or report
Packaging needProtection for cosmetic faces, gears, threads, and sliding surfaces
Delivery targetHelps review process route, inspection timing, and production planning

A good RFQ does not only say “Delrin part.”

It explains which features must function correctly after machining, inspection, shipping, and assembly.

RFQ checklist for Delrin CNC machining showing 2D drawing, 3D model, POM material grade, color, quantity, critical bores, threads, gears, sleeves, snap fits, sliding surfaces, mating parts, surface finish, inspection method, delivery target, and packaging needs.

Practical Drawing Notes for Delrin Parts

Example 1: Precision Bushing

Bore is functional sliding surface. Supplier to review bore size, roundness, inspection pressure, and mating shaft fit before production.

This is better than only marking a tight bore tolerance.

Example 2: Delrin Thread

Internal thread is used for repeated assembly. Supplier to review engagement length, mating screw, burr control, and assembly torque before machining.

This helps prevent treating plastic threads like metal threads.

Example 3: Gear Feature

Gear bore is datum-critical. Supplier to review bore-to-tooth relationship, runout, burr control, and inspection method.

This helps protect functional motion.

Example 4: Snap-Fit Arm

Snap-fit feature is functional. Supplier to review root radius, tool marks, edge condition, and repeated assembly requirement.

This reduces risk around sharp internal corners and stress concentration.

Example 5: Sliding Surface

Marked face is sliding surface. Supplier to review surface direction, tool marks, burrs, and mating material before production.

This connects surface finish with the real part function.


Packaging and Handling for Delrin Machined Parts

Delrin is tougher than PTFE, but packaging still matters when the part has functional or cosmetic surfaces.

Packaging should be reviewed when the part has:

  • gears
  • threads
  • polished faces
  • cosmetic surfaces
  • precision bores
  • sliding surfaces
  • snap-fit arms
  • thin edges
  • clean assembly requirements

Possible packaging steps include:

  • individual wrapping
  • soft separators
  • avoiding heavy stacking
  • protecting thin features
  • separating metal and plastic parts
  • keeping burr-sensitive parts separated
  • protecting visible surfaces
  • labeling critical faces if needed

Packaging does not improve machining quality, but it helps protect the condition achieved during machining and inspection.


Rapid Efficient Support for Delrin CNC Machining

Rapid Efficient can review custom Delrin and POM CNC machined parts according to material grade, geometry, tolerance, surface requirement, and inspection needs.

We can review:

  • Delrin or POM material requirement
  • CNC milling or turning route
  • bore and sleeve stability
  • thread design
  • gear or sliding feature risk
  • snap-fit geometry
  • thin-wall features
  • burr control
  • surface finish
  • inspection method
  • packaging needs
  • prototype or low-volume production plan

For broader custom part manufacturing, see our CNC machining services page.

If your Delrin part has threads, bushings, gears, sliding surfaces, snap-fit arms, or tight-tolerance bores, send the 2D drawing, 3D model, material grade, quantity, and application notes before quotation. We can review the part and suggest a suitable machining route.


Buyer Questions About Delrin CNC Machining

Is Delrin easy to CNC machine?

Delrin usually machines cleanly and is often easier to control than many softer plastics. However, thin walls, small threads, press fits, snap fits, burrs, and inspection requirements still need review.

Is Delrin the same as POM?

Delrin is commonly used as a trade name for acetal/POM material, but buyers should not assume every POM grade is identical. The RFQ should specify whether Delrin brand material, POM homopolymer, POM copolymer, color, or certification is required.

Can Delrin hold tight tolerances?

Delrin can hold good tolerances for suitable plastic part features, but tolerance depends on geometry, wall thickness, material grade, clamping, temperature, moisture condition, machining strategy, and inspection method.

Can Delrin parts have threads?

Yes, Delrin parts can have threads. Thread size, engagement length, mating screw, assembly torque, and repeated assembly should be reviewed. Some designs may need inserts or larger thread engagement.

Is Delrin good for bushings and gears?

Delrin is often used for bushings, gears, rollers, and sliding parts because it has useful low-friction and wear behavior. Bore stability, runout, burr control, surface finish, and mating material should still be reviewed.

What files should I send for Delrin CNC machining?

Send a 2D drawing, 3D model, material grade, color, quantity, critical features, tolerance notes, surface finish requirements, mating parts, application conditions, inspection needs, and packaging requirements.

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