Aluminum vs Stainless Steel CNC Machining: Cost Guide

Aluminium and stainless steel account for most machined metal parts, and the choice between them is usually made on strength alone. That is the expensive way to decide: the material also sets cutting speed, tool consumption, the number of setups a thin wall survives and the finishing that follows the last cut.

This guide compares the two on values you can verify — specification minimums from ASTM, physical constants from published datasheets, and two worked calculations you can repeat with your own dimensions. It does not quote per-part prices, because a price given without a drawing, a quantity and a tolerance band is marketing rather than information.

Key takeaways

  • The two families are not rated on the same machinability scale. MatWeb rates 6061-T6 at 50% against 2011-T3 = 100% for wrought aluminium, while steels are rated against AISI B1112 = 100%. Comparing those numbers directly, as most buyer guides do, is meaningless.
  • Stainless takes longer to cut for three measurable reasons: thermal conductivity near 16 W/m·K versus 167 W/m·K for 6061-T6, austenitic work hardening, and a modulus around 193 GPa that changes how thin sections respond to tool pressure.
  • Specification minimums are what a material certificate is tested against. ASTM A240/A240M guarantees 515 MPa tensile for 304 and 485 MPa for 316L — not the higher “typical” numbers on distributor datasheets.
  • Aluminium expands about 36% more per degree than 304 (23.6 vs 17.3 µm/m·°C), so a 100 mm aluminium feature grows 0.024 mm across a 10 °C shop swing — wider than the whole ±0.01 mm ISO 2768-m band.
  • Stainless is mandatory rather than preferable wherever ASTM F138 implant material or 21 CFR Part 177 food-contact compliance is written into the drawing. There, cost comparison does not apply.
  • MW+ machines both families on the same floor across 60+ CNC machining centres and 70+ stocked materials, so a side-by-side quote reflects real cycle time rather than a shop preference.

What do the published specifications actually say?

Buyers routinely miss one distinction. A datasheet “typical” value describes what a mill usually achieves; a specification minimum is what the material is contractually guaranteed to deliver, and it is what a mill certificate is tested against. Write 304 on a drawing and the certified values are the A240 or ASTM A276 minimums.

The table keeps the two apart. Aluminium figures are typical for the temper; the governing specifications are ASTM B221 for extruded bar and rod and ASTM B209 for sheet and plate, whose minimums vary with product form and section thickness.

Property (units)6061-T6 aluminium7075-T6 aluminium304 stainless316L stainless
Density (g/cm³)2.702.818.008.00
Tensile strength (MPa)310 typical572 typical515 minimum, A240485 minimum, A240
Yield strength, 0.2% (MPa)276 typical503 typical205 minimum, A240170 minimum, A240
Elastic modulus (GPa)68.971.7193193
Thermal conductivity (W/m·K)16713016.216.3
Thermal expansion (µm/m·°C)23.623.617.316.0
Yield strength ÷ density (kN·m/kg)1021792621
Corrosion behaviourOxide film; anodise for serviceWeaker than 6061; usually coatedSelf-repairing passive filmMolybdenum-bearing, chloride resistant
Stainless mechanical values are the minimums specified in ASTM A240/A240M. Aluminium values are typical datasheet figures for the temper — see the MatWeb record for 6061-T6. Physical constants are typical mill values and vary slightly between sources.

Two rows do most of the work. The specific-strength row explains why aerospace keeps choosing aluminium although stainless is stronger in absolute terms: per unit of mass carried, 7075-T6 delivers roughly seven times what 316L does. The thermal conductivity row explains almost everything about machining cost, and deserves its own section.

Why does stainless steel take longer to machine?

The heat has nowhere to go

Most of the energy spent shearing a chip becomes heat. At 167 W/m·K, aluminium and its chips carry that heat away quickly. Austenitic stainless sits near 16 W/m·K, about a tenth of that, so heat concentrates at the cutting edge where it does the most damage. That is the largest single driver of the cutting-speed difference, and why stainless work leans on through-tool coolant and conservative depths of cut.

Austenitic grades harden as you cut them

304 and 316L work-harden rapidly. A tool that rubs rather than cuts — a dull edge, too light a feed, a dwell at the bottom of a bore — leaves a hardened layer the next pass must cut through. The classic failure mode is therefore not a snapped tool but a finish that degrades and a dimension that drifts. Stainless punishes hesitant toolpaths in a way aluminium does not.

The chips behave differently

Aluminium produces long, ductile chips that weld to the edge as built-up edge and pack into deep pockets; stainless produces stringy chips that abrade the rake face. Neither is free. Free-machining grades exist on both sides — 2011 and 6262 in aluminium, 303 in stainless — precisely because chip control is worth paying for.

The machinability numbers are on different scales

This is where most published comparisons go wrong. Wrought aluminium is rated against 2011-T3 at 100%, which puts 6061-T6 at 50%. Steels are rated against free-machining AISI B1112 at 100%, which puts 304 in the mid-forties. The two figures look comparable and are not, because they are percentages of different reference materials.

The practical consequence: do not derive cycle time from a machinability index. Derive it from the toolpath, the removal rate your supplier’s CNC milling services actually run for that alloy, and the number of setups the geometry forces.

Which aluminium alloy, and which stainless grade?

“Aluminium” and “stainless” are families, not materials. Within each, grade choice often moves cost and performance more than the family choice does. The table covers the grades that account for most machined work.

GradeFamilyWhy you would specify itWatch out forGoverning specification
6061-T6AluminiumDefault structural grade: good strength, weldable, anodises cleanlySofter than 7075 in bearing areasASTM B221 / B209
7075-T6AluminiumHighest common strength-to-weight; airframe fittings and bracketsPoor weldability, lower corrosion resistance, stress-corrosion sensitivityASTM B221 / B209
2024-T351AluminiumGood fatigue behaviour; damage-tolerant structureCopper-bearing, so corrosion protection is mandatoryASTM B209
5052-H32AluminiumFormed and folded sheet parts, marine exposureLow strength; a poor choice for heavy millingASTM B209
303StainlessFree-machining; shafts, fittings, high-quantity turned partsSulphur addition reduces corrosion resistance and weldabilityASTM A276
304 / 304LStainlessGeneral-purpose corrosion resistance; food and architectural workChloride pitting; work hardens aggressivelyASTM A240 / A276
316 / 316LStainlessMolybdenum gives chloride and acid resistance; marine and pharmaSlower to cut than 304; higher stock costASTM A240 / A276
17-4 PH, H900Stainless1310 MPa minimum tensile with stainless corrosion behaviourHeat-treat sequencing and distortion control add lead timeASTM A564/A564M
Strength figures quoted are specification minimums for the stated condition.

Two substitutions are worth knowing. If a turned stainless part is quoting painfully and the drawing demands neither weldability nor aggressive corrosion service, moving from 304 to 303 often shifts cost more than any design change. And if an aluminium part is failing on wear rather than strength, a hard anodic coating usually solves it for less than a jump to stainless would.

Worked example: stock mass and thermal growth

Two calculations show where the cost and the risk actually sit. Both use only the published constants in the table above, so you can repeat them with your own part.

Calculation 1 — how much more stock does stainless consume?

Take a bracket with a finished volume of 48 cm³, machined from a rectangular billet measuring 120 × 80 × 25 mm.

  • Billet volume = 12.0 × 8.0 × 2.5 cm = 240 cm³
  • In 6061-T6 at 2.70 g/cm³: billet mass = 240 × 2.70 = 648 g; finished part = 48 × 2.70 = 130 g; swarf = 518 g
  • In 304 at 8.00 g/cm³: billet mass = 240 × 8.00 = 1,920 g; finished part = 48 × 8.00 = 384 g; swarf = 1,536 g
  • Purchased mass ratio = 1,920 ÷ 648 = 2.96×

The buy-to-fly ratio is identical at 5:1, because that is a property of the geometry, not the alloy. But the mass you purchase, freight and sell back as swarf is almost three times greater in stainless before a minute of spindle time is counted. Shrinking the billet envelope, not switching alloy, is usually the first lever a design review pulls.

Calculation 2 — does shop temperature eat your tolerance?

Thermal growth of a feature is ΔL = L × α × ΔT. Take a 100 mm bore centre distance and a 10 °C swing between a cold morning and a warm afternoon on the shop floor.

  • 6061-T6, α = 23.6 µm/m·°C: ΔL = 0.100 m × 23.6 × 10 = 23.6 µm, or 0.0236 mm
  • 304 stainless, α = 17.3 µm/m·°C: ΔL = 0.100 m × 17.3 × 10 = 17.3 µm, or 0.0173 mm

MW+ holds general machining to ±0.01 mm against ISO 2768-m, and both results exceed that band. The part is not impossible; the inspection temperature simply has to be specified, and aluminium is about 36% more sensitive to getting it wrong. That is why metrology rooms are held at 20 °C. If you work to ±0.005 mm or tighter, state the reference temperature on the drawing.

How do tolerance and surface finish differ between the two?

Both materials reach the same tolerance bands; what differs is the effort required and the second-order effects. Aluminium gets there faster but moves more with temperature and clamping. Stainless is dimensionally steadier but demands sharper tooling and more patience to hold a fine finish without work-hardening the surface.

RequirementAluminium: what it takesStainless: what it takesMW+ capability
General toleranceStraightforward; watch fixture-induced distortion in thin sectionsStraightforward; rigid workholding essential±0.01 mm to ISO 2768-m
Precision bandTemperature control and light finishing passesSharp finishing tools, no dwell at depth±0.005 mm
Tightest achievableClimate-controlled inspection requiredStress relief between roughing and finishing±0.001 mm
As-machined finishAchieved readily; watch built-up edgeAchieved readily; chip control mattersRa 3.2 µm
Fine-machined finishPolished-flute tooling, high surface speedSlower feeds, positive rake geometryRa 0.4 µm
Polished finishSoft, so easy to polish and easy to scratchTakes and holds a mirror finish wellRa 0.1 µm
Geometric calloutsFlatness sensitive to residual stress in plateBetter form stability after finishingPer ASME Y14.5

One note on residual stress: thick aluminium plate carries locked-in stress from rolling and quenching, so a part that removes material asymmetrically bows when it leaves the vice. Flag a flatness callout on a large, thin aluminium part at quotation — the answer is a rough, stress-relieve, finish sequence, and it changes the schedule. That conversation belongs in any serious review of CNC machining quality control requirements.

What finishing and documentation does each material need?

The comparison flips after the last cut. Stainless is usually finished by doing very little: passivation restores the chromium-oxide film that machining disturbs and the part is done. Aluminium almost always needs a coating, because bare aluminium in service scuffs, galls and stains.

RequirementAluminium routeStainless routeReference document
Corrosion protectionAnodise Type II, or chemical conversion coatingPassivate; no coating needed in most serviceASTM A967 for passivation
Wear surfacesHard anodise Type III builds a thick, hard oxideNitride, or select a hardenable grade such as 17-4 PHASTM A564 for precipitation-hardening bar
Cosmetic appearanceAnodise in colour; bead blast then anodiseBead blast, brush or electropolishSurface texture to ISO 21920-2 (superseding ISO 4287)
Food contactRarely acceptable bare; usually coated or a different material304 or 316 with a defined, cleanable finish21 CFR Part 177
Implantable or surgicalNot applicableImplant-grade bar to a controlled compositionASTM F138, UNS S31673
TraceabilityMill certificate to B221 or B209Mill certificate to A240 or A276Supplied with every MW+ order

Every MW+ order ships with a certificate of conformity, a CMM inspection report and material certificates, whichever material you chose; first article inspection to AS9102 and PPAP Level 3 are available on request, quoted per programme. Where a drawing calls a regulated composition, the material certificate is what proves it, so it belongs in the RFQ rather than in a post-delivery argument.

When is aluminium the wrong call, and when is stainless?

Comparison guides usually end by recommending aluminium on cost. That is often right and sometimes expensive. Here is the honest counter-case in both directions.

When aluminium is wrong despite being cheaper to cut

  • Threaded holes that see repeated assembly. Aluminium threads gall and strip; thread inserts and the labour to fit them usually erase the material saving.
  • Chloride environments. Anodising is a coating, and a coating has edges and scratches. In marine or de-icing-salt service, 316 does something anodised 6061 cannot.
  • Sustained heat. 6061-T6 loses temper above roughly 150–200 °C, so near an exhaust or a motor the T6 condition is not durable.
  • Stiffness-critical parts. At 68.9 GPa against 193 GPa, aluminium deflects roughly three times as much for the same section; adding section to compensate can cancel the weight advantage.
  • Regulated compositions. If a standard names the material, the comparison is already over.

When stainless is wrong despite being stronger

  • Anything where mass is the design constraint. Handheld, airborne and rotating parts pay for mass forever; the specific-strength row is the whole argument.
  • Heat sinking. A stainless heat sink is close to a contradiction: 16 W/m·K means the part will not move heat.
  • Large, mostly-air structures. High removal volume is where stainless cycle time bites hardest; a heavily pocketed frame is an aluminium part in almost every case.
  • Fast iterative prototyping. With three revisions expected before freeze, proving geometry in aluminium and switching material at release is the cheaper learning path — see our guide to low-volume cost and speed trade-offs.
  • Non-magnetic requirements after cold work. Austenitic stainless is nominally non-magnetic but turns slightly magnetic after heavy cold work. Aluminium never does.

How do you brief a supplier so both quotes are comparable?

For a genuine side-by-side comparison rather than two quotes built on different assumptions, the RFQ has to pin down the variables that move price. This is what a machining engineer needs before the numbers mean anything.

What to stateWhy it changes the quoteCommon omission that forces a re-quote
Exact grade and temper or condition303 and 304, 6061-T6 and T651, H900 and H1150 all cut differentlyWriting only “stainless” or “aluminium”
Quantity and expected repeatFixturing and programming amortise across the batchAsking for one piece when 500 are planned
Tolerance schemeA blanket tight tolerance on every feature multiplies inspectionTight tolerances applied to non-functional features
Surface finish by surfaceRa 0.4 µm everywhere costs far more than Ra 0.4 µm on two facesA single global finish note
Finishing and colourAnodising adds a process step and an external lead-time dependencyFinish decided after the quote
Documentation requiredFAI to AS9102 or PPAP Level 3 is a programme cost, not a line itemRequesting full PPAP after the order is placed
Reference temperature for inspectionDecides how tight tolerances are verified, especially in aluminiumSilence, which later becomes a dispute

MW+ returns quotes within 24 hours from STEP, IGES, DXF, DWG, SolidWorks or PDF files. Standard prototypes run 3–5 business days and volume production 10–15 business days, with 48-hour express available and no minimum order quantity. Ask explicitly for both materials priced on the same geometry — it is the only way to see the real delta. The process envelope is set out under CNC machining services, and turned parts in 303 or 6262 fall under CNC turning services.

Frequently asked questions

Is aluminium always cheaper than stainless steel for a machined part?

No. Aluminium is faster to cut and lighter to buy, which usually wins on stock and machining cost. But if the aluminium version then needs hard anodising, thread inserts and corrosion protection the stainless version does not, finished cost can converge or invert. Compare finished, coated, inspected parts, not billets.

Why do two suppliers quote very different stainless prices from the same drawing?

Usually because one read the tolerance and finish callouts and the other did not. A blanket ±0.01 mm on a stainless part with twenty features is a different job from the same part with three toleranced features. Ask each supplier what cycle time and how many setups they assumed; the gap is nearly always there, not in the material.

Can I prototype in aluminium and produce in stainless?

Yes, and it is often the right sequence for validating geometry — but the aluminium prototype is not a dimensional proxy. Different expansion, springback and residual stress mean some features need re-tuning. Budget a first article inspection on the production material at that transition.

Does 316L genuinely cost more than 304, or is that a markup?

It is genuine. 316L carries roughly 2–3% molybdenum that 304 does not, and molybdenum is the expensive element in the recipe. Specify 316L when you need chloride or acid resistance; specify 304 when you do not, and keep most of the corrosion performance for less.

What tolerance can I actually hold in each material?

Both reach ±0.001 mm on suitable features in a controlled environment. For most parts the realistic answer is ±0.01 mm to ISO 2768-m generally, tightening selected features to ±0.005 mm where function demands it. At the tight end the limiting factor is temperature in aluminium, residual stress and tool condition in stainless.

Will an overseas supplier’s material certificate survive an audit?

It survives if it traces to a recognised specification and the supplier’s quality system is certified to a standard your auditor accepts. MW+ operates to ISO 9001:2015, AS9100D, ISO 13485, IATF 16949 and NADCAP. Ask for a sample certificate package before the first order rather than after it.

How do I reduce cost without changing material?

In rough order of impact: shrink the billet envelope, remove tolerances from features that do not need them, cut the number of setups, apply fine finishes only where they are functional, and consolidate small orders into one release. Our guide to tool wear by material type and the wider CNC materials reference cover the mechanisms.

Where does titanium sit against both?

Between them on weight, above both on cost: stainless-class strength at roughly 60% of the density, but slow to cut and hard on tooling. See titanium machining cost factors, or PEEK cost and performance for the non-metal route.

To have both materials priced on the same geometry with a DFM review attached, request a CNC machining quote; an engineer responds within 24 hours. Parts held to tight geometric callouts are covered under CNC precision parts.

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