top of page
Casting processes · Lost foam casting

Lost foam casting: the foam vanishes, the part remains.

Trushape is a lost foam casting foundry in India making complex, single-piece castings from 3.5 to 90 kg (7.7 to 198 lb) in steel, iron, aluminium and other alloys, with no cores and no parting lines, held to ISO 8062-3 DCTG 11 to 14 and machined and tested under one roof for buyers across North America and Europe.

Watch the foam become metal Exporting to North America and Europe
ISO 8062-3 DCTG 11 to 14 3.5 to 90 kg (7.7 to 198 lb) No cores, no parting lines ISO 9001, 14001, 45001, 13485
  • Grey iron EN-GJL-250
  • Ductile iron EN-GJS-400-15
  • EN8 and C45
  • 4140 and 42CrMo4
  • 4340 and EN24
  • 304, 316 and 410
  • CF8 and CF8M
  • LM25 and A356
  • LM6 aluminium
  • 3.5 to 90 kg
  • No cores, no parting lines
  • ISO 8062-3 DCTG 11 to 14
  • EN 10204 3.1 certificates
At a glance

What is lost foam casting?

Lost foam casting, also called evaporative pattern casting (the Lost-Foam-Verfahren in German, moulage à mousse perdue in French), is a casting process in which molten metal is poured straight onto a foam pattern of the part, coated with a thin refractory layer and packed in loose, unbonded sand. The foam vaporises as the metal arrives and the metal takes its exact place, so complex parts are cast in one piece, with no cores and no parting line.

Trushape Precision Castings is an ISO 9001, ISO 14001, ISO 45001 and ISO 13485 certified lost foam casting foundry in Bhavnagar, Gujarat, India. We cast parts from 3.5 to 90 kg (7.7 to 198 lb) in carbon, low-alloy, stainless and tool steels, grey and ductile irons, and aluminium, copper, nickel and cobalt alloys, hold ISO 8062-3 DCTG 11 to 14, and heat-treat, CNC machine and test them under one roof for buyers across the United States, Canada, Mexico, the United Kingdom and the European Union.

90kg
Largest lost foam casting
0
Cores to make or set
24+
Years casting
4
ISO certifications
The lost foam process

How lost foam casting works, in eight steps

Follow one manifold from polystyrene beads to a finished casting. The pattern becomes the mould, the foam becomes gas and the metal takes its place, all under one roof in Bhavnagar.

Step 01 · Beads

Bead pre-expansion

Polystyrene beads, about the size of grains of sugar, are heated with steam in a pre-expander. The blowing agent inside each bead boils, and the beads swell many times over into light, closed-cell foam, then rest to stabilise.

  • Expanded polystyrene (EPS) beads
  • Bead size sets the pattern's surface
Step 02 · Pattern

Pattern moulding

The beads are blown into a metal tool shaped like the part, plus its shrinkage allowance, and fused with steam into a solid foam pattern. For samples, patterns can instead be cut from foam block and glued in sections.

  • One tool makes pattern after pattern
  • Prototype patterns cut from block
Step 03 · Cluster

Cluster assembly

The pattern is glued to a foam sprue and pouring cup. Smaller patterns can share one sprue as a cluster, so several parts are cast in a single pour.

  • Foam gating, glued in place
  • Several parts per pour when they fit
Step 04 · Coat

Refractory coating

The cluster is dipped in a water-based ceramic slurry and dried. The thin coating becomes the mould surface: strong enough to hold the sand back, and permeable, so the gas from the foam can escape through it.

  • The coating sets the surface finish
  • Permeable, so gas escapes
Step 05 · Sand

Sand and compaction

The coated cluster is stood in a flask and dry, unbonded sand is poured around it while the flask vibrates. The sand flows into every passage and packs tight, with no binder and no mould halves.

  • No binder, no parting line
  • Sand fills the internal passages
Step 06 · Pour

Pour and vaporisation

Molten metal from our induction furnaces is poured straight onto the foam. At the metal front the foam flashes to gas and escapes through the coating into the sand, and the metal takes its exact place. Each heat is checked by spectrometer.

  • The pattern stays in the mould during the pour
  • Chemistry verified per heat, heat number recorded
Step 07 · Shake-out

Shake-out

Once the metal has solidified, the casting is lifted straight out of the loose sand, which simply runs off it: one of the cleanest shake-outs in the foundry. There is no mould to break, and the sand is cooled, screened and used again.

  • No mould or cores to break out
  • Unbonded sand reused
Step 08 · Finish

Finishing and inspection

The sprue is cut off, then castings are shot blasted, heat-treated, CNC machined and inspected to your drawing, all in-house, so parts leave ready to assemble.

  • Heat treatment and 8 CNC machines in-house
  • CMM, NDT and an EN 10204 3.1 certificate
The lost foam pour

Pour it and watch the foam vanish

In lost foam there is no cavity to fill. The foam pattern stays in the sand until the metal reaches it, then vaporises, and the metal takes its place, passages and all. Drag the pour, pick a stage, or press play.

Stage 01 · Ready

Foam in sand

The coated foam pattern sits in a flask of loose, dry sand, compacted by vibration. There is no cavity: the foam fills the space the metal will take.

Part consolidation

From a welded assembly to one casting

Lost foam casts in one piece what is often cut, bent, welded and bolted together. Switch between the two ways of making this example manifold, turn on X-ray to see the passages the foam forms, and drag to turn it.

Parts to make and fit
101
Welds to make and inspect
120
Internal passages
Bent tubeCast in
  • No weld seams or gaskets to seal, inspect or leak
  • No cutting, bending, jigs or fit-up in assembly
  • One part number, one material certificate, one inspection record

An illustration of a typical conversion, counted from the parts shown. Whether an assembly can become one casting depends on its size, walls and alloy, and we review each drawing before we quote.

Tolerance explorer

How accurate is lost foam casting?

Lost foam casting typically holds ISO 8062-3 grades DCTG 11 to 14, with no parting line or core shift to add to them. Slide to your nominal dimension and pick a grade to see the total tolerance it allows as-cast.

ISO 8062-3 total casting tolerances in millimetres for grades DCTG 11 to 14, by nominal dimension
Nominal size (mm)Nominal size (in)DCTG 11DCTG 12DCTG 13DCTG 14
Up to 10Up to 0.392.84.2n/an/a
10 to 160.39 to 0.633.04.4n/an/a
16 to 250.63 to 0.983.24.66.08.0
25 to 400.98 to 1.573.65.07.09.0
40 to 631.57 to 2.484.05.68.010.0
63 to 1002.48 to 3.944.46.09.011.0
100 to 1603.94 to 6.305.07.010.012.0
160 to 2506.30 to 9.845.68.011.014.0
250 to 4009.84 to 15.756.29.012.016.0
400 to 63015.75 to 24.807.010.014.018.0
630 to 1,00024.80 to 39.378.011.016.020.0

Total casting tolerance in millimetres to ISO 8062-3. When the tolerance is symmetric, half of it applies either side of the nominal dimension, so DCTG 12 at 100 to 160 mm means ±3.5 mm. n/a: ISO 8062-3 gives no general value for that grade at that size, so the dimension needs its own tolerance on the drawing. The grade for each part is agreed at drawing review, and tighter tolerances on critical features are reached by CNC machining.

Full ISO 8062-3 and VDG P690 tolerance tables
Choosing a process

Lost foam vs no-bake, green sand, shell molding and investment casting

Every route has a sweet spot. Pick a process to raise its profile in 3D and drag to turn the chart. The scores are relative and indicative; the right choice always depends on shape, size, volume, alloy and tolerance.

Best for complex parts in one piece, 3.5 to 90 kg

Lost foam casting

A foam pattern in loose, unbonded sand forms internal passages, undercuts and curves with no cores and no parting line, so assemblies become single castings and machining falls.

  • ISO 8062-3 DCTG 11 to 14
  • No cores, no mould parting line
  • 3.5 to 90 kg (7.7 to 198 lb)
  • Almost any alloy, except low-carbon grades
Best for heavier, lower-volume parts

No-bake sand casting

Chemically bonded sand sets at room temperature around a pattern, so tooling is simple and cheap, but passages need cores and the mould has a parting line. We run no-bake sand from 3 to 40 kg.

  • ISO 8062-3 DCTG 11 to 14
  • Low tooling cost
  • 3 to 40 kg at Trushape
Best for low-cost moulds and large, simpler parts

Green sand casting

Moulds of sand bonded with clay and water are cheap and quick to make and suit very large castings, but surfaces are rougher and every passage needs a core. It is a common alternative we compare against, not a line we run.

  • Lowest pattern and mould cost
  • Sand cores for every passage
  • Very large and heavy castings
Best for accurate steel parts at volume, 5 to 60 kg

Shell molding

A thin, rigid resin sand shell made on a heated metal pattern gives smoother, more accurate castings, with cores for passages and fast cycles for medium to high volumes.

  • ISO 8062-3 DCTG 8 to 12
  • 5 to 60 kg at Trushape
  • Metal patterns for long runs
Best for complex, precise parts up to 30 kg

Investment casting

A ceramic mould around an expendable wax pattern gives the finest detail and the tightest tolerances of any casting process, near net shape, in almost any alloy.

  • CT5 to CT7, VDG P690
  • Ra 3.2 to 6.3 µm (125 to 250 µin) as-cast
  • 0.003 to 30 kg (0.1 oz to 66 lb)
Lost foam casting compared with no-bake sand, green sand, shell molding and investment casting
CriterionLost foamNo-bake sandGreen sandShell moldingInvestment casting
Typical toleranceISO 8062-3 DCTG 11 to 14DCTG 11 to 14Wide, depends on moulding methodDCTG 8 to 12CT5 to CT7
Internal passagesFormed by the foam, no coresResin sand coresSand coresResin sand coresUsually no cores; ceramic cores for deep passages
Mould parting lineNoneYesYesYesNone
Weight at Trushape3.5 to 90 kg3 to 40 kgNot offered5 to 60 kg0.003 to 30 kg
AlloysAlmost any, except low-carbon gradesMost ferrous and non-ferrousMost ferrous and non-ferrousCarbon, low-alloy, stainless and tool steels, copper alloysAlmost any
ToolingFoam pattern tool, moderate cost; none for patterns cut from blockLowLowMetal patterns, moderate costModerate; none with 3D-printed patterns
Best volumesMedium to high; samples from cut patternsLow to mediumLow to very highMedium to highPrototypes to high volume
Alloy selector

Lost foam alloys, matched to the job

Pick what your part needs most. The deck turns to the alloy we would start with, with ASTM and EN equivalents, relative ratings and the parts it usually goes into.

Need: Economical strength

Carbon steel

EN8 and C45

Corrosion
Strength
Heat
Wear
AISI
1040, 1045
EN
C45 (1.0503), EN8 (080M40)
UNS
G10400, G10450

Typical parts: brackets, housings, flanges and general engineering parts.

Economical and easy to machine, with good strength after normalising.

Need: High strength

Chromium-molybdenum steel

4140 / 42CrMo4

Corrosion
Strength
Heat
Wear
AISI
4140
EN
42CrMo4 (1.7225), EN19
UNS
G41400

Typical parts: levers, couplings, hydraulic bodies and drive parts.

Through-hardening strength, quenched and tempered in-house to your specification.

Need: Toughness under load

Nickel-chromium-molybdenum steel

4340 / EN24

Corrosion
Strength
Heat
Wear
AISI
4340
EN
34CrNiMo6 (1.6582), EN24 (817M40)
UNS
G43400

Typical parts: heavy-duty housings, off-highway and rail parts.

High strength with toughness in heavier sections, for parts that take shock loads.

Need: Hard wearing surface

Cold-work tool steel

D2 / 1.2379

Corrosion
Strength
Heat
Wear
AISI
D2
EN
X153CrMoV12 (1.2379)
UNS
T30402

Typical parts: wear plates, forming tools, liners and cutting edges.

A high-carbon, high-chromium steel that hardens right through for wear resistance.

Need: General corrosion

Austenitic stainless steel

304 and 316

Corrosion
Strength
Heat
Wear
ASTM
A351 / A743 CF8, CF8M
EN
1.4308, 1.4408
UNS
J92600, J92900

Typical parts: pump bodies, valve bodies, food and chemical parts.

The default choice for corrosion resistance. Low-carbon L grades are not advisable by lost foam, so we cast those by investment casting or shell molding.

Need: Hardness and corrosion

Martensitic stainless steel

410 / CA15

Corrosion
Strength
Heat
Wear
ASTM
A743 CA15 (410 type)
EN
1.4011
UNS
J91150

Typical parts: pump and valve wear parts.

Hardenable stainless for wear, with moderate corrosion resistance.

Need: Damping and machinability

Grey cast iron

EN-GJL-250 / GG25

Corrosion
Strength
Heat
Wear
ASTM
A48 Class 35 to 40
EN
EN-GJL-250 (EN-JL1040)
DIN
GG25

Typical parts: gearbox and compressor housings, manifolds and motor frames.

Casts freely into thin, complex shapes, machines well and damps vibration.

Need: Strength with ductility

Ductile (SG) iron

EN-GJS-400-15 / GGG40

Corrosion
Strength
Heat
Wear
ASTM
A536 60-40-18
EN
EN-GJS-400-15 (EN-JS1030)
DIN
GGG40

Typical parts: pump bodies, hydraulic manifolds, valve bodies and agricultural parts.

Spheroidal graphite gives toughness close to steel with the castability of iron.

Need: Light weight

Aluminium-silicon-magnesium

LM25 and A356

Corrosion
Strength
Heat
Wear
ASTM
B26 A356.0
EN
EN AC-42000 (LM25), EN AC-42100 (A356)
UNS
A13560

Typical parts: intake manifolds, cylinder heads, housings and brackets.

Heat-treatable for strength at about a third of the weight of iron.

Need: Thin, pressure-tight walls

Aluminium-silicon

LM6 / AlSi12

Corrosion
Strength
Heat
Wear
BS
1490 LM6
EN
EN AC-44100 type (AlSi12)
ASTM
A413.0 type

Typical parts: thin-walled housings, marine and pump parts.

A eutectic alloy with excellent fluidity for thin, pressure-tight walls.

Material guide

Lost foam alloys at a glance

A starting point for engineers comparing cast grades across North American and European specifications. Final selection always follows your drawing, service conditions and governing standard.

Lost foam alloy families with common grades, equivalents, reasons for choosing them and typical parts
Alloy familyCommon gradesEquivalentsWhy it is chosenTypical parts
Carbon steelEN8, C45AISI 1040, 1045; 1.0503Economical strength, easy machiningBrackets, housings, flanges
Chromium-molybdenum steel4140, 42CrMo41.7225, UNS G41400Through-hardening strength after quench and temperLevers, couplings, hydraulic bodies
Nickel-chromium-molybdenum steel4340, EN2434CrNiMo6, 1.6582Strength with toughness in heavy sectionsOff-highway and rail parts
Austenitic stainless304, 316 (CF8, CF8M)1.4308, 1.4408Corrosion resistance and toughnessPump and valve bodies, food and chemical parts
Martensitic stainless410 (CA15)1.4011, UNS J91150Hardness and wear with moderate corrosion resistancePump and valve wear parts
Grey cast ironEN-GJL-250 (GG25)ASTM A48 Class 35 to 40Castability, damping and machinabilityGearbox, compressor and motor housings
Ductile (SG) ironEN-GJS-400-15 (GGG40)ASTM A536 60-40-18Strength and ductility with iron's castabilityPump bodies, hydraulic manifolds, valve bodies
Aluminium-silicon-magnesiumLM25, A356EN AC-42000, EN AC-42100Light and heat-treatableIntake manifolds, cylinder heads, housings
Aluminium-siliconLM6EN AC-44100 type, A413.0 typeFluidity for thin, pressure-tight wallsThin-walled housings, marine parts
Tool steelD21.2379 (X153CrMoV12)Wear resistance and hardnessWear plates, forming tools, liners
Copper alloysC95800, C83600CC333G (nickel aluminium bronze), CC491K (LG2 gunmetal)Seawater corrosion and wear resistancePump and valve parts, bearings, marine fittings
Nickel and cobalt alloysM35-1 (Monel 400), Stellite 6UNS N24135, UNS R30006Corrosion, heat and wear resistanceValve trim, pump parts, wear parts

Equivalents are the closest common matches, shown for comparison. We cast to the ASTM, EN, ISO or customer specification on your drawing and verify the chemistry of every heat by spectrometer.

See all 50+ alloy grades

In 1958 a patent showed that metal poured onto a foam pattern makes the foam vanish and takes its exact place. We still cast the same way. Only now the foam is moulded to shape, the sand is loose and vibrated, and every part comes out in one piece, from 3.5 to 90 kg, in steel, iron and aluminium.

Soundness and inspection

Proof that the foam left nothing behind

A lost foam casting is only as good as the pour behind it. We check what matters on site: the chemistry of every heat, the soundness of critical sections and every critical dimension against your drawing.

OES

Spectrometer chemistry

Every heat checked on Spectromaxx and Bruker spectrometers against your grade, carbon included.

MECH

Tensile, hardness, impact

Mechanical properties tested to your material specification.

RT

Radiography

Internal soundness of critical sections, to the acceptance level you specify.

UT

Ultrasonic testing

Internal flaws and wall thickness in heavier sections.

MPI

Magnetic particle

Surface and near-surface flaws on steels and irons.

DPT

Dye penetrant

Surface-breaking cracks and porosity on stainless, aluminium and other non-magnetic alloys.

CMM

Zeiss CMM and Keyence VMM

Dimensional reports on profiles, bores and datums against your drawing.

PRESS

Pressure testing

Leak and pressure checks on manifolds, pump bodies and valve bodies where your plan requires them.

Documentation with every shipment

One record from melt to dispatch, ready for your incoming inspection and your customers' audits. Material certificates are issued to EN 10204 3.1 as standard, and to 3.2 when your order calls for independent inspection.

EN 10204 3.1 and 3.2 certificates Heat treatment records NDT reports Dimensional reports Heat-number traceability
Design for lost foam

Eight ways to get more from a lost foam casting

Good castings start on the drawing board. These are the guidelines our engineers use when they review a new lost foam part. Hover or tap a card to turn it over.

Merge the assembly

Consolidation. Draw the part as one piece. Tubes, brackets, flanges and bosses that are now welded or bolted together can often be cast as a single lost foam casting.

Open the passages

Passages. The foam forms internal passages, but coating must drain from them and sand must fill them. Give each passage an opening wide enough, and we check it at design review.

Keep sections even

Walls. Even walls let the metal front advance steadily as the foam vaporises. Blend thick to thin gradually so heavy sections can feed without shrinkage.

Radius every corner

Corners. Generous fillets help the metal flow and the sand pack around the pattern. Sharp internal corners concentrate stress and can trap gas.

No draft in the mould

Draft. Nothing is drawn out of the sand, so walls need no mould draft. Only moulded foam patterns need a slight draft to leave their tool.

Tighten only what matters

Tolerances. Lost foam holds ISO 8062-3 DCTG 11 to 14. Mark functional features and datums, add stock only where you need it, and we machine the few that need more.

Prototype without a tool

Samples. For samples and small batches, patterns can be cut from foam block and glued in sections, so the first castings need no pattern tool.

Flag low-carbon grades

Alloy. The foam can add carbon as it vaporises, so low-carbon and carbon-critical grades such as 316L are not advisable by lost foam. Name the grade at enquiry and we route those parts to investment casting or shell molding.

Standards and certifications

Cast to the standard on your drawing

We work to the iron, steel, aluminium, tolerance and inspection standards common on North American and European drawings, and to your own specification and inspection plan.

TolerancesISO 8062-3Dimensional casting tolerance grades (DCTG). Lost foam typically holds DCTG 11 to 14.
Grey ironEN 1561, ASTM A48Grey cast iron grades such as EN-GJL-250, and the North American classes such as Class 35 and 40.
Ductile ironEN 1563, ASTM A536Spheroidal graphite iron grades such as EN-GJS-400-15 and 60-40-18.
Steel castingsASTM A27, EN 10293Carbon steel castings for general application, and European steel castings for general engineering uses.
Stainless castingsASTM A351, A743Austenitic and corrosion-resistant castings, including CF8, CF8M and CA15.
European stainless castingsEN 10283Corrosion-resistant steel castings, including 1.4308 and 1.4408.
Aluminium castingsEN 1706, ASTM B26Aluminium alloy castings, including EN AC-42000, EN AC-42100 (A356) and EN AC-44100.
Inspection documentsEN 10204Type 3.1 certificates as standard, and 3.2 with independent inspection when your order requires it.
Your requirementsDrawing and purchase orderWe work to the material, inspection and marking requirements on your drawing and purchase order.
ISO 9001:2015Quality, TUV INDIA
ISO 14001:2015Environment, TUV NORD
ISO 45001:2018Health and safety, TUV NORD
ISO 13485:2016Medical devices, DNV

What we certify, and what we do not

Trushape holds ISO 9001, ISO 14001, ISO 45001 and ISO 13485. We do not hold IATF 16949 or ASME approvals, so automotive, pressure-equipment and code parts are cast to your drawing, specification and inspection plan, and product approvals stay with you. We support them with samples, test data and full records. PED certification is in process.

Download our certificates
North America and Europe

Lost foam castings for buyers from Detroit to Wolfsburg

An export-focused foundry with a dedicated export desk, already shipping castings to Germany, the UK, Belgium, Denmark, Spain and Italy. Pick a region to trace the lane from Bhavnagar.

United States: Detroit and Milwaukee

Vehicle, engine, pump and agricultural equipment makers across Michigan, Wisconsin, Illinois and Ohio.

Canada: Ontario and Quebec

Vehicle, rail and machinery builders around Toronto, Windsor and Montreal.

Mexico: Saltillo and Monterrey

Nearshore automotive and heavy-equipment assemblers in Coahuila and Nuevo León that need machined castings on schedule.

United Kingdom: The Midlands and Sheffield

Engineering, pump and off-highway equipment makers across the Midlands and the North.

Germany: Stuttgart and Wolfsburg

Automotive, drivetrain and machinery suppliers in Baden-Württemberg and Lower Saxony.

Benelux and France: Antwerp to Lyon

Pump, valve and machinery makers in Belgium, the Netherlands and France.

Nordics and Italy: Gothenburg to Turin

Vehicle and equipment makers in Sweden, and automotive suppliers in Piedmont.

Series parts travel by sea freight in export packing, and urgent samples by air. Delivery terms and documentation are agreed with our export desk for each order, and every shipment carries English certificates and reports.

What lost foam makes

Lost foam parts across industries

Drag the ring or let it turn. Each part family is a classic lost foam shape, with the alloys we typically use for castings from 3.5 to 90 kg (7.7 to 198 lb).

Intake manifolds

AlloysLM25, A356

IndustryAutomotive and engines

Curved runners cast in one piece, without cores.

Exhaust manifolds

AlloysDuctile iron

IndustryEngines

Thin, even walls that follow the gas path.

Cylinder heads

AlloysAluminium, grey iron

IndustryEngines and compressors

Water and oil passages formed by the foam.

Pump housings

AlloysDuctile iron, CF8M

IndustryPumps and water

Volutes and passages with no core shift.

Valve bodies

AlloysGrey and ductile iron, CF8M

IndustryFlow control

Seats, bores and flanges machined in-house.

Hydraulic manifolds

AlloysDuctile iron, carbon steel

IndustryHydraulics

Cast passages in place of drilled and plugged cross-holes.

Gearbox housings

AlloysGrey iron, aluminium

IndustryMachinery and vehicles

Bearing bores and faces machined to drawing.

Compressor housings

AlloysGrey iron, aluminium

IndustryAir and refrigeration

Pressure-tight walls, tested on request.

Agricultural parts

AlloysDuctile iron, carbon steel

IndustryAgriculture

Tough parts for hard-working equipment.

Rail parts

AlloysDuctile iron, 4340

IndustryRailway

Shock-loaded parts with full test records.

Marine pump bodies

AlloysCF8M, LM6

IndustryMarine

Corrosion-resistant bodies for seawater service.

Motor end shields and frames

AlloysGrey iron, aluminium

IndustryElectrical machines

Repeatable geometry for series machining.

Why Trushape

A lost foam supplier that owns the whole route

Buyers in North America and Europe move lost foam work to us for the same six reasons.

Single source, one roof

Pattern, cluster, melt, heat treatment, CNC machining, finishing and testing in one 100,000 sq ft facility, which cuts lead times by 30 to 40%.

Integrated

The right process for each part

Lost foam, investment casting, shell molding, no-bake sand and gravity die casting under one roof, so every part gets the route that suits its shape, size and volume.

6 processes

Almost any alloy

Steels, grey and ductile irons, and aluminium, copper, nickel and cobalt alloys, melted in induction furnaces and verified by spectrometer every heat. Only low-carbon grades go to another route.

50+ grades

Accuracy you can measure

ISO 8062-3 DCTG 11 to 14 as-cast with no parting line or core shift, critical features machined, and every critical dimension verified on a Zeiss CMM.

DCTG 11 to 14

Traceable quality

ISO 9001, 14001, 45001 and 13485 systems, in-house NDT and an EN 10204 3.1 certificate with every batch.

Audit ready

Built for export

A dedicated export desk, English documentation and export packing for sea or air freight, plus a proven China-plus-one option.

NA and Europe
A modern process

A short history of lost foam casting

From a 1950s American patent to the process that cast a carmaker's engines, and on to iron and steel parts of every kind.

  1. 1956 to 1958

    The full mold patent

    H.F. Shroyer filed a patent in 1956, granted in 1958, for casting metal on a foam pattern packed in bonded sand. The foam vaporised and the metal took its place.

  2. 1964

    Unbonded sand

    The process was adapted to loose, unbonded sand compacted around the coated pattern. That is the lost foam casting used today, and it makes shake-out effortless.

  3. 1980s

    Carmakers take it up

    Automotive research turned lost foam into a production process for aluminium engine parts, removing cores and machining operations.

  4. 1990

    Saturn

    General Motors' Saturn plant in Spring Hill, Tennessee, began casting aluminium engine blocks and cylinder heads by lost foam.

  5. 1990s to 2000s

    Iron, steel and heavy parts

    Better foams, coatings and automated cluster assembly carried the process into iron and steel, and into pump, valve, hydraulic and heavy equipment castings.

  6. Today

    One piece, 3.5 to 90 kg

    Trushape casts lost foam parts from 3.5 to 90 kg in steel, iron, aluminium and other alloys, then machines and inspects them under one roof.

FAQ

Lost foam casting: questions buyers ask

What is lost foam casting?

Lost foam casting, also called evaporative pattern casting, is a casting process in which molten metal is poured straight onto a foam pattern of the part, coated with a thin refractory layer and packed in loose, unbonded sand. The foam vaporises as the metal arrives, and the metal takes its exact place. In German it is the Lost-Foam-Verfahren and in French moulage à mousse perdue.

How does the lost foam casting process work?

Polystyrene beads are pre-expanded with steam and moulded into a foam pattern of the part. The pattern is glued to a foam sprue and pouring cup, dipped in a permeable refractory coating and dried. It is then set in a flask, surrounded by dry unbonded sand compacted by vibration, and molten metal is poured onto it. The foam vaporises, the metal solidifies in its place, and the sand pours away at shake-out.

What is lost foam casting used for?

Lost foam casting makes complex, single-piece parts that would otherwise need cores or be assembled from several pieces, such as intake and exhaust manifolds, cylinder heads, pump housings, valve bodies, hydraulic manifolds and compressor and gearbox housings. At Trushape it covers castings from 3.5 to 90 kg (7.7 to 198 lb).

What are the advantages of lost foam casting?

Design freedom comes first: internal passages, undercuts and curved channels are formed by the foam pattern itself, with no cores and no parting line. Several parts of an assembly can be combined into one casting, the unbonded sand needs no binder and is reused, and castings come out close to their final shape, so machining, welding and assembly work fall.

Does lost foam casting need cores?

No. The foam pattern already contains every internal passage. The sand packed inside the coated passages holds their shape while the foam vaporises and the metal fills around it. With no separate cores there is no core making, no core setting and no core shift. Passages only need openings wide enough for the coating to drain and the sand to fill.

How accurate is lost foam casting?

Lost foam casting typically holds ISO 8062-3 grades DCTG 11 to 14, depending on size, geometry and alloy. For a 100 to 160 mm (3.9 to 6.3 in) dimension that is a total tolerance of 5 to 12 mm, or ±2.5 to ±6 mm. With no parting line and no cores there is no mismatch or core shift to add to it, and critical features are machined on our CNC machines.

What size of castings can you make by lost foam?

Our lost foam line casts parts from 3.5 to 90 kg (7.7 to 198 lb), the heaviest range of our six casting processes. Smaller, more intricate parts from 0.003 kg move to investment casting, so one supplier covers everything from a few grams to 90 kg.

Which alloys can be cast by lost foam?

Almost any alloy we cast: carbon steels such as EN8 and C45, low-alloy steels such as 4140 and 4340, stainless steels such as 304, 316 and 410 (CF8, CF8M and CA15), tool steels, grey and ductile irons such as EN-GJL-250 and EN-GJS-400-15, aluminium alloys such as LM25, A356 and LM6, and copper, nickel and cobalt alloys. The exception is low-carbon and carbon-critical grades such as 316L, which we cast by investment casting or shell molding instead.

Can low-carbon and stainless steels be cast by lost foam?

Standard stainless grades such as 304, 316 and 410 (CF8, CF8M and CA15) can be. Low-carbon and carbon-critical grades such as 316L and 304L (CF3M and CF3) are not advisable by lost foam, because the vaporising foam can add carbon to the metal. For those grades we recommend investment casting or shell molding instead.

What is the difference between lost foam and investment casting?

Both use an expendable pattern, but lost foam pours metal straight onto a foam pattern in loose sand, while investment casting melts a wax pattern out of a ceramic shell before pouring. Lost foam suits larger, heavier parts from 3.5 to 90 kg (7.7 to 198 lb) at DCTG 11 to 14, and investment casting smaller, finer parts from 0.003 to 30 kg (0.1 oz to 66 lb) at CT5 to CT7.

Who invented lost foam casting?

American engineer H.F. Shroyer filed the first patent for casting metal on a foam pattern in 1956, granted in 1958. His full mold process packed the pattern in bonded sand. In 1964 the process was adapted to loose, unbonded sand, which is the lost foam casting used today, and in 1990 General Motors' Saturn plant began casting aluminium engine blocks and cylinder heads this way.

Do you supply lost foam castings to the USA, Canada and Europe?

Yes. Trushape exports castings to Germany, the UK, Belgium, Denmark, Spain and Italy and serves buyers across North America and Europe, including the United States, Canada and Mexico. Parts ship by sea or air freight with English documentation, and delivery terms are agreed per order.

Ideas shaped, quality delivered

The foam vanishes and the part remains, in one piece, with its passages formed and no cores to set. Trushape casts, heat-treats, machines and verifies lost foam parts under one roof for manufacturers across North America and Europe.

bottom of page