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Centrifugal Casting
Emma

Oluşturan

Emma

22. Ağustos 2026SE
25
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Centrifugal Casting

To sand-cast a pipe you need a core suspended precisely inside the mould to form the bore — a core that must be made, positioned, held against the buoyancy of molten metal, and then broken out afterwards. Centrifugal casting removes it entirely. Spin the mould fast about its axis, pour metal in, and the metal is flung against the wall and held there while it freezes, forming a bore whose diameter is set purely by how much metal you poured. There is a second benefit that turns out to matter more: the same spinning drives light impurities and gas inward toward the bore, so the dense, sound metal ends up on the outside where the strength is needed. Dimitri Sensaud de Lavaud made it an industrial process for pipe around 1918.
İleri
5 hours

Talimatlar

1

Build the spinning mould and its guard

Molten metal at speed demands a containment you would trust with your hands off it.

  1. Make a cylindrical steel mould, 100 mm bore and 200 mm long, closed at one end.
  2. Mount it on a shaft in two 608 bearings, balanced as well as you can manage.
  3. Build a FULL enclosure around it — a steel drum or thick plywood box lined with sheet metal.
  4. Drive it with a belt from a motor placed outside the enclosure.
  5. Fit a pouring chute that reaches through the guard, so nobody's hands go near the spinning mould.

Balance is a safety requirement here, not a refinement. An unbalanced mould at speed shakes the whole rig, and the failure mode is molten metal leaving the machine. Spin it up empty to full speed first and watch it; if it vibrates, fix that before any metal is melted.

Coat the mould bore with a refractory wash before each pour. It protects the mould, controls the cooling rate, and lets the casting release — a steel mould with bare metal inside will weld itself to the casting.

Bu adım için malzemeler:

Demir potaDemir pota1 adet
Ball Bearing - Non-Flanged (8mm Bore, 22mm OD)Ball Bearing - Non-Flanged (8mm Bore, 22mm OD)2 adet
Baltık Huş KontrplakBaltık Huş Kontrplak1 yaprak
Düz PulDüz Pul8 adet
Altıgen SomunAltıgen Somun4 adet

Gerekli aletler:

Kablosuz MatkapKablosuz Matkap
Matkap Ucu TakımıMatkap Ucu Takımı
Dekupaj TestereDekupaj Testere
Alyan Anahtar TakımıAlyan Anahtar Takımı
Dijital Kumpas 6 İnçDijital Kumpas 6 İnç
Kombine GönyeKombine Gönye
2

Work out the speed you actually need

Too slow and the metal rains down the inside instead of clinging.

  1. The requirement is that centrifugal acceleration at the bore exceeds gravity by a comfortable margin — aim for 60 to 80 times g.
  2. Acceleration = (2πn/60)² × r, with n in revolutions per minute and r the bore radius in metres.
  3. For a 50 mm radius and 70g, solve for n — around 1100 rpm.
  4. Check your drive can reach and hold that under load.
  5. Mark the calculated speed on the rig.

Below the threshold the casting fails visibly. Metal that is not held firmly against the wall slumps and freezes in a crescent, thick at the bottom and thin at the top — a phenomenon called raining. That is the direct evidence that centrifugal force is doing the mould's job, and it is why the speed calculation is done before the melt rather than after.

Higher is not automatically better: excessive speed can crack the solidifying shell as it contracts against a mould that will not yield. The band between raining and cracking is the operating window.

Bu adım için malzemeler:

Milimetrik KağıtMilimetrik Kağıt1 pad

Gerekli aletler:

KronometreKronometre
Dijital Kumpas 6 İnçDijital Kumpas 6 İnç
3

Pour a spinning mould

Steady, into a mould already at speed.

  1. Bring the mould to full speed before any metal is poured.
  2. Melt the charge — pewter, aluminium or lead for a demonstration.
  3. Pour steadily down the chute; the metal will climb the wall as it enters.
  4. Keep spinning until the casting has fully solidified, then let it slow.
  5. Extract the casting once cool.

Wall thickness is set by volume alone. There is no core and no inner mould surface: pour more metal and the wall is thicker with a smaller bore, pour less and the reverse. The outer diameter is fixed by the mould, the inner is chosen at the ladle — a degree of freedom no other casting method offers.

Never slow the mould before solidification. A partly frozen casting that stops spinning slumps immediately, and the result is a lopsided ring welded to one side of the mould.

Bu adım için malzemeler:

Ham kurşun külçesi (galen izabesinden)Ham kurşun külçesi (galen izabesinden)1 ingot
Grafit-kil potaGrafit-kil pota1 adet

Gerekli aletler:

Pota MaşasıPota Maşası
KronometreKronometre
Dijital Kumpas 6 İnçDijital Kumpas 6 İnç
4

Section it and find where the impurities went

The metallurgical benefit is visible on a cut face.

  1. Cut a ring from the casting and polish one face.
  2. Etch it lightly and examine from bore to outer surface.
  3. Look for porosity, inclusions and dross concentrated near the BORE.
  4. Compare with a section from a conventionally sand-cast piece of the same alloy.
  5. Machine the bore out by a couple of millimetres and re-examine.
Dense metal is thrown outward and light material — slag, dross, gas — is pushed inward, so the impurities collect at the bore where they can simply be machined away. The outer surface, which carries the hoop stress in a pipe, ends up the soundest metal in the casting. That is why centrifugally cast pipe outperforms statically cast pipe of the same alloy, and why the process was adopted for water mains so quickly.

Gerekli aletler:

Demir Testeresi Gövdesi ve AğızlarıDemir Testeresi Gövdesi ve Ağızları
Eğe TakımıEğe Takımı
Dijital Kumpas 6 İnçDijital Kumpas 6 İnç
Tezgah MengenesiTezgah Mengenesi
5

The mould you do not have to make, and history

Dimitri Sensaud de Lavaud developed centrifugal casting into an industrial pipe process around 1918 in Brazil, and the de Lavaud process is still the name used for making ductile iron water pipe. Earlier patents for spinning moulds date back to the nineteenth century, but making it work reliably at production scale is what mattered.

The idea is the same family as the shot tower at the start of this batch. Both let a physical force do work that would otherwise need tooling: surface tension makes the sphere, centrifugal force makes the bore. Neither needs a mould surface for the shape it produces, and both therefore have nothing to wear out on that surface. When a force already produces the geometry you want, the cheapest process is the one that gets out of its way.

Against the other tube processes in this batch: extrusion needs a die and a mandrel and leaves weld lines; Mannesmann piercing needs a ductile billet and makes only round sections; centrifugal casting works directly from melt with no core and gives excellent outer-surface metal — but only for shapes that are surfaces of revolution, and only where a machined bore is acceptable.

Its honest limits: rotational symmetry only; a bore that is rough and impurity-rich and must be machined; segregation of alloying elements by density, which can be a defect as easily as a benefit; and a machine that is genuinely dangerous, since it combines high speed with molten metal. The guard in step 1 is the most important part of the build.

Malzemeler

8

Gerekli Aletler

11
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