| name | extrusion-processes |
| description | Extrusion processes — direct/indirect metal extrusion (Bilker-Hankel theory, extrusion ratio R, press force), die design (die angle, bearing length, die material), polymer screw extrusion (screw geometry, melt zone analysis, pressure buildup, extrudate swell), profile and pipe extrusion, hydrostatic extrusion, impact extrusion, extrudability of Al/Cu/Mg/Ti alloys, and ISO/ASTM standards for extruded products. |
| metadata | {"priority":7,"promptSignals":{"phrases":["extrusion process","metal extrusion","screw extrusion","polymer extrusion","extrusion die","extrusion ratio"],"minScore":3}} |
Extrusion Processes — Complete Skill
Metal Extrusion Fundamentals
Extrusion Types
Direct (forward) extrusion:
Ram pushes billet → material flows through die in same direction as ram travel
Billet slides against container wall → high friction → dead zone at container/die corner
Container friction force adds to total press force
Indirect (backward/reverse) extrusion:
Die moves into stationary billet; no billet-container friction → 25–35% lower force than direct
Cannot extrude very long billets (die stem must extend through press); common for thin-walled tubes
Hydrostatic extrusion:
Billet surrounded by pressurized fluid (mineral oil or castor oil); no container friction; can extrude brittle materials (ceramics, beryllium); fluid pressure: 500–3000 MPa
Can extrude: Ti, Mg, Mo, W, and normally non-extrudable materials
Impact extrusion:
Cold extrusion; high-speed punch into billet; backward or forward; aluminum/tin collapsible tubes; one-shot process; no heating
Metal Extrusion Theory
Extrusion Ratio and Geometry
Extrusion ratio (R):
R = A_billet / A_product [area ratio; R = 10–1000 for aluminum; R = 5–50 for copper; R < 10 for steel]
Equivalent strain: ε_eq = (2/√3) × ln(R) = 1.155 × ln(R) [true effective strain imparted]
Reduction: Rd = 1 − 1/R [fraction of area reduced]
Press Force Estimation
Simplified press force (upper bound / empirical):
F = σ_flow × A_billet × ln(R) × (1 + 2μL/D_billet + constant_for_die_angle)
Where: σ_flow = average flow stress over deformation; μ = friction coefficient; L = billet length; D_billet = billet diameter
Backer-Doehler empirical (for aluminum):
F = A_billet × σ_0 × (a + b × ln R) [a = 30–50 MPa; b = empirical; σ₀ = UTS at extrusion temperature]
Extrusion pressure (specific pressure):
P_ext = F / A_billet [typical: aluminum 300–700 MPa; copper 600–1200 MPa; steel 1200–2500 MPa]
Dead zone (dead metal zone):
Material in corner between container wall and die face; does not flow; angle ≈ (90° − α_die/2) from ram direction
Billet skin (with oxide/contamination) flows into dead zone → clean product interior; critical for aluminum
Discard last 10–20% of billet to avoid dead zone material breakthrough
Die Design
Optimum semi-angle:
Flat-face die: most common for aluminum; angle = 90° → no dead zone (dead zone acts as natural die angle ≈ 45°)
Conical die: optimum angle α_opt = arctan(√μ × strain_hardening_factor); typically 15–45° for steel
Too small angle: high surface contact length → high friction; too large → redundant deformation
Die material:
H13 hot-work die steel: HRC 44–48; T_max = 600°C; for Al, Cu, Mg extrusion
Inconel 718 or M2: for stainless steel, Ni-alloy extrusion
TiAlN coatings on H13: reduces galling; extends die life 2–5×
Bearing length (land):
Short bearing: low friction, faster flow → risk of extrudate exit angle variation
Typical: bearing length = 3–10 × product wall thickness; adjusted per section complexity
Extrudability of Metals
Aluminum Extrusion
Most commonly extruded metal (by volume):
6xxx series (Al-Mg-Si): excellent extrudability; window/door profiles; automotive; billet T = 450–550°C
7xxx series (Al-Zn-Mg): lower extrudability; aerospace; T = 400–480°C (narrower window)
2xxx series (Al-Cu): most difficult of structural alloys; T = 380–430°C
Critical extrusion temperature:
Below T_min: billet too stiff → excessive pressure → press overload
Above T_max: hot shortness (cracking due to low-melting eutectic at grain boundaries)
Forming window: 30–80°C typically for structural alloys
Die line:
Aluminum extrudes over die bearings cleanly (low friction at 500°C); mirror finish on bearing improves surface
Exit speed: 1–50 m/min (faster = cheaper; limited by temperature rise and hot cracking)
Copper and Brass
Horizontal press; temperatures 700–900°C:
Pure copper: excellent ductility; R up to 200; speeds 5–15 m/min
Brass (70/30): R = 50–100; wears tooling (zinc vapor); nitrogen atmosphere in furnace
Extrusion products: rod, wire, heat exchanger tubing, profiles
Polymer Screw Extrusion
Single-Screw Extruder Geometry
Screw zones:
- Feed zone: solid pellets compacted and conveyed forward; deep channel
- Compression zone (transition): channel depth decreasing; melt forms
- Metering zone: shallow channel; uniform melt pumping; pressure buildup
Screw parameters:
L/D ratio: 20–30:1 (general purpose); 30–40:1 for mixing/venting
Compression ratio: CR = H_feed / H_metering = 2.5–4.5 [H = channel depth]
Flight pitch: S ≈ D (square pitch); helix angle φ = arctan(S/πD) ≈ 17.7° for square pitch
Metering zone throughput (Newtonian approximation):
Q = (π² × D² × N × H × sin(φ) × cos(φ) / 2) − (π × D × H³ × sin²(φ) × ΔP) / (12 × η × L_m)
Q_drag − Q_pressure [first term: drag flow; second: pressure flow]
For 20% back-pressure flow: net flow ≈ 0.8 × Q_drag
Barrel temperature (profile):
Zone 1 (rear): 20–30°C above T_m; Zone 2: T_m + 20°C; Zone 3 (die zone): typically highest
Example HDPE: feed 170°C; compression 210°C; metering 220°C; die 230°C
Extrudate Swell (Die Swell)
Extrudate swell ratio (Barus effect):
B = D_extrudate / D_die [B > 1 always; caused by elastic recovery of polymer melt]
B ≈ (1 + 0.13 × (Weissenberg number)²)^(1/6) [approximation; Weissenberg: Wi = η_0 × λ × γ̇; λ = relaxation time]
Typical: B = 1.1–2.0 for most polymers at production conditions
Design compensation:
Die orifice undersized by swell factor: D_die = D_product / B
With draw-down: haul-off takes product at speed V_haul > V_exit → stretches down to target diameter; often used for pipes/film
Pressure Profile and Die Design
Pressure drop across die (power-law fluid):
ΔP = (2L_land / R_die) × K × (4V_exit / R_die × ((3n+1)/4n))^n [K = consistency index; n = power law index; R_die = die radius]
For HDPE: n ≈ 0.45–0.55; K ≈ 10,000–30,000 Pa·sⁿ at 200°C
Die land length:
Minimum: L/D ≥ 10 for stress relaxation (reduce extrudate swell)
Too long: pressure too high → excessive motor power; possible thermal degradation
Standards and References
| Standard | Scope |
|---|
| ASTM B221 | Aluminum alloy extruded bars, rods, wire, profiles |
| ASTM B241 | Aluminum alloy seamless pipe and seamless extruded tube |
| ISO 2604 | Aluminum and aluminum alloy extruded sections |
| ASTM D2513 | Polyethylene gas pipe (extruded) |
| ISO 11922-1 | Thermoplastics pipes — tolerances on dimensions |
| AA Publications | Aluminum Association design manual for structural extrusions |
Output
Provide: process type (direct/indirect/impact/hydrostatic/screw polymer), material (alloy or polymer; T_extrusion [°C]; flow stress σ₀ [MPa] at extrusion temperature; extrudability rating), billet/blank (diameter D_b [mm]; length L_b [mm]; for polymer: pellet feed rate [kg/h]), extrusion ratio (R = A_billet/A_product; equivalent strain ε_eq = 1.155×lnR [dimensionless]), press force (F = A_billet×σ_flow×(a+b×lnR) [kN]; specific pressure P_ext [MPa]; press capacity required [MN]), die design (die angle α [°]; bearing length [mm]; material: H13/Inconel; coating: TiAlN?), polymer screw extruder (L/D ratio; CR; Q_output [kg/h]; metering zone: H [mm]; ΔP across die [MPa]; die swell B [dimensionless]; haul-off speed [m/min]; product dimensions after swell/draw-down), product properties (Al: temper after extrusion: T5/T6; σ_y [MPa]; surface finish Ra [μm]; straightness tolerance [mm/m]; polymer: wall thickness tolerance [%]; haze; tensile properties), and applicable standard (ASTM B221 for Al bar/profile; ISO 11922 for plastic pipe; ASTM D2513 for PE gas pipe).