| name | spinning-forming |
| description | Metal spinning and flow forming — conventional spinning (manual and CNC), shear spinning (Sine rule, wall thickness), flow forming (tube and disc), material formability (spinnability rating), roller force and power, wrinkling and cracking failure modes, mandrel design, materials (aluminum, stainless, titanium, copper), tolerances, applications (rocket nose cones, cookware, pressure vessel heads, wheels), and DIN 8583 classification. |
| metadata | {"priority":7,"promptSignals":{"phrases":["metal spinning","spinning forming","shear spinning","flow forming","spinning process","rotary forming"],"minScore":3}} |
Metal Spinning and Flow Forming — Complete Skill
Process Overview
Spinning vs. Flow Forming
Conventional spinning (pure spinning):
Flat blank or preform rotated on mandrel; roller pressed progressively inward over multiple passes
No intentional thickness change; material flows circumferentially
Applicable: shallow to deep cups, conical shapes, hemispherical shells
Tolerance: ±0.1–0.5 mm on diameter; wall thickness variation ±10–20%
Shear spinning:
Roller follows mandrel profile while maintaining sine rule (wall thinning is intentional)
Wall thickness: t_product = t_blank × sin(α_half-cone-angle) [Sine Rule; α = half-cone angle from rotation axis]
For α = 30°: t_product = t_blank × 0.5 (50% thinning)
Single pass to near-final form; high precision; no springback issues
Flow forming (roller burnishing of tube/disc):
Staggered rollers force material axially along rotating mandrel → elongate tube wall while reducing thickness
Tube flow forming: L_final / L_blank = t_blank / t_final (volume conservation)
Disc (backward) flow forming: starts with thick disc; rollers push material backward over mandrel
Tolerance: ±0.025–0.1 mm on wall thickness; excellent circularity
DIN 8583: classifies pressure welding; spinning/flow forming as "Drücken" (pressing)
Conventional Spinning
Deformation Mechanics
Material flow: blank material flows radially inward; circumferential compression; no thickness change in ideal case
Actual: slight thickening at rim (circumferential compression → material goes somewhere)
Typical thickness increase at rim: 5–15% (depends on pass schedule and roller contact geometry)
Blank diameter:
D_blank = √(D_part² + 4h²) for cylindrical cup without thinning [diameter conservation; h = depth]
More accurately: D_blank = Σ√(d_segment² + 4h_segment²) for complex profiles (segment method)
Limiting draw ratio (LDR) for spinning:
LDR_spinning = D_blank / D_mandrel ≤ 2.0–2.5 for most materials in one pass
Deeper forming: multi-pass spinning (anneal between passes for work-hardening materials)
Roller Geometry and Contact
Roller nose radius r_roller:
Too small: scratches, cold welds; too large: insufficient local deformation
Typical: r_roller = 5–25 mm (smaller for fine work; larger for heavy plate)
Roller feed angle:
Attack angle θ_attack = 30–45° (angle of roller axis relative to rotation axis)
Feed rate f = 0.1–1.5 mm/rev (CNC); manual spinning: operator feel
Roller force (radial and axial):
F_r ≈ k_f × t × b_contact [k_f = flow stress; t = blank thickness; b_contact = contact width]
b_contact ≈ 2 × √(r_roller × t/2) [Hertz contact width estimate; r_roller = roller nose radius]
For 2024-T3 aluminum (k_f ≈ 350 MPa), t = 3 mm, b = 10 mm: F_r ≈ 350 × 3 × 10 = 10,500 N = 10.5 kN
CNC spinning forces (typical):
Light gauge Al (1–3 mm): 2–10 kN radial; 1–5 kN axial
Heavy gauge steel (5–10 mm): 50–200 kN; hydraulic cylinders
Shear Spinning (Cone Forming)
Sine Rule
Wall thickness in shear spinning:
t_f = t_0 × sin(α) [α = half-cone included angle from axis; t_0 = blank thickness]
Constant wall thickness maintained throughout: each material element thins by sine factor
Cone geometry:
For cone half-angle α (from rotation axis) = 30°: sin(30°) = 0.5 → wall thins by half
For α = 45°: t_f = t_0/√2 = 0.707 × t_0 (29.3% thinning)
For α = 90°: t_f = t_0 (no thinning; cylinder; same as flow forming of disc)
Formability limit — spinnability:
Minimum α before fracture = α_min ≈ 20–30° for ductile materials (aluminum, copper)
α_min increases for harder/less ductile materials (high-strength steel, titanium)
Below α_min: fracture at roller contact
Example (rocket nose cone):
Shape: tangent ogive (approximated as cone with α = 25° near tip to α = 60° at base)
Blank: 5 mm 2024-O aluminum; near tip: t_f = 5 × sin(25°) = 2.11 mm; base: t_f = 5 × sin(60°) = 4.33 mm
Single pass shear spinning on 3D mandrel with α varying along axis
Flow Forming (Tube and Disc)
Tube Flow Forming
Forward flow forming (material flows in direction of roller traverse):
Mandrel constraint: ID fixed; rollers force wall to thin and extend axially
t_f = t_0 - Δt [thickness reduction Δt controlled by roller depth]
L_f = L_0 × t_0/t_f [volume conservation: length increases as wall thins]
Maximum thickness reduction per pass:
Aluminum: 20–30% per pass; Steel: 15–25%; Titanium: 10–15%
Exceeding limit → orange peel (waviness), cracks, or spiral marks
Typical tolerances:
Wall thickness: ±0.025–0.075 mm; ID over mandrel (diameter): +0.0 to +0.05 mm (good circularity)
Used for: bearing races, ammunition cases, drive shafts, hydraulic cylinders
Three-roller arrangement:
120° apart; balanced radial forces; no net radial load on mandrel/spindle
Force per roller: F_roller ≈ k_f × t_contact × b_contact [similar to spinning; higher forces for thick walls]
Disc (Backward) Flow Forming
Starts as thick disc; rollers push material backward:
D_mandrel = ID_final tube; initial disc thickness = final tube length
Recess angle on mandrel: allows material to flow backward; 20–30° typical
Advantages:
Starting from a simple disc forging (near net shape); complex integrated features possible
Used for: gas cylinders, shock absorber cylinders, wheel rims with integral flanges
Spinnability Rating
Spinnability: ability of material to be spun without fracture; analogous to drawability (LDR)
Spinnability factors:
n (work hardening exponent): high n → good spinnability (strain hardening distributes strain)
r_bar (Lankford coefficient, anisotropy): higher r → better drawability in general; spinning less direction-dependent
Elongation at break: A₅₀ ≥ 25% recommended for good spinnability
Spinnability by material:
| Material | Spinnability | α_min shear | Max LDR conventional | Notes |
|---|
| Al 1100-O | Excellent | 18° | 2.5 | Softest; easiest to spin |
| Al 3003-O | Excellent | 20° | 2.3 | Common for cookware |
| Al 6061-O | Good | 25° | 2.0 | Must anneal between passes |
| Al 2024-O | Good | 27° | 1.8 | Aerospace; needs care |
| Cu (annealed) | Excellent | 18° | 2.4 | Art metalwork; musical instruments |
| Stainless 304 | Moderate | 30° | 1.5 | Work hardens rapidly; intermediate anneals |
| Stainless 316L | Moderate | 32° | 1.4 | As 304; better corrosion |
| Low carbon steel | Good | 25° | 1.8 | Automotive parts |
| Titanium 6-4 (warm) | Limited | 38° | 1.2 | Requires elevated temperature (300–500°C) |
| Inconel 625 | Poor | 40° | 1.1 | Requires multiple anneals |
Wrinkling and Cracking
Failure Modes
Wrinkling (compressive instability):
Occurs when circumferential compressive stress exceeds buckling limit at inner (unsupported) edge
Prevention: proper roller contact engagement; friction; mandrel support; backing roller
Critical parameter: t_blank/D_blank (thinner relative to diameter → more wrinkling tendency)
Cracking/Fracture:
Occurs when tensile stress (roller attack) exceeds fracture strain of material
Typically at roller-blank contact for shear spinning below α_min
For conventional spinning: fracture at flange edge if circumferential tension too large
Orange peel (for flow forming):
Surface roughening from anisotropic grain deformation; occurs if grains are large
Prevention: fine grain size (ASTM 6 or finer); proper lubrication; speed/feed optimization
Springback:
Axial springback: wall angle increases after roller passes; compensate by 2–5° over-lean of roller
Diametral springback: slight enlargement after mandrel removal; depends on σ_y / E
For aluminum: springback ≈ 0.1–0.3% of mandrel diameter; steel: 0.05–0.15%
Mandrel Design
Material: hardened tool steel (HRC 52–58); or ductile iron for short runs
Taper: 0.5–2° taper per side for easy part removal (forward spinning)
Surface finish: Ra ≤ 0.4 μm on mandrel → part interior takes good finish from mandrel contact
Thermal expansion: for warm spinning (Ti, Inconel) use material with low CTE or ceramic mandrel sections
Multi-piece mandrel:
For parts that cannot slip off straight mandrel: collapsible or segmented mandrel
Required for shapes with re-entrant features (closed-form undercut)
Tolerances and Surface Finish
Conventional spinning: dimensional ±0.5–2 mm; Ra 1.6–6.3 μm (dependent on roller condition)
Shear spinning: wall thickness ±5%; diameter ±0.5 mm; Ra 0.8–3.2 μm
Flow forming (tube): wall thickness ±0.025–0.075 mm; Ra 0.4–1.6 μm (very tight)
Post-processing: spinning typically requires trimming of wavy edge; lathe trimming common
Standards and References
| Standard | Scope |
|---|
| DIN 8583 | Classification of forming processes (German standard) |
| ASTM B345 | Aluminum tube for flow forming qualification |
| AMS 2604 | Flow formed titanium tubes |
| Kalpakjian "Manufacturing Engineering and Technology" | Spinning/flow forming chapter reference |
| Music "Spinning and Shear Forming" (2004) | Dedicated reference |
Output
Provide: part description (final shape: cone/hemisphere/cylinder/complex; OD [mm]; depth [mm]; wall thickness t_f [mm]; material; quantity), process selection (conventional spinning / shear spinning / flow forming; basis for selection; number of passes), blank sizing (D_blank or L_blank [mm] from volume conservation; t_blank [mm]), sine rule check (if shear: α [°]; t_f = t_0 × sin(α); α > α_min for material: yes/no), LDR check (if conventional: D_blank/D_mandrel ≤ LDR_allow; intermediate anneals required?), roller geometry (nose radius r_roller [mm]; attack angle θ [°]; feed rate f [mm/rev]; speed n [rpm]), roller force (F_r [kN]; power P [kW]; machine capacity required), lubrication (lubricant type; application method; material compatibility), wrinkling/cracking risk (t_blank/D_blank ratio; α margin above α_min; risk: low/medium/high), mandrel specification (material; taper angle [°]; surface finish Ra [μm]; removal method), tolerances (diameter ±[mm]; wall thickness ±[%]; Ra [μm]), and applicable standard (DIN 8583; AMS 2604 for Ti; ASTM B345 for Al tube).