Sheet Metal Working — revision notes (GATE ME)
Sheet metal operations are a reliable GATE ME topic (~1–2 marks). Shearing/blanking force, bending (spring-back, bend allowance) and deep drawing are the tested items.
Shearing operations
Cutting sheet by shear between a punch and die:
- Blanking: the removed piece is the product. Piercing/punching: the removed piece is scrap (making a hole).
- Punch force F = perimeter × thickness × shear strength = L·t·τ_s. Shear on the punch/die reduces peak force (staggers the cut) but the total work is unchanged.
- Clearance between punch and die (~5–10% of t) controls edge quality and burr.
Bending
Plastic bending about a neutral axis. Bend allowance BA = (θ/360)·2π·(R + K·t) sets the flat blank length (K = neutral-axis position factor, ~0.33–0.5). Spring-back: elastic recovery makes the final angle smaller than the die angle — over-bend to compensate. Minimum bend radius avoids cracking.
Deep drawing
Forming a cup from a blank. Limiting draw ratio (LDR) = max blank diameter / punch diameter (~1.8–2.2). Defects: wrinkling (needs a blank holder), tearing (excess draw), earing (anisotropy). Draw force limited by the cup-wall tensile strength.
Exam Tricks & Tips
- 🎯 Punch force = perimeter × thickness × shear strength (L·t·τ_s) — the core shearing calculation.
- 🎯 Blanking → part is the product; piercing/punching → part is scrap — a definitional MCQ point.
- 🎯 Spring-back makes the bent angle smaller than the die — over-bend or bottom the die to compensate.
- 🎯 Providing shear on the punch lowers peak force but not total work — a common conceptual trap.
- 🎯 Deep drawing LDR ≈ 2; wrinkling needs a blank holder — recall the ratio and the fix.
- ❌ Common mistake: confusing blanking and piercing — both are shearing, but in blanking the punched-out slug IS the product, whereas in piercing it is waste.
Expected exam pattern
A 1-mark punch-force or blanking/piercing MCQ, and a 2-mark bend-allowance, spring-back, or deep-drawing problem. Clearance effects and the shear-lowers-peak-force idea appear as MCQs.
Quick recap
Shearing: punch force = L·t·τ_s; blanking (part = product) vs piercing (part = scrap); clearance ~5–10% t. Bending: bend allowance BA = (θ/360)2π(R+Kt); spring-back → over-bend. Deep drawing: LDR ≈ 2, blank holder prevents wrinkling. Shear on punch lowers peak force, not work.
Sheet Metal Working — Flashcards
Cover the answer, recall, then check. 11 cards on sheet metal working for GATE ME.
Q1. Difference between blanking and piercing?
A1. Blanking: the sheared-out piece is the desired product. Piercing/punching: the removed piece is scrap (a hole is made).
Q2. Formula for shearing (punch) force.
A2. F = perimeter × thickness × shear strength = L·t·τ_s.
Q3. What does clearance between punch and die control?
A3. Edge quality and burr; typically 5–10% of sheet thickness. Too little or too much worsens the cut edge.
Q4. Effect of providing shear (angle) on the punch?
A4. It spreads the cut over time, reducing peak force — but the total work done is unchanged.
Q5. What is spring-back in bending?
A5. Elastic recovery after bending, making the final angle smaller (and radius larger) than the die; compensated by over-bending.
Q6. What is bend allowance?
A6. The arc length of the neutral axis: BA = (θ/360)·2π·(R + K·t), used to compute the flat blank length.
Q7. Define the limiting draw ratio in deep drawing.
A7. LDR = maximum blank diameter / punch diameter (typically ~1.8–2.2); beyond it the cup tears.
Q8. What causes wrinkling in deep drawing, and how is it prevented?
A8. Compressive hoop stress in the flange; prevented by a blank holder that applies hold-down pressure.
Q9. What is earing in deep drawing?
A9. Wavy edges on the cup rim caused by planar anisotropy of the sheet's grain structure.
Q10. What limits the minimum bend radius?
A10. Cracking of the outer fibre — too small a radius over-strains the outer surface in tension.
Q11. Why does a smaller punch-die clearance improve hole quality?
A11. It produces a cleaner shear zone with a smaller burr and less rollover, at the cost of higher force and tool wear.
Sheet Metal Working
Car bodies, appliance panels and cans are made by sheet-metal working — shearing and bending thin stock. GATE tests punching/blanking force, clearance, bending allowance and springback, and deep drawing. It is a distinct plasticity regime from bulk forming.
Core concept: sheet-metal operations either cut the sheet (shearing, blanking, punching) or plastically bend/stretch it (bending, deep drawing), each governed by the sheet's shear/yield strength and thickness.
Deep explanation
Beginner — shearing operations
- Blanking: the removed piece is the product. Punching (piercing): the hole is the product, the removed slug is scrap.
- Cutting force F = L · t · τ_s, where L = perimeter being sheared, t = sheet thickness, τ_s = shear strength (~0.7–0.8 × UTS).
- Clearance (gap between punch and die) ≈ (2–10)% of thickness; correct clearance gives a clean fracture. Too little/much clearance gives poor edges. Clearance c = allowance × t.
Intermediate — reducing force and bending
- Shear (angle) on the punch spreads the cut over time, reducing peak force (though work is unchanged).
- Bending: the bend allowance BA = θ(R + K·t) sets the flat-blank length, where K (~0.33–0.5) locates the neutral axis.
- Springback: elastic recovery means the part unbends slightly after release — the bend must be over-bent to compensate. Springback increases with yield strength and bend radius, decreases with thickness.
Advanced — deep drawing
Deep drawing forms a cup from a flat blank pulled into a die by a punch.
- Drawing ratio DR = D_blank/D_punch; the limiting drawing ratio (LDR) is ~1.8–2.2 (beyond it the wall tears). Larger reductions need redrawing.
- A blank holder prevents wrinkling of the flange; blank-holder force is a key parameter.
- Drawing force F ≈ π D_p t σ_UTS (D_p/D_blank − constant). Defects: wrinkling (low holder force), tearing (excessive draw), earing (planar anisotropy).
Worked example
A round hole of 20 mm diameter is punched in a 2 mm thick steel sheet with shear strength τ_s = 350 MPa. Find the punching force.
Sheared perimeter L = πd = π × 0.020 = 0.0628 m.
F = L · t · τ_s = 0.0628 × 0.002 × 350×10⁶ = 0.0628 × 0.002 × 3.5×10⁸ = 43,980 N ≈ 44 kN.
GATE relevance
Punching/blanking force (L·t·τ_s), clearance, bend allowance and springback, and deep-drawing ratios are recurring Manufacturing questions. The shear-force formula and the punch-vs-die-size rule (which determines part vs scrap and clearance placement) are frequently tested.
Exam tricks & shortcuts
- Cutting force = perimeter × thickness × shear strength (F = Ltτ_s).
- Blanking: die size = blank size (clearance on punch). Punching: punch size = hole size (clearance on die).
- Springback → over-bend to compensate; worse for high-strength, large-radius bends.
- Mnemonic: "Blank keeps the piece, punch keeps the hole."
Putting the clearance on the wrong member. For blanking the die opening equals the desired blank size (clearance is taken on the punch); for punching the punch equals the desired hole size (clearance on the die). Reversing this gives an oversized part or hole.
- ✓- Blanking → workpiece is the removed piece; punching → hole is the product.
- ✓- Cutting force F = L·t·τ_s (τ_s ≈ 0.7–0.8 UTS).
- ✓- Clearance ≈ few % of t; shear on punch reduces peak force.
- ✓- Bend allowance BA = θ(R + Kt); springback needs over-bending.
- ✓- Deep drawing LDR ≈ 1.8–2.2; blank holder prevents wrinkling.
- ✓Sheet-metal cutting force is simply perimeter × thickness × shear strength, with clearance placed on the punch (blanking) or die (punching). Bending must over-bend to beat springback, and deep drawing is limited by the drawing ratio and needs a blank holder against wrinkling.
Sheet Metal Working — Formula Sheet
Key formulas
- Shearing/blanking force: F = L·t·τ (L = cut perimeter, t = thickness, τ = shear strength).
- Punch force with shear: reduced by grinding angular shear on punch/die.
- Blank diameter (cup drawing): D = √(d² + 4dh).
- Drawing force: F = πd·t·σ_ut·(D/d − C).
- Bending force: F = (k·L·t²·σ_ut)/W; spring-back must be compensated.
- ✓- Blanking force F = L·t·τ.
- ✓- Blank size D = √(d² + 4dh) for a cup.
- ✓- Account for spring-back in bending.
Shearing force is perimeter × thickness × shear strength; deep-drawing needs a blank sized to conserve area.
Sheet Metal Working — Worked Example
Worked Example
Problem: A blanking operation punches a 50 mm diameter circular disc from a sheet 2 mm thick. The material's ultimate shear strength is 300 MPa. Find the punch force required.
Solution:
In blanking, the punch shears the material around the entire perimeter of the blank. The required force is the sheared area times the shear strength.
Sheared area = perimeter × thickness:
A_shear = (π·d)·t = (π × 0.050)(0.002) = π × 1.0 × 10⁻⁴ = 3.142 × 10⁻⁴ m².
Punch force:
F = τ·A_shear = (300 × 10⁶)(3.142 × 10⁻⁴) = 9.42 × 10⁴ N ≈ 94.2 kN.
Answer: The punch force required is ≈ 94.2 kN.
- ✓- Blanking/piercing force = (shear strength) × (perimeter × thickness) — it scales with the cut length, not the blank area.
- ✓- Proper punch–die clearance (a few percent of thickness) gives a clean cut; too little or too much causes burrs.
- ✓- Shear (angling) on the punch face spreads the cut over time, reducing peak force at the cost of a longer stroke.