Quick reference
- Vacuum grippers work by creating a pressure differential between atmospheric pressure and the evacuated cup interior; the force is F = Pressure × Area
- Required holding force = m × (g + a) × safety factor — always apply a safety factor of at least 2.0 for industrial applications
- Cup choice: flat cups for rigid flat surfaces; bellows cups for uneven or oily surfaces; oval cups for narrow or elongated parts
- NBR rubber for dry surfaces; silicone for food contact or high-temperature; EPDM for oily surfaces
- Use the free vacuum gripper sizing calculator to get cup area and count in seconds
How vacuum grippers work
A vacuum gripper creates a low-pressure zone inside a suction cup pressed against a part surface. Atmospheric pressure (approximately 1,013 mbar at sea level) acts on the outside of the cup and presses the part against it. The holding force is:
At 650 mbar vacuum (65,000 Pa) and a Ø50mm cup (area = 0.00196 m²):
The vacuum source — either a venturi generator (air-powered) or a vacuum pump (electric) — removes air from inside the cup and maintains the pressure differential during the pick-and-place cycle. A check valve prevents drop-off if the vacuum source fails momentarily.
Suction cup types
| Cup type | Best for | Avoid on | Height compensation |
|---|---|---|---|
| Flat (single-lip) | Rigid, flat, smooth surfaces: glass, sheet metal, smooth plastics, smooth cardboard | Curved, uneven, or flexible surfaces | None — requires consistent Z positioning |
| Flat (multi-lip / ribbed) | Cardboard, textured surfaces — lips conform to minor surface variation | Highly curved parts | Minor |
| Bellows (1.5- or 2.5-fold) | Uneven surfaces, parts at varying heights, warped sheets, oily surfaces, fragile parts | Very fast cycles (slower cup response) | 15–60 mm depending on fold count |
| Oval / rectangular | Narrow parts (profiles, pipes, boards), limited space between pick points | Parts requiring rotational stability (oval cups allow rotation) | Same as equivalent round cup |
| Deep bellows (3.5-fold) | Very uneven surfaces; parts at highly variable heights; glass with significant bow | High-speed applications | Up to 80+ mm |
Suction cup materials
| Material | Temp range | Best for | Avoid |
|---|---|---|---|
| NBR (Nitrile Butadiene Rubber) | −10°C to +70°C | General industrial; dry clean surfaces; standard machine tending | Oily surfaces, high temperatures, food contact |
| Silicone | −40°C to +180°C | Food contact (FDA-compliant grades); high temperature; clean rooms | Mineral oils; ketones |
| EPDM | −30°C to +120°C | Oily machined parts; light coolant exposure; outdoor use | Mineral oils (moderate resistance only) |
| Polyurethane (PU) | −10°C to +60°C | Abrasion-resistant; rough surfaces; high cycle count | Hot parts; solvent exposure |
| Neoprene (CR) | −20°C to +90°C | Outdoor or weather-exposed; ozone resistance | Aromatics, ketones |
| HNBR (Hydrogenated NBR) | −30°C to +150°C | Oily parts at elevated temperature; engine components | Aromatic hydrocarbons |
Sizing: formula and worked example
The standard sizing method (per Schmalz and SMC vacuum engineering guidelines):
Step 1: Calculate required holding force
where: m = part mass (kg), g = 9.81 m/s², a = robot max acceleration (m/s²), SF = safety factor (≥2.0)
Step 2: Calculate required cup area
[Note: 1 mbar = 100 Pa; F/P = A → A(m²) = F(N) / P(Pa); convert to mm²]
Worked example
Scenario: Picking a 4 kg sheet metal blank. Robot max acceleration: 4 m/s². Surface: clean, flat, dry mild steel. Using 650 mbar vacuum. Safety factor 2.0.
A_required = 110.5 ÷ (650 × 0.001) = 110.5 ÷ 0.65 = 170 cm²
Using Ø60mm cups (area = 28.3 cm² each):
Cups needed = 170 ÷ 28.3 = 6.0 → 6 × Ø60mm cups
Alternatively, using Ø80mm cups (area = 50.3 cm² each):
Cups needed = 170 ÷ 50.3 = 3.4 → 4 × Ø80mm cups
Run this calculation for your specific part using the free vacuum gripper sizing calculator — it handles horizontal, vertical, and overhead orientations automatically.
Vertical and overhead orientation adjustments
The formula above applies to horizontal pick-up (cup faces down, part hangs below). For vertical pick-up (cup on side, shear force), friction between cup and part resists the weight — use a higher safety factor (2.5–3.0) and ensure the cup material has adequate friction against the part surface. For overhead pick-up (cup faces up, part is above the robot), gravity assists detachment — apply an additional 10% to the required force and use a safety factor of 2.5 minimum.
Vacuum source types
| Type | How it works | Typical vacuum | Pros | Cons |
|---|---|---|---|---|
| Venturi generator (ejector) | Compressed air flows through a nozzle, creating a low-pressure zone via Bernoulli effect | 550–750 mbar | Simple; fast response; no moving parts; easy to integrate | Consumes compressed air continuously; noisy; lower vacuum than pump |
| Electric vacuum pump | Motor-driven pump evacuates the cup circuit | 700–950 mbar | Higher vacuum; no compressed air needed; energy-efficient | Larger; slower response; more complex integration |
| Electric venturi (integrated) | Small electric vacuum module integrated into the gripper (e.g., Schmalz ECBPi, Piab Kenos) | 600–850 mbar | No compressed air; fast; compact; suitable for cobots with no air supply | Higher unit cost; battery-limited for cordless applications |
For cobots without a compressed air supply (electric-only deployments), electric venturi modules or small electric vacuum pumps are the standard solution. Schmalz, Piab, and SMC all offer cobot-compatible electric vacuum modules.
Common failure modes
1. Cup seal failure (most common)
Cause: Worn cup lip, cut or cracked cup, contamination on the part surface (oil, chips, dust), or cup landing on a part edge or gap.
Fix: Establish a cup inspection and replacement schedule — bellows cups typically last 500,000–2,000,000 cycles depending on material and part surface; flat cups last longer on clean surfaces. Add cup wear monitoring (vacuum pressure sensor with threshold alarm).
2. Insufficient cup area
Cause: Undersized design — commonly caused by sizing for static weight only and omitting robot acceleration, or using an inadequate safety factor.
Fix: Re-size using the full dynamic force formula. Add cups or upgrade to larger cups. Check if vacuum level is actually being achieved (see failure mode 4).
3. Vacuum loss during cycle
Cause: No check valve in the circuit; venturi generator loses supply pressure; leak in tubing or fittings.
Fix: Install a vacuum check valve in the cup circuit. Monitor supply pressure at the venturi. Pressure-test all fittings at commissioning. Use vacuum hold time measurement to detect leaks.
4. Porous or textured part surface
Cause: The part material allows air to bleed through (cardboard, foam, fabric, porous castings) or the surface texture prevents an effective seal.
Fix: For slightly porous surfaces (e.g., corrugated cardboard), use a high-flow venturi that can compensate for leakage. For highly porous surfaces, vacuum grippers do not work — use mechanical grippers or soft grippers instead.
5. Cable and tubing fatigue
Cause: Robot wrist flexes thousands of times per hour; poorly routed tubing fatigue-cracks at bend points.
Fix: Use correctly rated flexible tubing (polyurethane or nylon) with appropriate bend radius. Route tubing through energy chains designed for robotic motion. Inspect regularly — tubing failure is a predictable wear item.
When not to use a vacuum gripper
- Highly porous surfaces: Open-cell foam, loose woven fabric, uncoated MDF, rough castings — vacuum cannot maintain a seal
- Very oily parts: Heavy cutting oil on machined parts can pool in the cup seat and break the seal; use mechanical grippers for oily finished parts
- Flexible or floppy parts: Thin sheet metal that deflects under vacuum, flexible packaging, limp fabric — the part deforms under the vacuum force
- Very rough surfaces: Grit-blasted, heavily textured, or profiled surfaces prevent cup sealing
- Parts with through-holes in the pickup area: Vacuum bleeds through holes in the part
- Parts at high temperature: Above ~80°C, standard NBR cups degrade rapidly; use silicone cups for temperatures up to 180°C, and check that the vacuum system tolerates the temperature
For these cases, consider mechanical grippers, magnetic grippers (for ferrous metals), or soft grippers for irregular shapes.
Frequently asked questions
How many suction cups should I use?
What vacuum level should I target?
How do I handle parts with slight surface variation?
Can I use one vacuum generator for multiple cups?
Sources
- Schmalz vacuum technology selection guide, schmalz.com, accessed September 2026
- SMC vacuum gripper engineering handbook, smcusa.com, accessed September 2026
- Piab vacuum solutions catalogue 2025, piab.com, accessed September 2026
- Festo vacuum technology guide, festo.com, accessed September 2026