Gripsters & Lifters
Mechanical, vacuum, magnetic and robotic gripsters plus end-of-arm tooling.
Also searched as: robot gripperparallel grippertwo jaw gripperthree jaw gripperangular gripperpneumatic gripperelectric grippervacuum grippersuction cupvacuum cupvacuum lifterventuri vacuum generator +45 more
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Air Gripper, 14.5 psi to 87 psi, 87 psi Max Op Pressure
Max Operating Pressure: 87 psiOperating Pressure: 14.5 psi to 87 psi
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Air Gripper, Two-Finger Parallel, 30 mm Stroke Lg, 14.5 psi to 101.5 psi
Fingers: Two-fingerOperating Pressure: 14.5 psi to 101.5 psiStroke Lg: 30 mmType: Parallel
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Air Gripper, Two-Finger Parallel, 40 mm Stroke Lg, 14.5 psi to 101.53 psi
Fingers: Two-fingerOperating Pressure: 14.5 psi to 101.53 psiStroke Lg: 40 mmType: Parallel
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Air Gripper, Two-Finger Parallel, 40 mm Stroke Lg, 21.76 psi to 101.53 psi
Fingers: Two-fingerOperating Pressure: 21.76 psi to 101.53 psiStroke Lg: 40 mmType: Parallel
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Air Gripper, Wide-Body Parallel, 160 mm Stroke Lg, 14.5 psi to 87 psi
Body Type: Wide-bodyOperating Pressure: 14.5 psi to 87 psiStroke Lg: 160 mmType: Parallel
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Angular Air Gripper, Two-Finger, 15 psi to 87 psi, 87 psi Max Op Pressure
Fingers: Two-fingerMax Operating Pressure: 87 psiOperating Pressure: 15 psi to 87 psiType: Angular
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Bellows Vacuum Pad
Adapter: w/o AdapterType: Bellows
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Bellows Vacuum Pad
Adapter: w/o AdapterType: Bellows
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Bellows Vacuum Pad
Adapter: w/o AdapterType: Bellows
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Flat ESD Vacuum Pad Assembly
Connection: G1/8 inPad Diameter: 28.2 mmType: Flat
from $15.51Grainger $15.51 -
Flat Oval Vacuum Pad Assembly
Connection: 3/8 in NPTType: Flat Oval
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Flat Vacuum Pad
Adapter: w/o AdapterType: Flat
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Flat Vacuum Pad Assembly
Connection: G1/4 inType: Flat
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Flat Vacuum Pad Assembly
Type: FlatVacuum Port: G1/8 in
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Handheld Vacuum Lifter
Voltage: 20V
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Ladder Vacuum Lifter
Application: Ladder
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Multi-Bellows Vacuum Pad
Adapter: w/o AdapterPad Diameter: 48 mmType: Multi-Bellows
from $80.48Grainger $80.48 -
Parallel Gripper, Low Profile, 19.1 mm Stroke Lg, 0.3 bar to 7 bar
Open Width: 83 mmOperating Pressure: 0.3 bar to 7 barOverall Length: 22.2 mmProfile: Low ProfileStroke Lg: 19.1 mm
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Parallel Gripper, Wide Body Harsh-Environment, 50.8 mm Stroke Lg, 40 psi to 100 psi
Body Type: Wide bodyOperating Pressure: 40 psi to 100 psiStroke Lg: 50.8 mmType: Parallel
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Parallel Gripper, Widebody, DC, Viton, 38.1 mm Stroke Lg, 1.5 bar
Body Type: WidebodyOpen Width: 164 mmOperating Pressure: 1.5 barOverall Length: 63.7 mmStroke Lg: 38.1 mm
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Vacuum Lifter
Max Load: 1400 lb
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Vacuum Lifter
Max Load: 700 lb
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Vacuum Lifter
Max Load: 1500 lb
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Vacuum Lifter
Max Load: 300 lb
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Vacuum Lifter
Size: 5"
About gripsters & lifters
Gripsters are end-of-arm tooling (EOAT) components designed to grasp and manipulate objects in automated systems. They are broadly categorized by their actuation method and gripping mechanism. Mechanical gripsters, including parallel (two-jaw, three-jaw) and angular types, utilize pneumatic or electric power to actuate jaws that physically clamp onto a workpiece. Key selection parameters include jaw stroke, gripping force (N), repeatability (mm), and jaw opening (mm). Vacuum gripsters employ suction cups or pads, often coupled with venturi vacuum generators or vacuum pumps, to lift non-porous materials. Critical specifications include cup diameter (mm), lifting capacity (kg), and material (e.g., NBR, silicone, polyurethane). Magnetic gripsters use permanent magnets or electromagnets to handle ferromagnetic parts, with holding force (N) and demagnetization time being crucial. Soft gripsters and adaptive gripsters conform to irregular shapes, often using compliant materials or underactuated designs. Collaborative robot (cobot) gripsters are designed for safe human-robot interaction, often incorporating force sensing and compliant surfaces. Common gripster materials include anodized aluminum, hardened steel for jaws, and various elastomers for suction cups.
How to choose
When selecting a gripster, first determine the workpiece characteristics: material, weight, dimensions, and rigidity. This dictates the primary gripping principle (mechanical, vacuum, magnetic, soft). Next, consider the application's required gripping force or lifting capacity (N/kg) and the necessary jaw stroke or cup diameter. Evaluate the available utilities: pneumatic pressure, electrical power (DC voltage, current), or if a purely mechanical solution is needed. Assess environmental factors such as temperature, dust, or moisture, which influence material selection (e.g., IP rating, food-grade materials). Finally, consider integration requirements, including robot flange compatibility (ISO 9409-1) and communication protocols (e.g., Modbus TCP, EtherNet/IP).