OpenTechnical

OT-2026-000041220

Single bellows cup vacuum gripper, common isolation valve, single stage ejector, pulsed blow-off after set-down

Published
Permanent URL
Classification
Robotics & AutomationEnd EffectorsVacuum Grippers
Also classified in
Valves and Manifolds, Vacuum Generation, Vacuum Safety Systems
Document SHA-256
64560673e015230280882312e94550fb41e9dbac17f831ee29fcc0cfe6a2610a

Abstract

A bellows-cup vacuum gripping tool comprising one mounting flange, one bellows cup, one ejector, one isolation valve and one blow-off valve. When the bellows cup reaches the workpiece, the bellows cup is evacuated by the ejector. After the workpiece has reached the set-down position, the workpiece is blown off by the blow-off valve. The arrangement is a proposed configuration composed from a typed library of mechanism blocks derived from published patents; it has not been constructed.

1. Purpose and arrangement

[0001]This disclosure describes a bellows-cup vacuum gripping tool: one bellows cup carried on a mounting flange, fed by an ejector. It is arranged for cutting part of the circuit while the rest holds vacuum, clearing the face at release and taking up height differences at the face. One concrete embodiment is described; every connection is stated with the medium it carries, and the operating sequence is given as conditions on named operations.

2. Components, construction and connections

[0002]One mounting flange. The mounting flange carries the whole assembly and presents the bolt pattern that meets the robot.

[0003]One bellows cup. Each bellows cup is folded so that it shortens under vacuum and takes up a height difference between the face and the workpiece. Each bellows cup has three folds.

[0004]One ejector. The ejector draws the circuit down by passing compressed air through a nozzle; it has no moving part at the tool and consumes air for as long as it runs. The ejector has one stage.

[0005]One isolation valve. The isolation valve sits in the line it controls; closing it cuts that line without disturbing the rest of the circuit. Isolation is common.

[0006]One blow-off valve. The blow-off valve drives compressed air back through the circuit to the face, which clears the face instead of waiting for the circuit to refill. The blow-off is a short pulse. The blow-off pulse is given after set-down.

[0007]The bellows cup is carried on the tool side of the mounting flange.

[0008]The ejector is fixed to the tool side of the mounting flange.

[0009]The isolation valve is placed in the line from the ejector, so that closing the valve cuts the whole circuit from the supply.

[0010]The bellows cup is connected to the isolation valve outlet by a single vacuum line, so that the face is evacuated through that line.

[0011]The blow-off valve is connected to the circuit at the line downstream of the isolation valve, so that compressed air can be driven back through the circuit to the face.

[0012]The robot side of the mounting flange is bolted to the robot flange.

[0013]The ejector is fed from the compressed air supply of the cell.

[0014]The blow-off valve is fed from the compressed air supply of the cell.

[0015]The isolation valve and the blow-off valve are switched by the cell controller.

3. Operating sequence and conditions

[0016]

  • When the bellows cup reaches the workpiece, the bellows cup is evacuated by the ejector.

[0017]

  • After the bellows cup has reached the workpiece, the isolation valve is closed by the cell controller.

[0018]

  • While the isolation valve is in the closed state, the vacuum downstream of the valve is maintained by the sealed gripping face.

[0019]

  • After the workpiece has reached the set-down position, the workpiece is blown off by the blow-off valve.

[0020]

  • The workpiece is held until the blow-off valve has opened the circuit.

[0021]The cell controller commands the blow-off valve, the isolation valve; no sensor drives an actuator directly.

4. Parameters and operating assumptions

[0022]Parameter values of this embodiment: folds of the bellows cup: three (sets the travel taken up between the face and the workpiece, and the lateral stiffness of the cup under load); material of the bellows cup: plastic (sets the friction at the lip and the resistance of the folds to fatigue); stages of the ejector: one (sets the flow drawn at low vacuum and the compressed air consumed while a sealed face is held); control of the isolation valve: common (sets which part of the circuit the valve cuts: one branch line on its own or the whole circuit); material of the isolation valve: steel; duration of the blow-off valve: a short pulse (sets how quickly the face clears and how much air each release costs); timing of the blow-off valve: after set-down (sets whether the pulse assists a drop release or clears the face after set-down).

[0023]The blow-off is a short pulse: the valve opens for a fraction of a second, long enough to break the seal and clear the face, and closes again.

5. Provenance and status

[0024]This document is an original combination composed from a typed library of mechanism blocks. Each block was derived from a published patent and carries typed connection points, the parameters its source states, and its own construction and operating description. The combination described here is proposed and has not been constructed. The published documents behind the blocks used in this arrangement are EP-4489564-B1, US-10163334-B1, US-10549431-B2, US-8132312-B2, WO-2008134339-A4; their text is not reproduced, and the description above is generated from the structure of the combination.

Publication information

Citation

OpenTechnical Publication OT-2026-000041220, “Single bellows cup vacuum gripper, common isolation valve, single stage ejector, pulsed blow-off after set-down,” published September 17, 2026 at 08:26:45 UTC, https://opentechnical.org/p/OT-2026-000041220.

To cite specific content, add the paragraph or figure numbers.

Terms

Published through OpenTechnical, which means it has been made publicly available here. It is not a statement that the design has been built, tested or independently validated. Content is available under the Creative Commons Attribution 4.0 International licence. See the publication policy.