Composite sealing element for improving vacuum gripper performance on irregular surface topologies
11167429 · 2021-11-09
Assignee
Inventors
Cpc classification
B25J15/0683
PERFORMING OPERATIONS; TRANSPORTING
B65G47/91
PERFORMING OPERATIONS; TRANSPORTING
B25J15/0691
PERFORMING OPERATIONS; TRANSPORTING
B25J15/06
PERFORMING OPERATIONS; TRANSPORTING
F16J15/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A vacuum gripper sealing element allows a vacuum gripper to suitably conform to irregular surface topology without compromising vacuum conditions. The sealing element utilizes a compressible sealing element which at least partially encapsulates an elastic sealing element. Upon being pressed against an object surface, the compressible sealing element will conform within and around macroscopic peaks, valleys and other irregular physical features. While conforming to macro-scale features, the compressible sealing element applies pressure isotropically upon the encapsulated elastic sealing element, which elastically conforms to micro-scale features while pressed thereagainst. The elastic sealing element has a fluid-filled interior that is surrounded by an elastic outer layer. While under pressure against an irregular surface topology, the fluid-filled interior displaces so as to redistribute internal forces, conforming the elastic outer layer to the micro-scale features of the object surface.
Claims
1. A vacuum gripper sealing element comprising: a compressible sealing element comprising a first attachment surface, a second attachment surface, and a contact surface, wherein the first attachment surface is mountable to a receiving surface of a vacuum gripper base element, wherein the contact surface conforms to a macroscopic texture of an object surface when the vacuum gripper sealing element is pressed thereagainst; an elastic sealing element comprising an attachment surface and a contact surface; wherein the second attachment surface of the compressible sealing element is adhered to the attachment surface of the elastic sealing element, wherein the contact surface of the elastic sealing element is continuous with the contact surface of the compressible sealing element and elastically conforms to an irregular surface topology of the object surface when the vacuum gripper sealing element is pressed thereagainst, wherein the compressible sealing element encapsulates at least a portion of the elastic sealing element such that, when the compressible sealing element and the elastic sealing element are deformed under pressure, the second attachment surface of the compressible sealing element applies a pressure isotropically across the attachment surface of the elastic sealing element; and wherein the vacuum gripper base element comprises inner sidewalls which reinforce the sides of the compressible sealing element and direct the elastic sealing element to the irregular surface topology.
2. The sealing element of claim 1, wherein the elastic sealing element comprises a fluid-filled interior and an elastic outer layer.
3. The sealing element of claim 2, wherein the contact surface of the compressible sealing element conforms to a primary topology of the object surface and the contact surface of the elastic sealing element conforms to a secondary topology of the object surface.
4. The sealing element of claim 3, wherein the compressible sealing element conforming to the primary topology causes the pressure applied isotropically by the compressible sealing element upon the elastic sealing element to displace the fluid-filled interior therein and conform the elastic outer layer thereof to the secondary topology.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The embodiments of this invention are illustrated by way of example and not limitation in the figures of the accompanying drawings, in which like references indicate similar elements and in which:
(2)
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(6) Other features of the present embodiments will be apparent from the accompanying drawings and from the detailed description that follows.
DETAILED DESCRIPTION
(7) Example embodiments, as described below, may be used to provide a composite sealing element which improves a vacuum gripper's performance when used with irregular surface topologies. Reference is made to
(8) The compressible sealing element 210 comprises a first attachment surface 212, a second attachment surface 214, and a contact surface 216. The first attachment surface 212 is mountable to a receiving surface of a vacuum gripper base element 201. The vacuum gripper base element 201 may be analogous to the vacuum gripper base element 140 of
(9) The second attachment surface 214 of the compressible sealing element 210 contacts and/or is adhered to an attachment surface 222a of the elastic outer layer 222. A contact surface 216 of the compressible sealing element 210 is continuous with a contact surface 222b of the elastic sealing element 220. Although the shape of the elastic sealing element 220 is circular as shown in
(10) Reference is made to
(11) The fluid-filled interior 224 of the elastic sealing element 220 may comprise a fluid such as water or oil. Although different fluids may suffice, fluids with higher density and therefore lower compressibility are preferable. Other fluid dynamic factors such as viscosity may affect compressibility under flow. A higher density fluid under pressure will not compress as much as displace to fill in the gaps in a surface against which it is pressed. Additionally, it is important to note that this required behavior of the elastic sealing element 224—that of conforming to secondary topology 234—is not possible without the compressible sealing element 210 exerting its pressure isotropically upon the elastic sealing element 220. If the forces exerted upon the elastic sealing element 220 by the compressible sealing element 210 were not uniformly applied, the elastic sealing element 220 would not, for example, displace a partial volume of the fluid-filled interior 224 around a peak 236 in one area to another area where the elastic sealing element 220 is pressed against a valley 238.
(12) Additionally, the encapsulation of the elastic sealing element 220 by the compressible sealing element 210 serves as a guide for the elastic sealing element 220, allowing the isotropic forces exerted upon the elastic sealing element 220 by the compressible sealing element 210 to be directed toward the object surface 230. This prevents any portion of the contact surface 222b of the elastic sealing element 220 from ‘leaking’ out between the contact surface 216 and the object surface 230. It is important to note that during regular operation, the contact surface 216 of the compressible sealing element 210 would typically contact the primary topology 232 of the object surface 230 first and begin compressing before the contact surface 222b of the elastic sealing element reaches the secondary topology 234. Additionally, the inner sidewalls 204 of the vacuum gripper base element 201 reinforce the sides of the compressible sealing element 210, further supporting the elastic sealing element 220 and directing it to the secondary topology 234.