End effector device and system for suction-based grasping of bagged objects

The end effector device with a concave inner chamber and multidirectional inlets improves the grip and manipulation of bagged objects by drawing bag material into the chamber, addressing the challenges of seal breakage and deformation in existing suction cup technologies.

JP7819112B2Active Publication Date: 2026-02-24AMBIDEXTROUS LAB INC
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Patent Information

Application Number
JP2022560468
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-04-01
Filing Date
2021-04-01
Publication Date
2026-02-24
Estimated Expiration
2041-04-01

AI Technical Summary

Technical Problem

Existing suction cup-type end effectors have a low success rate when grasping bagged objects due to loose bag membranes sliding or rolling, breaking the pressure-based seal, and are prone to material deformation and breakage, especially when handling multiple types of packaged items.

Method used

An end effector device with a rigid or semi-rigid structure featuring a concave inner chamber and multidirectional inlets, combined with a suction cup system, that draws bag material into the chamber for a resilient grip, adapting to different object types by engaging with their surface properties.

Benefits of technology

Enhances the ability to securely grasp and manipulate bagged objects, including heavy or loosely packaged items, with reduced slippage and seal breakage, and extends the device's service life by using robust materials and passive operation.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

An end effector device and system for suction-based grasping of bagged objects may include a body structure with a vacuum line opening and an object-engaging region, the vacuum line opening configured to couple at least one pressure line of a vacuum pressure system to a defined internal channel of the body structure, the body structure comprising an internal structure defining a concave inner chamber with a chamber opening at the object-engaging region, the internal structure comprising an array of inlets positioned along at least one wall of the concave inner chamber, each inlet defining an opening into the defined internal channel within the body. The body structure may additionally include a suction cup system at the object-engaging region comprising a flexible sealing lip, the chamber opening being positioned within the gripping region of the sealing lip.
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Description

[Technical Field]

[0001] (CROSS-REFERENCE TO RELATED APPLICATIONS) This application claims the benefit of U.S. Provisional Application No. 63 / 003,728, filed April 1, 2020, which is incorporated by reference in its entirety.

[0002] The present invention relates generally to the field of pick-and-place end effectors, and more particularly to a novel and useful end effector device and system for suction-based grasping of bagged objects. [Background technology]

[0003] Pick-and-place devices frequently use suction cup-type end effectors to retrieve objects. Suction cup end effectors are used in conjunction with a controlled pressure-vacuum system to establish a pressure-based seal when grasping an object for manipulation. A typical type of end effector is a suction cup device made from a flexible material with a series of bellows connected to the engagement side of the end effector. While these end effectors are useful for some materials, such as rigid objects with flat surfaces, they are not useful for all types of objects and have a low success rate when grasping items packaged within a deformable membrane, such as a plastic or silicone bag.

[0004] Gripping and manipulating bagged objects is a common purpose. With the rise of e-commerce, there is an increasing demand for automation involving bagged objects. However, gripping bagged items using suction cup end effectors has many problems. One major challenge is that loose bag membranes can slide or roll when an object is grasped. This can break the pressure-based seal holding the item and result in the item being dropped. Material rolling can be a major problem, especially when holding bagged objects at an angle to gravity. The weight of the object applies a pulling force to the bag, which can cause the bag to roll and peel downward from the face of the suction cup, breaking the seal.

[0005] Additionally, many suction cup designs traditionally have thin, flexible flanges that must be deformed to conform to a flexible surface such as a bag, however, these thin and flexible materials are susceptible to breakage and have a limited usable life cycle.

[0006] Alternative end effectors, such as actuated grippers, can be used, but they require additional mechanisms and can have other challenges in dealing with bagged objects.

[0007] Dealing with bagged items presents an even greater challenge when the pick and place device must deal with handling multiple types of packaged items, such as bagged items and boxed items.

[0008] Thus, there is a need in the field of pick-and-place end effectors to create new and useful end effector devices and systems for suction-based grasping of bagged objects. The present invention provides such new and useful systems and methods. The present specification also provides, for example, the following items: (Item 1) 1. An end effector for a pick and place system, comprising: a body structure with a vacuum line opening and an object engaging region, the vacuum line opening configured to couple at least one pressure line of a vacuum pressure system to a defined internal channel of the body structure; Equipped with the body structure comprises a suction cup system with a flexible sealing lip at the object engaging region; the body structure includes an interior structure defining a concave inner chamber with a chamber opening at the object-engaging region, the chamber opening being positioned within the gripping region of the sealing lip; the internal structure comprising an array of inlets positioned along at least one wall of the concave inner chamber, each inlet defining an opening into the defined internal channel within the body; End effector. (Item 2) Item 2. The end effector of item 1, wherein the array of inlets comprises a first subset of inlets positioned along a wall of the internal structure opposite the defined chamber opening. (Item 3) 3. The end effector of claim 2, wherein the array of inlets comprises at least a second subset of inlets along a second wall of the concave inner chamber, the second subset of inlets being defined at an orientation different from the orientation of the first subset of inlets. (Item 4) 4. The end effector of claim 3, wherein the concave inner chamber is an enlarged concave inner chamber using an inner chamber with a width greater than a width of the chamber opening, and the internal structure further comprises a lip structure at least partially defining the chamber opening, a first subset of the inlets opening toward the chamber opening, and a second subset of the inlets positioned on the lip structure opening away from the chamber opening. (Item 5) Item 1, wherein the average width of the chamber opening is less than the height of the concave inner chamber. (Item 6) Item 1. The end effector of item 1, further comprising transition air channels, each transition air channel extending outward from an inner edge of the concave inner chamber toward the sealing lip. (Item 7) Item 1, an end effector according to item 1, wherein the suction cup system is made from a flexible material and the concave inner chamber is made from a rigid material and is inserted into a central opening in the suction cup system. (Item 8) Item 8. The end effector of item 7, wherein the concave inner chamber includes a set of flanges extending outward from the chamber opening, thereby forming a set of transition air channels when inserted into the central opening in the suction cup system. (Item 9) Item 10. The end effector of item 1, wherein the suction cup system comprises a bellows forming an exterior surface of the body structure, the bellows being connected to the sealing lip. (Item 10) Item 10. The end effector of item 9, further comprising a rigid side plate enclosing the bellows. (Item 11) 1. An end effector system comprising: a first end effector, the first end effector comprising: a body structure with a vacuum line opening and an object engaging region, the vacuum line opening configured to couple at least one pressure line of a vacuum pressure system to a defined internal channel of the body structure; Equipped with the body structure comprises a suction cup system with a flexible sealing lip at the object engaging region; the body structure includes an interior structure defining a concave inner chamber with a chamber opening at the object-engaging region, the chamber opening being positioned within the gripping region of the sealing lip; a first end effector, the internal structure comprising an array of inlets positioned along at least one wall of the concave inner chamber, each inlet defining an opening into the defined internal channel within the body; a second end effector and An end effector system comprising: (Item 12) Item 12. The end effector system of item 11, wherein the first end effector and the second end effector have object engagement regions substantially defined along the same plane. (Item 13) Item 12. The end effector system of item 11, further comprising a first vacuum line coupled to the first end effector and a second vacuum line coupled to the second end effector. (Item 14) Item 12. The end effector system of item 11, wherein the second end effector is a suction cup end effector. (Item 15) Item 12. The end effector system of item 11, wherein the second end effector comprises a second body structure comprising a second internal structure defining a second concave inner chamber with a second chamber opening, the second internal structure comprising an array of second inlets positioned along at least one wall of the second concave inner chamber. (Item 16) Item 16. The end effector system of item 15, wherein the chamber opening of the first end effector has a different diameter than the second chamber opening of the second end effector. (Item 17) Item 12. The end effector system of item 11, wherein the array of inlets comprises a first subset of inlets positioned along a wall of the internal structure opposite the defined chamber opening. (Item 18) Item 12. The end effector system of item 11, wherein the array of inlets comprises at least a second subset of inlets along a second wall of the concave inner chamber, the second subset of inlets being defined at an orientation different from the orientation of the first subset of inlets. (Item 19) Item 12. The end effector system of item 11, wherein the first end effector includes transition air channels, each transition air channel extending outward from an inner edge of the concave inner chamber toward the sealing lip. (Item 20) Item 12. The end effector system of item 11, wherein the suction cup system comprises a bellows forming an exterior surface of the body structure, the bellows being connected to the sealing lip. (Item 21) 1. An end effector for a pick and place system, comprising: a body structure with a vacuum line opening and an object engaging region, the vacuum line opening configured to couple at least one pressure line of a vacuum pressure system to a defined interior channel of the body structure; a body structure including a defined concave inner chamber with a chamber opening at the object engaging region; a lip structure extending from the body structure and at least partially defining the chamber opening to the inner chamber; an array of inlets positioned along the wall of the inner chamber, each inlet defining an opening into the defined interior channel within the body structure; An end effector comprising: (Item 22) 22. The end effector of claim 21, wherein the array of inlets comprises at least a first subset of inlet openings in a direction toward the chamber opening and a second subset of inlet openings in a direction away from the chamber opening. (Item 23) Item 23. The end effector of item 22, wherein at least a portion of the second subset of inlets are positioned on the lip inner wall. (Item 24) Item 22. The end effector of item 21, wherein the inlets of the array of inlets are arranged in the inner chamber in a symmetrical radial arrangement from the top inner wall to the lip inner wall. (Item 25) Item 22. The end effector of item 21, wherein the lip structure extends inwardly from the body structure to define a rounded shape of the chamber opening. (Item 26) Item 26. The end effector of item 25, wherein a subset of the inlets of the array of inlets are uniformly distributed across an inner lip wall of the lip structure. (Item 27) Item 22. The end effector of item 21, wherein the lip structure extends inwardly from a limited portion of the body structure, the lip structure covering only a portion of the chamber opening. (Item 28) Item 22. The end effector of item 21, wherein the body is made from a rigid material. (Item 29) Item 22. The end effector of item 21, wherein the body is made from a semi-rigid material. (Item 30) Item 22. The end effector of item 21, wherein the lip structure is made from a flexible material. (Item 31) 22. The end effector of claim 21, wherein the lip includes a low-friction rounded edge. (Item 32) Item 22. The end effector of item 21, further comprising a flexible suction cup extending beyond the object engaging region of the body structure. (Item 33) 1. An end effector for use with a vacuum pressure system, comprising: At least a semi-rigid body structure Equipped with the body structure includes a defined concave inner chamber with a chamber opening on an object engaging side of the end effector, the inner chamber having an interior width greater than the chamber opening; Within the inner chamber, the body includes an array of inlets defining channel opening walls of the body structure; the body structure includes a defined internal channel connecting to the array of inlets; the body structure includes a vacuum line interface defining an opening to the defined interior channel; End effector. (Item 34) Item 34. The end effector of item 33, wherein the array of inlets has at least a first subset of inlet openings in a direction toward the chamber opening and a second subset of inlet openings in a direction away from the chamber opening. (Item 35) Item 34. The end effector of item 33, further comprising a lip structure extending inwardly from the body on the object engaging side to at least partially define the chamber opening. (Item 36) Item 36. The end effector of item 35, wherein at least a subset of the inlets are positioned on the lip. (Item 37) Item 36. The end effector of item 35, wherein the lip structure extends inwardly from the body structure to define a rounded chamber opening. (Item 38) Item 38. The end effector of item 37, wherein the subset of inlets in the array of inlets are uniformly distributed across the lip inner wall. (Item 39) Item 34. The end effector of item 33, wherein the body is made from a rigid material. (Item 40) Item 34. The end effector of item 33, further comprising a flexible suction cup extending beyond the object engaging region of the body structure. [Brief explanation of the drawings]

[0009] [Figure 1] 1A-1F are cross-sectional side schematic views of exemplary variations of end effectors with concave inner chambers.

[0010] [Figure 2] 2A and 2B are cross-sectional side schematics of a bladder interaction with an end effector.

[0011] [Figure 3]3A and 3B are cross-sectional side schematics of a hybrid end effector variation bag interaction engaging a bagged object in FIG. 3A and a solid object in FIG. 3B.

[0012] [Figure 4] 4A-4C are schematic illustrations of an exemplary sequence of the end effector grasping a bag and holding the bag in different orientations.

[0013] [Figure 5] FIG. 5 is a detailed schematic side cross-sectional view of an end effector variation with a concave inner chamber.

[0014] [Figure 6] FIG. 6 is a detailed cross-sectional side schematic view of an alternative end effector variation with a solid body and inlets on different walls.

[0015] [Figure 7] FIG. 7 is a schematic side cross-sectional view of one variation of an end effector with an inlet along the interior surface of the internal structure.

[0016] [Figure 8] FIG. 8 is a schematic side cross-sectional view showing end effector features for one variation of the end effector, including a lip structure.

[0017] [Figure 9] FIG. 9 is a schematic side cross-sectional view of a variation of an end effector with an internal lip feature.

[0018] [Figure 10A] FIG. 10A is a schematic side cross-sectional view of one variation of an end effector with a lip.

[0019] [Figure 10B] FIG. 10B is a schematic horizontal cross-sectional view illustrating the inlet pattern on the lip of one variation of the end effector.

[0020] [Figure 11] 11A and 11B are schematic cross-sectional side views of two different variations in which the inner chamber includes an inner side wall with a patterned surface.

[0021] [Figure 12] FIG. 12 is a schematic side cross-sectional view of one variation of an end effector with downwardly protruding structural features.

[0022] [Figure 13A] FIG. 13A is a schematic side cross-sectional view of one variation of a hybrid end effector with a sealing lip.

[0023] [Figure 13B] FIG. 13B is a schematic horizontal cross-sectional view illustrating a sealing lip extending outward from the chamber opening.

[0024] [Figure 14A] FIG. 14A is a schematic side cross-sectional view of one variation of a hybrid end effector with a sealing lip and bellows.

[0025] [Figure 14B] FIG. 14B is a schematic horizontal cross-sectional view illustrating a sealing lip extending outward from the chamber opening.

[0026] [Figure 15A] FIG. 15A is a schematic side cross-sectional view of one variation of a hybrid end effector with a transition air channel.

[0027] [Figure 15B] FIG. 15B is a schematic horizontal cross-sectional view illustrating an exemplary patterning of the transition air channels.

[0028] [Figure 16A] FIG. 16A is a schematic side cross-sectional view of one variation of a hybrid end effector with inlets on different walls of the internal structure.

[0029] [Figure 16B] FIG. 16B is a schematic horizontal cross-sectional view of a hybrid end effector with inlets on different walls of the internal structure.

[0030] [Figure 17A] FIG. 17A is a schematic side cross-sectional view of one variation of a hybrid end effector with an enlarged concave inner chamber.

[0031] [Figure 17B] FIG. 17B is a schematic top cross-sectional view of a hybrid end effector with an enlarged concave inner chamber.

[0032] [Figure 18A] FIG. 18A is a schematic side cross-sectional view of one variation of a hybrid end effector with a lip structure.

[0033] [Figure 18B] FIG. 18B is a schematic horizontal cross-sectional view of a hybrid end effector with a lip structure.

[0034] [Figure 19] FIG. 19 is a schematic side cross-sectional view of one variation of a hybrid end effector with structural features in the inner chamber.

[0035] [Figure 20A] FIG. 20A is a schematic side cross-sectional view of one variation of a hybrid end effector with rigid side plates.

[0036] [Figure 20B] FIG. 20B is a schematic horizontal cross-sectional view of a hybrid end effector with rigid side plates.

[0037] [Figure 21] 21A and 21B are schematic side cross-sectional views with example dimensional nomenclature.

[0038] [Figure 22A] FIG. 22A is a schematic side cross-sectional view of one variation of an end effector with a lip over a limited portion of the chamber opening.

[0039] [Figure 22B] FIG. 22B is a schematic horizontal cross-sectional view illustrating one variation of an inlet pattern on the lip, with the lip spanning a limited portion of the chamber opening.

[0040] [Figure 23] 23 and 24 are schematic cross-sectional side views of exemplary variations of end effectors. [Figure 24] 23 and 24 are schematic cross-sectional side views of exemplary variations of end effectors.

[0041] [Figure 25] 25A and 25B are schematic side cross-sectional views of an actively controlled entrance being activated at different stages of grasping.

[0042] [Figure 26] FIG. 26 is a schematic cross-sectional side view of a multi-channel variation of the end effector.

[0043] [Figure 27] FIG. 27 is a schematic cross-sectional side view of a multi-chamber variation of the end effector.

[0044] [Figure 28] FIG. 28 is a cross-sectional schematic diagram of a hybrid variation of the end effector showing details of the internal structure that is inserted into the suction cup system.

[0045] [Figure 29] FIG. 29 is a cross-sectional schematic diagram of a multi-sided end effector system with one bladder gripping end effector and one suction cup end effector.

[0046] [Figure 30] FIG. 30 is a cross-sectional schematic of a multi-sided end effector system with two types of bladders gripping the end effector. Summary of the Invention [Means for solving the problem]

[0047] Description of the embodiment The following description of embodiments of the invention is not intended to limit the invention to those embodiments, but rather to enable any person skilled in the art to make and use the invention. 1. Overview

[0048] An end effector device and system for suction-based grasping of bagged objects functions to use an internal collection volume formed by an internal concave chamber that engages the bagged item by drawing a portion of the bag material into the volume for pressurized grasping.

[0049] The end effector may be used with various types of objects, but may have improved performance with bagged and / or other objects with a flexible membrane-like gripping surface. In some variations, the end effector may be an end effector that may have high performance across various item types. For example, a hybrid end effector variation including the integration of a suction cup flexible sealing lip may be suitable for grasping boxed / solid items and bagged items, with the end effector naturally engaging the item in a manner appropriate for that type of item.

[0050] In this specification, a "pouched object" is referred to as the general type of object that is grasped and manipulated, although any suitable type of object may additionally or alternatively be used in conjunction with the end effector.

[0051] As shown in the exemplary variations of the system in Figures 1A-1F, the end effector can utilize a rigid (or at least semi-rigid) structure that forms a defined concave inner chamber with at least a subset of inlets recessed from the inner chamber opening.

[0052] As shown in the exemplary variations of Figures 1A and 1B, the array of inlets may be positioned in various locations to increase the extent to which bagged items are drawn and grasped within the inner chamber.

[0053] Hybrid variations can integrate suction cup systems, as shown in the example variations of Figures 1C and 1D. In hybrid variations, end effector devices and systems for suction-based grasping can include a surrounding flexible sealing lip, which can enable the end effector device, through interaction with a recessed chamber, to act as a suction cup end effector on suitable objects, such as boxes or items with hard surfaces (or tightly packed items), but not the bagged items to be grasped.

[0054] In some variations for further improved bag gripping, such as those shown in Figures 1E and 1F, end effector devices and systems for suction-based gripping may employ the use of an array of multidirectional inlets in variable orientations as well as structural variations in the surface of the inner chamber. In some such variations, the concave chamber may further be an enlarged concave chamber with a lip. The location of the inlets and / or the applied force in different directions may improve the end effector's grip on the bag and its ability to manipulate the bagged items without deforming the bag and breaking the vacuum seal.

[0055] The various end effector design features described herein may be combined in various combinations, such as those shown in the examples of Figures 1A-1F. For example, a hybrid end effector may include a concave inner chamber with an array of inlets with variable orientation and structural features, such as a structural chamber opening lip and a suction cup system, as shown in Figure 1F. This may serve to enable a hybrid end effector with enhanced bag grasping and manipulation capabilities. Other suitable feature combinations may alternatively be used.

[0056] The end effector is preferably coupled to a vacuum system and attached to the robot's actuation system. The end effector design may additionally be incorporated into a multi-pronged end effector, where one or more instances of the system are used, possibly in combination with other types of end effectors.

[0057] The end effector may preferably be used for a pick-and-place robotic system or any suitable object handling system used to manipulate bagged items, and possibly other suitable items. However, the end effector may alternatively be used with any suitable system designed to grasp objects, particularly bagged objects. For example, the end effector may additionally have utility in object handling machines used in manufacturing, assembly, food preparation, food packaging, medical kits, medical processing, and / or object handling systems.

[0058] End effectors and systems for suction-based grasping may employ various design features that facilitate improved grasping capabilities.

[0059] One potential concern is that the inner chamber provides a collection volume within which a portion of the bag is drawn into the chamber. The flexible material of the bagged item is drawn within the internal recessed chamber when it engages with the system, providing a better grip.

[0060] Of another potential importance, the chamber extends the surface area of ​​the bag material onto which the inlet can apply suction. By varying the shape profile of the interior concave chamber and / or the chamber depth / size, different chamber designs may be used for different flexible material gripping capabilities. These may be varied depending on the target type of gripped material, the variety of gripped materials / items, the type of item manipulation, and / or other performance properties.

[0061] Of further importance, the end effector may diversify the direction of the suction force. Inlets can be positioned on the interior concave chamber along different defined planes. In some cases, the interior concave chamber inlet can be positioned so that the suction force is in a direction opposite that at the chamber opening to increase the frictional force between the membrane and the end effector chamber opening. When combined with structural features that impede or prevent material from peeling or sliding off, this can result in a firmer grip of the bagged item.

[0062] The end effector can function in part by utilizing a rigid (or semi-rigid) structure with a set of inlets recessed from the inner chamber opening. Thus, when a bagged item is engaged by the end effector, the bag material is drawn into the structure of the inner chamber and thereby into the body of the end effector. As an exemplary illustration of a gripping interaction sequence, the end effector can operate by having a configuration such that, when depressurized, the bag is first drawn into the inner chamber through the chamber opening, as shown in FIG. 2A . The bag material is pulled up toward the upper wall of the chamber. The bag material will generally be drawn into each or at least a plurality of these inlets, as shown in FIG. 2B , establishing a seal. As the bag is drawn into the collection volume of the recessed inner chamber, the pressurized seal with the bag can become more resilient.

[0063] In a hybrid variation, the end effector naturally grasps an object based on the surface properties of the object. As shown in Figure 3A, a bagged object would be grasped as described above. However, as shown in Figure 3B, a boxed object (or other type of suitable object) would engage with and be grasped through the suction cup system of the end effector.

[0064] In the exemplary system variations shown in FIGS. 4A-4C, the end effector may include other inlets and structural features to further increase the extent to which the bag is drawn and gripped within the chamber structure. The end effector body may operate to mitigate the occurrence of bag slippage or material rolling through the design of the concave chamber profile and / or other structural features. As shown in FIG. 4A, when depressurization is applied, the bag is first drawn into the inner chamber through the chamber opening. Friction between the bag membrane and the end effector inlet may be low during this phase, allowing the bag membrane to quickly enter the inner chamber of the end effector. The inlet arrangement may be configured so that the bag material is drawn toward the top wall of the chamber, but then inlets along the sides of the chamber, optionally along the bottom edge of the chamber (possibly on a lip structure), then draw the bag material toward those inlets, as shown in FIG. 4B. Generally, as flow into one of the inlets is blocked by the membrane, flow into the other inlets continues, so that the bladder material will be drawn into each or at least several of these inlets, establishing a seal. Due to the enclosed shape of the end effector chamber (as defined by the central cavity), the bladder membrane wraps around the end effector's entry edge, and high-friction contact is initiated between the bladder membrane and the end effector. The arrangement of the inlets can include configurations to promote a desired sequence of engagement with the bladder membrane during initial grasping of an object. One potential benefit of such end effector features is that as the end effector is manipulated (e.g., rotated, torqued, or pivoted in space), the edges of the chamber opening, and optionally other structural edges, reduce the chance of slippage and bladder roll, as shown in FIG. 4C.

[0065] The present system may provide several potential advantages. The present system is not limited to providing such advantages at all times, and they are presented only as exemplary representations of how the present system may be put into practice. The list of advantages is not intended to be comprehensive, and other advantages may exist in addition or as an alternative.

[0066] One potential advantage is that the end effector devices and systems may improve the machine's ability to grip bagged objects. In particular, the end effector devices and systems may improve the machine's ability to grip heavy or heavier bagged objects and objects packaged in loose membranes. For example, the end effector may be able to securely grip loosely bagged items, such as a coffee mug inside a 12-inch by 12-inch plastic bag.

[0067] As another potential advantage, end effector devices and systems may, in some variations, be configured to operate as hybrid end effectors that can be used to grasp non-bagged objects, such as boxes, as well as bagged objects. In some variations, end effector devices and systems include design features such that, when a grasping action is performed, the interaction between the end effector and the object can naturally adapt so that the object is grasped in the appropriate mode. For example, boxed objects and / or tightly bagged objects will naturally engage with the outer suction cup elements, while bagged items with loose membranes will naturally pull the bag material into the collection volume. By selectively engaging with objects based on their physical surface properties, this can enable pick-and-place robotic systems to operate non-heterogeneous sorts of objects.

[0068] Another related potential benefit is that, in addition to improved grasping, end effector devices and systems may enable machines to better manipulate bagged objects. With fewer occurrences of grasp failure at different angles, machines can manipulate bagged items in a variety of ways. The increased range of manipulation combined with fewer instances of grasp failure results in increased efficiency for automated systems. For example, end effectors may be used not only to grasp and transfer objects from one position to another, but also, optionally, to reorient the objects.

[0069] Another potential advantage is that the end effector may have a long service life. Some end effector variations can be made from rigid or semi-rigid materials that may be resistant to failure. Additionally, some end effector variations may be made from a single piece and / or have no moving parts, increasing the robustness of the device.

[0070] As yet another potential advantage, the end effector may use its physical design to operate as a passive element to better grasp objects. As a passive device, the end effector would not require additional actuators, sensors, and / or control systems, as some grasping end effector solutions may require. 2. End effector details

[0071] As shown in FIG. 1A, an end effector for suction-based grasping of a bagged object can include a main body structure 110 with a defined concave inner chamber 120 that includes an array of inlets 130. The body structure 110 can include a defined internal channel 140 that couples a vacuum line interface 150 to the array of inlets 130. The end effector can be used in conjunction with a bagged object, and the bagged object is grasped by drawing the bag material into the concave inner chamber 120, which may function to establish a more resilient grasp of the bagged object.

[0072] The end effector is preferably for use with a vacuum pressure system 170, which may be used in combination with a pick-and-place robotic system or any suitable automation system. System variations may include one or more instances of the end effector, vacuum pressure system, and / or pick-and-place robotic system. Vacuum pressure system 170, more specifically, pressure lines connected to a vacuum pressure pump, connect to the end effector, and the pressure lines, internal channel 140, and array of inlets form a fluidly coupled pathway for gas and / or liquid.

[0073] Variations of the end effector system may incorporate various features and variations as described herein. While Figures 1A-1F are exemplary representations of variations of the end effector, as will be understood by those skilled in the art, the end effector is not limited to these exemplary representations. For example, the end effector may incorporate one or more variations as described herein.

[0074] As described herein, end effectors are most generally described and characterized as having a generally horizontally symmetrical and generally rounded or circular profile unless otherwise noted. However, as will be understood by those skilled in the art, end effectors and variations thereof are not limited to such symmetrical or rounded configurations and may be asymmetrical and have other geometric profiles.

[0075] In one variation of an end effector, such as that shown in FIGS. 1A-1F, the end effector includes at least a semi-rigid body structure 110, the body structure including, on an object-engaging side of the end effector, a defined concave inner chamber 120 with a chamber opening, within the inner chamber, the body including an array of inlets 130 that define channel opening walls of the body structure 110. The defined concave inner chamber 120 is recessed beyond the chamber opening, which encourages the bag material to be drawn into the inner chamber 120, thereby enabling better gripping of the bagged object. In some variations, the body structure further includes a defined interior channel 140 that connects to the array of inlets 130, and the body structure 110 further includes a vacuum line interface 150 that defines an opening to the defined interior channel 140.

[0076] The object engagement region is preferably a face or surface on the body structure 110 in which an object is engaged. The object engagement region may be along a generally planar region. However, the region can be conformed to any suitable shape or form. The object engagement region will generally be on the opposite side (i.e., the object engagement side) of the vacuum line opening and its respective vacuum line interface 150. However, the vacuum line interface and object engagement region can have any suitable relative position. For example, some variations may have a 45° or 90° angle between the vacuum line interface and the object engagement region.

[0077] As described herein, the end effector may be implemented with various shapes of the concave inner chamber 120, arrangements of arrays of inlets 130, optional inclusion of a structural lip or other structural feature on the concave inner chamber 120, inclusion of a suction cup system 160, and / or other variations.

[0078] As shown in Figures 3A and 3B, a variation of an end effector including a lip is more specifically described as alternatively including a body structure 110 with a vacuum line interface 150 and an object engaging region, wherein the vacuum line interface 150 is configured to couple at least one pressure line of a vacuum pressure system to a defined internal channel 140 of the body structure, the body structure 110 having a defined concave inner chamber 120 with a chamber opening at the object engaging region, a lip structure 121 extending from the body structure 120 and at least partially defining the chamber opening to the inner chamber 120, and an array of inlets 130 positioned along the wall of the inner chamber 120 and along the lip inner wall 124 of the lip, each inlet defining an opening into the defined internal channel 140 within the body structure 110.

[0079] As a first set of variations, the end effector may apply various arrangements of inlets 130 within the concave inner chamber 120. The array of inlets may include at least a subset 1301 of inlets positioned along a wall of the interior structure opposite the defined chamber opening (e.g., a wall across from the chamber opening), as shown in FIG. 5, or alternatively, or in addition, may be located along side walls, lower walls, and / or structural features of the concave inner chamber.

[0080] The array of inlets may include inlets located at various orientations along different walls or structures of the interior structure defining the concave inner chamber. Thus, the array of inlets may include at least a second subset of inlets along a second wall of the concave inner chamber, the second subset of inlets defined at a different orientation than the orientation of the first subset of inlets. As shown in the example of FIG. 6, the first set of inlets can be located along the top wall and the second set of inlets can be located along the side wall.

[0081] In another set of variations, the end effector may incorporate an enlarged concave inner chamber 120 to increase the collection volume used in grasping a bagged object. An enlarged concave inner chamber is an inner chamber with a width that exceeds the width of the chamber opening. In variations involving an enlarged inner chamber 120, an inner chamber having an internal width that exceeds the width of the chamber opening can facilitate the bag material being drawn into the inner chamber 120, where the chamber opening establishes a rigid barrier that forms a fold in the bag material, which can mitigate slippage and bag rolling to better grasp the bagged object. In a concave inner chamber with a circular cross-section, this can mean that the concave inner chamber has a cross-section with a diameter that exceeds the diameter of the chamber opening. However, the inner chamber and / or chamber opening are not limited to a circular configuration. As such, the enlarged concave inner chamber 120 can be any with a profile that recedes beyond the inner chamber opening in at least one region (e.g., is concave in the horizontal dimension).

[0082] As another possible variation, the enlarged inner chamber may incorporate a lip structure 121 extending inward from the body structure 110 to at least partially define the chamber opening on the object-engaging side, as shown in FIG. 8. In some variations, the lip structure 121 extends inward from the body structure to define a rounded chamber opening. The lip structure 121 may alternatively form any suitable shaped contour of the chamber opening. Additionally, there may be multiple lip structures, such as an outer lip 1211 and an inner lip 1212, as shown in FIG. 9.

[0083] As another possible variation, a subset of the inlets 130 may be positioned on the lip structure 121 and open away from the chamber opening, as shown in FIG. 10 . In one embodiment, the array of inlets 130 may have at least a first subset 1301 of inlets that open toward the chamber opening and a second subset 1302 of inlets (e.g., inlets on the lip structure) that open away from the chamber opening, as shown in FIG. 10 . In a variation including the lip structure 121, a subset of the inlets 130 may be positioned on the lip structure 121, more specifically, on the lip inner wall, and the inlets 130 may open away from the chamber opening. The multi-directional positioning of the inlets within the inner chamber, combined with the inwardly extending lip, can create a volume with multi-directional pressure that can hold the bag in a more secure manner. The physical configuration of the body structure 110 can cooperatively enhance gripping of the object and reduce the chance of grip failure that is inherent to bags.

[0084] As another possible variation, the internal structure defining the concave internal chamber 120 may include one or more structural features (e.g., lip protrusions, valleys, etc.). In the example of Figures 11A and 11B, notched structural features may be patterned on the lateral sidewalls of the internal structure defining the concave internal chamber 120. In the example of Figure 12, the structural features may include surfaces that protrude from the top wall of the internal structure defining the concave internal chamber 120. In such a variation, a subset of the inlets may be located on one or more structural features.

[0085] In one possible variation, end effector features such as those described herein may be incorporated into the end effector, along with the enlarged concave inner chamber 120 and the body structure 110 defining the outer surface. In such a variation, the end effector may be a completely rigid (or semi-rigid) structure, which may be made from a single piece or alternatively multiple components attached to form the end effector structure. In some variations, this variation may be manufactured using additive manufacturing (e.g., 3D printing) or other manufacturing techniques. In other variations, multiple components may be manufactured, attached, and assembled to form a single solid component. This variation may be used as a pouch-focusing end effector.

[0086] In such a bag-focused variation, the end effector can include at least a semi-rigid body structure 110, the body structure forming the exterior surface of the end effector and including a defined concave inner chamber 120 with a chamber opening on the object-engaging side of the end effector, the inner chamber 120 having an internal width greater than the chamber opening, within the inner chamber the body including an array of inlets defining channel openings in a wall of the body structure, the body structure further including a defined internal channel connecting to the array of inlets, and the body structure further including a vacuum line interface defining an opening in the defined internal channel.

[0087] In another possible variation, the end effector may include a body structure 110 including a suction cup system 160 integrated with or connected to an internal structure defining a concave inner chamber 120, such as that shown in the example of FIGS. 13-17. Alternatively, such variations, referred to as hybrid end effector variations, may function to enable the end effector to act as a suction cup-based end effector or as a bag-focused end effector. In hybrid variations with integrated suction cups, a boxed object (or other object with a surface suitable for suction cup grasping, such as a loosely bagged item) may be naturally grasped by establishing a vacuum seal between the suction cup system 160 and the object's surface, and the bagged object will naturally draw the bag material into the inner chamber 120 for grasping of the bagged object. Hybrid end effector variations may optionally include one or more of the variation features described herein.

[0088] In this manner, an end effector for a hybrid pick-and-place system may include a body structure 110 with a vacuum line opening and an object engagement region, wherein a vacuum line interface 150 (e.g., an opening) is configured to couple at least one pressure line of a vacuum pressure system to a defined internal channel of the body structure 110, the body structure 110 comprising a suction cup system 160 with a flexible sealing lip 161 at the object engagement region, the body structure 110 additionally comprising an internal structure 112 defining a concave inner chamber 120 with a chamber opening at the object engagement region, the chamber opening being positioned within the gripping region of the sealing lip 161, and the internal structure 112 comprising an array of inlets 130 positioned along at least one wall of the concave inner chamber 120, each inlet defining an opening into the defined internal channel within the body.

[0089] In some variations, the present end effector variations may include a suction cup system that forms an exterior surface of the end effector (e.g., the exterior surface of the body structure 110) and a separate rigid interior structure that is inserted into an opening in the suction cup system 160. The suction cup system 160 can be made from a flexible material, and the interior structure 112 can be made from a rigid (or semi-rigid) material. The rigid interior structure may be mated and / or attached within the suction cup system. The rigid interior structure 112 can define a concave interior chamber 120 with a chamber opening on the object-engaging side of the end effector. As with other variations, within the interior chamber 120, the interior structure 112 can include an array of inlets 130 in the wall of the interior structure 112 that define channel openings.

[0090] A sealing lip 162 preferably surrounds the chamber opening and extends outwardly therefrom. The suction cup system 160 of the body structure 110 may additionally include a bellows 162 around the interior structure 112 to form the exterior surface of the end effector, such as that shown in FIG. 14. The bellows 162 may be connected to the sealing lip 161.

[0091] In some hybrid variations, such as those shown in the examples of Figures 13-14, the array of inlets can include a first subset of inlets positioned along a wall of the internal structure opposite the defined chamber opening. In other words, at least a subset of the inlets can be along the top wall.

[0092] In some hybrid variations, such as the variation shown in FIG. 16, the array of inlets may additionally include at least a second subset of inlets along a second wall of the concave inner chamber. The second subset of inlets may be defined at an orientation different from the orientation of the first subset of inlets. In such variations, the inlets may be defined along different walls, with tangents defined along non-parallel planes. As shown in the example of FIG. 16, the inlets may be positioned along the top wall and side walls of the concave inner chamber.

[0093] In some hybrid variations, such as the variation shown in Figure 17, several inlets 130 may be oriented in opposite directions. The inlets 130 may be oriented in opposite directions directly (with the inlets defined along vectors in opposite directions), but the inlets 130 may alternatively be oriented in opposite directions indirectly (with the orientation vectors of the two inlets having longitudinal components in opposite directions).

[0094] 18, the internal structure may form an enlarged concave internal chamber 120 with the internal chamber having a width that exceeds the width of the chamber opening. In some such variations, the internal structure (or other suitable component of the end effector) may include a lip structure 121 that at least partially defines the chamber opening.

[0095] Additionally, in some hybrid variations, such as the variation shown in FIG. 17, a first subset of the inlets 130 may open toward the chamber opening (i.e., be defined with a certain orientation), and a second subset of the inlets may be positioned on the lip structure and open away from the chamber opening (i.e., in the opposite direction).

[0096] In some hybrid variations, such as the variation shown in FIG. 19, the internal structure 112 defining the concave inner chamber 120 may include one or more structural features (e.g., lip protrusions, valleys, etc.).

[0097] In some hybrid variations, such as those shown in FIGS. 15-18 , the end effector includes transition air channels 125 between the chamber opening and the suction cup 160. Each transition air channel 125 may extend from the inner edge of the chamber outward toward the outer edge of the sealing lip 161. This feature for providing fluid channels improves hybrid operation in either the suction cup gripping mode or the bagged object gripping mode. Other structural arrangements may also be used to establish the transition air channels. In one preferred implementation, the internal structure includes a set of flanges extending outward from the chamber opening, thereby forming a set of transition air channels when inserted into the central opening in the suction cup system. The set of flanges preferably extends, at least in part, horizontally and preferably conforms to the slope and surface of the sealing lip 161. Alternatively, the transition air channels may be defined by the configuration of the inner surface of the sealing lip 161.

[0098] In some hybrid variations, such as that shown in FIG. 20, an end effector including a suction cup system 160 with a bellows 162 can include a rigid side panel 180 that encloses the bellows.

[0099] Below follows a detailed description of the various components, features, and variations of the end effector and / or end effector system.

[0100] The body 110 of the end effector functions as a structural unit with various channel features to enable the end effectors described herein. The body 110 may be made from multiple components that are assembled or otherwise connected to form the end effector. The body 110 may alternatively be made from a single manufactured structure.

[0101] As described above and shown in embodiments such as Figures 5-12, body 110 can be a rigid or semi-rigid piece that forms an exterior surface and at least a portion of the interior structure that defines concave interior chamber 120. In other variations, shown in embodiments such as Figures 13-21, body 110 may include or be integrated with suction cup system 160 and rigid or semi-rigid interior structural components. In some hybrid variations, the exterior surface may be made, at least in part, from the suction cup system, as shown, for example, in Figures 16-19.

[0102] Body 110 preferably includes an interior structure 112 that defines a concave interior chamber 120 and its features, as described below. The interior structure may simply be a subsection of a rigid element (e.g., as in FIGS. 5-12). Alternatively, the interior structure may be a distinct part that is combined with other components to form end effector body 110. For example, interior structure 112 may be an insert that fits into an interior opening of suction-up system 160.

[0103] The internal structure 112 is preferably at least semi-rigid. In some variations, the body 110 can be made entirely from a rigid or semi-rigid material. As a rigid or semi-rigid material, the end effector can have a long service life because use has minimal impact on the structure and functionality of the end effector. The body 110 can be manufactured as a single piece of material, but alternatively, can be a multi-component design. Some variations may implement an end effector with flexible or non-rigid materials and elements within the body. In one exemplary variation, the end effector includes a flexible bellows for more flexibility when and where it contacts an object, and the flexible region can be integrated into the body 110.

[0104] Various structural body 110 variations for the various elements of the end effector are described in further detail herein.

[0105] Generally, the structural body 110 will include at least some portions or subcomponents that define the concave inner chamber 120 .

[0106] As shown in the embodiment of Figures 13-20, the structural body 110 may include a semi-rigid component that forms an inner chamber 120 to facilitate gripping of a bagged object and an outer suction cup system 160 that facilitates gripping of non-bagged objects (e.g., boxed objects) and / or tightly bagged objects.

[0107] As shown in FIGS. 5-12 , the structural body 110 may alternatively be a fully semi-rigid or rigid structure made from one or more components without the suction cup 160 component. As one example, the body 110 may have a bell-like shape, although the outer configuration of the end effector body may be customized to any suitable shape. In one preferred implementation, the body 110 is substantially symmetrical about a central axis, with the vacuum line interface 150 and the inlet into the defined internal channel 140 on opposite sides. In one implementation, the body 110 has a configuration that is compatible with 3D printing, such that the end effector can be made from a single piece. However, any suitable manufacturing and assembly techniques may alternatively be used.

[0108] In some variations, structural body 110 may include an outer flexible bellows sub-component 161 to allow the end effector to flex without including a suction cup flange.

[0109] The concave inner chamber 120 functions in conjunction with the array of inlets 130 as a feature that promotes improved gripping of the bag. As explained above, the concave inner chamber 120 is defined by the interior structure 112, and therefore, the features of the interior chamber 120 may alternatively be described as features of or defined by the interior structure 112.

[0110] When pressure is active, the bladder can be drawn into the internal chamber 120, the defined volume of the chamber 120 being shaped to allow sufficient bladder material to enter so that a seal can be established over substantially the entire array of inlets 130. Multiple inlets 130 at different locations can establish different points of applied force. In variations with inlets at different orientations, the bladder can be drawn in different directions at distinctly different locations of the inlets 130.

[0111] As discussed in some instances, the direction of force generated from pressure applied from one or more inlets 130 in a particular region may be in a direction opposite to the direction in which the sack entered the chamber opening, thus increasing friction between the sack membrane and the walls of the chamber opening and resisting sliding when moving an object in space during grasping. This serves to create a structure in the end effector that acts in a folding clasp-like manner.

[0112] The concave inner chamber 120 is formed by an internal structure 121 of the body structure 110. In some variations, the internal structure 121 may simply be a portion of the body structure 110 that forms an end effector, such as that in FIG. 6 . Alternatively, the internal structure 121 may be a distinct component that is connected to another component of the body structure 110. In one example, the internal structure 121 is an insert that is positioned within an opening of the suction cup system 160. The internal chamber 120 may refer to a defined cavity formed by the internal structure 121.

[0113] The inner chamber 120 is preferably concave from the chamber opening. In other words, the inner chamber is a defined cavity that is longitudinally concave (recessed from the distal chamber opening toward the proximal end of the end effector). The inner chamber 120 is primarily described herein as having a rounded or circular chamber opening in the object-engaging region. However, the chamber opening may have alternative shapes.

[0114] In some variations, the inner chamber 120 is an enlarged concave inner chamber, with the inner chamber 120 at its widest region having a width greater than the width of the chamber opening. More generally, the width of one section of the cavity exceeds the width of at least one section of the cavity closer to the opening. The inner chamber 120 can be dome-shaped, but may have a variety of internal geometries. The inner chamber 120 may have a defined volume with an irregular shape.

[0115] The inner chamber 120 is comprised of interior walls, which may include a top interior wall 122 and a side interior wall 123. In some variations, the inner chamber 120 may additionally include a lip interior wall 124 when the end effector includes a lip structure 121. In some variations, the end effector may not have such an explicit distinction of an interior wall and may be a continuous surface. In other variations, more complex forms may have other internal structural features within the inner chamber 120, and alternative wall descriptors may be used. Top, side, and lip interior walls are referred to herein as a convenience to describe the various nature and general arrangement of features and are not intended to limit the inner chamber to three distinct types of walls.

[0116] The top inner wall 122 will generally be characterized as the wall opposite the opening (i.e., the chamber opening) in the inner chamber 120. The side inner walls can be characterized as walls extending longitudinally from the top inner wall 122 toward the chamber opening. In variations that include a lip 121, the side inner walls 123 will generally taper or expand outward to the base of the lip inner wall 124.

[0117] The inner chamber and its interior walls define a concave cavity that functions to draw in and grip the bag. In an expanded concave variation of the inner chamber 120, the inner chamber defines a concave cavity that may be characterized as including a chamber opening cavity and a central cavity, the width of the chamber opening cavity being narrower in at least one section than at least one region of the central cavity. An inwardly extending lip 121 can function to define the chamber opening cavity.

[0118] The dimensions of the body and inner chamber 120 can be customized for different bag materials and / or sizes / weights of objects, as shown in FIG. 4 . The weight of the object, the type of bag material, the amount of sag in the bag material, and / or other factors can be taken into account in the construction of the inner chamber 120. In one variation, the average width of the chamber opening exceeds the height (i.e., depth) of the concave inner chamber. In the case of a circular chamber opening, this can alternatively be described as the ratio of the chamber opening diameter compared to the height of the inner chamber having a ratio greater than 1 (i.e., the diameter exceeds the height). Here, height refers to the measurement in the vertical direction, and the chamber height is the height from the object engagement area to the wall of the concave inner chamber opposite the object engagement area. The height and width of the inner chamber can depend on the thickness of the membrane, the bag, and the weight of the object therein.

[0119] The chamber height, as defined from the chamber opening to the top wall, is preferably sufficiently high to draw in a sufficient amount of material. The opening width (i.e., the width of the chamber opening) is the opening defined horizontally. The opening width is preferably wide enough to allow the bag material to be drawn into the chamber without overfilling the chamber opening, as pressure stretches the bag material. Generally, the chamber height exceeds the chamber opening, but is not limited to that configuration. The chamber width (width within the defined central cavity) may vary in profile at different cross-sectional areas along the height of the end effector. In an expanded concave inner chamber 120, the inner chamber 120 may generally have a maximum width that exceeds the chamber opening width, as discussed. However, variations may exist in which the inner chamber is not centered about the central axis, in which case the characteristics of the expanded concave inner chamber 120 can be achieved through alternative configurations. Height, width, longitudinal, horizontal, and / or other relative terms used to refer to measurements and directions are based on the references shown in Figures 21A and 21B. Those skilled in the art will understand that these relative terms are for convenience of description only and do not limit the end effector to any particular configuration or orientation.

[0120] In some variations, the inner chamber 120 may not have a defined lip 121. In one such embodiment, the inner chamber 120 may be a generally cylindrically shaped defined cavity extending from the chamber opening toward the top wall, as shown in FIG.

[0121] In some variations, the interior structure 112 may include structural features that function in a similar or complementary manner to the lip structure 121. Such structural features may involve the interior structure 112 having structural forms that extend inward or outward into the interior chamber 120. For example, the interior side walls 123 may serve or function similarly to the lip 121. As shown in FIGS. 11A and 11B, in some alternative variations, the interior chamber 120 may include the interior side walls 123 with a patterned surface. The patterned surface can be a sequence of protrusions. The patterned surface structure can be an alternative type of interior lip structure. The inlet may be located in a recess between the protrusions.

[0122] As another alternative, the top wall may have a downwardly extending, inward protrusion, as shown in Figure 12. Such a structural feature can be used to modify the performance of the end effector. For example, the downward protrusion may function to expand the surface area of ​​the bag material within which the end effector can grasp.

[0123] As discussed, in one preferred variation, the body structure 110 includes a lip structure 121 that extends and protrudes inward across the opening of the inner chamber 120. The lip structure 121 can function as a rim to the chamber opening. Thus, the lip structure 121 can partially define the volume of the interior chamber. The lip structure 121 preferably extends from the bottom surface of the body structure 110.

[0124] In one variation, the lip structure 121 can extend inward from the body structure to define a rounded chamber opening. The lip structure 121 preferably forms a circular, oval, or other type of symmetrical rounded shape for the chamber opening. However, the lip structure 121 may be used to create any suitable shape for the chamber opening. The lip structure 121 may extend uniformly from all sides of the body structure 110. Alternatively, the lip structure 121 may not extend uniformly.

[0125] In one variation, the lip structure 121 extends inward from a limited portion of the body structure 110 to define a lip structure 121 that covers only a portion of the chamber opening. In one implementation, the lip structure 121 extends inward from halfway around the circumference of the body structure 110 to form a lip structure 121 that covers only a limited portion of the chamber opening, as shown in FIGS. 22A and 22B . This variation may improve gripping along one dimension. The actuation system used in manipulating the end effector may include an encoder or other method of monitoring end effector orientation to properly orient the end effector with the lip in the appropriate direction. This may have particular utility in applications involving highly repetitive automated systems, where a fixed or consistent form of manipulation path is repeatedly performed and the lip orientation can be integrated into the manipulation path.

[0126] The lip structure 121 preferably includes a lip inner wall 124. In some variations, the lip inner wall 124 may include at least a subset of the array of inlets 130. The inlets on the lip can be positioned across the surface of the lip inner wall 124. Thus, the lip structure 121 can include an internal channel to couple the inlets on the lip to the internal channel 140 of the body. In one variation, the internal channel 140 of the body extends into the lip structure 121, such as when the body 110 and the lip structure 121 are a single or integral piece. In variations where the lip structure 121 is a separate component attached to the body 110, the lip structure 121 may be fabricated with an internal channel that couples the inlet of the lip structure 121 to the internal channel 140 of the body when the lip structure 121 is attached to the body 110.

[0127] As an alternative variation thereof, the lip structure 121 can be a solid structure and the inlet may be located adjacent the base of the lip structure 121 .

[0128] Lip structure 121 is preferably at least semi-rigid and may be made from a rigid or semi-rigid material. In some alternative variations, lip structure 121 may be made from a flexible material or include a flexible portion. The flexible portion may allow for flexing around the base, at the midsection, at the edge, or at any suitable portion.

[0129] The lip structure 121 may be a generally flat structure. However, the lip may have patterned structures (protrusions, valleys, etc.) and / or other features. The lip structure 121 preferably extends laterally under pressure toward the center of force. For example, if the primary direction of pressure at the chamber opening is vertically upward, the lip structure 121 extends at least partially horizontally. As an alternative variation thereof, the lip may be angled downward, upward, or otherwise have some form of slope or additional structural features, as shown in FIG. 23.

[0130] The lip structure 121 can include a low-friction rounded edge along the chamber opening, which serves to better allow the bag to be drawn into the inner chamber 120. The lip structure 121 can alternatively or additionally include a discrete edge to encourage a fold point on the bag after it is engaged with an entrance on or near the lip structure 121.

[0131] In some hybrid variations, the end effector includes a transition air channel 125, which functions to facilitate establishing a transition region between the chamber opening and the suction cup system 160. This can have the potential benefit of automatically adaptively gripping different types of bagged items. For example, the transition air channel 125 can enable selective handling of tightly bagged and loosely bagged objects. The transition air channel 125 leaks air into the suction cup when the bag material is not fully gripped within the inner chamber 120. In this manner, the transition air channel 125 can enable the suction cup system 160 to grip tightly bagged objects with bag material that lacks flexibility and fully engage within the inner chamber 120. However, when engaging a loosely bagged object, the bag material can preferably be gripped within the inner chamber 120.

[0132] The transition air channel 125 can define a groove between the chamber opening and the outer edge of the sealing lip 161. The transition air channel 125 can extend from the inner edge of the concave inner chamber 120 (at or near the chamber opening) toward the sealing lip 161. The air channel 125 can extend only partially toward the edge of the sealing lip 161. The transition air channels can be periodically arranged in a ring around the opening, although any suitable pattern can be used. In one implementation, the internal structure 112 includes a set of flanges that extend at least partially horizontally. In such a variation, the internal structure 112 can be made of a rigid material that is inserted into the central opening of the suction cup system 160. In this manner, the flanges extend outward from the chamber opening. The flanges establish sidewalls, and a surface of the sealing lip 161 can serve as the bottom surface of the channels.

[0133] In another implementation, the sealing lip 161 may include a ridge extending where the internal structure 112 engages the opening of the suction cup system 160, the ridge defining a cavity extending from the chamber opening toward the outer edge of the sealing lip 161. The transition air channel 125 may be defined as a linear channel, but may alternatively be any suitable shape. For example, a network of defined channels may connect the outer edge of the chamber opening to the outer region of the sealing lip 161.

[0134] The array of inlets 130 functions to define a plurality of through channels extending through the wall of body 110 so that pressure can be applied from inner chamber 120. The array of inlets 130 is preferably positioned on the interior wall of internal structure 112 that defines concave inner chamber 120. In one variation, inlets 130 are arranged primarily or entirely on top interior wall 122. In one such variation, inlets 130 may be made from a mesh or grid. In some variations, a subset of inlets (e.g., one or more) can be positioned on top interior wall 122, side interior wall 123, and / or lip interior wall 124.

[0135] The inlets can be small, defined cavities within the body 110. The defined passage channels can be cylindrically shaped. In another variation, the inlets can be long slits, creating more rectangular, defined passage channels. In one variation, the array of inlets 130, or at least a subset of the array of inlets 130, can be formed through a mesh material. The inlets can alternatively use any suitable shape, arrangement, and have any suitable dimensions. Additionally, the inlets of the array of inlets 130 can be generally uniform, or alternatively, can have different sizes and shapes, which can be configured for each inlet's role.

[0136] Portions of the array of inlets 130 may be distributed in distinct regions. The arrangement and configuration of the inlets 130 can be customized to the particular performance objectives of the end effector.

[0137] In some variations, the end effector may desire to draw as much of the bag material as possible upward into the inner chamber 120. As such, the array of inlets may be located entirely or primarily along the upper interior wall 122.

[0138] In another variation, the arrangement may be configured to facilitate a desired manner in which the bag is drawn into the internal chamber 120 and then further drawn toward the side and / or bottom toward the inlet. The array of inlets 130 may be configured to facilitate a desired flow and manipulation of the membrane as it is drawn into the internal chamber 120. The array of inlets may include configurations for facilitating a sequence of engagement between the grasped membrane and the array of inlets 130, such that the inlets sequentially engage the membrane (i.e., block flow) in a manner that expands across the internal surface 120 of the internal chamber during initial grasping of the object. The arrangement of the array of inlets 130 refers to the location and pattern of the inlets. The arrangement may additionally refer to a pattern in the nature of the inlets, such as size and shape. In one variation, the arrangement is a series of outwardly expanding inlets, which can be a radiating pattern of inlets. The inlets may radiate symmetrically (or asymmetrically) from the upper internal wall 122. The radial pattern of inlets can function to encourage flow of membrane material into the inner chamber 120, initially to the upper interior wall inlets. When a centrally located inlet is blocked, the membrane flow may be drawn to cover adjacent inlets, potentially surrounding the covered inlet. This can continue until substantially all inlets are blocked, whereby the membrane is held by the inlets in strategically placed locations, such as the lip interior wall 124. Any suitable arrangement may alternatively be used.

[0139] As shown in FIG. 10A, one exemplary variation may include a first subset of inlets (e.g., one inlet) in an area proximate to the top inner wall 122 (e.g., at the top, centered around the central top, etc.), a second subset of inlets along a lower portion of the side inner wall 123, and a third subset of inlets on the lip inner wall 124.

[0140] In variations that include a lip structure 121, at least a subset of the inlets are positioned on and / or proximate to the lip structure 121. When positioned on the lip structure 121, the inlets can be uniformly distributed across the lip inner wall 124, preferably in a pattern such as that shown in FIG. 3B. When positioned proximate to the lip structure 121, a subset of the array of inlets 130 may be positioned adjacent to the base, which may be an approach used if the lip is substantially thin (e.g., in height) or does not have an internal channel, as shown in FIG.

[0141] In some variations, the array of inlets 130 preferably has inlets 130 positioned along the wall of the inner chamber 120 so that the inlets are oriented in various directions. This can serve to diversify the direction of the applied force. Herein, the direction of an inlet is characterized as a vector in the direction of flow defined along an axis generally perpendicular to the surface of the body at the location of the inlet. Additionally, a subset of the array of inlets 130 may be positioned offset outside the chamber opening. When the end effector includes an enlarged inner chamber 120 and / or lip structure 121, the inlets may be offset from outside the chamber opening to better grip the bag material by encouraging bending of the bag material relative to the lip structure 121.

[0142] In one variation, the array of inlets 130 includes at least a first subset of inlet openings toward the chamber opening and a second subset of inlet openings away from the chamber opening. For example, if the chamber opening is oriented to direct airflow upward, the first subset of inlets may also be configured to directly direct airflow upward within one subregion of the inner chamber 120, and the second subset of inlets may be configured to directly direct airflow downward within another subregion of the inner chamber 120. In one particular variation, at least a portion of the second subset of inlets are positioned on the lip inner wall 124, although they may alternatively be positioned in other directions as discussed above.

[0143] Some variations may include an inlet that is primarily offset from and oriented toward the chamber opening (e.g., used at least in part in applying an upward force), as shown in the alternative variation of Figure 24, which shows an example variation that does not include an inlet in a direction opposite the direction of the chamber opening.

[0144] In one variation, the array of inlets 130 may include one or more actively controlled inlets. An actively controlled inlet is preferably one that can change its open state. In one variation, an actively controlled inlet can be opened and closed. In another variation, an actively controlled inlet can modify the amount of opening to allow more or less air to pass. In one implementation of a controlled inlet, the system includes a controlled valve that can be opened and closed according to a control signal. Other suitable mechanisms may also be used. In some cases, multiple inlets may be controlled through a single mechanism. An actively controlled inlet may be controlled in a manner that is coordinated with grasping. For example, the controlled inlet may be in one state when initially drawing the bag into the inner chamber 120, as shown in FIG. 25A, and then in a different state for subsequent grasping of the bag, as shown in FIG. 25B.

[0145] The defined internal channel 140 functions as an open volume contained by the walls of the body structure 110. The internal channel 140 fluidly couples the internal chamber 120 and the vacuum line interface 150 through an array of inlets 130. The internal channel 140 may be an open cavity. In some variations, the body structure 110 may be made of connected rigid materials forming an exterior surface and an internal chamber, which may include the internal channel 140. In another variation, the internal channel 140 may be a defined cavity between the bellows of the suction cup system 160 and the internal structure 112. The internal channel 140 may alternatively be a defined cavity when an end effector interfaces with the vacuum line interface 150. In one particular implementation, the internal channel 140 may be one or more tubes connecting an inlet to the vacuum line interface 150.

[0146] The vacuum line interface 150 serves as a defined space through which the pressure system can establish fluid communication with the inlets. Reduced pressure at the vacuum line interface 150 preferably results in inward pressure at each of the array of airflow and inlets 130, as well as inward pressure across the chamber opening. The end effector preferably includes a vacuum line interface, which serves as a connector to the pressure lines and / or actuation system. The vacuum line interface preferably defines a cavity in the vacuum line interface 150. The vacuum line interface can be a threaded fastener, a locking mechanism, a friction fit, a snap fit, and / or any suitable mechanism for coupling to the pressure lines and / or actuation system. The actuation system may alternatively be attached or physically coupled to a different location on the body structure 110. In one variation, the vacuum line interface can be a magnetized mounting surface for magnetic attachment to the actuation system and pressure system.

[0147] As discussed, in some variations, the end effector may be integrated into or formed as part of a hybrid end effector. In hybrid variations, the end effector may include a suction cup system 160 that may be attached to and / or part of the body structure 120. The suction cup system 160 with a sealing lip 161 extends beyond the object-engaging region of the inner chamber 120. The suction cup system 160 functions to provide a suction cup mechanism that can be used to grip several types of objects.

[0148] The suction cup system 160 can help create an initial seal with a bag or object using the compliance of the suction cup. In the case of a bag, the bag material may be drawn inside the inner chamber 120 of the rigid body structure 110 for gripping. The flexible sealing lip 161 may additionally allow the end effector system to function across a wider variety of objects. For example, a hybrid variation can grip flat, hard surfaces (e.g., cardboard boxes) as well as loose plastic bags. This can be particularly useful in applications such as package handling.

[0149] The suction cup system 160 preferably has an object-engaging region that is substantially aligned with the inner chamber 120. They generally lie along closely spaced parallel planes and may be coplanar, as shown in Figure 21B.

[0150] In one variation, the suction cup system 160 may completely surround the body structure 110. Alternatively, the suction cup system 160 may be positioned on the end of the end effector. In yet another variation, the suction cup system 160 may be used in combination with a rigid insert, such that the defined interior channel 140 may be cooperatively formed from the suction cup system 160 and the rigid body structure 110 in the form of an insert, as shown in FIG. 28 and also shown in FIGS. 14-19. The suction cup system 160 may include structural features for holding the insert when snapped into place. Alternatively, the flexible suction cup 160 may be integrally attached to the rigid insert (e.g., overmolded around the insert).

[0151] The suction cup system 160 preferably includes at least a sealing lip 161, which is an outwardly extending, flexible lip or flange. The sealing lip 161 has a sealing surface within a connected path, such as a ring, an oval, or any suitable path shape. The sealing lip 161 may include any suitable design feature of a suction cup. When the sealing lip 161 engages a suitable object, it contacts and flexes across the surface to establish a sealed grip of the object.

[0152] Suction cup system 160 can additionally include a bellows 162. The bellows can provide flexibility when engaging the surface of an object. In one variation, bellows 162 can be positioned on the distal end of the end effector near the suction cup head. In another variation, bellows 162 can occur on the proximal end of the end effector, closer to the vacuum line interface. In one variation, bellows 162 can form the outer structure of body structure 110. The bellows can be connected to a sealing lip. In one variation, the bellows and lip are made from a single flexible material component.

[0153] In some variations, the end effector may additionally include a rigid side panel 180 that at least partially encloses the bellows. The rigid side panel 180 can be a rigid ring structure that extends horizontally outward from the upper portion (e.g., the proximal side opposite the engagement region) past the bellows and then downward toward the object-engaging side.

[0154] The above features and optional variations of the end effector may be combined in various ways and using various different configurations while still retaining the disclosed concept of the end effector.

[0155] In one additional variation, the end effector system may include a body structure 110 with two or more defined internal channels 120, each connecting an array of distinct vacuum line openings 150 and distinct inlets 130. As an example of such a variation, a first vacuum line interface 1501 may be coupled to a first subset of inlets 1301 through a first defined internal channel 1401, and a second vacuum line interface 1502 may be coupled to a second subset of inlets 1302 through a second defined internal channel 1402, as shown in FIG. 26 . The end effector system may include individually controlled vacuum pressure systems or at least individually controlled pressure lines so that suction can be individually controlled for the different subsets of inlets.

[0156] This variation may be controlled such that during an initial gripping stage, a first subset is used to pull the bag into the inner chamber 120, while a second subset is inactive, and during a subsequent gripping stage, the second subset of inlets is used to grip the bag material within the inner chamber 120 along the inlets positioned for manipulation of the object. The second subset of inlets may, in one variation, be along the inner wall of the lip, for example.

[0157] In another additional variation, the end effector may include multiple distinct concave inner chambers 120, as shown in FIG. 27. Each of these may be individually controlled or controlled through a shared vacuum line interface 150. The different inner chambers 120 may be substantially the same or may vary in various details. The multiple inner chambers 120 may be patterned along the object-engaging region in any suitable manner.

[0158] In another additional variation, the end effector may include one or more internal lips, as shown in Figure 9. These internal lips may extend horizontally or, alternatively, may be oriented in a different direction. Similar to lip structure 121 described herein, internal lip variations may also have inlets positioned on or near the surface of the internal lip.

[0159] In some variations, the end effector may be used as part of a multi-head end effector system including at least a first end effector and a second end effector, where at least one of the first or second end effectors is a pouch-grasping end effector such as those described above.

[0160] Although two end effectors are described, the multi-sided end effector system may include any suitable number of end effectors. The engagement regions of the first and second end effectors may be aligned to be coplanar or substantially parallel planes. However, the end effectors may alternatively be aligned along different planes.

[0161] The two end effectors may share a common connection to a common vacuum pressure system 170. Alternatively, the first and second end effectors may have distinct connections to independent vacuum pressure systems. Thus, a multi-head end effector system may include a first vacuum pressure system coupled to a first end effector and a second vacuum pressure system coupled to a second end effector.

[0162] Multiple end effectors may be used for redundancy for some implementations, while in other implementations the two end effectors may be different types of end effectors for different gripping capabilities.

[0163] At least one of the end effectors is preferably a bladder gripping end effector. For convenience, a first end effector will be described as such a bladder gripping end effector, in which case it comprises a body structure with a vacuum line opening and an object engaging region, the vacuum line opening configured to couple at least one pressure line of a vacuum pressure system to a defined internal channel of the body structure, the body structure comprising a suction cup system at the object engaging region with a flexible sealing lip, the body structure comprising an internal structure defining a concave inner chamber with a chamber opening at the object engaging region, the chamber opening being positioned within the gripping region of the sealing lip, and the internal structure comprising an array of inlets positioned along at least one wall of the concave inner chamber, each inlet defining an opening to the defined internal channel in the body.

[0164] The second end effector, in one variation, can be a suction cup end effector, as shown in Figure 29. The second end effector can alternatively be any suitable type of contact end effector.

[0165] In another variation, the second end effector can be an end effector for gripping a different type of bag. It may be configured differently from the first end effector for diversified gripping capabilities. In one embodiment shown in FIG. 30, the chamber diameter of the opening of the first end effector can be different from the diameter of the chamber opening of the second end effector. The first and second end effectors may alternatively include any other combination of different features and / or configurations.

[0166] The end effector is not limited to only these features and can include any suitable features of an end effector or be combined with other end effector components or pick and place system elements of a robot.

[0167] Those skilled in the art will recognize from the foregoing detailed description and from the figures and claims that modifications and variations can be made to the embodiments of the invention without departing from the scope of the invention, as defined in the following claims.

Claims

1. 1. An end effector for a pick and place system, comprising: a body structure with a vacuum line opening and an object engaging region, the vacuum line opening configured to couple at least one pressure line of a vacuum pressure system to a defined interior channel of the body structure; the body structure comprises a suction cup system with a flexible sealing lip at the object engaging region; the body structure including an interior structure defining a concave inner chamber with a chamber opening at the object engaging region, the chamber opening being positioned within a gripping region of the sealing lip; a lip structure extending from the body structure and at least partially defining the chamber opening to the concave inner chamber; Equipped with the internal structure comprises an array of inlets positioned along at least one wall of the concave internal chamber and oriented in multiple directions relative to the concave internal chamber, each inlet defining an opening into the defined internal channel within the body structure, at least one inlet being formed through an interior portion of the lip structure and oriented away from the object engaging region; End effector.

2. The end effector of claim 1 , wherein the array of inlets comprises a first subset of inlets positioned along a wall of the internal structure opposite the chamber opening.

3. 3. The end effector of claim 2, wherein the array of inlets comprises at least a second subset of inlets along a second wall of the concave inner chamber, the second subset of inlets being defined at an orientation different from an orientation of the first subset of inlets.

4. 4. The end effector of claim 3, wherein the concave inner chamber is an enlarged concave inner chamber with an inner chamber width greater than a width of the chamber opening, a first subset of the inlets opening toward the chamber opening and a second subset of inlets positioned on the lip structure opening away from the chamber opening.

5. The end effector of claim 1 , wherein the average width of the chamber opening is less than the height of the concave inner chamber.

6. The end effector of claim 1 , further comprising transition air channels, each transition air channel extending outward from an inner edge of the concave inner chamber toward the sealing lip.

7. The end effector of claim 1 , wherein the suction cup system is made from a flexible material and the concave inner chamber is made from a rigid material and is inserted into a central opening in the suction cup system.

8. 8. The end effector of claim 7, wherein the concave inner chamber includes a set of flanges extending outwardly from the chamber opening to thereby form a set of transition air channels when inserted into the central opening in the suction cup system.

9. The end effector of claim 1 , wherein the suction cup system comprises a bellows forming an exterior surface of the body structure, the bellows being connected to the sealing lip.

10. The end effector of claim 9 , further comprising a rigid side plate enclosing the bellows.

11. 1. An end effector system comprising: A first end effector, the first end effector comprising: a body structure with a vacuum line opening and an object engaging region, the vacuum line opening configured to couple at least one pressure line of a vacuum pressure system to a defined interior channel of the body structure; the body structure comprises a suction cup system with a flexible sealing lip at the object engaging region; the body structure including an interior structure defining a concave inner chamber with a chamber opening at the object engaging region, the chamber opening being positioned within a gripping region of the sealing lip; a lip structure extending from the body structure and at least partially defining the chamber opening to the concave inner chamber; Equipped with a first end effector, the internal structure comprising an array of inlets positioned along at least one wall of the concave internal chamber and oriented in multiple directions relative to the concave internal chamber, each inlet defining an opening into the defined internal channel within the body structure, at least one inlet formed through an inner portion of the lip structure and oriented away from the object engaging region; a second end effector; An end effector system comprising:

12. The end effector system of claim 11 , wherein the first end effector and the second end effector have object engaging regions defined substantially along the same plane.

13. The end effector system of claim 11 , further comprising a first vacuum line coupled to the first end effector and a second vacuum line coupled to the second end effector.

14. The end effector system of claim 11 , wherein the second end effector is a suction cup end effector.

15. 12. The end effector system of claim 11, wherein the second end effector comprises a second body structure comprising a second internal structure defining a second concave inner chamber with a second chamber opening, the second internal structure comprising an array of second inlets positioned along at least one wall of the second concave inner chamber.

16. The end effector system of claim 15 , wherein the chamber opening of the first end effector has a different diameter than the second chamber opening of the second end effector.

17. The end effector system of claim 11 , wherein the array of inlets comprises a first subset of inlets positioned along a wall of the internal structure opposite the chamber opening.

18. 12. The end effector system of claim 11, wherein the array of inlets comprises at least a second subset of inlets along a second wall of the concave inner chamber, the second subset of inlets being defined at an orientation different from an orientation of the first subset of inlets.

19. The end effector system of claim 11 , wherein the first end effector includes transition air channels, each transition air channel extending outward from an inner edge of the concave inner chamber toward the sealing lip.

20. The end effector system of claim 11 , wherein the suction cup system includes a bellows forming an exterior surface of the body structure, the bellows being connected to the sealing lip.

21. 1. An end effector for a pick and place system, comprising: a body structure with a vacuum line opening and an object engaging region, the vacuum line opening configured to couple at least one pressure line of a vacuum pressure system to a defined interior channel of the body structure; a body structure including a defined concave inner chamber with a chamber opening at the object engaging region; a lip structure extending from the body structure and at least partially defining the chamber opening to the defined concave inner chamber; an array of inlets positioned along a wall of the defined concave inner chamber and oriented in multiple directions relative to the defined concave inner chamber, each inlet defining an opening into the defined interior channel within the body structure, at least one inlet being formed through an interior portion of the lip structure and oriented away from the object engaging region; An end effector comprising:

22. 22. The end effector of claim 21, wherein the array of inlets comprises at least a first subset of inlet openings in a direction toward the chamber opening and a second subset of inlet openings in a direction away from the chamber opening.

23. The end effector of claim 22 , wherein at least a portion of the second subset of inlets are positioned on an inner lip wall of the lip structure.

24. 22. The end effector of claim 21, wherein the inlets of the array of inlets are arranged within the defined concave inner chamber in an arrangement that radiates symmetrically from an upper inner wall to an inner lip wall of the lip structure.

25. The end effector of claim 21 , wherein the lip structure extends inwardly from the body structure to define a rounded shape of the chamber opening.

26. The end effector of claim 25 , wherein a subset of the inlets of the array of inlets are uniformly distributed across an inner lip wall of the lip structure.

27. The end effector of claim 21 , wherein the lip structure extends inwardly from a limited portion of the body structure, the lip structure covering only a portion of the chamber opening.

28. The end effector of claim 21 , wherein the body structure is made from a rigid material.

29. The end effector of claim 21 , wherein the body structure is made from a semi-rigid material.

30. The end effector of claim 21 , wherein the lip structure is made from a flexible material.

31. The end effector of claim 21 , wherein the lip structure includes a low-friction rounded edge.

32. The end effector of claim 21 , further comprising a flexible suction cup extending beyond the object engaging region of the body structure.

33. 1. An end effector for use with a vacuum pressure system, comprising: an at least semi-rigid body structure, the body structure including a defined concave inner chamber with a chamber opening on an object engaging side of the end effector, the defined concave inner chamber having an internal width greater than the chamber opening; a lip structure extending from the body structure and at least partially defining the chamber opening to the defined concave inner chamber; Equipped with Within the defined concave inner chamber, the body structure includes an array of inlets defining channel opening walls of the body structure and oriented in multiple directions relative to the defined concave inner chamber, at least one inlet being formed through an inner portion of the lip structure and oriented away from the object engaging region; the body structure includes a defined internal channel connecting to the array of inlets; the body structure includes a vacuum line interface defining an opening to the defined interior channel; End effector.

34. 34. The end effector of claim 33, wherein the array of inlets comprises at least a first subset of inlet openings in a direction toward the chamber opening and a second subset of inlet openings in a direction away from the chamber opening.

35. The end effector of claim 33, wherein at least a subset of the inlets are positioned on the lip structure.

36. 34. The end effector of claim 33, wherein a lip structure extends inwardly from the body structure to define a rounded chamber opening.

37. 37. The end effector of claim 36, wherein the subset of inlets in the array of inlets are uniformly distributed across an inner lip wall of the lip structure.

38. The end effector of claim 33, wherein the body structure is made from a rigid material.

39. 34. The end effector of claim 33, further comprising a flexible suction cup extending beyond the object engaging region of the body structure.

Citation Information

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