Robotic end effector with dorsally supported actuation mechanism

Information

  • Patent Grant
  • 11241801
  • Patent Number
    11,241,801
  • Date Filed
    Monday, December 31, 2018
    6 years ago
  • Date Issued
    Tuesday, February 8, 2022
    2 years ago
Abstract
A robotic end-effector to provide an anthropomorphic hand with a dorsal actuation system. The hand has a substantially planar palm and fingers extending from the palm and capable of flexion and extension relative to the palm. The dorsal actuation system is supported on the palm and fingers, with actuators positioned at a dorsal side of the palm and links positioned at a dorsal side of the fingers.
Description
BACKGROUND

Robotic hands or grippers typically require numerous degrees of freedom and elaborate control methodologies to compete with the versatility and effectiveness of the human hand. Robotic hands have been developed to generate high grasping forces by providing remote actuation, Independent actuation of every finger joint can lead to designs that are bulky, fragile and complicated. The development of robotic hands or grippers is an ongoing endeavor.





BRIEF DESCRIPTION OF THE DRAWINGS

Features and advantages of the invention will be apparent from the detailed description which follows, taken in conjunction with the accompanying drawings, which together illustrate, by way of example, features of the invention; and, wherein:



FIG. 1a is a front perspective view of a robotic end-effector, namely a semi-anthropomorphic hand, with a dorsal actuation system in accordance with an example.



FIG. 1b is a rear perspective view of the robotic end-effector of FIG. 1a.



FIG. 2a is a side view of the robotic end-effector of FIG. 1a.



FIG. 2b is an opposite side view of the robotic end-effector of FIG. 1a.



FIG. 3 is a front view of the robotic end-effector of FIG. 1a.



FIG. 4 is a top or dorsal view of the robotic end-effector of FIG. 1a.



FIG. 5 is a bottom or palmar view of the robotic end-effector of FIG. 1a,



FIG. 6 is an end view of the robotic end-effector of FIG. 1a.



FIG. 7 is a side view of the robotic end-effector of FIG. 1a, shown with the other fingers and thumb removed to show a single finger, namely an index finger.



FIG. 8 is a side view of the index finger and associated dorsal actuator of the robotic end-effector of FIG. 1a.



FIGS. 9a-c are perspective views of the robotic end-effector of FIG. 1a, shown with the fingers and associated dorsal actuators removed to show the thumb.



FIG. 10 is a side view of the robotic end-effector of FIG. 1a, shown with a guard over the dorsal actuation system.



FIG. 11 is a tope view of robotic end-effector of FIG. 1a, shown with the guard over the dorsal actuation system.



FIG. 12a is a schematic side view of a robotic end-effector in accordance with an example, showing the fingers in partial flexion about an object.



FIG. 12b is a schematic side view of the robotic end-effector of FIG. 12a, showing the fingers in flexion about the object.



FIG. 13a is a schematic side view of the robotic end-effector in accordance with an example, showing the fingers in extension.



FIG. 13b is a schematic side view of the robotic end-effector of FIG. 13a, showing the fingers in partial flexion about an object.



FIG. 13c is a schematic side view of the robotic end-effector of FIG. 13a, showing the fingers in flexion about an object.



FIG. 14 is a perspective view photograph of a robotic end-effector, namely a semi-anthropomorphic hand, with a dorsal actuation system in accordance with an example.





Actuators of the dorsal actuation system in FIGS. 1a-11 are shown in transparency.


Reference will now be made to the exemplary embodiments illustrated, and specific language will be used herein to describe the same. It will nevertheless be understood that no limitation of the scope of the invention is thereby intended.


DETAILED DESCRIPTION

As used herein, the term “substantially” refers to the complete or nearly complete extent or degree of an action, characteristic, property, state, structure, item, or result. For example, an object that is “substantially” enclosed would mean that the object is either completely enclosed or nearly completely enclosed. The exact allowable degree of deviation from absolute completeness may in some cases depend on the specific context. However, generally speaking the nearness of completion will be so as to have the same overall result as if absolute and total completion were obtained. The use of “substantially” is equally applicable when used in a negative connotation to refer to the complete or near complete lack of an action, characteristic, property, state, structure, item, or result.


As used herein, “adjacent” refers to the proximity of two structures or elements. Particularly, elements that are identified as being “adjacent” may be either abutting or connected. Such elements may also be near or close to each other without necessarily contacting each other. The exact degree of proximity may in some cases depend on the specific context.


As used herein, “planar” refers to being substantially planar although the planar item can have a relatively small degree of curvature because it is more planar than curved. For example, a palm can be described as planar even though it has a concave curvature, and the palm is more planar than curved. In addition, “straight” refers to being substantially straight although the item may be slightly curved, because the item is more straight than curved. For example, a finger in extension is straight relative to the curvature of the finger in flexion. In addition, “parallel” refers to being substantially planar although there may be a small angular deviation from perfectly parallel because it is more parallel than perpendicular or orthogonal. For example, the fingers of a hand can be substantially parallel with the palm when the fingers are in extension even though the fingers can be somewhat arcuate and somewhat transvers to the palm.


An initial overview of technology embodiments is provided below and then specific technology embodiments are described in further detail later. This initial summary is intended to aid readers in understanding the technology more quickly but is not intended to identify key features or essential features of the technology nor is it intended to limit the scope of the claimed subject matter.


Disclosed herein is a robotic end-effector with an anthropomorphic hand and a dorsal actuation system supported on a palm of the hand and positioned at a dorsal side of the palm and the fingers. The hand can be anthropomorphic or semi-anthropomorphic, with a palm, at least three fingers and a thumb. Thus, the end-effector or hand can be utilized with standard items, such as tools, or standard interfaces, such as door handles. Positioning the actuation system on the hand allows the end-effector or hand to be modular and easily coupleable to a robotic arm. In addition, positioning the actuation system on the hand allows a direct drive of the hand, or fingers and thumb, as opposed to being remote or driven by a remote drive. Furthermore, positioning the actuation system on the hand allows separate and direct actuation the fingers and thumb. In addition, the actuation system can move the fingers and the thumb in flexion from proximal to distal phalanges around an object with a wrap grasp (proximal to distal phalanges) like a natural hand. In addition, each finger and thumb can utilize a single actuator. Furthermore, the actuation system can provide a substantial grip.


In addition the end-effector or hand can utilize under-actuated fingers to provide low actuator count and a high degree of conformal grasping for simple objects and tasks, without the need for numerous degrees of freedom or elaborate control methodologies. The end-effector or hand can utilize compression multi-bar linkages and offset joint kinematics to provide high grasping forces around irregularly shaped objects with as little as one actuator per finger. In one aspect, the end-effector or hand can have three single-actuator fingers and a two-actuator thumb configured into a five degree of freedom, under-actuated hand for high-force grasping of a variety of utilitarian objects. In one aspect, degree of freedom reduction is accomplished through the use of a single actuator to drive serially-connected four-bar linkages within a multi-segment finger. This allows for grasping objects of arbitrary shape. The finger segment lengths and bell crank heights or radii can be tailored to meet the desired contact force distribution around such objects. The use of compression linkages provides a grasping force without the use of tendons and pulleys on the underside of the finger, thereby minimizing bulk on the working side of the hand and overall magnitude of actuator force (reduced actuation force leads to less reaction forces within the finger joints, compared with tendon actuation within the finger profile). The space available on the back of the hand can provide adequate space for larger actuators that “stick out” beyond the envelope of the human hand, so that large forces can be exerted without interfering with the portions of the hand that interact with objects.


The contact force distribution for extra-small or extra-large curvatures can be further tailored using application-specific drive link lengths, when necessary. In addition, the hand can utilize a set of splayed finger root joints so that large objects fit (or are captured) when the fingers are extended, and small objects fit (or are captured) when the fingers are closed. Moreover, using parallel but offset individual finger segment hinges, the hand can assume a natural grasp around long cylindrical shapes (such as hammer handles, ladder rungs, ropes and cables). The offset hinges can also allow the fingers to wrap tighter without collision between distal finger segments.


The use of passive spring elements and flexion/extension stops within each finger segment joint can provide for deterministic finger trajectories during non-contact actuation. For example, when starting to grasp an object, it is desirable to have a fully extended finger first bend at the most proximal joint. The second joint can then bend, followed by the final (most distal) joint. Likewise, when releasing an object, it is desirable to reverse this sequence. The spring stiffness within each finger joint is sized specific to the kinematically-determined torque delivery at each location (note that the magnitude of torque resistance is minimal compared to the actuation torque at full grasp). The finger segment stops further prevent over-center singularities from occurring during uni-axial segment loading (e.g., singularities caused by a push force down the length of a finger).


A two degree of freedom thumb provides an under-actuated series of finger segments using one actuator, with an additional actuator provided to rotate the thumb's base orientation (much like the human thumb). Small objects use the thumb rotated into rough alignment with the fingers, while large objects use the thumb rotated away from the fingers. Again it is observed that discarding the constraint to abide by the envelope of the human hand on the back of the thumb and palm, provides sufficient space to place high strength actuation without interfering with grasping functions.


In a similar way to the thumb, but using a passive spring instead of an actuator, an additional degree of freedom can be added to the base of the little finger (or, possibly, to other fingers) to allow more compact finger nesting when placing the open fingers inside the closed handle of some tools.



FIGS. 1a and 1b depict an exemplary end-effector 10 in accordance with an embodiment. The end-effector 10 can have or can be an anthropomorphic hand 14. The hand 14 has a palm 18 with a palmar or ventral side 22 and a dorsal side 26. The palm 18 or the palmar side 22 can be flat or planar, as shown. In another aspect, the palm 18 or the palmar side 22 can have a slight curvature or concavity, but is more flat or planar than curved or concave, as with a natural human palm. The palm 18 can have a thickness between the palmar and dorsal sides 22 and 26. In one aspect, the palm 18 can be or can have a frame with an interior space or hollow(s). In one aspect, the palm 18 can be formed of plastic, and can be formed by injection molding or 3D printing. In another aspect, the palm 18 can be formed of metal, and can be formed by machining or casting.


In addition, the end-effector 10 and the hand 14 have at least three fingers 30, 32 and 34, including for example, a first or index finger 30, a second or middle finger 32, and a third, ring or pinky finger 34. The fingers 30, 32 and 34 are pivotally coupled to the palm 18. The fingers 30, 32 and 34 pivot between extension (straight and/or away from the palm 18) and flexion (curved and/or towards the palm 18), or an extended position and a flexed position. In extension, the fingers 30, 32 and 34 can extend away from the palm 18 or the palmar side 22. In flexion, the fingers 30, 32 and 34 can be arcuate, and can be positioned so as to oppose the palmar side 22 of the palm 18. The fingers 30, 32 and 34 will be discussed in greater detail below with respect to finger 30 and FIGS. 7 and 8. The terms “flexion” or “flex” and “extend” or “extension” as used herein are intended to comprise the same or a similar meaning as understood by those skilled in the art as they pertain to the human hand.


In addition, the end-effector 10 and the hand 14 has a thumb 38 pivotally coupled to the palm 18. The thumb 38 can pivot between abduction (away from and/or opposing the fingers 30, 32 and 34) and adduction (toward and/or with the fingers 30, 32 and 34). In abduction, the thumb 38 can be transvers to the palm 18. In adduction, the thumb 38 can be straightened, such as to be planar with the palm 18. In addition, the thumb 38 can be pivotal between extension and flexion. In extension, the thumb 38 can be straightened. In flexion, the thumb 38 can be arcuate. The thumb 38 is described below in greater detail and with respect to FIGS. 9a-9c.



FIGS. 2a and 2b depict the fingers 30, 32 and 34 of the end-effector 10 or the hand 14 in extension. Even in extension, the fingers 30, 32 and 34, or the phalanges thereof, can have a slight curvature and angle between adjacent phalanges, while still being substantially straight. For example, in extension, adjacent phalanges can have an acute angle less than 30 degrees in one aspect, less than 25 degrees in another aspect, and less than 20 degrees in another aspect. In addition, FIGS. 2a and 2b depict the thumb 38 is in abduction, transverse with the palm, and in extension.



FIGS. 3 and 4 depict the fingers 30, 32 and 34 of the end-effector 10 or the hand 14 arrayed at acute angles with respect to one another. In addition, the end-effector 10 and the hand 14 has a dorsal actuation system 42 for actuating the fingers 30, 32 and 34 and the thumb 38. The actuation system 42 can be supported on the dorsal side 26 of the palm 18 or the hand 14, and the dorsal side of the fingers 30, 32 and 34 and the thumb 38. The actuation system 42 can comprise a single actuator 46 for each finger 30, 32 and 34, and a pair of actuators for the thumb 38, namely first and second actuators 50 and 52. The actuators 46, 50 and 52 can be disposed on the dorsal side 26 of the palm 18, or the back of the hand 14. In one aspect, some of the actuators 46 can be disposed in, or partially disposed in, the hand 14 or the frame of the palm 18. In another aspect, some of the actuators 50 and 52 can be disposed outside of an envelope of the hand 14, and/or disposed outside an envelope of a natural hand, and/or outside the frame of the palm 18. The actuators 46, 50 and 52 can comprise pneumatic cylinders, hydraulic cylinders, linear electric motors, rotation motors, voice coils, or the like. In addition, the actuation system 42 comprises links, bell cranks, and yokes, supported on the fingers 30, 32 and 34 and the thumb 38, as described in greater detail below and with respect to FIGS. 7-9c.


The hand 14 or the palm 18 can have a thickness and can comprise a frame as mentioned above. The frame can have a skeleton with interior cavities or hollows to receive all or part of the actuators 46. In addition, the palm 18 or the palmar side 22 thereof can have a plate coupled to the frame to close the interior cavities or hollows with respect to the palmar side 22. In one aspect, the actuators 46 can be disposed in the thickness of the palm 18 to protect the actuators 46. In another aspect, the actuators 46 can extend beyond a thickness of the palm 18 and outside an envelope of a natural hand to facilitate actuation of the fingers 30, 32 and 34.



FIGS. 5 and 6 (and FIG. 1b) depict the end-effector 10 or the hand 14 with a releasable end-effector to robotic arm attachment interface 56 (hereinafter releasable attachment interface 56) at a proximal end (i.e., that end of the end-effector opposite the fingers and the end designed, configured and intended to couple to a robotic arm) of the palm 18 of the hand 14 of the end-effector 10. The releasable attachment interface 56 can releasably attach the robotic end-effector 10 or the hand 14 to a robotic arm (not shown). Because the dorsal actuation system 42 is supported on the dorsal side 26 of the hand 14 or the palm 18, in some examples the releasable attachment interface 56 can connect to a robotic arm without an actuator or actuator link, such as cables, rods or belts, spanning across the attachment interface. However, other examples may utilize or be operable with an actuator in connection with a wrist-like joint between the end-effector 10 and the robotic arm. In addition, the end-effector 10 or the hand 14 with the releasable attachment interface 56 can define a modular robotic end-effector that can be more easily attached, removed, and/or swapped with respect to the robotic arm. Flexible lines associated with the actuators, such as pneumatic hoses, hydraulic hoses, power cords, sensor wires, etc., can extend across the attachment interface: but such flexible lines are more easily coupled and uncoupled than actuator links, such as tensioned cables, rods and belts. Thus, in one aspect, all actuation of the at least three fingers 30, 32 and 34 and the thumb 38 can be supported on the robotic end-effector 10 or the hand 14, including all actuators and all links coupled to the at least three fingers 30, 32 and 34 and the thumb 38. In one example, the releasable attachment interface 56 can comprise mating stubs extending from the proximal end of the palm 18 of the hand 14 of the end-effector 10 that can align and mate with corresponding notches in the robotic arm, or vice versa. Of course, this is just one example. Those skilled in the art will recognize a variety of other ways the connecting or attachment interface between the robotic end-effector 10 and a corresponding robotic arm could be designed, and the individual mating end-effector 10 and robotic arm configured to provide the desired interface.



FIGS. 7 and 8 depict an exemplary finger 30 of the hand 14 or the end-effector 10; and will be utilized to describe the other fingers 32 and 34, and even the thumb 38, with the understanding that a description of finger 30 applies to the other fingers 32 and 34, and the thumb 38, as well. In addition, FIGS. 7 and 8 depict the dorsal actuation system 42; and will be utilized to describe the actuation system 42 for the other fingers 32 and 34, and even the thumb 38, with the understanding that a description of the dorsal actuation system 42 for the finger 30 applies to the other fingers 32 and 34, and the thumb 38, as well. FIG. 7 depicts the finger 30 pivotally coupled to the palm 18 of the hand 14, with the other fingers, the thumb, and the other actuators removed for clarity. The finger 30 is shown in extension with respect to the palmar side 22 of the palm 18. FIG. 8 depicts the finger 30 along with the actuation system 42, but with the palm, the other fingers, and the thumb removed for clarity.


The finger 30 comprises phalanges pivotally coupled together in series. In one aspect, the finger 30 comprises at least two phalanges. In another aspect, the finger can comprise three phalanges, as shown in FIGS. 12a-14. The finger 30 comprises a proximal phalanx 72 pivotally coupled to the palm 18 at a metacarpo-phalangeal joint or pivot 76. The palm 18 can have a yoke 80 (FIGS. 5 and 7) in which the proximal phalanx 72 can be pivotally coupled, and which can carry a pivot axle of the metacarpo-phalangeal joint 76. The finger 30 also comprises a distal phalanx 84 pivotal with respect to the proximal phalanx 72 and pivotal about a distal joint or pivot 88. In one aspect, the distal phalanx 84 can be pivotally coupled to the proximal phalanx 72, as shown. In another aspect, the finger can have an intermediate phalanx coupled between the proximal and distal phalanges, as shown in FIGS. 12a-14. As with the palm 18, the finger 30 has a ventral side and a dorsal side, also represented by 22 and 26, respectively. The finger 30, or the proximal and distal phalanges 72 and 84 thereof, can be formed of plastic, and can be formed by injection molding or 3D printing. In another aspect, the finger 30, or the proximal and distal phalanges 72 and 84 thereof, can be formed of metal, and can be formed by machining or casting.


As indicated above, the dorsal actuation system 42 also comprises links and bell cranks, and even a yoke for the thumb 38, in addition to the actuator 46. As described above, the actuation system 42 comprises the actuator 46 supported on the palm 18, and positioned on the dorsal side 26 of the palm 18. The actuation system 42 also comprises a proximal bell crank 92 pivotally coupled to the palm 18 along with the proximal phalanx 72 at the metacarpo-phalangeal joint 76. Thus, the proximal bell crank 92 pivots about the metacarpo-phalangeal joint 76 along with the proximal phalanx 72. A proximal dorsal link 96 is pivotally coupled between the proximal bell crank 92 and the distal phalanx 84. In one aspect, the distal phalanx 84 has a protrusion or tab 100 extending therefrom at the distal joint 88. The proximal dorsal link 96 can be pivotally coupled to the distal phalanx 84 or the protrusion 100 thereof, as shown. In addition, the proximal dorsal link 96 can be positioned at the dorsal side 26 of the proximal phalanx 72. In operation, the actuator 46 extends the proximal bell crank 92 and the proximal dorsal link 96 to pivot the proximal and distal phalanges 72 and 84 in flexion, or in the flexion direction to oppose the palmar side 22 of the palm 18. In one aspect, the actuator 46 can retract to pivot the proximal and distal phalanges 72 and 84 in extension. In one aspect, the actuator 46 can be oriented parallel or transverse with the palmar or dorsal side 22 or 26 of the palm 18. In addition, the actuator 46 can be disposed on or over the dorsal side 26 of the palm 18. Furthermore, the actuator 46 can be disposed at least partially within a frame of the palm 18.


In another aspect, the proximal and distal phalanges 72 and 84 can be biased in extension, or can be retracted to extension by springs. The actuation system 42 can comprise a metacarpo-phalangeal spring 104 (FIGS. 5 and 8) coupled to the metacarpo-phalangeal joint 76 to bias the proximal phalanx 72 in extension. Similarly, the actuation system 42 can also comprise a distal spring 108 (see FIG. 5) coupled to the distal joint 88 to bias the distal phalanx 84 in extension. The springs 104 and 108 can be coil springs circumscribing axles of the joints 76 and 88, respectively.


The lengths or the phalanges 72 and 84 and the height or radius of the bell crank 92 can be tailored to meet the desired contact force distribution around an object. The proximal bell crank 92 and/or the proximal dorsal link 96 can be formed of plastic, and can be formed by injection molding or 3D printing. In another aspect, the proximal bell crank 92 and/or the proximal dorsal link 96 can be formed of metal, and can be formed by machining or casting.


In addition, one or more sensors can be positioned on the finger 30 and/or the actuator system 42 to determine a position and/or a force exerted by the finger 30 or the actuator 46. For example, a sensor 112 (FIG. 8) can be positioned at a pivot link between the bell crank 92 and the actuator 46.


Referring again to FIGS. 3 and 4, the proximal dorsal links 96 and the actuators 46 of the actuation systems 42 of the fingers 30, 32 and 34 can be parallel with the fingers, but off-set, to accommodate placement of the actuators 46 on the hand 14 or the dorsal side 26 of the palm 18.



FIGS. 9a-9c depict the thumb 38 of the hand 14 or the end-effector 10. In addition, FIGS. 9a-9c depict the dorsal actuation system of the thumb 38. FIGS. 9a-9c depict the thumb 38 pivotally coupled to the palm 18 of the hand 14, with the other fingers and the other actuators removed for clarity. It is understood that the description of the finger 30 and the actuation system 42 applies equally to the thumb 38. As such, the thumb 38 can have a proximal phalanx 72 pivotally coupled to the palm 18 at a metacarpo-phalangeal joint 76, and a distal phalanx 84 pivotal with respect to the proximal phalanx 72 about a distal joint 88. In addition, the actuation system 42 can have an actuator 50, a proximal bell crank 92, a proximal dorsal link 96, and a protrusion 100.


In addition to pivoting between extension and flexion, as do the fingers, the thumb 38 can also be movable or pivotal between retroposition (substantially planar or parallel with the palmar side 22 of the palm 18) and anteposition (opposing the palmar side 22 of the palm 18). Thus, the proximal phalanx 72 of the thumb 38 can have a pair of pivots with respect to the palm 18, including a first axis or pivot 122 (FIG. 9b) in which the thumb 38 pivots in flexion/extension, and a second axis or pivot 126 (FIGS. 9a and 9c) in which the proximal phalanx 72 of the thumb 38 pivots in abduction/adduction. The first and second pivots axes 122 and 126 can be transverse to one another and can intersect. The dorsal actuation system 42 of the thumb 38 can comprise a pair of actuators, namely a first actuator 50 to pivot the thumb 38 in flexion/extension about the first axis 122, and a second actuator 52 to pivot the thumb 38 in abduction/adduction about the second axis 126.


The thumb 38 can have a yoke 130 pivotally coupled to the palm 18. The yoke 130 can have a shaft or neck that pivots about the second axis 126. The second actuator 52 can be supported on the dorsal side 26 of the palm 18 and coupled to the yoke 130 to pivot the yoke about the second axis 126. The proximal and distal phalanges 72 and 84 of the thumb 38 can be supported on the yoke 130 with the proximal phalanx 72 of the thumb 38 pivotally coupled to the yoke 130. The first actuator 50 can be supported on the yoke 130 and coupled to the proximal phalanx 72 of the thumb 38. In operation, the second actuator 52 pivots the yoke 130, the proximal and distal phalanges 72 and 84 of the thumb 38, and the first actuator 50, about the second axis 126 in an abduction/adduction direction between retroposition and anteposition, while the first actuator 50 pivots the proximal and distal phalanges 72 and 84 of the thumb 38 about the first axis 122 in extension/flexion.


The actuators 46, 50 and 52, or portions thereof, can be disposed outside of the palm 18, or envelope of a natural human hand. Thus, the actuators 46, 50 and 52 can be positioned as desired or to maximize finger movement or force.



FIGS. 10 and 11 depict the end-effector 10 and the hand 14 with a guard 140 disposed over the dorsal side 26 of the palm 18, and over the actuators 46 and 50 to protect the actuators. The guard 140 is illustrated as transparent.



FIGS. 12a and 12b schematically depict an end-effector 10b and a hand 14b which are similar in most respects to that described above, and which description is hereby incorporated herein where applicable, as will be recognized by those skilled in the art. The finger 30b comprises three phalanges coupled together in sequence. The finger 30b further comprises a middle phalanx 162 pivotally coupled to the proximal phalanx 72 at a proximal joint or pivot 166 and to the distal phalanx 84 at the distal joint 88. The dorsal actuation system 42b comprises a middle bell crank 170 pivotally coupled to the proximal phalanx 72 at the proximal joint 166 along with the distal phalanx 84. In addition, a middle link 174 is pivotally coupled to and between the middle bell crank 170 and the distal phalanx 84. The middle link 174 is positioned at the dorsal side 26 of the middle phalanx 162.


Each finger 30b and actuation system 42b can form a series of serially-connected four-bar linkages. A proximal four-bar linkage can be formed by the proximal phalanx 72, the proximal bell crank 92, the proximal dorsal link 96, and the middle bell crank 170. Similarly, a distal four-bar linkage can be formed by the middle phalanx 162, the middle bell crank 170, the middle link 174, and the distal phalanx 162, or the protrusion 100 thereof.


In one aspect, the fingers and the actuation system of the end-effector 10b and a hand 14b can be sized as shown in Table 1.














TABLE 1







Index
Middle
Ring
Thumb




















Phalanx Length (in.)






Proximal Phalanx
1.576
1.995
1.460
1.487


Middle Phalanx
0.974
1.233
0.902
0.919


Distal Phalanx
0.602
0.762
0.558
0.568


Bell Crank Radius (in.)


Proximal Bell Crank
1.000
1.000
1.000
1.000


Middle Bell Crank
0.500
0.500
0.500
0.500


Protrusion
0.191
0.191
0.191
0.191










FIGS. 13a-13c schematically depict an end-effector 10c and a hand 14c which are similar in most respects to those described above, and which description is hereby incorporated herein where applicable, as will be recognized by those skilled in the art. FIGS. 13a-13c schematically depict the end-effector 10c and the hand 14c in operation moving between extension of the finger 30c in FIG. 13a and flexion of the finger 30c in FIG. 13c. In addition, FIGS. 13a-13c demonstrate a wrap grasp of the finger 30c and the actuation system 42c in which the phalanges and associated links pivot and contact a grasped object in sequential order beginning with the proximal phalanx 72, then the middle phalanx 162, and then the distal phalanx 84: or the proximal phalanx 72 then the distal phalanx 84 in the case of two phalanges. Furthermore, the palm 18 or the palmar side 22 can have a slight curvature or concavity, but is more flat or planar than curved or concave, as with a natural human palm.



FIG. 14 is a photograph of an end-effector 10d and a hand 14d which are similar in most respects to those described above, and which description is hereby incorporated herein where applicable, as will be recognized by those skilled in the art.


Although the disclosure may not expressly disclose that some embodiments or features described herein may be combined with other embodiments or features described herein, this disclosure should be read to describe any such combinations that would be practicable by one of ordinary skill in the art. The user of “or” in this disclosure should be understood to mean non-exclusive or, i.e., “and/or,” unless otherwise indicated herein.


Reference was made to the examples illustrated in the drawings and specific language was used herein to describe the same. It will nevertheless be understood that no limitation of the scope of the technology is thereby intended. Alterations and further modifications of the features illustrated herein and additional applications of the examples as illustrated herein are to be considered within the scope of the description.


Furthermore, the described features, structures, or characteristics may be combined in any suitable manner in one or more examples. In the preceding description, numerous specific details were provided, such as examples of various configurations to provide a thorough understanding of examples of the described technology. It will be recognized, however, that the technology may be practiced without one or more of the specific details, or with other methods, components, devices, etc. In other instances, well-known structures or operations are not shown or described in detail to avoid obscuring aspects of the technology.


Although the subject matter has been described in language specific to structural features and/or operations, it is to be understood that the subject matter defined in the appended claims is not necessarily limited to the specific features and operations described above. Rather, the specific features and acts described above are disclosed as example forms of implementing the claims. Numerous modifications and alternative arrangements may be devised without departing from the spirit and scope of the described technology.


While the foregoing examples are illustrative of the principles of the present invention in one or more particular applications, it will be apparent to those of ordinary skill in the art that numerous modifications in form, usage and details of implementation can be made without the exercise of inventive faculty, and without departing from the principles and concepts of the invention. Accordingly, it is not intended that the invention be limited, except as by the claims set forth below.

Claims
  • 1. A robotic end-effector, comprising: an anthropomorphic hand comprising: a palm with a palmar side and a dorsal side;at least three fingers pivotally coupled to the palm and pivotal between extension and flexion; anda thumb pivotally coupled to the palm and pivotal between abduction and adduction, and also pivotal between extension and flexion, each of the at least three fingers and the thumb comprising phalanges comprising at least: a proximal phalanx pivotally coupled to the palm at a metacarpo-phalangeal joint;a distal phalanx pivotal with respect to the proximal phalanx about a distal joint; anda ventral side and a dorsal side; anda dorsal actuation system for actuating the at least three fingers and the thumb, the dorsal actuation system being supported on the dorsal side of the palm and the dorsal sides of the at least three fingers and the thumb, and-the dorsal actuation system comprising: a first actuator supported on the palm and positioned on the dorsal side of the palm, the first actuator being operable to extend a first proximal bell crank and a first proximal dorsal link to pivot the proximal and distal phalanges of a first finger of the at least three fingers in flexion, the first proximal bell crank being pivotally coupled to the palm along with the proximal phalanx of the first finger, and the first dorsal link being pivotally coupled between the first proximal bell crank and the distal phalanx of the first finger;a second actuator supported on the palm and positioned on the dorsal side of the palm, the second actuator being operable to extend a second proximal bell crank and a second proximal dorsal link to pivot the proximal and distal phalanges of a second finger of the at least three fingers in flexion, the second proximal bell crank being pivotally coupled to the palm along with the proximal phalanx of the second finger, and the second dorsal link being pivotally coupled between the second proximal bell crank and the distal phalanx of the second finger;a third actuator supported on the palm and positioned on the dorsal side of the palm, the third actuator being operable to extend a third proximal bell crank and a third proximal dorsal link to pivot the proximal and distal phalanges of a third finger of the at least three fingers in flexion, the third proximal bell crank being pivotally coupled to the palm along with the proximal phalanx of the third finger, and the third dorsal link being pivotally coupled between the third proximal bell crank and the distal phalanx of the third finger; andat least one thumb actuator supported on the palm and positioned on the dorsal side of the palm, the at least one thumb actuator being operable to extend a thumb proximal bell crank and a thumb proximal dorsal link to pivot the proximal and distal phalanges of the thumb in flexion, the thumb proximal bell crank being pivotally coupled to the palm along with the proximal phalanx of the thumb, and the thumb dorsal link being pivotally coupled between the thumb proximal bell crank and the distal phalanx of the thumb,wherein at least one of the first, second, third, and thumb actuators is disposed at least partially within an envelope of the anthropomorphic hand, and at least one of the first, second, third, and thumb actuators is disposed outside the envelope of the anthropomorphic hand.
  • 2. The robotic end-effector of claim 1, wherein all actuation components of the at least three fingers and the thumb are supported on the robotic end-effector including all actuators and all links coupled to the at least three fingers and the thumb.
  • 3. The robotic end-effector of claim 1, further comprising a releasable attachment interface at a proximal end of the palm configured to releasably attach the robotic end-effector to a robotic arm, without an actuator or actuator link spanning across the attachment interface, and defining a modular robotic end-effector.
  • 4. The robotic end-effector of claim 1, wherein the proximal phalanx of the thumb has a pair of pivots with respect to the palm including a first pivot in which the thumb is operable to pivot in abduction/adduction and a second pivot in which the proximal phalanx of the thumb is operable to pivot in flexion/extension.
  • 5. The robotic end-effector of claim 1, wherein thumb is movable between retroposition and anteposition.
  • 6. The robotic end-effector of claim 1, wherein the at least one thumb actuator comprises a pair of actuators.
  • 7. The robotic end-effector of claim 6, wherein a first thumb actuator of the pair of actuators is operable to pivot the proximal phalanx of the thumb about a first axis;the thumb comprises a yoke pivotally coupled to the palm;a second thumb actuator of the pair of actuators is supported on the dorsal side of the palm and is coupled to the yoke, the second thumb actuator being operable to pivot the yoke about a second axis;the proximal and distal phalanges of the thumb are supported on the yoke with the proximal phalanx of the thumb pivotally coupled to the yoke;the first thumb actuator is supported on the yoke and coupled to the proximal phalanx of the thumb;the second thumb actuator is operable to pivot the yoke, the proximal and distal phalanges of the thumb, and the first thumb actuator about the second axis in an abduction/adduction direction between retroposition and anteposition; andthe first thumb actuator is operable to pivot the proximal and distal phalanges of the thumb about the first axis in extension/flexion.
  • 8. The robotic end-effector of claim 1, wherein the distal phalanx of each of the first, second, and third fingers and the distal phalanx of the thumb comprises a respective protrusion extending therefrom at the distal joint, the first, second, third, and thumb proximal dorsal links being pivotally coupled to the protrusions, respectively.
  • 9. The robotic end-effector of claim 1, wherein the dorsal actuation system further comprises a first metacarpo-phalangeal spring, a second metacarpo-phalangeal spring, a third matecarpo-phlangeal spring, and a thumb metacarpo-phalangeal spring coupled to the metacarpo-phalangeal joint and biasing the proximal phalanx of each of the first finger, the second finger, the third finger, and the thumb, respectively, in extension, and a first distal spring, a second distal spring, a third distal spring, and a thumb distal spring coupled to the distal joint and biasing the distal phalanx of each of the first finger, the second finger, the third finger, and the thumb, respectively, in extension.
  • 10. The robotic end-effector of claim 1, wherein the first, second, and third actuators are oriented one of parallel or transverse to the palmar or dorsal side of the palm.
  • 11. The robotic end-effector of claim 1, wherein the first, second, and third actuators are disposed on or over the dorsal side of the palm.
  • 12. The robotic end-effector of claim 1, wherein each of the at least three fingers further comprises: a middle phalanx pivotally coupled to the proximal phalanx at a proximal joint and to the distal phalanx at the distal joint; and
  • 13. The robotic end-effector of claim 1, wherein each of the first, second, and third actuators are positioned on the dorsal side of the palm to be parallel with a corresponding one of the at least three fingers but offset from the corresponding one of the at least three fingers.
  • 14. The robotic end-effector of claim 1, further comprising a guard disposed over the dorsal side of the palm and over one or more of the first actuator, the second actuator, the third actuator, and the at least one thumb actuator.
  • 15. A robotic end-effector, comprising: a hand comprising: a palm with a palmar side and a dorsal side;at least three fingers pivotally coupled to the palm and pivotal between extension and flexion; anda thumb pivotally coupled to the palm;the thumb having a first pivot in which the thumb pivots in abduction/adduction; andthe thumb having a second pivot in which the thumb pivots in flexion/extension;each of the at least three fingers and the thumb comprising phalanges comprising at least: a proximal phalanx pivotally coupled to the palm at a metacarpo-phalangeal joint;a distal phalanx pivotal with respect to the proximal phalanx at a distal joint;a ventral side and a dorsal side;a metacarpo-phalangeal spring coupled to the metacarpo-phalangeal joint and biasing the proximal phalanx in extension; anda distal spring coupled to the distal joint and biasing the distal phalanx in extension;a dorsal actuation system for actuating the at least three fingers and the thumb, the dorsal actuation system being supported on the dorsal side of the palm and the dorsal sides of the at least three fingers and the thumb, the dorsal actuation system comprising: a first actuator supported on the palm and positioned on the dorsal side of the palm, the first actuator being operable to extend a first proximal bell crank and a first proximal dorsal link to pivot the proximal and distal phalanges of a first finger of the at least three fingers in flexion, the first proximal bell crank being pivotally coupled to the palm along with the proximal phalanx of the first finger, and the first dorsal link being pivotally coupled between the first proximal bell crank and the distal phalanx of the first finger;a second actuator supported on the palm and positioned on the dorsal side of the palm, the second actuator being operable to extend a second proximal bell crank and a second proximal dorsal link to pivot the proximal and distal phalanges of a second finger of the at least three fingers in flexion, the second proximal bell crank being pivotally coupled to the palm along with the proximal phalanx of the second finger, and the second dorsal link being pivotally coupled between the second proximal bell crank and the distal phalanx of the second finger;a third actuator supported on the palm and positioned on the dorsal side of the palm, the third actuator being operable to extend a third proximal bell crank and a third proximal dorsal link to pivot the proximal and distal phalanges of a third finger of the at least three fingers in flexion, the third proximal bell crank being pivotally coupled to the palm along with the proximal phalanx of the third finger, and the third dorsal link being pivotally coupled between the third proximal bell crank and the distal phalanx of the third finger; andat least one thumb actuator supported on the palm and positioned on the dorsal side of the palm, the at least one thumb actuator being operable to extend a thumb proximal bell crank and a thumb proximal dorsal link to pivot the proximal and distal phalanges of the thumb in flexion, the thumb proximal bell crank being pivotally coupled to the palm along with the proximal phalanx of the thumb, and the thumb dorsal link being pivotally coupled between the thumb proximal bell crank and the distal phalanx of the thumb, anda releasable attachment interface at a proximal end of the palm configured to releasably attach the robotic end-effector to a robotic arm, without an actuator or actuator link spanning across the attachment interface, and defining a modular robotic end-effectorwherein at least one of the first, second, third, and thumb actuators is disposed at least partially within an envelope of the hand, and at least one of the first, second, third, and thumb actuators is disposed outside the envelope of the hand.
  • 16. The robotic end-effector of claim 15, wherein all actuation of the at least three fingers and the thumb is supported on the robotic end-effector including all actuators and all links coupled to the at least three fingers and the thumb.
  • 17. The robotic end-effector of claim 15, wherein the thumb is movable between retroposition and anteposition.
  • 18. The robotic end-effector of claim 15, wherein the at least one thumb actuator comprises a pair of actuators.
  • 19. The robotic end-effector of claim 18, wherein a first thumb actuator of the pair of actuators is operable to pivot the proximal phalanx of the thumb about a first axis;the thumb comprises a yoke pivotally coupled to the palm;a second thumb actuator of the pair of actuators is supported on the dorsal side of the palm and is coupled to the yoke, the second thumb actuator being operable to pivot the yoke about a second axis;the proximal and distal phalanges of the thumb are supported on the yoke with the proximal phalanx of the thumb pivotally coupled to the yoke;the first thumb actuator is supported on the yoke and coupled to the proximal phalanx of the thumb;the second thumb actuator is operable to pivot the yoke, the proximal and distal phalanges of the thumb, and the first thumb actuator about the second axis in an abduction/adduction direction between retroposition and anteposition; andthe first thumb actuator is operable to pivot the proximal and distal phalanges of the thumb about the first axis in extension/flexion.
  • 20. The robotic end-effector of claim 15, wherein the distal phalanx of each of the first, second, and third fingers and the distal phalanx of the thumb comprises a protrusion extending therefrom at the distal joint, the first, second, third, and thumb proximal dorsal links being pivotally coupled to the protrusions, respectively.
  • 21. The robotic end-effector of claim 15, wherein the first, second, and third actuators are oriented one of parallel or transverse to the palmar or dorsal side of the palm.
  • 22. The robotic end-effector of claim 15, wherein the first, second, and third actuators are disposed on or over the dorsal side of the palm.
  • 23. The robotic end-effector of claim 15, wherein each of the at least three fingers further comprises: a middle phalanx pivotally coupled to the proximal phalanx at a proximal joint and to the distal phalanx at the distal joint; and
  • 24. A robotic end-effector, comprising: an anthropomorphic hand with a palm, fingers, and a thumb pivotally coupled to the palm, the thumb being pivotal between abduction and adduction, and also pivotal between extension and flexion; anda dorsal actuation system supported on the palm, the fingers, and the thumb, the dorsal actuation system comprising actuators positioned at a dorsal side of the palm and links positioned at a dorsal side of the fingers and the thumb, the actuators comprising a first actuator disposed at least partially within an envelope of the anthropomorphic hand, and a second actuator disposed outside the envelope of the anthropomorphic hand,wherein each of the fingers comprises phalanges comprising at least: a proximal phalanx pivotally coupled to the palm at a metacarpo-phalangeal joint;a distal phalanx pivotal with respect to the proximal phalanx about a distal joint; anda ventral side and a dorsal side; andthe dorsal actuation system comprises: proximal bell cranks associated with each of the fingers, respectively, each proximal bell crank being pivotally coupled to the palm along with the proximal phalanx of each of the fingers, respectively; andproximal dorsal links associated with each of the fingers, respectively, each proximal dorsal link being pivotally coupled between the proximal bell crank and the distal phalanx of each finger, respectively, and positioned at the dorsal side of the proximal phalanx of each finger, respectively; andthe actuators are operable to extend the proximal bell cranks and the proximal dorsal links-to pivot the proximal and distal phalanges in flexion.
US Referenced Citations (277)
Number Name Date Kind
1880138 Franz Sep 1932 A
2850189 Leroy Sep 1958 A
2981198 Nettel Apr 1961 A
3171549 Orloff Mar 1965 A
3280991 Melton et al. Oct 1966 A
3306646 Flora, Jr. Feb 1967 A
3358678 Kulstar Dec 1967 A
3449008 Colechia Jun 1969 A
3449769 Mizen Jun 1969 A
3535711 Fick Oct 1970 A
3759563 Kitamura Sep 1973 A
3858468 Pasbrig Jan 1975 A
4046262 Vykukal et al. Sep 1977 A
4179233 Bromell et al. Dec 1979 A
4200596 Iiyama et al. Apr 1980 A
4251791 Yanagisawa et al. Feb 1981 A
4398110 Flinchbaugh et al. Aug 1983 A
4483407 Iwamoto et al. Nov 1984 A
4561686 Atchley Dec 1985 A
4567417 Francois et al. Jan 1986 A
4575297 Richter Mar 1986 A
4591944 Gravel May 1986 A
4603896 Vasseur et al. Aug 1986 A
4661032 Arai Apr 1987 A
4666357 Babbi May 1987 A
4723353 Monforte Feb 1988 A
4762455 Coughlan et al. Aug 1988 A
4768143 Lane et al. Aug 1988 A
4821594 Rosheim Apr 1989 A
4834443 Crowder May 1989 A
4853874 Iwamoto et al. Aug 1989 A
4883400 Kuban et al. Nov 1989 A
4884720 Whigham et al. Dec 1989 A
4915437 Cherry Apr 1990 A
4921292 Harwell et al. May 1990 A
4997095 Jones et al. Mar 1991 A
5004391 Burdea Apr 1991 A
5038089 Szakaly Aug 1991 A
5072361 Davis et al. Dec 1991 A
5080682 Schectman Jan 1992 A
5101472 Repperger Mar 1992 A
5105367 Tsuchihashi et al. Apr 1992 A
5117814 Luttrell et al. Jun 1992 A
5144943 Luttrell et al. Sep 1992 A
5172951 Jacobsen Dec 1992 A
5230147 Asaoka et al. Jul 1993 A
5239246 Kim Aug 1993 A
5246216 Oberst Sep 1993 A
5280981 Schulz Jan 1994 A
5282460 Boldt Feb 1994 A
5328224 Jacobsen et al. Jul 1994 A
5336982 Backes Aug 1994 A
5389849 Asano et al. Feb 1995 A
5399951 Lavallee et al. Mar 1995 A
5516249 Brimhall May 1996 A
5577417 Fournier Nov 1996 A
5577902 Todo et al. Nov 1996 A
5588688 Jacobsen et al. Dec 1996 A
5664636 Ikuma et al. Sep 1997 A
5704945 Wagner et al. Jan 1998 A
5762390 Gosselin Jun 1998 A
5784542 Ohm et al. Jul 1998 A
5785505 Price Jul 1998 A
5797615 Murray Aug 1998 A
5845540 Rosheim Dec 1998 A
5865770 Schectman Feb 1999 A
5898599 Massie et al. Apr 1999 A
5912658 Bergamasco et al. Jun 1999 A
5949686 Yoshinada et al. Sep 1999 A
5957981 Gramnas Sep 1999 A
5961476 Betto et al. Oct 1999 A
5967580 Rosheim Oct 1999 A
5994864 Inoue et al. Nov 1999 A
6016385 Yee et al. Jan 2000 A
6170162 Jacobsen et al. Jan 2001 B1
6202013 Anderson et al. Mar 2001 B1
6272924 Jansen Aug 2001 B1
6301526 Kim et al. Oct 2001 B1
6338605 Halverson et al. Jan 2002 B1
6340065 Harris Jan 2002 B1
6360166 Alster Mar 2002 B1
6394731 Konosu et al. May 2002 B1
6425865 Salcudean et al. Jul 2002 B1
6430473 Lee et al. Aug 2002 B1
6435794 Springer Aug 2002 B1
6507163 Allen Jan 2003 B1
6508058 Seaverson Jan 2003 B1
6554342 Burnett Apr 2003 B1
6641371 Graziani et al. Nov 2003 B2
6659703 Kirkley Dec 2003 B1
6659939 Moll et al. Dec 2003 B2
6663154 Pancheri Dec 2003 B2
6714839 Salisbury, Jr. et al. Mar 2004 B2
6740125 Mosler May 2004 B2
6855170 Gramnas Feb 2005 B2
7168748 Townsend et al. Jan 2007 B2
7396057 Ye et al. Jul 2008 B2
7405531 Khatib et al. Jul 2008 B2
7409882 Massimo et al. Aug 2008 B2
7410338 Schiele et al. Aug 2008 B2
7509905 Jacobsen et al. Mar 2009 B2
7628766 Kazerooni et al. Dec 2009 B1
7783384 Kraft Aug 2010 B2
7862522 Barclay et al. Jan 2011 B1
7862524 Carignan et al. Jan 2011 B2
7883546 Kazerooni et al. Feb 2011 B2
7947004 Kazerooni et al. May 2011 B2
7965006 Kang et al. Jun 2011 B2
8024071 Komatsu et al. Sep 2011 B2
8051764 Jacobsen et al. Nov 2011 B2
8100451 Okuda et al. Jan 2012 B2
8132835 Ban et al. Mar 2012 B2
8151401 Cheyne Apr 2012 B2
8182010 Lee May 2012 B2
8245728 Jacobsen et al. Aug 2012 B2
8295975 Arimatsu et al. Oct 2012 B2
8375982 Gray, Jr. Feb 2013 B2
8435309 Gilbert et al. May 2013 B2
8452447 Nixon May 2013 B2
8473101 Summer Jun 2013 B2
8511192 Hirtt et al. Aug 2013 B2
8516918 Jacobsen et al. Aug 2013 B2
8529582 Devengenzo et al. Sep 2013 B2
8534728 Bosscher et al. Sep 2013 B1
8560118 Greer et al. Oct 2013 B2
8640723 Jacobsen et al. Feb 2014 B2
8667643 Simonelli et al. Mar 2014 B2
8672378 Yamasaki Mar 2014 B2
8747486 Kawasaki Jun 2014 B2
8794262 Jacobsen et al. Aug 2014 B2
8821338 Thorson Sep 2014 B2
8849457 Jacobsen et al. Sep 2014 B2
8870967 Herr et al. Oct 2014 B2
8881616 Dize et al. Nov 2014 B2
8888864 Iverson et al. Nov 2014 B2
8892258 Jacobsen et al. Nov 2014 B2
8920517 Smith et al. Dec 2014 B2
8942846 Jacobsen et al. Jan 2015 B2
8977388 Jacobsen et al. Mar 2015 B2
8977398 Jacobsen et al. Mar 2015 B2
9295604 Zoss et al. Mar 2016 B2
9314921 Jacobsen et al. Apr 2016 B2
9329587 Fudaba et al. May 2016 B2
9333097 Herr et al. May 2016 B2
9533411 Jacobsen et al. Jan 2017 B2
9616580 Smith et al. Apr 2017 B2
9643323 Nagatsuka May 2017 B2
9727076 Smith et al. Aug 2017 B2
9789603 Jacobsen et al. Oct 2017 B2
9895812 Gonzalez et al. Feb 2018 B2
10028844 Cheng et al. Jul 2018 B2
10071485 Schiele et al. Sep 2018 B2
10216177 Gildert et al. Feb 2019 B2
10406676 Smith et al. Sep 2019 B2
10512583 Smith Dec 2019 B2
10533542 Smith et al. Jan 2020 B2
10566914 Fujita et al. Feb 2020 B2
20010033146 Kato et al. Oct 2001 A1
20010043847 Kramer Nov 2001 A1
20020075233 White et al. Jun 2002 A1
20020094919 Rennex et al. Jul 2002 A1
20030005896 Jacobsen et al. Jan 2003 A1
20030146720 Riwan et al. Aug 2003 A1
20030152452 Hodgson Aug 2003 A1
20030223844 Schiele et al. Dec 2003 A1
20040004362 Love Jan 2004 A1
20040037681 Marcotte Feb 2004 A1
20040102723 Horst May 2004 A1
20040106881 McBean et al. Jun 2004 A1
20040116836 Kawai et al. Jun 2004 A1
20040246769 Ido Dec 2004 A1
20040250644 Gosselin et al. Dec 2004 A1
20050059908 Bogert Mar 2005 A1
20050099386 Kukita May 2005 A1
20050159850 Melman Jul 2005 A1
20050166413 Crampton Aug 2005 A1
20050193451 Quistgaard et al. Sep 2005 A1
20050251110 Nixon Nov 2005 A1
20060052732 Shimada et al. Mar 2006 A1
20060064047 Shimada et al. Mar 2006 A1
20060069449 Bisbee, III et al. Mar 2006 A1
20060130594 Ikeuchi Jun 2006 A1
20060149419 Ogawa et al. Jul 2006 A1
20060184275 Hosokawa et al. Aug 2006 A1
20060197049 Hamada et al. Sep 2006 A1
20060245897 Hariki et al. Nov 2006 A1
20060249315 Herr et al. Nov 2006 A1
20070054777 Kawai et al. Mar 2007 A1
20070105070 Trawick May 2007 A1
20070123997 Herr et al. May 2007 A1
20070129653 Sugar et al. Jun 2007 A1
20080023974 Park Jan 2008 A1
20080156363 Ikeuchi et al. Jul 2008 A1
20080269027 Chen Oct 2008 A1
20080271942 Yamashita et al. Nov 2008 A1
20080281468 Jacobsen et al. Nov 2008 A1
20090036815 Ido Feb 2009 A1
20090038258 Pivac et al. Feb 2009 A1
20090039579 Clifford et al. Feb 2009 A1
20090199883 Hiki Aug 2009 A1
20090210093 Jacobsen et al. Aug 2009 A1
20090294238 Gilmore Dec 2009 A1
20100050947 Kortekaas Mar 2010 A1
20100089855 Kjolseth Apr 2010 A1
20100094185 Amundson et al. Apr 2010 A1
20100152630 Matsuoka et al. Jun 2010 A1
20100198402 Greer et al. Aug 2010 A1
20100241242 Herr et al. Sep 2010 A1
20100295497 Takamatsu Nov 2010 A1
20110010012 Murayama et al. Jan 2011 A1
20110040216 Herr et al. Feb 2011 A1
20110046781 Summer Feb 2011 A1
20110066088 Little et al. Mar 2011 A1
20110071677 Stillman Mar 2011 A1
20110214524 Jacobsen et al. Sep 2011 A1
20110219899 Dize et al. Sep 2011 A1
20110264230 Herr et al. Oct 2011 A1
20120000891 Nakanishi et al. Jan 2012 A1
20120060322 Simonelli et al. Mar 2012 A1
20120065902 Nakajima Mar 2012 A1
20120073930 Lansberry et al. Mar 2012 A1
20120137667 Jacobsen et al. Jun 2012 A1
20120179075 Perry et al. Jul 2012 A1
20120191245 Fudaba et al. Jul 2012 A1
20120216671 Gammon Aug 2012 A1
20120237319 Jacobsen et al. Sep 2012 A1
20120259429 Han et al. Oct 2012 A1
20120277901 Jacobsen et al. Nov 2012 A1
20120277911 Jacobsen et al. Nov 2012 A1
20120277915 Jacobsen et al. Nov 2012 A1
20120328395 Jacobsen et al. Dec 2012 A1
20130011220 Jacobsen et al. Jan 2013 A1
20130013108 Jacobsen et al. Jan 2013 A1
20130023803 Hsu et al. Jan 2013 A1
20130033050 Matsuoka et al. Feb 2013 A1
20130057001 Tsai Mar 2013 A1
20130090580 Hong et al. Apr 2013 A1
20130106127 Lipson et al. May 2013 A1
20130106128 Yamasaki et al. May 2013 A1
20130192406 Godowski Aug 2013 A1
20130226048 Unluhisarcikili et al. Aug 2013 A1
20130253385 Goffer et al. Sep 2013 A1
20130296746 Herr et al. Nov 2013 A1
20130302129 Smith Nov 2013 A1
20130306430 Laffranchi et al. Nov 2013 A1
20130331744 Kamon Dec 2013 A1
20130333368 Durfee et al. Dec 2013 A1
20140100492 Nagasaka Apr 2014 A1
20140190289 Zhu Jul 2014 A1
20140195052 Tsusaka et al. Jul 2014 A1
20150073595 Fudaba et al. Mar 2015 A1
20150073596 Fudaba et al. Mar 2015 A1
20150173929 Kazerooni et al. Jun 2015 A1
20150209214 Herr et al. Jul 2015 A1
20150272749 Amend, Jr. et al. Oct 2015 A1
20150278263 Bowles et al. Oct 2015 A1
20150321340 Smith Nov 2015 A1
20150321342 Smith et al. Nov 2015 A1
20160003268 Shevchenko et al. Jan 2016 A1
20160114482 Lessing et al. Apr 2016 A1
20160153508 Battlogg Jun 2016 A1
20160279788 Kanaoka et al. Sep 2016 A1
20160331556 Wijesundara et al. Nov 2016 A1
20160331572 Popovic et al. Nov 2016 A1
20160332302 Bingham et al. Nov 2016 A1
20160332305 Gonzalez et al. Nov 2016 A1
20170050310 Kanaoka Feb 2017 A1
20180133905 Smith et al. May 2018 A1
20180133906 Smith et al. May 2018 A1
20180193172 Smith et al. Jul 2018 A1
20180193999 Jacobsen et al. Jul 2018 A1
20180194000 Smith et al. Jul 2018 A1
20180290309 Becker et al. Oct 2018 A1
20180298976 Battlogg Oct 2018 A1
20190176320 Smith et al. Jun 2019 A1
20190184576 Smith et al. Jun 2019 A1
20200001450 Smith et al. Jan 2020 A1
Foreign Referenced Citations (114)
Number Date Country
101214653 Jul 2008 CN
103610524 Mar 2014 CN
203495949 Mar 2014 CN
203752160 Aug 2014 CN
104843484 Aug 2015 CN
105818143 Aug 2016 CN
107471203 Dec 2017 CN
108081303 May 2018 CN
102004029513 Sep 2005 DE
102010029088 Nov 2011 DE
202013009698 Nov 2013 DE
102016201540 Aug 2017 DE
0039578 Nov 1981 EP
0616275 Sep 1998 EP
1037264 Sep 2000 EP
1258324 Nov 2002 EP
1442846 Aug 2004 EP
1721593 Nov 2006 EP
2198810 Jun 2010 EP
2942162 Nov 2015 EP
2168548 Oct 2016 EP
2651220 Mar 1991 FR
686237 Jan 1953 GB
2278041 Nov 1994 GB
S34-015764 Oct 1959 JP
S36-005228 May 1961 JP
S44-000603 Jan 1969 JP
S50-009803 Jan 1975 JP
S50-006043 Mar 1975 JP
S52-013252 Feb 1977 JP
S52-134985 Nov 1977 JP
S56-140510 Nov 1981 JP
S58-113586 Jul 1983 JP
S60-177883 Nov 1985 JP
S62-193784 Aug 1987 JP
S62-200600 Sep 1987 JP
H01-295772 Nov 1989 JP
H02-51083 Apr 1990 JP
H03-85398 Aug 1991 JP
H04-44296 Apr 1992 JP
H05-004177 Jan 1993 JP
H05-23989 Feb 1993 JP
H06-213266 Aug 1994 JP
H07-001366 Jan 1995 JP
H07-5129 Feb 1995 JP
H07-060679 Mar 1995 JP
H07-112377 May 1995 JP
H07-031291 Jun 1995 JP
H07-246578 Sep 1995 JP
H08-126984 May 1996 JP
H09-11176 Jan 1997 JP
H1156931 Mar 1999 JP
H11-130279 May 1999 JP
2002-161547 Jun 2002 JP
2003-103480 Apr 2003 JP
2004-105261 Apr 2004 JP
2005-118938 May 2005 JP
2005-237504 Sep 2005 JP
2005-334999 Dec 2005 JP
2006-016916 Jan 2006 JP
2006007337 Jan 2006 JP
2006-028953 Feb 2006 JP
2006-051558 Feb 2006 JP
2006-167223 Jun 2006 JP
3909770 Apr 2007 JP
2007-130234 May 2007 JP
2007-252514 Oct 2007 JP
2007-307216 Nov 2007 JP
2008-143449 Jun 2008 JP
2009-023828 Feb 2009 JP
2009-167673 Jul 2009 JP
2009-178253 Aug 2009 JP
2009-219650 Oct 2009 JP
2009-240488 Oct 2009 JP
2009-268839 Nov 2009 JP
2010-098130 Apr 2010 JP
2010-110381 May 2010 JP
2010-110465 May 2010 JP
2010-142351 Jul 2010 JP
2011-193899 Oct 2011 JP
2012-501739 Jan 2012 JP
2012-125279 Jul 2012 JP
2013-022091 Feb 2013 JP
2013-090693 May 2013 JP
2013-123786 Jun 2013 JP
2013-142445 Jul 2013 JP
5267730 Aug 2013 JP
2013-220496 Oct 2013 JP
2013-248699 Dec 2013 JP
2014-054273 Mar 2014 JP
2014-073222 Apr 2014 JP
2014200853 Oct 2014 JP
2015112649 Jun 2015 JP
2015-212010 Nov 2015 JP
2015-214019 Dec 2015 JP
2016-539017 Dec 2016 JP
2007-0057209 Jun 2007 KR
2012-0105194 Sep 2012 KR
10-1219795 Jan 2013 KR
2013-0001409 Jan 2013 KR
2013-0045777 May 2013 KR
2018-0128731 Dec 2018 KR
WO 2003002309 Jan 2003 WO
WO 2003081762 Oct 2003 WO
WO 2007144629 Dec 2007 WO
WO 2009143377 Nov 2009 WO
WO 2010025409 Mar 2010 WO
WO 2010027968 Mar 2010 WO
WO 2012042471 Apr 2012 WO
WO 2017148499 Sep 2017 WO
WO 2017159504 Sep 2017 WO
WO 2018118004 Jun 2018 WO
WO 2018211869 Nov 2018 WO
WO 2018215705 Nov 2018 WO
Non-Patent Literature Citations (66)
Entry
International Search Report for International Application No. PCT/US2019/069004 dated Apr. 1, 2020, 16 pages.
International Search Report for International Application No. PCT/US2019/069001 dated Apr. 30, 2020, 18 pages.
Aghili et al., Sensing the torque in a robot's joints, www.memagazine.org/backissues/september98/features/torque/torque.html, 1998, pp. 1-9, The American Society of Mechanical Engineers.
Aliens (Movie), Starring Sigourney Weaver, Directed by James Cameron, Written by James Cameron, David Giler, Walter Hill, Dan O'Bannon, and Ronald Shuset, Released 1985 by Twentieth Century Fox, Scenes at Playtime 88:26:31-00:26:59 & 00:27:40-00:28:05 & 02:08:25-02:10:39 Non-Patent Literature documentation; Aliens(1986)—IMDb; downloaded Sep. 27, 2014; 4 pages; http://www.imdb.com/title/tt10090605/.
Amikabir University of Technology, Manipulator Dynamics (Power Point), Computer Engineering and Information Technology Department, to the best of applicant's knowledge article was available before the application filing date, 44 pages.
Barras, Stabilization of a Biped Robot with its arms—A Practical Approach, http://biorob.epfl.ch/files/content/sites/biorob/filed/users/170220/public/Report.pdf; May 2010, 33 pages, EPFL Biorobotics Laboratory (BioRob), Switzerland.
Bauman, Utah Firm Markets on Big Gorilla of an Arm, Deseret News; Jan. 27, 1993, 2 pages, Deseret News Publishing Company, Salt Lake City, Utah.
Claeyssen et al., Magnetostrictive actuators compared to piezoelectric actuators, Proceedings of SPIE—The International Society for Optical Engineering 4763, Mar. 2003, 6 pages.
Digital World Tokyo, Giant Robot Grabbing Hands Grab All They Can, www.digitalworldtokyo.com/index.php/digital_tokyo/articles/giant_robot_grabbing_hands_grab_all_they_can/, Jul. 17, 2007, 3 pages.
Elliott et al., The Biomechanics and Energetics of Human Running using an Elastic Knee Exoskeleton, Jun. 2013, 7 pages, IEEE International Conference on Rehabilitation Robotics, Seattle, Washington.
Elliott et al., Design of a Clutch-Spring Knee Exoskeleton for Running, Journal of Medical Devices, Sep. 2014, 11 pages, vol. 8, The American Society of Mechanical Engineers, New York City, New York.
Endo et al., A quasi-passive model of human leg function in level-ground walking, 2006 IEEE/RSJ International Conference on Intelligent Robots and Systems, Oct. 9-15, 2006, pp. 4935-4939, Institute of Electrical and Electronics Engineers, Piscataway, New Jersey.
Gauthier et al., Magnetic Shape Memory Alloy and Actuator Design, Conference: 5th International Workshop on Microfactories (IWMF'06), Oct. 2006, 5 pages, Besançon, France.
Grabowski et al., Exoskeletons for Running and Hopping Augmentation, Journal of Applied Physiology, http://biomech.media.mit.edu/portfolio_ page/load-bearing-exoskeleton-for-augmentation-of-human-running/, 2009, 4 pages, vol. 107, No. 3, American Physiological Society, United States.
Hauser et al., JammJoint: A Variable Stiffness Device Based on Granular Jamming for Wearable Joint Support, IEEE Robotics and Automation Letters, Apr. 2017, 7 pages, vol. 2, Issue 2, Institute of Electrical and Electronics Engineers, Piscataway, New Jersey.
Huber et al., The selection of mechanical actuators based on performance indices, Oct. 8, 1997, pp. 2185-2205, vol. 453 Issue 1965, The Royal Society, London.
Hunter et al., Fast Reversible NiTi Fibers For Use In Microrobotics, Proceedings. IEEE Micro Electro Mechanical Systems, Jan. 30-Feb. 2, 1991, pp. 166-170, Institute of Electrical and Electronics Engineers, Piscataway, New Jersey.
Industrial Magnetics, Inc., PowerLift® Magnets; www.magnetics.com/product.asp?ProductID=1; as accessed Nov. 6, 2012, 2 pages; Boyne City, Michigan.
Jacobsen et al., Design of the Utah/M.I.T. Dextrous Hand, IEEE International Conference on Robotics and Automation, 1986, pp. 1520-1532, Institute of Electrical and Electronics Engineers, Piscataway, New Jersey.
Jacobsen et al., Development of the Utah Artificial Arm, IEEE Transactions on Biomedical Engineering, Apr. 1982, pp. 249-269, vol. BME-29, No. 4, Institute of Electrical and Electronics Engineers, Piscataway, New Jersey.
Jacobsen et al., Research Robots for Application in A1, Teleoperation and Entertainment, Proceedings of the International Fluid Power Exposition and Technical Conference, Mar. 24-24, 1992, pp. 1-19, Chicago, Illinois.
Jacobsen et al., Research Robots for Applications in Artificial Intelligence, Teleoperation and Entertainment; The International Journal of Robotics Research; Apr.-May 2004, pp. 319-330, vol. 23, No. 4-5, SAGE Publications, Thousand Oaks, California.
Jacobsen, Science, Robotics, and Superheroes, Presented at Department of Science University of Utah Science at Breakfast, Mar. 17, 2010, 16 pages.
Jafari et al., A Novel Actuator with Adjustable Stiffness (AwAS), Oct. 18-22, 2010, 6 pages, IEEE/RSJ International Conference on Intelligent Robots and Systems, Taiwan.
Jansen et al., Exoskeleton for Soldier Enhancement Systems Feasibility Study, Sep. 2000, 44 pages, Oak Ridge National Laboratory, Oak Ridge, Tennessee.
Kazerooni, Berkeley Lower Extremity Exoskeleton (BLEEX), to the best of applicant's knowledge article was available before the application filing date, 3 pages, University of California, Berkeley, Berkeley, California.
Kim, Development of a small 6-axis force/moment sensor for robot's fingers, Measurement Science and Technology, Sep. 30, 2004, 2 pages, Issue 11, Institute of Physics and IOP Publishing Limited.
Kim et al., A Force Reflected Exoskeleton-Type Masterarm for Human-Robot Interaction, IEEE Transactions on Systems, Man and Cybertentics-Part A: Systems and Humans, Mar. 2005, pp. 198-212, vol. 35, No. 2, Institute of Electrical and Electronics Engineers, Piscataway, New Jersey.
Kulick, An Unpowered Exoskeleton Springs Into Action: Researchers Increase Walking Efficiency, http://www.cmu.edu/me/news/archive/2015/collins-clutch.html, Apr. 1, 2015, 2 pages, Carnegie Mellon University Mechanical Engineering, Pittsburgh, Pennsylvania.
Laliberte et al., Underactuation in Space Robotic Hands, Proceeding of the 6th International Symposium on Artificial Intelligence and Robotics & Automation in Space, Jun. 18-22, 2001, 8 pages, Canadian Space Agency, Canada.
Magnetic Base, www.ask.com/wiki/magnetic_base; page last updated Sep. 12, 2012, 2 pages, retrieved from www.ask.com/wiki/magnetic_base.
Miao et al., Mechanical Design of Hybrid Leg Exoskeleton to Augment Load-Carrying for Walking, International Journal of Advanced Robotic Systems, Mar. 28, 2013, 11 pages, vol. 10, Intech open science open minds, Europe.
Mirfakhrai et al., Polymer artificial muscles, materialstoday, Apr. 2007, pp. 30-38, vol. 10 No. 4, Elsevier, Netherlands.
Mombaur et al., HEiKA-EXO: Optimization-based development and control of an exoskeleton for medical applications, http://typo.iwr.uni-heidelberg.de/groups/orb/research/heika-exo/, Optimization in Robotics & Biomechanics, Oct. 20, 2014, 3 pages, Germany.
Moosavian et al., Dynamics Modeling and Tip-Over Stability of Suspended Wheeled Mobile Robots with Multiple Arms, 2007 IEEE/RSJ International Conference on Intelligent Robots and Systems, Oct. 29-Nov. 2, 2007; pp. 1210-1215, Institute of Electrical and Electronics Engineers, Piscataway, New Jersey.
Newport Corporation, Heavy-Duty Magnetic Base, 300 lb (1334 N) Holding Force, ¼-20 Thread, http://search.newport.com/?q=*&x2=sku&q2=200, as accessed Apr. 23, 2011, 1 page, Irvine, CA.
Oak Ridge National Laboratory, Foot Force-Torque Sensor Novel Sensor for Measuring Forces and Torques at the Foot, www.ornl.gov, to the best of applicant's knowledge article was available before the application filing date, 1 page, Oak Ridge National Laboratory, Oak Ridge, Tennessee.
Omega, Load Cell Designs, www.omega.com/literature/transactions/volume3/load3.html, Nov. 1, 2005, 3 pages.
Ostling, Wearable Robots, Technology Review, Jul./Aug. 2004, pp. 70-73, Elizabeth Bramson-Boudreau, Cambridge, Massachusetts.
Pan, Improved Design of a Three-degree of Freedom Hip Exoskeleton Based on Biomimetic Parallel Structure, Jul. 2011, 132 pages, University of Ontario Institute of Technology, Canada.
Pelrine et al., Electrostriction of polymer dielectrics with compliant electrodes as a means of actuation, Sensors and Actuators A: Physical, Jan. 1998, pp. 77-85, vol. 64 Issue 1, Elsevier, Netherlands.
Pelrine et al., High-field deformation of elastomeric dielectrics for actuators, Materials Science and Engineering, Nov. 28, 2000, pp. 89-100, vol. 11 Issue 2, Elsevier, Netherlands.
Pelrine et al., Dielectric Elastomer Artificial Muscle Actuators: Toward Biomimetic Motion, Proceedings of SPIE—The International Society for Optical Engineering, Jul. 2002, pp. 126-137, vol. 4695, SPIE, Bellingham, WA.
Pin, Wearable Robotics Presented to New Horizons in Science Briefing, Oct. 2003, 34 pages, Knoxville, Tennessee.
Pratt et al., The RoboKnee: An Exoskeleton for Enhancing Strength and Endurance During Walking, International Conference on Robotics & Automation, Apr. 2004, 6 pages, IEEE, New Orleans, LA.
Robotics Research Group, Degrees of Freedom, www.robotics.utexas.edu/rrg/learn_more/low_ed/dof/, Oct. 25, 2006, 2 pages, University of Texas.
Rouse et al., Clutchable Series-Elastic Actuator: Design of a Robotic Knee Prosthesis for Minimum Energy Consumption, 2013 IEEE 13th International Conference on Rehabilitation Robotics (ICORR), Jun. 24-26, 2013, 6 pages, Institute of Electrical and Electronics Engineers, Piscataway, New Jersey.
Schuler et al., Dextrous Robot Arm, In Proceedings of the 8th ESA Workshop on Advanced Space Technologies for Robotic and Automation ‘ASTRA 2004’ ESTEC, Nov. 2-4, 2004, 8 pages, Noordwijk, The Netherlands.
Searchmap Blog, Scientists Develop Mechanical Spring-Loaded Leg Brace to Improve Walking, http://www.searchmap.eu/blog/scientists-develop-mechanical-spring-loaded-leg-brace-to-improve-walking/, Apr. 1, 2015, 5 pages, Searchmap Blog.
Seppala, These exoskeleton heels could help stroke victims walk again, https://www.engadget.com/2015/04/02/feet-exoskeletons/, Apr. 2, 2015, Engadget, San Francisco, California.
Shamaei et al., Estimation of Quasi-Stiffness of the Human Knee in the Stance Phase of Walking, Mar. 22, 2013, 10 pages, vol. 8 Issue 3, PLOS One, San Francisco, California.
Siddharth et al., Design and Analysis of a 1-DOF Walking Mechanism, http://siddharthswaminathan.in/files/WalkingMechanism.pdf, Nov. 2012, 7 pages, India.
Smith et al., Integrated thin-film piezoelectric traveling wave ultrasonic motors, Sensors and Actuators A: Physical, Dec. 2012, pp. 305-311, vol. 188, Elsevier, Netherlands.
Song et al, Kinematics Analysis and Implementation of a Motion-Following Task for a Humanoid Slave Robot Controlled by an Exoskeleton Master Robot, International Journal of Control, Automation and Systems, Dec. 2007, pp. 681-690, vol. 5, No. 6, Korean Institute of Electrical Engineers, South Korea.
Suitx, Phoenix Medical Exoskeleton, https://www.suitx.com/phoenix-medical-exoskeleton, 3 pages, to the best of the applicant's knowledge article was available before the application filing date, US Bionics, Inc., Berkeley, California.
Suleiman, Engineering an affordable exoskeleton, Phys.org, https://phys.org/news/2014-06-exoskeleton.html, Jun. 12, 2014, 5 pages, Science X Network.
Tmsuk, Rescue Robot “T—53” release Control Technologies to Control the Synchronous Operation of the Arm, http://robot.watch.impress.co.jp/cda/news/2007/07/18/564.html, as accessed Sep. 1, 2011 5 pages, Robot Watch website.
Ueda et al., Large Effective-Strain Piezoelectric Actuators Using Nested Cellular Architecture With Exponential Strain Amplification Mechanisms, IEEE/ASME Transactions on Mechatronics, Oct. 2010, pp. 770-782, vol. 15 Issue 5, Institute of Electrical and Electronics Engineers, Piscataway, New Jersey.
Vanderborght et al., Variable impedance actuators: A review, Robotics and Autonomous Systems, Dec. 2013, 14 pages, vol. 61, Issue 12, Elsevier, Netherlands.
Walsh, Biomimetic Design of an Under-Actuated Leg Exoskeleton For Load-Carrying Augmentation, Massachusetts Institute of Technology, Feb. 2006, 97 pages, Massachusetts.
Walsh et al., A Quasi-Passive Leg Exoskeleton for Load-Carrying Augmentation, International Journal of Humanoid Robotics, Mar. 8, 2007, 20 pages, vol. 4, No. 3, World Scientific Publishing Company.
Wang et al., A highly-underactuated robotic hand with force and joint angle sensors, 2011 IEEE/RSJ International Conference on Intelligent Robots and Systems, Sep. 25-30, 2011, 6 pages, Institute of Electrical and Electronics Engineers, Piscataway, New Jersey.
Yeates, Utah-built robot safeguards the workplace, http://www.ksl.com?nid=148&sid=17654421&autostart=y; Oct. 13, 2011, 3 pages, KSL Broadcasting, Salt Lake City, Utah.
Yip et al., High-Performance Robotic Muscles from Conductive Nylon Sewing Thread, 2015 IEEE International Conference on Robotics and Automation (ICRA), May 26-30, 2015, 6 pages, Seattle, Washington.
Zubrycki et al., Novel haptic glove-based interface using jamming principle, Proceedings of the 10th International Workshop on Robot Motion and Control, Jul. 6-8, 2015, 6 pages, IEEE, Poland.
International Search Report for International Application No. PCT/US2019/068998 dated May 20, 2020, 15 pages.
Related Publications (1)
Number Date Country
20200206947 A1 Jul 2020 US