Wearable shoulder joint rehabilitation exoskeleton mechanism and combination
By designing a wearable shoulder joint rehabilitation exoskeleton mechanism including shoulder fixing parts, components and rotating pairs, the existing upper limb exoskeleton robots have solved the problems of inconvenience in wear and complex motion control, and achieved lightweight, convenient wear and high-precision movement.
Patent Information
- Application Number
- CN202510050707.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-13
- Publication Date
- 2025-05-23
AI Technical Summary
Existing upper limb exoskeleton robots have problems such as inconvenient wear, complex motion control, heavy weight and unsuitable misalignment.
A wearable shoulder joint rehabilitation exoskeleton mechanism is designed, including shoulder fixtures, components and rotational pairs. It realizes 3 degrees of freedom movement through simple movement relationships and less driving, adapts to changes in upper limb sizes in different patients without the need to align human joints.
The forward flexion, protrusion, abduction and adduction movement of the human upper arm is achieved, the weight and number of components of the exoskeleton device are reduced, the convenience of wear and movement accuracy is improved, and the comfort of the patient is increased.
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Figure CN120022157A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of medical rehabilitation technology, and in particular to a wearable shoulder joint rehabilitation exoskeleton mechanism and, on this basis, also to a wearable shoulder joint rehabilitation exoskeleton combination. Background Art
[0002] The upper limb rehabilitation robot formed by combining the central nervous system plasticity mechanism with a robot can independently or assist in the rehabilitation training and assessment of patients with limb motor dysfunction, providing greater autonomy for people with limb motor dysfunction, and can effectively alleviate the contradiction between supply and demand of rehabilitation medical resources and improve the quality of life of disabled patients and the elderly.
[0003] At present, upper limb exoskeleton robots are mainly divided into two categories: rigid upper limb exoskeleton robots and soft exoskeleton robots. Among them, rigid upper limb exoskeleton robot mechanisms have defects such as motion compatibility, workspace limitations, mechanical system singularity problems, heavy weight, and inappropriate dislocation. Soft upper limb exoskeleton robots have the following problems: the driving auxiliary power is not as good as that of rigid robots, and they cannot completely replace the patient's joint movement function, and they have certain requirements for the patient's own movement ability. In addition, both rigid and soft upper limb exoskeleton robots have problems such as heavy drive devices that are not suitable for wear. Summary of the invention
[0004] The object of the present invention is to overcome at least one of the above problems in the prior art.
[0005] In order to achieve the above-mentioned objectives, the present invention provides a wearable shoulder joint rehabilitation exoskeleton mechanism, including: a shoulder fixing part, a first component, a second component, a third component, a fourth component, a fifth component, an eighth component, a first fixed pair, a first rotation pair, a second rotation pair, a third rotation pair, a fourth rotation pair, through a first cylindrical pair, a sixth rotation pair and a second fixed pair. Among them, the shoulder fixing part is connected to the human shoulder through the first fixed pair; the first component is connected to the shoulder fixing part through the first rotation pair; the first component is connected to the second component through the second rotation pair and the fourth rotation pair, and the rotation axes of the second rotation pair and the fourth rotation pair are coaxially arranged; the third component is connected to the second component through the third rotation pair, and the rotation axes of the first rotation pair, the second rotation pair and the third rotation pair are orthogonal to each other; the third component is connected to the fourth component through an arc groove, and the rotation center of the arc groove is located on the side of the third component close to the human shoulder; the fifth component is connected to the fourth component through the first cylindrical pair; the eighth component is connected to the fifth component through the sixth rotation pair, the axis of the first cylindrical pair is orthogonal to the rotation axis of the sixth rotation pair, and the eighth component is connected to the human upper arm through the second fixed pair.
[0006] In some embodiments, the eighth component and the upper arm of the human body are vertically fixedly connected to each other via the second fixing pair.
[0007] In addition, the present invention also provides a wearable shoulder joint rehabilitation exoskeleton combination, including two of the aforementioned wearable shoulder joint rehabilitation exoskeleton mechanisms and a combined component for connecting the two wearable shoulder joint rehabilitation exoskeleton mechanisms, the two shoulder joint rehabilitation exoskeleton mechanisms are respectively used to connect to the left upper limb and the right upper limb of the human body, and the combined component is respectively connected to the two shoulder fixing parts through a fourth fixing pair and a fifth fixing pair.
[0008] Through the above technical solution, the wearable shoulder joint rehabilitation exoskeleton mechanism of the present invention has the following beneficial effects:
[0009] (1) The shoulder joint rehabilitation exoskeleton mechanism realizes the flexion, extension, abduction and adduction of the human upper arm, and further realizes the flexion, extension, abduction, adduction and composite movement of the human upper arm around the shoulder joint. The wearable shoulder joint rehabilitation exoskeleton mechanism provided by the present invention has a simple movement relationship and is easy to realize, requires less drive, and the movement is more precise;
[0010] (2) The number of components in the wearable shoulder joint rehabilitation exoskeleton is small, so the corresponding exoskeleton device is light in weight;
[0011] (3) When the wearable shoulder joint rehabilitation exoskeleton is worn, there is no need to align the movement of the exoskeleton with the human body joints, which solves the problem of joint dislocation when the shoulder joint rehabilitation exoskeleton is worn, reduces the precision requirements for the connection between the components of the shoulder joint rehabilitation exoskeleton and the human body, and thus makes wearing more convenient;
[0012] (4) When the shoulder joint rehabilitation exoskeleton mechanism provided by the present invention drives the shoulder joint rehabilitation exercise, the non-driving force and torque on the human joint in the unmanned-machine closed chain mechanism increase the patient's comfort and avoid the damage of the rehabilitation exercise to the human joint;
[0013] (5) The shoulder joint rehabilitation exoskeleton mechanism provided by the present invention can be applied to different patients. When the upper limb size of different patients changes, the relative position of the eighth component is automatically adjusted by adjusting the first cylindrical pair and the fourth component, thereby achieving adaptive wearing of the shoulder joint rehabilitation exoskeleton mechanism according to the change of upper limb size of different patients, thereby improving the convenience of wearing the shoulder joint rehabilitation exoskeleton mechanism and reducing the specifications or models of the corresponding shoulder joint rehabilitation exoskeleton devices. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 is a schematic diagram of an upper limb rehabilitation exoskeleton mechanism disclosed in the present invention;
[0015] Figure 2is a schematic diagram of the shoulder joint mechanism disclosed in the present invention;
[0016] Figure 3 is a schematic diagram of the elbow joint mechanism disclosed in the present invention;
[0017] Figure 4 It is a schematic diagram of the shoulder joint rehabilitation exoskeleton assembly disclosed in the present invention.
[0018] Description of Reference Numerals
[0019] 1-human shoulder; 2-shoulder fixing member; 3-first component; 4-second component; 5-third component; 6-fourth component; 7-fifth component; 8-sixth component; 9-seventh component; 10-human upper arm; 11-eighth component; 12-human forearm; 13-ninth component; 14-hand; 15-shoulder joint motion pair; 16-elbow joint motion pair; 17-wrist joint motion pair; 18-first fixed pair; 19-first rotation pair; 20-second rotation pair; 21-third rotation pair; 22-fourth rotation pair; 23-first cylindrical pair; 24-fifth rotation pair; 25-sixth rotation pair; 26-second fixed pair; 27-second cylindrical pair; 28-seventh rotation pair; 29-third fixed pair; 30-rotation center; 31-first rotation drive; 32-movement drive; 33-second rotation drive; 34-combined component; 35-fourth fixed pair; 36-fifth fixed pair. DETAILED DESCRIPTION
[0020] The specific implementation of the present invention is described in detail below in conjunction with the accompanying drawings. It should be understood that the specific implementation described here is only used to illustrate and explain the present invention, and is not used to limit the present invention.
[0021] In the present invention, unless otherwise specified, the directions or positional relationships indicated by terms such as "up, down, left, right, inside, outside, top, bottom" etc. are based on the directions or positional relationships shown in the accompanying drawings and are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific direction, be constructed and operated in a specific direction, and therefore should not be understood as a limitation on the present invention.
[0022] In addition, the terms "first", "second", etc. are used for descriptive purposes only and should not be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined as "first" or "second" may explicitly or implicitly include at least one of the features. In the description of the present invention, the meaning of "plurality" is at least two, such as two, three, etc., unless otherwise clearly and specifically defined.
[0023] In the present invention, the description with reference to the terms "one embodiment", "some embodiments", "example", "specific example", or "some examples" etc. means that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described may be combined in any one or more embodiments or examples in a suitable manner. In addition, those skilled in the art may combine and combine the different embodiments or examples described in this specification and the features of the different embodiments or examples, without contradiction.
[0024] In the present invention, unless otherwise clearly specified and limited, the terms "installed", "connected", "connected", "fixed" and the like should be understood in a broad sense, for example, it can be a fixed connection, a detachable connection, or an integral one; it can be a mechanical connection, an electrical connection, or communication with each other; it can be a direct connection, or an indirect connection through an intermediate medium, it can be the internal connection of two elements or the interaction relationship between two elements, unless otherwise clearly defined. For ordinary technicians in this field, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.
[0025] An upper limb exoskeleton robot, such as a mechanical arm, can independently or assist in the rehabilitation training and evaluation of patients with limb motor dysfunction through movements that match the movements of the human upper limbs, providing greater autonomy for people with limb motor dysfunction. Existing upper limb exoskeleton robots are mainly divided into two categories: rigid upper limb exoskeleton robots and soft exoskeleton robots. The rigid upper limb exoskeleton robot mechanism has defects such as motion compatibility, workspace limitations, mechanical system singularity problems, heavy weight, and inappropriate dislocation. The driving auxiliary power of the soft upper limb exoskeleton robot is not as good as that of the rigid robot, and it cannot completely replace the patient's joint movement function, and it has certain requirements on the patient's own movement ability. In addition, Chinese patent CN106393071B discloses a 9-degree-of-freedom wearable adaptive upper limb rehabilitation exoskeleton mechanism. Although it adds multiple passive degrees of freedom at the shoulder joint to compensate for the problem of axis drift during the movement of the glenohumeral joint, the robot kinematic pair still needs to align with the human joint when the exoskeleton robot is worn, and the number of components is large, resulting in a large weight of the robot, and at the same time, there are many degrees of freedom, corresponding drive motors, and complex motion control.
[0026] The present invention mainly aims at the problems of the inconvenience of wearing the upper limb exoskeleton robot and the complex motion control in the prior art, and provides a 3-DOF wearable upper limb rehabilitation exoskeleton mechanism. Figure 1-Figure 3As shown, the upper limb rehabilitation exoskeleton mechanism includes a shoulder joint mechanism and an elbow joint mechanism. The two ends of the shoulder joint mechanism are respectively fixedly connected to the human shoulder 1 and the human upper arm 10. The shoulder joint mechanism is used to drive the human upper arm 10 to realize flexion, extension, abduction and adduction around the shoulder joint kinematic pair 15, thereby realizing rehabilitation training for the human shoulder joint. The two ends of the elbow joint mechanism are respectively fixedly connected to the human upper arm 10 and the human forearm 12. The elbow joint mechanism is used to drive the human forearm 12 to realize flexion and extension around the elbow joint kinematic pair 16, thereby realizing rehabilitation training for the human elbow joint.
[0027] Among them, Figure 1 and Figure 2 As shown, the shoulder joint mechanism includes: a first fixed pair 18, a shoulder fixing member 2, a first component 3, a second component 4, a third component 5, a fourth component 6, a fifth component 7, an eighth component 11, a first rotational pair 19, a second rotational pair 20, a third rotational pair 21, a fourth rotational pair 22, a first cylindrical pair 23, a sixth rotational pair 25 and a second fixed pair 26. The shoulder fixing member 2 is connected to the human shoulder 1 through the first fixed pair 18, the shoulder fixing member 2 is connected to the first component 3 through the first rotational pair 19, the first component 3 is connected to the second component 4 through the second rotational pair 20 and the fourth rotational pair 22, and the rotational axes of the second rotational pair 20 and the fourth rotational pair 22 are coaxially arranged. The second component 4 is connected to the third component 5 through the third rotational pair 21, and the three rotational axes formed by the first rotational pair 19, the second rotational pair 20, the third rotational pair 21 and the fourth rotational pair 22 are orthogonal to each other, so the first rotational pair 19, the second rotational pair 20, the third rotational pair 21 and the fourth rotational pair 22 can be equivalent to a ball pair. The third member 5 is connected to the fourth member 6 through an arc groove, and the rotation center 30 of the arc groove is located on the side of the arc groove close to the human upper arm 10. The fourth member 6 is connected to the fifth member 7 through the first cylindrical pair 23, the fifth member 7 is connected to the eighth member 11 through the sixth rotation pair 25, the rotation axis of the sixth rotation pair 25 is orthogonal to the axis of the first cylindrical pair 23, and the eighth member 11 is connected to the human upper arm 10 through the second fixed pair 26.
[0028] The shoulder joint mechanism provided by the present invention can be connected to the human shoulder 1 through the shoulder fixing member 2 with the first fixing pair 18, and connected to the human upper arm 10 through the eighth component 11 with the second fixing pair 26, so that the movement of the shoulder joint mechanism can drive the human upper arm 10 to perform corresponding movement around the shoulder joint motion pair 15.
[0029] The shoulder joint mechanism provided by the present invention combines the physiological structure and movement characteristics of the human shoulder joint, and forms a composite motion pair through three orthogonal rotation pairs (the first rotation pair 19, the second rotation pair 20, the fourth rotation pair 22 and the third rotation pair 21) that are equivalent to the ball pair, the arc groove of the equivalent rotation pair, the first cylindrical pair 23 and the sixth rotation pair 25, and a spatial swing guide rod mechanism with the shoulder joint motion pair 15. By driving the spatial swing guide rod mechanism to rotate and swing, the human upper arm 10 can be driven to perform flexion, extension, abduction and adduction movements.
[0030] Specifically, combined Figure 1 and Figure 2 As shown, when the first rotation drive 31 loaded on the third component 5 is applied, the third component 5 rotates around the rotation axis of the first rotation pair 19, the third component 5 rotates to drive the fourth component 6 to rotate, and the fourth component 6 moves along the axis of the first cylindrical pair 23 relative to the fifth component 7, and drives the eighth component 11 to rotate with the fourth component 6. Since the eighth component 11 is connected to the human upper arm 10 through the second fixed pair 26, the eighth component 11 rotates to drive the human upper arm 10 to perform flexion or extension movement around the shoulder joint motion pair 15.
[0031] When the moving drive 32 loaded on the fourth member 6 is applied, the fourth member 6 moves along the axis of the first cylindrical pair 23, and the fourth member 6 moves in the circular arc groove of the third member 5. Since the circular arc groove is equivalent to a revolute pair, the rotation center 30 of the revolute pair is located on the side of the circular arc groove close to the human upper arm 10. Therefore, when the fourth member 6 moves in the circular arc groove, the third member 5 rotates around the rotation center 30 and the rotation axis of the third revolute pair 21, so that the fourth member 6 follows the third member 5 to rotate around the rotation axis of the third revolute pair 21. The rotation of the fourth member 6 rotates through the first cylindrical pair 23, the fifth member 7, the sixth revolute pair 25 and the eighth member 11, and the eighth member 11 is connected to the human upper arm 10 through the second fixed pair 26. Therefore, the rotation of the fourth member 6 drives the human upper arm 10 to rotate around the shoulder joint motion pair 15, thereby realizing the abduction or adduction movement of the human upper arm 10.
[0032] When the first rotation drive 31 loaded on the third member 5 and the movement drive 32 loaded on the fourth member 6 are applied simultaneously, a compound movement of flexion, extension, abduction and adduction of the upper arm 10 of the human body can be achieved.
[0033] In addition, refer to Figure 1 and Figure 3As shown, the elbow joint mechanism includes: a second fixed pair 26, an eighth member 11, a fifth rotating pair 24, a sixth member 8, a second cylindrical pair 27, a seventh member 9, a seventh rotating pair 28, a ninth member 13, and a third fixed pair 29. According to an embodiment of the exoskeleton robot corresponding to the upper limb rehabilitation exoskeleton mechanism of the present invention, the shoulder joint mechanism and the elbow joint mechanism may respectively include the eighth member 11 and the second fixed pair 26, or the shoulder joint mechanism and the elbow joint mechanism may share the eighth member 11 and the second fixed pair 26, further integrating and simplifying the components, reducing the number of components, which is beneficial to reducing the weight of the upper limb rehabilitation exoskeleton device corresponding to the upper limb rehabilitation exoskeleton mechanism.
[0034] Combined with Figure 1 and Figure 3 As shown, one end of the eighth member 11 is connected to the upper arm 10 of the human body through the second fixed pair 26, the other end of the eighth member 11 is connected to the sixth member 8 through the fifth rotating pair 24, the fifth rotating pair 24 is connected to the seventh member 9 through the second cylindrical pair 27, the seventh member 9 is connected to the ninth member 13 through the seventh rotating pair 28, and the ninth member 13 is connected to the human forearm 12 through the third fixed pair 29.
[0035] The elbow joint mechanism provided by the present invention can be connected to the upper arm 10 of the human body through the eighth member 11 with the second fixed pair 26, and connected to the human forearm 12 through the ninth member 13 with the third fixed pair 29. In this way, through the movement of the elbow joint mechanism, the human forearm 12 is driven to perform corresponding movements around the elbow joint moving pair 16.
[0036] The elbow joint mechanism provided by the present invention combines the physiological structure and movement characteristics of the human elbow joint, and forms a planar oscillating guide bar mechanism through a compound moving pair formed by two rotating pairs (the fifth rotating pair 24, the elbow joint moving pair 16), the second cylindrical pair 27 and the seventh rotating pair 28. By driving the planar oscillating guide bar mechanism to oscillate, the human forearm 12 is driven to perform flexion and extension movements.
[0037] Specifically, combined with Figure 1 and Figure 3 As shown, when a second rotational drive 33 is applied to the fifth rotating pair 24, the fifth rotating pair 24 rotates around its rotation axis, driving the sixth member 8 to rotate around the rotation axis of the fifth rotating pair 24. Moreover, the sixth member 8 moves relative to the seventh member 9 through the second cylindrical pair 27. At the same time, the rotation of the sixth member 8 drives the seventh member 9 and the ninth member 13 to follow the sixth member 8 to rotate around the rotation axis of the fifth rotating pair 24 through the second cylindrical pair 27. The ninth member 13 is connected to the human forearm 12 through the third fixed pair 29. Therefore, the ninth member 13 rotates to drive the human forearm 12 to rotate around the elbow joint moving pair 16, thereby realizing the flexion or extension movement of the human forearm 12.
[0038] When the first rotation drive 31, the movement drive 32 and the second rotation drive 33 are applied simultaneously, the combined movements of flexion, extension, abduction and adduction of the human upper arm 10 and flexion and extension of the human forearm 12 can be realized, thereby enabling the hand 14 connected to the human forearm 12 through the wrist joint kinematic pair 17 to reach the desired position.
[0039] In some embodiments, reference Figure 1-Figure 3 As shown, the shoulder fixing member 2 is vertically fixedly connected to the human shoulder 1 through the first fixing pair 18, and the rotation axis of the first rotating pair 19 is perpendicular to the shoulder fixing member 2. The rotation axis of the sixth rotating pair 25 is perpendicular to the axis of the first cylindrical pair 23. The eighth component 11 is vertically fixedly connected to the human upper arm 10 through the second fixing pair 26, and the axis of the first cylindrical pair 23 is parallel to the human upper arm 10. The rotation axis of the fifth rotating pair 24 is perpendicular to the axis of the first cylindrical pair, the rotation axis of the seventh rotating pair 28 is perpendicular to the axis of the second cylindrical pair 27, and the ninth component 13 is vertically fixedly connected to the human forearm 12 through the third fixing pair 29, and the axis of the second cylindrical pair 27 is parallel to the human forearm 12.
[0040] The 3-DOF wearable upper limb rehabilitation exoskeleton mechanism provided by the present invention has the following beneficial effects:
[0041] (1) It can realize three degrees of freedom of movement, namely, flexion or extension of the human upper arm 10, abduction or adduction of the human upper arm 10, and flexion or extension of the human forearm 12. In addition, by combining the three degrees of freedom of movement, it can further realize the compound movement of flexion, extension, abduction and adduction of the human upper arm 10 and flexion and extension of the human forearm 12, so that the hand 14 can reach the desired position.
[0042] (2) In the upper limb rehabilitation exoskeleton mechanism provided by the present invention, the number of components is small, so that the weight of the exoskeleton device corresponding to the mechanism is relatively low; moreover, the kinematic pair is simple and easy to implement, the motion relationship is simple, and only three drives are required to achieve 3-degree-of-freedom motion, and the motion is more precise.
[0043] (3) The shoulder joint mechanism and the shoulder joint kinematic pair 15 constitute a spatial swinging guide rod mechanism, and the elbow joint mechanism and the elbow joint kinematic pair 16 constitute a planar swinging guide rod mechanism. Therefore, when worn, the kinematic pairs of the upper limb rehabilitation exoskeleton mechanism of the present invention do not need to be aligned with the human joints, thereby solving the problem of joint dislocation when the upper limb rehabilitation exoskeleton mechanism is worn. Moreover, when driving the human shoulder and elbow joints for rehabilitation exercises, the non-driving force or torque on the human joints in the unmanned-machine closed chain mechanism increases the patient's comfort and avoids damage to the human joints caused by rehabilitation exercises.
[0044] (4) When worn, the connection position accuracy requirements of the components connected to the human body are low, making it easy to wear.
[0045] (5) By adjusting the connection positions of the first cylindrical pair 23 and the fourth member 6 and the second cylindrical pair 27 and the sixth member 8, and by adjusting the first cylindrical pair 23 and the fourth member 6 and / or the second cylindrical pair 27 and the sixth member 8, the relative positions of the sixth member 8 and the seventh member 9 are automatically adjusted, thereby achieving adaptive wearing according to the changes in the upper limb sizes of different patients, thereby improving the convenience of wearing the upper limb exoskeleton mechanism and reducing the specifications or models of the upper limb exoskeleton.
[0046] (6) The third component 5 and the fourth component 6 are connected to the slider structure via an arc groove of an equivalent revolute pair, which is more suitable for the physiological structure of the human shoulder.
[0047] On this basis, the present invention also provides a wearable shoulder joint rehabilitation exoskeleton mechanism, including the aforementioned shoulder joint mechanism. Specifically, Figure 1 and Figure 2 As shown, the shoulder joint mechanism includes: a shoulder fixing part 2, a first component 3, a second component 4, a third component 5, a fourth component 6, a fifth component 7, an eighth component 11, a first fixed pair 18, a first rotation pair 19, a second rotation pair 20, a third rotation pair 21, a fourth rotation pair 22, through a first cylindrical pair 23, a sixth rotation pair 25 and a second fixed pair 26. Among them, the shoulder fixing part 2 is connected to the human shoulder 1 through the first fixed pair 18; the first component 3 is connected to the shoulder fixing part 2 through the first rotation pair 19; the first component 3 is connected to the second component 4 through the second rotation pair 20 and the fourth rotation pair 22, and the rotation axes of the second rotation pair 20 and the fourth rotation pair 22 are coaxially arranged; the third component 5 is connected to the second component 4 through the third rotation pair 21, and the rotation axes of the first rotation pair 19, the second rotation pair 20 and the third rotation pair 21 are orthogonal to each other; the third component 5 is connected to the fourth component 6 through an arc groove, and the rotation center 30 of the arc groove is located on the side of the third component 5 close to the human shoulder 1; the fifth component 7 is connected to the fourth component 6 through the first cylindrical pair 23; the eighth component 11 is connected to the fifth component 7 through the sixth rotation pair 25, the axis of the first cylindrical pair 23 is orthogonal to the rotation axis of the sixth rotation pair 25, and the eighth component 11 is connected to the human upper arm 10 through the second fixed pair 26. The shoulder joint mechanism provided by the present invention can realize flexion, extension, abduction, adduction and composite movements of the upper arm 10 of the human body around the shoulder joint motion pair 15, which is helpful for the rehabilitation training of the human shoulder joint.
[0048] In addition, the wearable shoulder joint rehabilitation exoskeleton mechanism provided by the present invention can be used in combination, referring to Figure 4As shown, the combination includes two aforementioned wearable shoulder joint rehabilitation exoskeleton mechanisms and a combined component 34 for connecting the two wearable shoulder joint rehabilitation exoskeleton mechanisms. The two shoulder joint rehabilitation exoskeleton mechanisms are respectively used to connect to the left upper limb and the right upper limb of the human body. The combined component 34 is respectively connected to the two shoulder fixing members 2 through the fourth fixing pair 35 and the fifth fixing pair 36. Figure 4 As shown, two shoulder joint rehabilitation exoskeleton mechanisms are respectively connected to the left upper limb and the right upper limb of the human body, and the combined component 34 is vertically fixedly connected to the shoulder fixing part 2 of one of the shoulder joint rehabilitation exoskeleton mechanisms through the fourth fixing pair 35, and is vertically fixedly connected to the shoulder fixing part 2 of the other shoulder joint rehabilitation exoskeleton mechanism through the fifth fixing pair 36.
[0049] The preferred embodiments of the present invention are described in detail above in conjunction with the accompanying drawings, but the present invention is not limited thereto. Within the technical concept of the present invention, the technical solution of the present invention can be subjected to a variety of simple modifications, including the combination of various specific technical features in any appropriate manner. In order to avoid unnecessary repetition, the present invention will not further describe various possible combinations. However, these simple modifications and combinations should also be regarded as the contents disclosed by the present invention and belong to the protection scope of the present invention.
Claims
1. A wearable shoulder joint rehabilitation exoskeleton mechanism, characterized in that: include: A shoulder fixing member (2), a first component (3), a second component (4), a third component (5), a fourth component (6), a fifth component (7), an eighth component (11), a first fixed pair (18), a first rotation pair (19), a second rotation pair (20), a third rotation pair (21), a fourth rotation pair (22), a first cylindrical pair (23), a sixth rotation pair (25) and a second fixed pair (26); The shoulder fixing member (2) is connected to the human shoulder (1) via the first fixing pair (18); the first member (3) is connected to the shoulder fixing member (2) via the first rotating pair (19); the first member (3) is connected to the second member (4) via the second rotating pair (20) and the fourth rotating pair (22), and the rotation axes of the second rotating pair (20) and the fourth rotating pair (22) are coaxially arranged; the third member (5) is connected to the second member (4) via the third rotating pair (21), and the first rotating pair (19), the second rotating pair (20) and the third rotating pair The rotation axes of the third member (5) and the fourth member (6) are orthogonal to each other; the third member (5) and the fourth member (6) are connected by an arc groove, and the rotation center (30) of the arc groove is located on the side of the third member (5) close to the human shoulder (1); the fifth member (7) and the fourth member (6) are connected by the first cylindrical pair (23); the eighth member (11) and the fifth member (7) are connected by the sixth rotation pair (25), and the axis of the first cylindrical pair (23) is orthogonal to the rotation axis of the sixth rotation pair (25); the eighth member (11) and the human upper arm (10) are connected by the second fixed pair (26).
2. The wearable shoulder joint rehabilitation exoskeleton mechanism according to claim 1, characterized in that: The eighth component (11) and the human upper arm (10) are vertically fixedly connected to each other via the second fixing pair (26).
3. A wearable shoulder joint rehabilitation exoskeleton assembly, characterized in that: The invention comprises two wearable shoulder joint rehabilitation exoskeleton mechanisms according to claim 1 or 2 and a combined component (34) for connecting the two wearable shoulder joint rehabilitation exoskeleton mechanisms, wherein the two shoulder joint rehabilitation exoskeleton mechanisms are respectively used to connect to the left upper limb and the right upper limb of the human body, and the combined component (34) is respectively connected to the two shoulder fixing members (2) via a fourth fixing pair (35) and a fifth fixing pair (36).
Citation Information
Patent Citations
A 9-DOF Wearable Adaptive Upper Limb Rehabilitation Exoskeleton Mechanism
CN106393071B
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