Wearable power-assisted lifting mechanical arm device

By designing a robotic arm body that can be deflected in the up and down direction and rotated about the horizontal axis, and adopting a detachable connection, the problem of limited pitch angle adjustment range and fixed connection in the prior art affecting the user experience, achieving a larger adjustment range and a higher user experience.

CN222972155UActive Publication Date: 2025-06-13CIXI DONGXIN MAGNESIUM CO LTD
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Patent Information

Application Number
CN202421721766.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-18
Publication Date
2025-06-13
Estimated Expiration
2034-07-18

AI Technical Summary

Technical Problem

The existing power lifting robot arm device is limited in pitch angle and front-rear distance adjustment range, and the support arm assembly and waist card assembly are fixedly connected and cannot be disassembled, which affects the user experience.

Method used

A wearable power-lifting robotic arm device is designed, and the robotic arm body can be deflected and adjusted in the upward and downward direction, and can be rotated overall about a horizontally extending axis relative to the waist fixing assembly. At the same time, a detachable connection is adopted between the robotic arm main body and the movable seat, and the locking assembly and elastic parts are quickly disassembled and assembled.

Benefits of technology

A wider pitch angle adjustment range is achieved, improved user experience, and simplifies operational procedures in emergencies with removable connections.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a wearable power-assisted lifting mechanical arm device which comprises a waist fixing assembly and a supporting assembly. The whole mechanical arm main body obliquely extends upwards from back to front, the rear end of the mechanical arm main body is connected with the waist fixing assembly, and the mechanical arm main body is configured to enable the front end of the mechanical arm main body to deflect in the vertical direction relative to the rear end so as to adjust the pitching angle; the whole mechanical arm body is rotationally connected to the waist fixing assembly in the mode that the mechanical arm body can rotate around the horizontally-extending axis relative to the waist fixing assembly, and the position of the mechanical arm body can be adjusted. The pitching angle adjusting device has the advantage of being capable of effectively meeting the requirement of a user for a larger pitching angle adjusting range.
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Description

Technical Field

[0001] The utility model relates to the technical field of auxiliary training equipment, in particular to a wearable power-assisted lifting and supporting robotic arm device. Background Art

[0002] When conducting shooting training, it is necessary to hold a gun with both hands. Since the gun itself is heavy, long-term gun holding requires high physical strength from the user. Long-term shooting is likely to cause occupational diseases. For example, long-term tilting of the head can compress blood vessels, and long-term raising of the arm and fixed postures can cause discomfort in the arms, joints, etc. When a policeman uses a gun, due to the harsh environment and the lack of a suitable (gun) shooting support and fixation point, the stability during aiming will be affected. When a policeman or a soldier is performing a security task, the shield used is relatively heavy and needs to be held with both hands, thus disabling the use function of the other hand.

[0003] To solve the above technical problems, the Chinese invention patent application of the applicant's prior application CN201911205160.9 (application publication number: CN110788838A) discloses a power-assisted lifting and supporting robotic arm device, including: a waist clip assembly for being assembled at the back position of the user's waist; a support arm assembly connected to the waist clip assembly, with its end extending laterally and being able to bend horizontally; a support rod assembly including an adjustment rod whose bottom end is hinged to the end of the support arm assembly and an auxiliary connecting member connected between the end of the support arm assembly and the upper part of the adjustment rod and capable of keeping the adjustment rod in a corresponding angular state relative to the support arm assembly; a bracket assembly connected to the top end of the adjustment rod for placing the object to be supported. This power-assisted lifting and supporting robotic arm device can be conveniently worn by the user at the back position of the waist, is small in size and convenient to carry, meets the needs of various shooting trainings of the user, and is not restricted by factors such as the venue.

[0004] However, the above power-assisted lifting and supporting robotic arm device still has certain deficiencies: First, the support arm assembly connected between the waist clip assembly and the support rod assembly can only be adjusted left and right in the horizontal direction and cannot be adjusted up and down. In this way, the supported object can only be adjusted in the pitching angle through the support rod assembly itself, resulting in limited adjustment ranges for the pitching angle and the front-back distance of the supported object and unable to effectively meet the needs of the user for a larger pitching angle adjustment range. Second, the support arm assembly and the waist clip assembly are fixedly connected and cannot be disassembled. In some emergency situations, the support arm assembly and the connected support rod assembly cannot be separated from the waist clip in time, reducing the user experience.

[0005] Therefore, the existing power-assisted lifting and supporting robotic arm device still needs further improvement. Summary of the Utility Model

[0006] The first technical problem to be solved by the present utility model is to provide a wearable assisted lifting robotic arm device that can effectively meet the needs of users for a larger pitch angle adjustment range in view of the current situation of the prior art.

[0007] The second technical problem to be solved by the present utility model is to provide a wearable assisted lifting robotic arm device that is convenient for disassembly and assembly between the robotic arm main body and the waist fixing component in view of the current situation of the prior art.

[0008] The technical solution adopted by the present utility model to solve the first technical problem is as follows:

[0009] A wearable assisted lifting robotic arm device, comprising:

[0010] A waist fixing component;

[0011] A robotic arm main body, which extends obliquely upward from back to front as a whole, the rear end of the robotic arm main body is connected to the above-mentioned waist fixing component, and the robotic arm main body is configured such that its front end can deflect relative to the rear end in the vertical direction to adjust the pitch angle;

[0012] The whole of the robotic arm main body is rotatably connected to the waist fixing component in a manner that can rotate relative to the waist fixing component about an axis extending horizontally and the position is adjustable.

[0013] In order to realize the rotational connection between the robotic arm main body and the waist fixing component, a rotation adjustment device is provided on the outer side wall of the waist fixing component, and the rotation adjustment device includes:

[0014] A mounting seat, which is fixed relative to the waist fixing component and has a placement chamber with an open front;

[0015] A movable seat, which is rotatably connected to the mounting seat through a second connecting shaft and covers the open front of the placement chamber. A positioning tooth disc is further provided on the side of the movable seat facing the mounting seat, and first positioning convex teeth are arranged in the circumferential direction centered on the second connecting shaft on the side wall of the positioning tooth disc. A first positioning recess is defined between two adjacent first positioning convex teeth;

[0016] A top column, which is movably arranged in the placement chamber along a direction parallel to the axis of the second connecting shaft, and the end of the top column can be inserted into the corresponding first positioning recess of the positioning tooth disc to limit the rotation of the movable seat relative to the mounting seat;

[0017] A first elastic member, which acts on the top column and makes the top column always have a tendency to move towards the movable seat;

[0018] The rear end of the robotic arm main body is connected to the movable seat.

[0019] In order to effectively support the main body of the supporting robotic arm and facilitate the user to lift the main body of the robotic arm upward for angle adjustment, the end of the top column has a convex arc surface structure, and the outer wall surface of each of the first positioning convex teeth that cooperates with the end of the top column is configured to only allow the movable seat to rotate upward relative to the mounting seat around the second connecting shaft.

[0020] In order to facilitate the user to also rotate the main body of the robotic arm downward for adjustment, the movable seat is movably connected to the mounting seat along the axial direction of the second connecting shaft;

[0021] It further includes a second elastic member, which acts on the movable seat and makes the movable seat always have a tendency to move toward the side where the mounting seat is located, and is configured as: when the movable seat is forced to move axially along the second connecting shaft away from the mounting seat to a set position, the first positioning convex teeth on the positioning tooth disc can be disengaged from the end of the top column, allowing the movable seat to rotate downward relative to the mounting seat around the second connecting shaft.

[0022] The technical solution adopted by the present utility model to solve the second technical problem is: the rear end of the main body of the robotic arm is detachably connected to the movable seat. In order to achieve the detachable connection between the main body of the robotic arm and the movable seat, the movable seat is provided with a vertically extending mounting groove with an opening at the top, the rear end of the main body of the robotic arm has an insertion block for inserting into the mounting groove, and the movable seat is further provided with a locking component for restricting the insertion block from being disengaged from the mounting groove.

[0023] In order to simplify the structure of the locking component, a through hole communicating with the bottom of the mounting groove is opened in the bottom area of the side wall of the movable seat, and the locking component includes:

[0024] A swing rod, rotatably connected to the movable seat, with two opposite end portions being a locking end and an actuating end respectively. The locking end extends to the position of the top opening of the mounting groove, and the actuating end extends to the position of the through hole. The swing rod has an unlocked state and a locked state as its rotational position changes:

[0025] When the swing rod is in the unlocked state, the actuating end of the swing rod passes through the through hole and extends into the mounting groove, and the locking end of the swing rod is away from the top opening of the mounting groove;

[0026] When the swing rod is in the locked state, the actuating end of the swing rod is pressed by the insertion block, causing the locking end of the swing rod to deflect to the top opening of the mounting groove to restrict the insertion block from being disengaged outward from the top opening of the mounting groove.

[0027] As an improvement, the latch assembly further includes a third elastic member, which acts on the swing rod and makes the locking end of the swing rod always tend to deflect away from the top opening side of the mounting groove. The arrangement of the above-mentioned third elastic member enables the locking end of the swing rod to automatically move away from the top opening of the mounting groove, facilitating the insertion block to be loaded into the mounting groove from the top opening during initial installation; in the state where the insertion block is installed in place, it can prevent the insertion block from suddenly moving upward and disengaging from the mounting groove during intense movement.

[0028] The above-mentioned third elastic member can adopt various existing technologies and can include various elastic elements such as compression springs, torsion springs, and reed pieces. However, in order to better cooperate with the above-mentioned swing rod, the third elastic member is a third spring. One end of the third spring abuts against the side wall of the movable seat, and the second end abuts against a section of the rod body of the swing rod between its rotation center relative to the movable seat and the locking end.

[0029] In order to improve the firmness of the mechanical wall device fixed to the user's waist, the waist fixing component is a chain belt component for surrounding the user's waist. The chain belt component includes chain belt sections that are sequentially connected and can rotate relative to each other around an axis extending vertically. The rotation adjustment device is fixed on the wall surface of the chain belt section facing the outside.

[0030] As an improvement, the robotic arm main body includes a support arm component and a support rod component that are sequentially connected in its length direction. The first end of the support arm component is connected to the waist fixing component, which constitutes the rear end of the robotic arm main body. The second end is connected to the support rod component. The support rod component is a four-bar linkage mechanism that extends obliquely forward and upward as a whole and has an adjustable pitching angle. The bottom end of the support rod component is connected to the second end of the support arm component. An auxiliary connecting rod is also provided between the second end of the support arm component and the upper part of the support rod component, which can make the support rod component maintain a corresponding angular state relative to the support arm component.

[0031] The above-mentioned auxiliary connecting rod can be a spring member or a rod whose length can be adjusted telescopically, as long as the auxiliary connecting rod can make the adjusting rod deflect at an angle relative to the support arm component and can maintain a corresponding angular state. In order to further facilitate the angle adjustment of the adjusting rod and be able to relatively stably maintain within the corresponding angular range, the auxiliary connecting rod is a tension spring or a damping rod (commonly known as: hydraulic strut, gas spring, hydraulic rod, support rod, gas strut upper flip telescopic rod or lift pneumatic rod). Preferably, the auxiliary connecting rod is a damping rod with adjustable length telescoping.

[0032] When the auxiliary connecting member is a tension spring, the two ends of the tension spring are respectively connected between the end of the support arm assembly and the upper part of the adjusting rod. In the use state, an obtuse angle is formed between the adjusting rod and the support arm assembly. Under the action of the tension spring, the top end of the adjusting rod has a tendency to deflect upward, so that the bracket assembly provided at the top end of the adjusting rod can provide an upward supporting force for the placed object. When the auxiliary connecting rod is a damping rod, the damping rod can be selected as a hydraulic damping rod or a pneumatic damping rod. In the use state, an obtuse angle is also formed between the adjusting rod and the support arm assembly. Under the action of the damping rod, the top end of the adjusting rod can be supported. The damping rod can be selected according to the weight of the supported object to ensure that sufficient supporting force can be provided.

[0033] Compared with the prior art, the advantages of the present utility model are as follows: For the robotic arm main body of this application, its own front end can deflect relative to the rear end in the up and down direction to adjust the pitching angle. On this basis, the whole of the robotic arm main body can also rotate relative to the waist fixing assembly around the horizontally extending axis. This dual-position angle adjustment method has a larger pitching angle adjustment range. The user can select the corresponding adjustment method according to actual needs, improving the user experience. BRIEF DESCRIPTION OF THE DRAWINGS

[0034] Figure 1 Schematic perspective view of the wearable assisted lifting robotic arm device according to an embodiment of the present utility model (state after the user wears it);

[0035] Figure 2 Schematic perspective view of the wearable assisted lifting robotic arm device according to an embodiment of the present utility model;

[0036] Figure 3 Another perspective schematic perspective view of the wearable assisted lifting robotic arm device according to an embodiment of the present utility model;

[0037] Figure 4 Schematic perspective view of the length adjustment assembly of the robotic arm device according to an embodiment of the present utility model;

[0038] Figure 5 Another perspective schematic perspective view of the length adjustment assembly of the robotic arm device according to an embodiment of the present utility model;

[0039] Figure 6 Exploded view of the length adjustment assembly of the robotic arm device according to an embodiment of the present utility model;

[0040] Figure 7 Cross-sectional view of the length adjustment assembly of the robotic arm device according to an embodiment of the present utility model (the operation knob is in the locked state);

[0041] Figure 8Cross-sectional view of the length adjustment component of the robotic arm device according to an embodiment of the present utility model (the operation knob is in the pulled-out and unlocked state);

[0042] Figure 9 Schematic three-dimensional structure diagram of the operation knob according to an embodiment of the present utility model;

[0043] Figure 10 Schematic three-dimensional structure diagram of the rotation adjustment device according to an embodiment of the present utility model;

[0044] Figure 11 Exploded view of the rotation adjustment device according to an embodiment of the present utility model;

[0045] Figure 12 Schematic three-dimensional structure diagram of the inner angle of the support arm assembly according to an embodiment of the present utility model;

[0046] Figure 13 Schematic three-dimensional structure diagram of the movable seat according to an embodiment of the present utility model;

[0047] Figure 14 Perspective sectional view of the rotation adjustment device according to an embodiment of the present utility model cut along the axial direction of the second connecting shaft;

[0048] Figure 15 Cross-sectional view of the rotation adjustment device according to an embodiment of the present utility model cut vertically at the installation groove of the movable seat;

[0049] Figure 16 Schematic three-dimensional structure diagram of the mounting seat of the rotation adjustment device according to an embodiment of the present utility model;

[0050] Figure 17 Schematic three-dimensional structure diagram of the inner angle of the chain belt assembly according to an embodiment of the present utility model;

[0051] Figure 18 Exploded view of the connection structure between the chain belt assembly and the support tray according to an embodiment of the present utility model;

[0052] Figure 19 Another angle exploded view of the connection structure between the chain belt assembly and the support tray according to an embodiment of the present utility model;

[0053] Figure 20 Schematic three-dimensional structure diagram of the winding and releasing device according to an embodiment of the present utility model;

[0054] Figure 21 Exploded view of the winding and releasing device according to an embodiment of the present utility model;

[0055] Figure 22 Vertical cross-sectional view of the winding and releasing device according to an embodiment of the present utility model cut along the axial direction of the first transmission shaft;

[0056] Figure 23 Schematic perspective view of the bracket assembly according to an embodiment of the present utility model;

[0057] Figure 24 Exploded view of the bracket assembly according to an embodiment of the present utility model;

[0058] Figure 25 Vertical sectional view of the bracket assembly according to an embodiment of the present utility model, taken along the axial direction of the connecting shaft. Detailed implementation manners

[0059] The present utility model will be further described in detail below in conjunction with the embodiments with reference to the drawings.

[0060] In the description and claims of the present utility model, terms indicating directions, such as "front", "rear", "upper", "lower", "left", "right", "side", "top", "bottom", etc., are used to describe various exemplary structural parts and elements of the present utility model. However, these terms are used herein only for the purpose of convenience of description and are determined based on the exemplary orientations shown in the drawings. Since the embodiments disclosed by the present utility model can be arranged in different directions, these terms indicating directions are only for illustration and should not be regarded as limitations. For example, "upper" and "lower" are not necessarily limited to the directions opposite to or consistent with the direction of gravity.

[0061] Figures 1 - 25 A preferred embodiment of the wearable power-assisted lifting robotic arm device of the present utility model is shown. The wearable power-assisted lifting robotic arm device includes a waist fixing assembly, a robotic arm main body 3, a pulling rope 40, a winding and releasing device 4 of the pulling rope 40, and a rotation adjustment device 13 for adjusting the installation angle of the robotic arm main body 3 relative to the waist fixing assembly. A support tray 14 is further provided inside the waist fixing assembly.

[0062] See Figure 2 and Figure 3 , the waist fixing assembly includes a chain belt assembly 10, and the chain belt assembly 10 includes a chain belt part 11 and a restraint belt part 12. The chain belt part 11 is non-closed, specifically a bendable and movable chain belt with an opening at the front side. The restraint belt part 12 connects the two ends of the length of the chain belt part 11, thereby forming a closed loop chain belt. The restraint belt part 12 can adopt a belt with a quick-release buckle, a nylon webbing, etc.

[0063] The chain belt assembly 10 includes chain belt links 110 that are connected in sequence and can rotate relative to each other about an axis extending vertically. Specifically, the chain belt link 110 is generally plate-shaped and can be slightly curved to adapt to the waist curve contour of the user. The side parts of two adjacent chain belt links 110 are rotatably connected by a vertically extending pin shaft.

[0064] Combined with Figures 2 - 9, in order to adapt to users of different body types, the length of the chain belt portion 11 of the chain belt assembly 10 in this embodiment is adjustable. Specifically, the two chain belt joints 110 corresponding to the rear side of the user's waist on the chain belt portion 11 are connected by a length adjustment assembly 20, and the distance between the two chain belt joints 110 is adjusted by the length adjustment assembly 20.

[0065] The two chain belt joints 110 connected by the above length adjustment assembly 20 are respectively denoted as the first chain belt joint 1101 and the second chain belt joint 1102. The length adjustment assembly 20 includes a connecting plate 21, a sliding frame 22, a transmission gear 23, a knob assembly, a fourth elastic member 64, and a locking member.

[0066] The connecting plate 21 is a strip-shaped plate extending along the length direction of the chain belt portion 11. One end of it is rotatably connected to the end of the first chain belt joint 1101 through a vertically extending pin shaft. The bottom of the connecting plate 21 has a strip-shaped tooth portion 210 arranged along its length direction. The sliding frame 22 is also rotatably connected to the end of the second chain belt joint 1102 through a vertically extending pin shaft. It has a slideway 220 with an opening on the side for the connecting plate 21 to slide and be limited therein along the length direction of the connecting plate 21. Among them, it is located outside the connection position between the sliding frame 22 and the second chain belt joint 1102. In this way, the part of the connecting plate 21 exposed through the slideway 220 of the sliding frame 22 is also located outside the chain belt portion 11, and there will be no interference problem. Among them, the length of the sliding frame 22 does not have to be set too large, so as to maximize the length adjustment stroke between two adjacent chain belt joints 110.

[0067] A transmission gear 23 is also provided on the sliding carriage 22 and is in driving cooperation with the strip-shaped tooth portion 210 of the connecting plate 21. Specifically, the sliding carriage 22 has an installation cavity for accommodating the transmission gear 23 corresponding to the lower part of the slideway 220. The installation cavity communicates with the upper slideway 220 and is open on the outside. The knob assembly includes an operating knob 25 which is rotatably arranged on the sliding carriage 22 and is correspondingly fitted at the outside opening of the above installation cavity. More specifically, a horizontally extending first connecting shaft 24 is provided on the sliding carriage 22. The first connecting shaft 24 is substantially perpendicular to the sliding carriage 22 and corresponds to the above installation cavity. The operating knob 25 and the transmission gear 23 are rotatably sleeved on the first connecting shaft 24. Among them, the operating knob 25 is located outside the transmission gear 23 and can slide axially along the first connecting shaft 24. In order to limit the axial movement of the transmission gear 23 on the first connecting shaft 24, a limiting disc 26 is further provided at the front opening of the installation cavity of the sliding carriage 22. The middle of the limiting disc 26 is provided with an opening through which the first connecting shaft 24 and the transmission shaft sleeve 253 extending inwardly from the inside of the operating knob 25 can pass. The limiting disc 26 can be connected to the sliding carriage 22 through fasteners such as screws. During installation, the transmission gear 23 can be first placed into the installation cavity, and then the limiting disc 26 can be installed to limit the axial movement of the transmission gear 23.

[0068] The transmission shaft sleeve 253 on the inner side of the operating knob 25 can be sleeved with the transmission gear 23. The cross-section of the outer peripheral wall of the transmission shaft sleeve 253 is non-circular, and a regular hexagon can be specifically adopted, so that the transmission gear 23 can be driven to rotate when rotated.

[0069] One side of the limit disk 26 facing the operation knob 25 is provided with a plurality of second positioning recesses 260 arranged in a circumferential direction centered on the axis of the first connecting shaft 24. And on the side of the operation knob 25 facing the limit disk 26, there are second positioning convex teeth 252 protruding outward. Specifically, the number of the second positioning convex teeth 252 on the operation knob 25 is the same as the number of the second positioning recesses 260, and they are also arranged in sequence along the circumferential direction centered on the axis of the first connecting shaft 24. When the operation knob 25 approaches the limit disk 26 along the axial direction of the first connecting shaft 24, each of the second positioning convex teeth 252 on the operation knob 25 can be correspondingly engaged into each of the second positioning recesses 260 of the limit disk 26, so as to restrict the operation knob 25 from rotating in the circumferential direction; when the operation knob 25 moves away from the limit disk 26 along the axial direction of the first connecting shaft 24, each of the second positioning convex teeth 252 on the operation knob 25 can be correspondingly disengaged from each of the second positioning recesses 260 of the limit disk 26, so as to release the restriction on the operation knob 25 in the circumferential direction and allow the operation knob 25 to rotate forward and backward. Among them, after the limit disk 26 releases the circumferential limit on the operation knob 25, the transmission shaft sleeve 253 of the operation knob 25 still cooperates with the transmission gear 23, and rotating the operation knob 25 can drive the transmission gear 23 to rotate, thereby driving the connecting plate 21 to move.

[0070] The operation knob 25 has a shaft hole 250 for the first connecting shaft 24 to pass through. The inner wall of the shaft hole 250 has a stepped portion 251 with a larger outer side and a smaller inner side. The outer end portion of the first connecting shaft 24 has a first limiting stop portion 240 extending radially outward. The fourth elastic member 64 in this embodiment can adopt a fourth spring. The fourth spring is sleeved outside the first connecting shaft 24, and its two end portions respectively abut against the stepped portion 251 of the shaft hole 250 of the operation knob 25 and the first limiting stop portion 240 of the first connecting shaft 24. Under the elastic force of the fourth spring, the operation knob 25 always has a tendency to move toward the side where the limit disk 26 is located. When it is necessary to adjust the length of the chain belt portion 11, the operation knob 25 can be pulled outward, so that the second positioning convex teeth 252 of the operation knob 25 are disengaged from the second positioning recesses 260 of the limit disk 26, releasing the circumferential restriction of the limit disk 26 on the operation knob 25. Then rotate the operation knob 25 to drive the transmission gear 23 to rotate, and further drive the connecting plate 21 to move along its length direction to adjust the distance between the first chain belt section 1101 and the second chain belt section 1102. After the adjustment is in place, release the operation knob 25, and the operation knob 25 will move toward the side where the limit disk 26 is located under the elastic force of the fourth spring until the second positioning convex teeth 252 on the operation knob 25 are engaged into the second positioning recesses 260 of the limit disk 26. At this point, the limit disk 26 limits the operation knob 25 in the circumferential direction, and the operation knob 25 cannot rotate, and the distance between the first chain belt section 1101 and the second chain belt section 1102 cannot be adjusted.

[0071] See Figures 17 - 19 , the support pallet 14 is installed inside the chain belt part 11 of the chain belt assembly 10, and its distance from the chain belt assembly 10 is adjustable in the inner and outer directions. Generally speaking, the position adjustment of the support pallet 14 relative to the chain belt assembly 10 can be a linear movement of the support pallet 14 as a whole relative to the chain belt assembly 10, or an angular deflection of the support pallet 14 as a whole relative to the chain belt assembly 10, or both. In a preferred embodiment, the support pallet 14 extends vertically as a whole, and its bottom has a bent arm 142 extending outward. The bent arm 142 is rotatably connected to the bottom of the chain belt assembly 10 through a horizontally extending pin shaft. An adjusting screw rod 15 is connected to the upper part of the support pallet 14 and extends outward and passes through and is connected to the chain link 110 of the chain belt assembly 10. The inner end of the adjusting screw rod 15 is rotatably connected to the support pallet 14, and the outer end of the adjusting screw rod 15 extends out of the chain belt assembly 10 and serves as an operating part 151 for the user to rotate the adjusting screw rod 15.

[0072] Since the support pallet 14 deflects with its bottom end as the rotation center, in order to avoid interference between the support pallet 14 and the adjusting screw rod 15 during the rotation of the support pallet 14, a movable ball head 114 is provided inside the chain link 110 of the chain belt assembly 10. The above-mentioned adjusting screw rod 15 passes through the movable ball head 114 and is threadedly connected to the movable ball head 114. Moreover, the adjusting screw rod 15 is adapted to adopt a connection structure that can swing relative to the support pallet 14. Specifically, the inner end of the adjusting screw rod is a ball head structure 152, and a ball socket structure for limiting the movement of the ball head is defined on the support pallet 14. In order to facilitate the assembly of the adjusting screw rod 15 with the ball head structure 152 and the support pallet 14, the back of the support pallet 14 has a concave spherical concave area 140 and a connecting cover 141 covering the opening of the spherical concave area 140. Specifically, the connecting cover 141 can be connected to the back of the support pallet 14 through fasteners such as screws. The connecting cover 141 has an opening for the main body of the adjusting screw rod to pass through, and the connecting cover 141 and the spherical concave area 140 on the support pallet 14 jointly define a ball socket structure for placing the ball head of the adjusting screw rod 15.

[0073] The operating part 151 on the adjusting screw rod 15 protrudes outward relative to the main body of the adjusting screw rod 15. A sixth spring 66 is also sleeved on the adjusting screw rod 15. The sixth spring 66 abuts between the operating part 151 and the outer side wall of the chain link 110, playing a role in preventing loosening.

[0074] The chain belt portion 11 of the chain belt assembly 10 in this embodiment includes a left chain belt portion 111 corresponding to the left side of the user's waist, a right chain belt portion 112 corresponding to the right side of the user's waist, and a rear chain belt portion corresponding to the rear side of the user's waist. Among them, the above-mentioned length adjustment assembly 20 is provided on the rear chain belt portion. Two support pallets 14 are provided on the inner sides of the left chain belt portion 111 and the right chain belt portion 112 of the chain belt assembly 10. In order to better adapt to the waist contour curve of the user, ensure that the support pallet 14 fits the user's waist, and improve the user's wearing comfort, the inner side surface of the support pallet 14 is a concave curved surface that gradually inclines inward from the middle to the left and right sides.

[0075] The waist fixing assembly for fixing the robotic arm device to the user's waist adopts the chain belt assembly 10. The inner side of the chain belt assembly 10 is provided with a support pallet 14, where the support pallet 14 is used to support the user's waist in cooperation and can move inward and outward relative to the chain belt assembly 10 to adjust the position, so as to better fit and firmly support the user's waist, ensuring the stability of the user when wearing the robotic arm device and improving the user's experience.

[0076] Continue to refer to Figure 2 and Figure 3 , the robotic arm main body 3 of this embodiment extends forward and upward as a whole. That is, the rear end of the robotic arm main body 3 is connected to the chain belt portion 11 of the waist fixing assembly, and the front end can deflect relative to the rear end in the up and down directions to adjust the pitching angle. Specifically, the robotic arm main body 3 includes an arm assembly 31 and a support rod assembly 32 that are sequentially connected in its length direction. The first end of the arm assembly 31 is connected to the waist fixing assembly, that is, it constitutes the rear end of the robotic arm main body 3, and the second end is connected to the support rod assembly 32. The support rod assembly 32 is a four-bar linkage that extends obliquely forward and upward as a whole and has an adjustable pitching angle. The bottom end of the support rod assembly 32 is connected to the second end of the arm assembly 31.

[0077] The arm assembly 31 includes arm segments 311 that are sequentially rotatably connected in its length direction. Adjacent two arm segments 311 are rotatably connected by a pin shaft extending vertically. Thus, the arm assembly 31 can swing in a plane perpendicular to the above-mentioned pin shaft, that is, it can swing to the left or right. The arm segment 311 at one end is connected to the link portion through a rotation adjustment device 13, and the arm segment 311 at the other end is fixedly connected to the first connection seat 323 of the support rod assembly 32.

[0078] The support rod assembly 32 includes a first adjusting rod 321, a second adjusting rod 322, a first connecting seat 323, and a second connecting seat 324. The first adjusting rod 321 and the second adjusting rod 322 are arranged in parallel. The lower ends of the first adjusting rod 321 and the second adjusting rod 322 are both hinged to the first connecting seat 323, and the upper ends of the first adjusting rod 321 and the second adjusting rod 322 are both hinged to the second connecting seat 324. The rotation axes between the first adjusting rod 321, the second adjusting rod 322 and the first connecting seat 323, and the rotation axes between the first adjusting rod 321, the second adjusting rod 322 and the second connecting seat 324 are parallel and both extend in the horizontal direction. Thus, the above-mentioned first adjusting rod 321, second adjusting rod 322, first connecting seat 323, and second connecting seat 324 form a four-bar linkage that can move in a vertical plane. Among them, in order to adapt to users of different heights, both the first adjusting rod 321 and the second adjusting rod 322 are telescopic rods with adjustable lengths.

[0079] An auxiliary connecting rod 325 is also provided between the second end of the arm assembly 31 and the upper part of the support rod assembly 32, and the auxiliary connecting rod 325 can keep the support rod assembly 32 in a corresponding angular state relative to the arm assembly 31. The lower end of the auxiliary connecting rod 325 is rotatably connected to the first connecting seat 323, and the upper end is rotatably connected to the second connecting seat 324, the first adjusting rod 321, or the second adjusting rod 322. As Figure 2 shown, the upper end of the auxiliary connecting rod 325 is rotatably connected to the upper part of the second adjusting rod 322. The rotation axis of the auxiliary connecting rod 325 relative to the first connecting seat 323 and the second adjusting plate is parallel to the rotation axis of the four-bar linkage. The auxiliary connecting rod 325 is a damping rod with adjustable length. The damping rod can be selected as a hydraulic damping rod or a pneumatic damping rod. In the use state, the adjusting rod and the arm assembly 31 also form an obtuse angle. Under the action of the damping rod, the top of the adjusting rod can be supported. The damping rod can be selected according to the weight of the supported object to ensure that sufficient supporting force can be provided.

[0080] See Figures 10 - 16 , in order to enable the robotic arm main body 3 to have a larger pitch angle adjustment range relative to the waist fixing assembly, the whole of the robotic arm main body 3 is rotatably connected to the waist fixing assembly in a manner that can rotate around an axis extending horizontally relative to the waist fixing assembly and the position is adjustable. Specifically, a rotation adjustment device 13 is provided on the outer side wall of the waist fixing assembly, and the rear end of the arm component of the robotic arm main body 3 is detachably connected to the rotation adjustment device 13.

[0081] The rotation adjustment device 13 includes a mounting seat 131, a movable seat 132, a top column 1311, a first elastic member 61, a second elastic member 62, and a lock assembly.

[0082] The mounting base 131 is fixed relative to the link belt section 110 of the link belt assembly 10. Specifically, it can be connected to the link belt section 110 through fasteners such as screws or integrally designed with the link belt section 110. The mounting base 131 has a placement chamber 1310 that is open at the front. The movable base 132 is rotatably connected to the mounting base 131 through the second connecting shaft 135 and covers the front opening of the placement chamber 1310. The above-mentioned second connecting shaft 135 is perpendicular to the above-mentioned link belt section 110 and penetrates through the link belt section 110 and the placement chamber 1310 of the mounting base 131 from the inside to the outside and then is threadedly connected to the movable base 132. The second connecting shaft 135 is not fixed to the link belt section 110 and the mounting base 131, but can axially move relative to the link belt section 110 and the mounting base 131, that is, the movable base 132 can also approach or move away from the mounting base 131 along the axial direction of the second connecting shaft 135.

[0083] The second connecting shaft 135 can be a stepped screw with threads at the end. In this embodiment, the second elastic member 62 is preferably a second spring. The second spring is sleeved on the second connecting shaft 135. One end of the second spring abuts against the head of the second connecting shaft 135 that protrudes radially outward at the inner end, and the other end abuts against the mounting base 131. Under the elastic force of the second spring, the second connecting shaft 135 and the movable base 132 always have a tendency to move towards the side where the mounting base 131 is located.

[0084] The extending direction of the ejector pin 1311 is parallel to the axis of the second connecting shaft 135. The ejector pin 1311 is movably arranged in the mounting chamber along the direction parallel to the axis of the second connecting shaft 135. Specifically, a guide sleeve 1312 is provided in the placement chamber of the mounting base 131. The ejector pin 1311 is movably arranged in the guide sleeve 1312 and can protrude from the end of the guide sleeve 1312. The ejector pin 1311 has a limiting pin shaft 1313 that penetrates transversely. Limiting sliding grooves 13120 are formed on two opposite side walls of the guide sleeve 1312. The two end portions of the limiting pin shaft 1313 are slidably limited in the two limiting sliding grooves 13120. The lengths of the two limiting sliding grooves 13120 define the stroke of the ejector pin 1311 moving along the axial direction of the second connecting shaft 135. The first elastic member 61 is arranged in the guide sleeve 1312 and abuts against the inner end of the ejector pin 1311, so that the ejector pin 1311 always has a tendency to move outward (that is, move towards the side where the movable base 132 is located).

[0085] Adapted to the above-mentioned axially movable top column 1311, a positioning tooth disc 134 is further provided on one side of the movable seat 132 facing the mounting seat 131. On the side wall of the positioning tooth disc 134, first positioning convex teeth 1341 are arranged in sequence in the circumferential direction centered on the second connecting shaft 135. A first positioning recess 1340 is defined between two adjacent first positioning convex teeth 1341. The end of the top column 1311 can be inserted into the corresponding first positioning recess 1340 of the positioning tooth disc 134 to limit the rotation of the movable seat 132 relative to the mounting seat 131.

[0086] The end of the top column 1311 has a convex arc surface structure. The outer wall surfaces of the first positioning convex teeth 1341 on the positioning tooth disc 134 that cooperate with the end of the top column 1311 include a guiding inclined surface 13411 and a retaining curved surface 13412 arranged in sequence along the circumference. The guiding inclined surface 13411 is a convex curved surface, while the retaining curved surface 13412 is a concave curved surface. The two meet at the top of the convex tooth, so that the first positioning convex tooth 1341 forms a one-way tooth. The structure in which the above-mentioned top column 1311 cooperates with the one-way tooth of the positioning tooth disc 134 only allows the movable seat 132 to rotate upward relative to the mounting seat 131 around the second connecting shaft 135, so as to effectively support the main body 3 of the support robotic arm and facilitate the user to lift the main body 3 of the robotic arm upward for angle adjustment.

[0087] The length of the above-mentioned second connecting shaft 135 and the second elastic member 62 can be selected according to actual needs. When it is necessary to adjust the angle of the main body 3 of the robotic arm downward relative to the waist fixing assembly, the user can pull the movable seat 132 outward, so that the first positioning convex tooth 1341 on the positioning tooth disc 134 is disengaged from the end of the top column 1311 to release the limit, and then the movable seat 132 is allowed to rotate downward relative to the mounting seat 131 around the second connecting shaft 135. When adjusted to the required inclination angle, the movable seat 132 is released, and the movable seat 132 will move inward under the action of the second elastic member 62, so that the first positioning recess 1340 on the positioning tooth disc 134 is re-engaged with the end of the top column 1311 for limit cooperation to form an upward support for the main body 3 of the robotic arm.

[0088] In this embodiment, the movable seat 132 is further provided with a vertically extending mounting groove 1320 with an opening at the top. A relief notch is also opened on the outer side wall of the movable seat 132, which communicates with the mounting groove 1320 and extends to the top opening of the mounting groove 1320. A through hole 1321 communicating with the bottom of the mounting groove 1320 is also opened in the bottom area of the side wall of the movable seat 132. On the side wall of the arm section 311 of the arm assembly 31 of the main body 3 of the robotic arm facing the movable seat 132, there is an insertion block 310 for inserting into the mounting groove 1320.

[0089] The movable seat 132 is also provided with a lock assembly for limiting the insertion block 310 from being disengaged from the mounting groove 1320. Specifically, the lock assembly includes a swing rod 133 and a third elastic member 63. The swing rod 133 is rotatably connected to the movable seat 132 at an approximately middle position through a pin shaft, wherein the extension direction of the pin shaft is substantially consistent with the extension direction of the second connecting shaft 135. The swing rod 133 extends roughly in the vertical direction, and its length is slightly larger than the upper and lower dimensions of the mounting groove 1320. Both opposite ends in the length direction have bent hooks bent toward the side where the mounting groove 1320 is located, and the two bent hooks serve as a locking end 1331 and an actuating end 1332, respectively. The locking end 1331 extends to the position where the top opening of the mounting groove 1320 is located, and the actuating end 1332 extends to the position where the through-hole 1321 is located. Specifically, the swing lever 133 has an unlocked state and a locked state as its rotation position changes. When the swing lever 133 is in the unlocked state, the actuating end 1332 of the swing lever 133 passes through the through hole 1321 and extends into the mounting groove 1320, and the locking end 1331 of the swing lever 133 is away from the top opening of the mounting groove 1320. In this state, the plug block 310 on the arm assembly 31 can be conveniently inserted from top to bottom into the mounting groove 1320. After the plug block 310 is inserted into place, the actuating end 1332 of the swing lever 133 is pressed down by the plug block 310 to rotate the swing lever 133, and the locking end 1331 of the swing lever 133 will deflect to the top opening of the mounting groove 1320 to limit the plug block 310 from escaping out of the top opening of the mounting groove 1320. This state is the locked state of the swing lever 133.

[0090] See also Figure 15 The lock assembly also includes a third elastic member 63, which is a third spring, which is against the side wall of the swing rod 133 and the movable seat 132. Under the elastic force of the third spring, the locking end 1331 of the swing rod 133 always has a tendency to deflect toward the side away from the top opening of the installation slot 1320, that is, the locking end 1331 of the swing rod 133 can automatically move away from the top opening of the installation slot 1320, so as to facilitate the initial installation of the plug block 310 from the top opening into the installation slot 1320; when the plug block 310 is installed in place, it can prevent the plug block 310 from suddenly moving up and falling out of the installation slot 1320 during violent movement. Figure 15 One end of the third spring abuts against the side wall of the movable seat 132, and the second end abuts against a section of the rod body on the swing rod 133 located between the rotation center relative to the movable seat 132 and the locking end 1331, and a positioning groove for accommodating the end of the third spring is provided on the side wall of the movable seat 132 and the swing rod 133.

[0091] The front end of the robot arm main body 3 of this embodiment can deflect relative to the rear end in the up-and-down direction to adjust the pitching angle. On this basis, the whole of the robot arm main body 3 can also rotate relative to the chain belt assembly 10 around the horizontally extending axis. This dual-position angle adjustment method has a larger pitching angle adjustment range, and users can select the corresponding adjustment method according to actual needs, improving the user experience.

[0092] See Figures 23 - 25 , the bracket assembly 5 is connected to the second connection seat 324 of the support rod assembly 32 of the robot arm main body 3. The bracket assembly 5 includes a support frame 50 for connecting to the second connection seat 324 and a bracket 53 detachably connected to the support frame 50.

[0093] The support frame 50 includes a first support frame 51 and a second support frame 52. Among them, the first support frame 51 is vertically arranged, and the second support frame 52 is horizontally arranged. The bottom of the first support frame 51 is connected to the second connection seat 324, one end of the second support frame 52 is connected to the upper end of the first support frame 51, and the bracket assembly 5 is connected to the other end of the second support frame 52. Specifically, the bottom end of the first support frame 51 is rotatably connected to the front end of the robot arm main body 3 through a first rotating sleeve, the second support frame 52 is rotatably connected to the top end of the first support frame 51 through a second rotating sleeve, the axis of the first rotating sleeve is perpendicular to the axis of the second rotating sleeve, and the bracket 53 is connected to the second support frame 52, which can facilitate the angle adjustment of the items placed on the bracket assembly 5 in the up-and-down and left-and-right directions.

[0094] The second support bracket 52 is provided with a connecting column 521 extending outward (preferably upward), and a radially concave annular groove 5210 is formed on the outer peripheral wall of the connecting column 521 as the third positioning recess. The bracket 53 includes a bracket 53 body, a connecting sleeve 54 connected to the bracket 53 body, a fifth elastic member 65, a ball 542, and an operating sleeve 55. The connecting sleeve 54 has an installation channel 540 for the connecting column 521 to extend into it and a positioning hole 541 penetrating from its outer peripheral wall to the installation channel 540. At least two, preferably three, positioning holes 541 are provided at intervals along the circumferential direction of the connecting sleeve 54. The number of balls 542 is the same as the number of positioning holes 541 on the connecting sleeve 54. The positioning holes 541 on the connecting sleeve 54 are tapered holes with a larger inner side and a smaller outer side. In this way, only part of the balls 542 can be exposed outside the outer side wall of the connecting sleeve 54 through the positioning holes 541 and will not completely escape from the positioning holes 541. Specifically, each ball 542 is movably arranged in the corresponding positioning hole 541 along the radial direction of the connecting sleeve 54, and can move inward to be engaged with the third positioning recess of the connecting column 521 and can move outward to escape from the third positioning recess. After each ball 542 is engaged with the third positioning recess of the connecting column 521, the connecting sleeve 54 and the connecting column 521 can be axially limited to achieve the locking purpose.

[0095] The operating sleeve 55 is sleeved outside the connecting sleeve 54 and can axially move relative to the connecting sleeve 54. The operating sleeve 55 has a first port 551 adjacent to the bracket body and a second port 552 away from the bracket body. The inner peripheral wall of the operating sleeve 55 is provided with a conical surface structure 553 near its second port 552, and the diameter of the conical surface structure 553 gradually decreases from bottom to top (that is, in the direction from its second port to the first port position). The operating sleeve 55 has a locked state and an unlocked state with the change of its axial position. Among them, when the operating sleeve 55 is forced (overcoming the elastic force of the fifth spring) to move upward to a set position, the conical surface structure 553 of the operating sleeve 55 is relatively disengaged from pressing the balls 542 radially, so that each ball 542 can escape from the corresponding third positioning recess to achieve unlocking. When the operating sleeve 55 is forced (overcoming the elastic force of the fifth spring) to move downward to a set position, the inner wall (the diameter is smaller than the minimum inner diameter of the conical surface structure 553) of the main body part of the operating sleeve 55 faces the balls 542 and presses the balls 542 radially, so that each ball 542 is engaged with the corresponding third positioning recess on the connecting column 521 to achieve locking.

[0096] The inner peripheral wall of the operating sleeve 55 is provided with a second limiting stop 550 extending radially inward. The connecting sleeve 54 includes a small-diameter section 543 adjacent to the main body of the bracket 53 and a large-diameter section 544 away from the main body of the bracket 53. Wherein, a limiting step 545 is correspondingly formed on the outer peripheral wall of the connecting sleeve 54 at the position where the small-diameter section 543 and the large-diameter section 544 are connected. The second limiting stop 550 of the operating sleeve 55 abuts against the limiting step 545. A fifth elastic member 65 is further provided in the operating sleeve 55. The fifth elastic member 65 is preferably a fifth spring. The first end of the fifth spring abuts against the second limiting stop 550 of the operating sleeve 55, and the second end abuts against the main body of the bracket 53. Under the elastic force of the fifth spring, the operating sleeve 55 always has a tendency to move from the position where it is in the unlocked state towards the position where it is in the locked state. In this way, when the operating sleeve 55 is not subject to external force, it can automatically rebound and move to the locked position.

[0097] Each positioning hole 541 is formed on the large-diameter section 544 of the connecting sleeve 54. Corresponding to the above-mentioned connecting sleeve 54, the connecting column 521 is also a stepped column structure with a smaller upper part and a larger lower part.

[0098] The bracket 53 of the bracket assembly 5 can be a bracket structure that can only play a supporting role, or a resilient bracket structure that can clamp the item to be placed.

[0099] The robotic arm device of this embodiment also provides upward support for the robotic arm main body 3 through a pull rope 40. Specifically, a winding and releasing device 4 for winding the pull rope 40 is further provided on the outer side of the chain belt part 11 of the waist fixing assembly. The pull rope 40 is wound around the winding and releasing device 4, and the free end bypasses above the user's shoulder and is connected to the robotic arm main body 3.

[0100] In order to improve the service life and ensure the support strength, the pull rope 40 is preferably made of steel wire rope.

[0101] The winding and releasing device 4 includes a fixed seat 41, a winch 42, a first transmission shaft 43, and a coil spring 44.

[0102] The fixed seat 41 can be connected to the outer side wall of the chain link 110 of the chain belt part 11 through fasteners such as screws. Specifically, in order to facilitate the positioning between the fixed seat 41 and the chain link 110, the outer wall surface of the chain link 110 for connecting the fixed seat 41 has an inwardly recessed annular positioning sink 113, and the side wall of the fixed seat 41 has a positioning convex ring 415 extending outward and capable of being inserted into the annular positioning sink 113. A first installation chamber 411 for accommodating the winch 42 and a second installation chamber 412 for accommodating the coil spring 44 are defined on the fixed seat 41. The first transmission shaft 43 is rotatably connected to two opposite side walls of the first installation chamber 411, and one end thereof extends into the second installation chamber 412 as a connection end 430 for installing the coil spring 44. The winch 42 is sleeved on the above-mentioned first transmission shaft 43 and can rotate with the first transmission shaft 43. The pull rope 40 is wound around the winch 42, and when the winch 42 rotates forward and backward with the first transmission shaft 43, the pull rope 40 can be tightened and released.

[0103] One end (specifically, the inner end) of the coil spring 44 is connected to the first transmission shaft 43, and the other end (i.e., the outer end) is connected to the fixed seat 41. The inner end of the coil spring 44 has a first bending portion 441, and the outer end of the coil spring 44 has a second bending portion 442. A first slot 431 for the first bending portion 441 to be snapped into is formed on the connection end 430 of the first transmission shaft 43, and a second slot 413 for the second bending portion 442 to be snapped into is formed on the wall of the second installation chamber 412. When the pull rope 40 is released under the action of an external force, such as applying a downward force to the article placed on the bracket assembly 5, the winch 42 rotates, and the power is transmitted to the coil spring 44 through the above-mentioned first transmission shaft 43. The inner end of the coil spring 44 rotates and accumulates potential energy. When the downward force applied to the article placed on the bracket assembly 5 is released or reduced, the coil spring 44 drives the first transmission shaft 43 and the winch 42 to rotate in the reverse direction, and the pull rope 40 is wound up. The design of the coil spring 44 enables the pull rope 40 to be automatically wound up and released. Even during use, when the robotic arm main body 3 floats slightly up and down, the pull rope 40 will not have the problem of natural bending, improving the user experience.

[0104] In order to facilitate the installation of the coil spring 44 and subsequent maintenance and replacement operations, an installation opening is formed on one side of the second installation chamber 412 away from the first installation chamber 411. A detachable cover 414 is provided at the installation opening. The cover 414 can be connected to the main body of the fixed seat 41 through fasteners such as screws and covers the above-mentioned installation opening.

Claims

1. A wearable power-assisted lifting mechanical arm device, comprising: Waist fixation assembly; The mechanical arm body (3) extends obliquely upward from the rear to the front as a whole, the rear end of the mechanical arm body (3) is connected to the waist fixing assembly, and the mechanical arm body (3) is configured so that its front end can be deflected in the up-down direction relative to the rear end to adjust the pitch angle; The feature of the invention is that the mechanical arm body (3) is rotatably connected to the waist fixing assembly as a whole so as to be rotatable relative to the waist fixing assembly around a horizontally extending axis and in a positionally adjustable manner.

2. The wearable power-assisted lifting mechanical arm device according to claim 1, characterized in that: A rotation adjustment device (13) is provided on the outer side wall of the waist fixing assembly, and the rotation adjustment device (13) comprises: A mounting seat (131), fixed relative to the waist fixing assembly, having a placement chamber (1310) with an open front; A movable seat (132) is rotatably connected to the mounting seat (131) via a second connecting shaft (135) and covers the front opening of the placement chamber (1310). A positioning toothed disc (134) is also provided on the side of the movable seat (132) facing the mounting seat (131). The side wall of the positioning toothed disc (134) has first positioning protruding teeth (1341) arranged in sequence in a circumferential direction with the second connecting shaft (135) as the center. A first positioning recess (1340) is defined between two adjacent first positioning protruding teeth (1341). A top column (1311) is movably disposed in the placement chamber in a direction parallel to the axis of the second connecting shaft (135), and an end of the top column (1311) can be inserted into a corresponding first positioning recess (1340) of the positioning toothed disc (134) to limit the rotation of the movable seat (132) relative to the mounting seat (131); A first elastic member (61) acts on the top column (1311) and causes the top column (1311) to always have a tendency to move toward the movable seat (132); The rear end of the mechanical arm body (3) is connected to the movable seat (132).

3. The wearable power-assisted lifting mechanical arm device according to claim 2, characterized in that: The end of the top column (1311) has an outwardly convex arc surface structure, and the outer wall surface on each of the first positioning protruding teeth (1341) that cooperates with the end of the top column (1311) is configured to only allow the movable seat (132) to rotate upward relative to the mounting seat (131) around the second connecting axis (135).

4. The wearable power-assisted lifting mechanical arm device according to claim 3 is characterized in that: The movable seat (132) can be movably connected to the mounting seat (131) along the axial direction of the second connecting shaft (135); It also includes a second elastic member (62), which acts on the movable seat (132) and makes the movable seat (132) always have a tendency to move toward the side where the mounting seat (131) is located, and is configured as follows: when the movable seat (132) moves to a set position along the axial direction of the second connecting shaft (135) toward the side away from the mounting seat (131) under the action of external force, the first positioning protruding tooth (1341) on the positioning toothed disk (134) can release the limit from the end of the top column (1311), allowing the movable seat (132) to rotate downward around the second connecting shaft (135) relative to the mounting seat (131).

5. The wearable power-assisted lifting mechanical arm device according to claim 2, characterized in that: The movable seat (132) is provided with a mounting groove (1320) extending vertically and opening at the top, the rear end of the robot arm body (3) is provided with an insert block (310) for inserting into the mounting groove (1320), and the movable seat (132) is also provided with a locking assembly for limiting the insert block (310) from escaping from the mounting groove (1320).

6. The wearable power-assisted lifting mechanical arm device according to claim 5, characterized in that: A through opening (1321) which is in communication with the bottom of the mounting groove (1320) is provided in the bottom area of ​​the side wall of the movable seat (132), and the locking assembly comprises: The swing rod (133) is rotatably connected to the movable seat (132), and its two opposite ends are respectively a locking end (1331) and an actuating end (1332). The locking end (1331) extends to the position where the top opening of the mounting groove (1320) is located, and the actuating end (1332) extends to the position where the through hole (1321) is located. The swing rod (133) has an unlocked state and a locked state as its rotational position changes: When the swing lever (133) is in an unlocked state, the actuating end (1332) of the swing lever (133) passes through the through opening (1321) and extends into the mounting groove (1320), and the locking end (1331) of the swing lever (133) is away from the top opening of the mounting groove (1320); When the swing rod (133) is in a locked state, the actuating end (1332) of the swing rod (133) is pressed downward by the insert block (310), causing the locking end (1331) of the swing rod (133) to deflect to the top opening of the mounting groove (1320), thereby limiting the insert block (310) from escaping outward from the top opening of the mounting groove (1320).

7. The wearable power-assisted lifting mechanical arm device according to claim 6, characterized in that: The locking assembly also includes a third elastic member (63), which acts on the swing rod (133) and causes the locking end (1331) of the swing rod (133) to always have a tendency to deflect toward a side away from the top opening of the mounting groove (1320).

8. The wearable power-assisted lifting mechanical arm device according to claim 7, characterized in that: The third elastic member (63) is a third spring, one end of which abuts against the side wall of the movable seat (132), and the second end of which abuts against a section of the rod body on the swing rod (133) between its rotation center relative to the movable seat (132) and the locking end (1331).

9. The wearable power-assisted lifting mechanical arm device according to claim 2, characterized in that: The waist fixing assembly is a chain belt assembly (10) for being arranged around the waist of a user, the chain belt assembly (10) comprising chain belt links (110) which are connected in sequence and can rotate relatively around a vertically extending axis, and the rotation adjustment device (13) is fixed on the wall surface of the chain belt link (110) facing outward.

10. The wearable power-assisted lifting mechanical arm device according to claim 1, characterized in that: The mechanical arm body (3) includes an arm assembly (31) and a support rod assembly (32) which are connected in sequence in the length direction thereof. The first end of the arm assembly (31) is connected to the waist fixing assembly, i.e., constitutes the rear end of the mechanical arm body (3), and the second end is connected to the support rod assembly (32). The support rod assembly (32) is a four-bar linkage mechanism which extends forward and upward as a whole and has an adjustable pitch angle. The bottom end of the support rod assembly (32) is connected to the second end of the arm assembly (31), and an auxiliary connecting rod (325) is also provided between the second end of the arm assembly (31) and the upper part of the support rod assembly (32), which can keep the support rod assembly (32) at a corresponding angle relative to the arm assembly (31).

Citation Information

Patent Citations

  • Assistance lifting mechanical arm device

    CN110788838A