Transmission mechanism for rotary joints, robot joints and robots

The three-layer fitting structure of the rotary joint transmission mechanism addresses the issue of space inefficiency by saving axial space and maximizing radial space utilization, enhancing assembly coaxiality and reducing manufacturing complexity.

JP7849484B2Active Publication Date: 2026-04-21SHANGHAI FLEXIV ROBOTICS TECH CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
SHANGHAI FLEXIV ROBOTICS TECH CO LTD
Filing Date
2022-12-21
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Existing rotary joint transmission mechanisms in automated machinery, such as robots and robotic arms, occupy a large amount of axial space and underutilize radial space.

Method used

A transmission mechanism with a three-layer fitting structure comprising a drive member, transmission member, output shaft, and input shaft, where the output and input shafts extend from one side to the other, and are arranged in a stepped manner with bearings and shoulders to ensure compactness and efficient use of radial space.

Benefits of technology

The mechanism saves approximately 26% of axial space while fully utilizing radial space, allowing for a shorter overall joint length and easier assembly, with improved assembly coaxiality and reduced manufacturing complexity.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to a transmission mechanism (10) for a rotary joint, a robot joint (1), and a robot. The transmission mechanism (10) for a rotary joint includes a drive member (100), a transmission member (200), an output shaft (300), an input shaft (400), and a housing (500). The drive member (100) has a drive end (110a). The transmission member (200) has an output end (210) and an input end (220). The output shaft (300) is drivingly connected to the output end (210). The input shaft (400) is drivingly connected to both the drive end (110a) and the input end (220), and is fitted to the output shaft (300). The housing (500) is fitted to the input shaft (400). The housing (500), the input shaft (400), and the output shaft (300) form a three-layer mating structure.
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Description

Technical Field

[0001] This application relates to the technical field of automated machinery, and particularly to a transmission mechanism for a rotary joint, a robot joint, and a robot. <Cross-reference to Related Applications>

[0002] This application claims the priority of a Chinese patent application with an application number of 2021115881384 and an invention title of "Transmission Structure for Rotary Joint", which was filed with the China National Intellectual Property Administration on December 23, 2021, and all of its contents are incorporated herein by reference.

Background Art

[0003] A rotary joint is a common component in automated machinery such as robots, robotic arms, and multi-stage rotating body rotation systems. The main components of the transmission mechanism of the rotary joint are generally arranged in sequence along the axial direction of the joint. For example, an input end encoder, an input rotating shaft, a motor / reducer system, an output rotating shaft, and an output end encoder may be provided in sequence along the axial direction of the joint. However, such an attachment structure has obvious drawbacks such as occupying a large amount of axial space and having a low utilization rate of the radial space.

Summary of the Invention

Problems to be Solved by the Invention

[0004] Based on this, there is a need to provide a transmission mechanism for a rotary joint, a robot joint, and a robot that can save axial space and make full use of radial space.

Means for Solving the Problems

[0005] According to various embodiments of the present application, a driving member having a driving end, a transmission member having an output end and an input end, an output shaft drivingly connected to the output end, an input shaft drivingly connected to both the driving end and the input end and externally fitted to the output shaft, ​The present invention provides a transmission mechanism for a rotary joint, which includes a housing fitted onto the input shaft.

[0006] In one embodiment, the transmission mechanism has opposing first and second sides, the drive member and the transmission member are both provided on the first side, and the output shaft and the input shaft extend from the first side to the second side.

[0007] In one embodiment, the output shaft, the input shaft, and the second end of the housing are arranged in a stepped manner in order, and the end of the output shaft protrudes from the end of the input shaft and the end of the housing.

[0008] In one embodiment, the output shaft includes a first transmission shaft and a first mounting shaft, the portion of the first transmission shaft adjacent to the first side is driven and connected to the output end of the transmission member, the portion of the first transmission shaft adjacent to the second side is fixedly connected to the first mounting shaft, the input shaft includes a second transmission shaft and a second mounting shaft, the portion of the second transmission shaft adjacent to the first side is driven and connected to the input end of the transmission member, the portion of the second transmission shaft away from the first side is fixedly connected to the second mounting shaft, and the second transmission shaft is driven and connected to the drive end of the drive member.

[0009] In one embodiment, at least a portion of the first mounting shaft is inserted into the portion of the first transmission shaft adjacent to the second side, and at least a portion of the second mounting shaft is inserted into the portion of the second transmission shaft adjacent to the second side.

[0010] In one embodiment, the outer diameter of the first transmission shaft is larger than the outer diameter of the first mounting shaft, and the inner diameter of the second transmission shaft is smaller than the inner diameter of the second mounting shaft.

[0011] In one embodiment, a first bearing is fitted between the first mounting shaft and the second mounting shaft, and a first shoulder portion is provided on the outer wall of the first mounting shaft, configured to restrict the movement of the first bearing toward the first side.

[0012] In one embodiment, a second bearing is fitted between the second mounting shaft and the housing, and a second shoulder portion is provided on the inner wall of the housing, configured to restrict the movement of the second bearing toward the first side.

[0013] Another aspect of the present application provides a robot joint including a power transmission mechanism for a rotary joint as described in any of the above embodiments.

[0014] Another aspect of the present invention provides a robot including the robotic joint described in the above embodiment.

[0015] Details of one or more embodiments of the present application are described in the following drawings and description. Other features, purposes and advantages of the present application will become apparent from the specification, drawings and claims. [Brief explanation of the drawing]

[0016] One or more drawings may be referenced to better describe and illustrate the examples and / or illustrations disclosed herein. Any additional details or examples used to illustrate the drawings should not be construed as limiting the scope of the disclosed application, the examples and / or illustrations described herein, or the best known current form.

[0017] [Figure 1] This is a schematic diagram of the structure of a power transmission mechanism according to one embodiment of the present invention. [Figure 2] This is a cross-sectional view of the transmission mechanism in Figure 1 along line AA. [Figure 3] This is a magnified view of region B of the transmission mechanism in Figure 2. [Figure 4] This is a partial perspective view of the right side of the transmission mechanism shown in Figure 2. [Figure 5] Figure 2 is a schematic diagram of the internal connection structure of the motor / reducer system in the transmission mechanism shown. [Figure 6] This is a schematic diagram of the structure of a robot according to one embodiment of the present invention. [Figure 7] This diagram schematically shows a cross-sectional view of a conventional transmission mechanism.

Description of Symbols

[0018] 1 Robot joint, 10 Transmission mechanism, 101 Power system, 100 Driving member, 110 Rotor, 120 Stator, 110a Driving end, 200 Transmission member, 210 Output end, 220 Input end, 300 Output shaft, 310 First transmission shaft, 320 First mounting shaft, 321 First end, 322 Second end, 330 First shoulder, 340 First annular boss, 400 Input shaft, 410 Second transmission shaft, 420 Second mounting shaft, 421 Third end, 422 Fourth end, 430 Second annular boss, 440 Third annular boss, 500 Housing, 510 Annular groove, 520 Fifth end, 530 Sixth end, 540 Receiving groove, 550 Second shoulder, 600 First bearing, 700 Second bearing, 101a Power system, 300a Output shaft, 400a Input shaft, 800a Input end encoder, 900a Output end encoder.

Embodiments for Carrying Out the Invention

[0019] In order to make the object, technical means and advantages of the present application clearer, the present application will be described in more detail below with reference to the drawings and specific embodiments. It should be noted that the specific embodiments described here are only for interpreting the present application and do not limit the protection scope of the present application.

[0020] When an element is referred to as being "fixed to" another element, the element may be directly located on the other element, but there may also be intervening elements between them. When an element is considered to be "connected to" another element, the element may be directly connected to the other element, but there may also be intervening elements between them at the same time. The terms "vertical", "horizontal", "left", "right" and similar expressions used in this specification are for the purpose of explanation only and do not represent the only embodiment.

[0021] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as those generally understood by those skilled in the art to which this application pertains. The terms used herein in this description are for the sole purpose of describing specific embodiments and are not intended to limit this application. The terms “and / or” as used herein include any and all combinations of one or more related items.

[0022] As shown in Figures 1, 2, and 5, one embodiment of the present invention provides a rotary joint transmission mechanism 10 which can be applied to related fields and situations such as robots, robot arms, and multi-stage rotary body rotation systems. The rotary joint transmission mechanism 10 includes a drive member 100, a transmission member 200, an output shaft 300, an input shaft 400, a housing 500, a first bearing 600, and a second bearing 700. The rotary joint transmission mechanism 10 satisfies good assembly coaxiality, makes full use of radial space, and saves axial space. The transmission mechanism 10 has opposing first sides (e.g., the left side in Figure 2) and second sides (e.g., the right side in Figure 2), with the drive member 100 and the transmission member 200 both located on the first side, and the output shaft 300 and the input shaft 400 both extending from the first side to the second side. The drive member 100 and the transmission member 200 are both provided on the first side, and the input shaft 400 and output shaft 300 extend from the first side to the second side, thereby securing sufficient space on the second side for other joint members (e.g., encoders), while the input shaft 400 and output shaft 300 do not interfere with the large and structurally complex drive member 100 (e.g., motor) and transmission member 200 (e.g., speed reducer).

[0023] Specifically, as shown in Figure 5, the drive member 100 has a drive end 110a. In this embodiment, the drive member 100 is a motor, which has a stator 120 and a rotor 110, and the rotor 110 is the drive end 110a. Of course, in other embodiments, the drive member 100 may be other drive mechanisms such as an air cylinder or a hydraulic cylinder.

[0024] Specifically, as shown in Figures 2 and 5, the transmission member 200 has an output terminal 210 and an input terminal 220. In this embodiment, the transmission member 200 is a reduction gear. Of course, in other embodiments, the transmission member 200 may be another form of transmission mechanism 10. In this embodiment, the drive member 100 and the transmission member 200 may be assembled as a power system 101.

[0025] Furthermore, as shown in Figures 2 and 4, both the output shaft 300 and the input shaft 400 may be elongated hollow shafts, and the radial gap between the input shaft 400 and the output shaft 300 may be small. In this embodiment, the input shaft 400 is fitted onto the output shaft 300. As shown in Figure 5, the output shaft 300 is driven to the output end 210. The input shaft 400 is driven to either the drive end 110a or the input end 220. In this embodiment, the outer circumferential surface of the input shaft 400 meshes with the drive end 110a by gear meshing, and of course, in other embodiments, the connection between the input shaft 400 and the drive end 110a may be an end face connection (for example, a flange connection).

[0026] Specifically, as shown in Figures 2 and 5, the output shaft 300 includes a first transmission shaft 310 and a first mounting shaft 320. One end of the first transmission shaft 310 is driven and connected to the output end 210. The first mounting shaft 320 has a first end 321 and a second end 322, with the first end 321 positioned relatively close to the first side and the second end 322 positioned relatively close to the second side. The first end 321 is connected to the end of the first transmission shaft 310 that is away from the output end 210, and in this way, low rotational speed, high torque power reduced by the reduction gear, which is the transmission member 200, can be output via the output shaft 300. As shown in Figure 3, a first shoulder portion 330 is provided on the outer wall of the first mounting shaft 320. In this embodiment, the first shoulder portion 330 is specifically an annular projection provided on the outer wall of the first mounting shaft 320. As shown in Figures 2 and 3, a first annular boss 340 is provided on the outer wall of the first mounting shaft 320, the portion of the first mounting shaft 320 having the first end 321 is inserted into the first transmission shaft 310, and the end of the first transmission shaft 310 away from the output end 210 abuts against the first annular boss 340. The first annular boss 340 is closer to the power system 101 (or transmission member 200) than the first shoulder portion 330, that is, in Figure 2, the first annular boss 340 is located to the left of the first shoulder portion 330.

[0027] Specifically, as shown in Figures 2 and 5, the input shaft 400 includes a second transmission shaft 410 and a second mounting shaft 420. One end of the second transmission shaft 410 is driven to the input end 220, and the other end of the second transmission shaft 410 is connected to the motor rotor 110. Specifically, as shown in Figures 2 and 5, the second mounting shaft 420 has a third end 421 and a fourth end 422, the third end 421 is provided relatively close to the first side, and the fourth end 422 is provided relatively close to the second side. The third end 421 is connected to the end of the second transmission shaft 410 that is away from the input end 220, so that the input shaft 400 can input the motor's high rotational speed and low torque power to the reduction gear. As shown in Figures 2 and 3, a second annular boss 430 is provided on the inner wall of the second mounting shaft 420, and the second annular boss 430 is closer to the power system 101 than the first shoulder portion 330, that is, in Figure 2, the second annular boss 430 is located to the left of the first shoulder portion 330. The portion of the second transmission shaft 410 that is away from the power system 101 is inserted into the second mounting shaft 420, and one end of the second transmission shaft 410 that is away from the input end 220 abuts against the second annular boss 430. In this way, the tightness between the second transmission shaft 410 and the second mounting shaft 420 can be increased, while the length of the portion of the second transmission shaft 410 that is inserted into the second mounting shaft 420 can be limited. Of course, the assembly method of the second mounting shaft 420 and the second transmission shaft 410 is not limited to this, and the second mounting shaft 420 and the second transmission shaft 410 may be assembled in other ways.

[0028] Furthermore, the outer diameter of the first transmission shaft 310 is larger than the outer diameter of the first mounting shaft 320, and the inner diameter of the second transmission shaft 410 is smaller than the inner diameter of the second mounting shaft 420. In this way, sufficient bearing mounting space can be provided on the second side of the transmission mechanism, while the gap between the first mounting shaft 320 and the second mounting shaft 420 can be made as small as possible, making the overall structure of the transmission mechanism more compact.

[0029] Furthermore, as shown in Figures 2 and 3, the housing 500 has a hollow cylindrical structure. In this embodiment, the housing 500 is fitted onto the input shaft 400, specifically onto the second mounting shaft 420. Specifically, an annular groove 510 is provided on the inner wall of the housing 500 to match the third annular boss 440, and when the housing 500 is fitted onto the second mounting shaft 420, the third annular boss 440 is inserted into the annular groove 510. This increases the tightness between the input shaft 400 and the housing 500.

[0030] The housing 500 has a fifth end 520 and a sixth end 530. The fifth end 520 is provided relatively close to the first side, and the sixth end 530 is provided relatively close to the second side. The first end 321, the third end 421, and the fifth end 520 are located on the side close to the power system 101, while the second end 322, the fourth end 422, and the sixth end 530 are located on the side away from the power system 101. The housing 500 is fixed and connected to the stator 120. As shown in Figure 3, a second shoulder portion 550 is provided on the inner wall of the housing 500, and in this embodiment, the second shoulder portion 550 is specifically an annular projection provided on the inner wall of the housing 500. Specifically, the third annular boss 440 is closer to the power system 101 (or transmission member 200) than the second shoulder portion 550; that is, in Figure 2, the third annular boss 440 is located to the left of the second shoulder portion 550.

[0031] In the prior art, as shown in Figure 7, the rotary joint transmission mechanism 10 generally consists of an input shaft 400a, a power system 101a, and an output shaft 300a arranged sequentially along the axial direction, with an input end encoder 800a and an output end encoder 900a connected to the ends of the input shaft 400a and the output shaft 300a, respectively. This arrangement occupies a large amount of axial space, resulting in low utilization of radial space. In the present invention, the housing 500, the input shaft 400, and the output shaft 300 form a three-layer fitting structure, which, compared to the conventional arrangement method of linearly distributing along the axial direction from right to left, satisfies good assembly coaxiality, shortens the overall length of the joint, saves axial space, and allows for full utilization of radial space.

[0032] The power transmission process of the rotary joint transmission mechanism 10 according to the present invention will be described in detail below.

[0033] The motor rotates the rotor 110, transmitting high-speed, low-torque power to the reduction gear via the input shaft 400. The reduction gear converts the high-speed, low-torque power generated by the motor into low-speed, high-torque power, which is then transmitted to other equipment via the output shaft 300. This completes the power transmission of the transmission mechanism 10.

[0034] Furthermore, as shown in Figures 2 and 3, the second end 322, the fourth end 422, and the sixth end 530 are provided in a stepped manner. Specifically, the distance between the second end 322 and the power system 101 (or transmission member 200) is greater than the distance between the fourth end 422 and the power system 101 (or transmission member 200), and the distance between the fourth end 422 and the power system 101 (or transmission member 200) is greater than the distance between the sixth end 530 and the power system 101 (or transmission member 200). That is, the second end 322 protrudes from the plane where the fourth end 422 is located, and the fourth end 422 protrudes from the plane where the sixth end 530 is located. This arrangement facilitates the installation and removal of the housing 500, the first mounting shaft 320, and the second mounting shaft 420. Of course, in other embodiments, conversely, the distance between the second end 322 and the power system 101 (or transmission member 200) may be smaller than the distance between the fourth end 422 and the power system 101 (or transmission member 200), and the distance between the fourth end 422 and the power system 101 (or transmission member 200) may be smaller than the distance between the sixth end 530 and the power system 101 (or transmission member 200). That is, the fourth end 422 may protrude from the plane in which the second end 322 is located, and the sixth end 530 may protrude from the plane in which the fourth end 422 is located. In other embodiments, the first end 321, the third end 421, and the fifth end 520 may be arranged in a stepped manner.

[0035] Furthermore, as shown in Figures 2 and 3, the first bearing 600 is provided between the first mounting shaft 320 and the second mounting shaft 420; that is, the first bearing 600 is fitted onto the first mounting shaft 320, and the second mounting shaft 420 is fitted onto the first bearing 600. In this embodiment, the first bearing 600 is located at one end between the first mounting shaft 320 and the second mounting shaft 420, close to the fourth end 422, and the first shoulder portion 330 is configured to restrict the movement of the first bearing 600 away from the fourth end 422. In this embodiment, when the first bearing 600 is mounted between the first mounting shaft 320 and the second mounting shaft 420, one end of the first bearing 600 abuts against the first shoulder portion 330, the other end of the first bearing 600 is flush with the plane where the fourth end 422 is located, the outer ring of the first bearing 600 abuts against the inner wall of the second mounting shaft 420, and the inner ring of the first bearing 600 abuts against the outer wall of the first mounting shaft 320. In this way, the first bearing 600 plays a role in supporting the sides of the first mounting shaft 320 and the second mounting shaft 420 that are away from the transmission member 200, and can also ensure that the first mounting shaft 320 and the second mounting shaft 420 rotate independently of each other. In this embodiment, the first bearing 600 is a deep groove ball bearing, which is a rolling bearing in which the rolling elements are balls, and is a radial ball bearing in which each raceway has a continuous groove raceway whose cross-section is approximately one-third of the circumference of the ball, and is characterized by low frictional resistance and high rotational speed, and may be used in machine parts that receive radial loads or combined loads acting simultaneously in the radial and axial directions, or may be used in machine parts that receive axial loads. Of course, in other embodiments, the first bearing 600 may be a different type of bearing.

[0036] Preferably, as shown in Figures 2 and 3, the first bearing 600 is mounted between the first mounting shaft 320 and the second mounting shaft 420 by fixing the space between the first bearing 600 and the outer wall of the first mounting shaft 320, and between the first bearing 600 and the inner wall of the second mounting shaft 420 with an adhesive. Specifically, adhesive 609 is used as the adhesive, which has high adhesive strength and can improve the engagement strength between the first bearing 600 and the first mounting shaft 320 and the second mounting shaft 420. Of course, other types of adhesive may be selected as needed. The space between the first bearing 600 and the outer wall of the first mounting shaft 320, and between the first bearing 600 and the inner wall of the second mounting shaft 420 may be interlocked so that the first bearing 600 is mounted between the first mounting shaft 320 and the second mounting shaft 420. In this embodiment, the space between the first bearing 600 and the outer wall of the first mounting shaft 320, and the space between the first bearing 600 and the inner wall of the second mounting shaft 420 are interference fits, and are simultaneously fixed with adhesive. In this way, the engagement strength between the first bearing 600 and the first mounting shaft 320 and the second mounting shaft 420 can be ensured.

[0037] Furthermore, as shown in Figures 2 and 3, the second bearing 700 is provided between the second mounting shaft 420 and the housing 500; that is, the second bearing 700 is fitted onto the second mounting shaft 420, and the housing 500 is fitted onto the second bearing 700. In this embodiment, the second bearing 700 is located at one end between the second mounting shaft 420 and the housing 500, close to the sixth end 530, and the second shoulder portion 550 is configured to restrict the movement of the second bearing 700 away from the sixth end 530. Specifically, an annular housing groove 540 is provided on the inner wall of the housing 500, and the second shoulder portion 550 is provided on the bottom wall of the housing groove 540. When the second bearing 700 is installed between the second mounting shaft 420 and the housing 500, the second bearing 700 is inserted into the housing groove 540, one end of the second bearing 700 abuts against the second shoulder 550, the other end of the second bearing 700 is flush with one side wall of the housing groove 540, the outer ring of the second bearing 700 abuts against the bottom wall of the housing groove 540, and the inner ring of the second bearing 700 abuts against the outer wall of the second mounting shaft 420. In this way, the second bearing 700 plays a role in supporting the side of the second mounting shaft 420 and the housing 500 away from the transmission member 200, and ensures that the second mounting shaft 420 can rotate relative to the housing 500. Of course, the assembly method of the second bearing 700 is not limited to this, and the assembly of the second bearing 700 may be realized in other ways.

[0038] In this embodiment, the second bearing 700 is also a deep groove ball bearing. Of course, in other embodiments, the second bearing 700 may be a different type of bearing. In this embodiment, the second bearing 700 is a deep groove ball bearing with larger dimensions than the first bearing 600, to accommodate the case where the radial distance between the housing 500 and the second mounting shaft 420 is greater than the radial distance between the second mounting shaft 420 and the first mounting shaft 320. Of course, in other embodiments, the first bearing 600 and the second bearing 700 may be deep groove ball bearings of the same dimensions and type, as needed.

[0039] Preferably, as shown in Figures 2 and 3, the second bearing 700 is mounted between the second mounting shaft 420 and the housing 500 by fixing the space between the second bearing 700 and the outer wall of the second mounting shaft 420, and between the second bearing 700 and the inner wall of the housing 500 with an adhesive. Specifically, 609 adhesive is used as the adhesive, which has high adhesive strength and can improve the engagement strength between the second bearing 700 and the second mounting shaft 420 and the housing 500. Of course, other types of adhesive may be selected as needed. The space between the second bearing 700 and the outer wall of the second mounting shaft 420, and between the second bearing 700 and the inner wall of the housing 500 may be interlocked so that the second bearing 700 is mounted between the second mounting shaft 420 and the housing 500. In this embodiment, the space between the second bearing 700 and the outer wall of the second mounting shaft 420, and the space between the second bearing 700 and the inner wall of the housing 500 are interference fits, and are simultaneously fixed with adhesive. In this way, the engagement strength between the second bearing 700, the second mounting shaft 420, and the housing 500 can be ensured.

[0040] The following describes in detail the process of attaching and detaching the rotary joint transmission mechanism 10 according to the present invention.

[0041] During installation, first, the first end 321 of the first mounting shaft 320 is attached to the first transmission shaft 310, and the third end 421 of the second mounting shaft 420 is attached to the second transmission shaft 410. Then, from the right side in Figure 2, that is, the side away from the three-layer fitted power system 101 (or transmission member 200), the first bearing 600 is press-fitted between the first mounting shaft 320 and the second mounting shaft 420, with one end of the first bearing 600 in contact with the first shoulder portion 330, and the other end of the first bearing 600 flush with the plane where the fourth end 422 is located. The space between the first bearing 600 and the outer wall of the first mounting shaft 320, and the space between the first bearing 600 and the inner wall of the second mounting shaft 420 are fixed by adhesive bonding and interference fit. Subsequently, the second bearing 700 is press-fitted into the housing groove 540 of the housing 500 such that one end of the second bearing 700 abuts against the second shoulder portion 550 and the other end of the second bearing 700 is flush with one side wall of the housing groove 540. The second bearing 700 and the inner wall of the housing 500 are bonded and fixed together with adhesive. Finally, the housing 500 is fitted onto the second mounting shaft 420 together with the second bearing 700. The second bearing 700 and the outer wall of the second mounting shaft 420 are bonded and fixed together with adhesive. At the same time, the second bearing 700 and the outer wall of the second mounting shaft 420, and the second bearing 700 and the inner wall of the housing 500 are fixed together by interference fit. In this way, the installation process of the rotary joint transmission mechanism 10 is completed. First, the second bearing 700 is press-fitted into the housing 500, and then the assembly of the second bearing 700 and the housing 500 is attached to the second mounting shaft 420. Therefore, only the engagement between the second bearing 700 and the outer wall of the second mounting shaft 420 needs to be considered, which reduces errors in the mounting gap and also reduces the difficulty of installation.

[0042] During removal, first, the assembly of the housing 500 and the second bearing 700 is removed from the second mounting shaft 420. Next, the second mounting shaft 420 is removed from the second transmission shaft 410 using a special jig, and the first bearing 600 is removed from the first mounting shaft 320. Finally, the first mounting shaft 320 is removed from the first transmission shaft 310 using a special jig.

[0043] Since the sides of the housing 500, the second mounting shaft 420, and the first mounting shaft 320 that are away from the power system 101 (i.e., the second end 322, the fourth end 422, and the sixth end 530) are provided in a stepped manner, it is easy to install each layer of the housing 500, the second mounting shaft 420, and the first mounting shaft 320, as well as easy to remove each layer of the housing 500, the second mounting shaft 420, and the first mounting shaft 320, and in particular, it is easy to grip parts that need to be removed with a dedicated jig. In addition, the overall structure is compact, has a small appearance, and is easy to integrate with other structures.

[0044] Furthermore, by providing the first bearing 600 and the second bearing 700, independent rotation of the second mounting shaft 420 and the first mounting shaft 320, or the output shaft 300 and the input shaft 400 is achieved, and reliable rigid support of the output shaft 300, the input shaft 400 and the housing 500 in the radial direction is realized.

[0045] At the same time, the first bearing 600 and the second bearing 700 are fixed between the first mounting shaft 320 and the second mounting shaft 420, and between the second mounting shaft 420 and the housing 500, by a combination of adhesive bonding and interference fit. Simultaneously, the first shoulder portion 330 and the second shoulder portion 550 provide positional constraints, eliminating the need for extra fixing or positional constraint members. This significantly simplifies the three-layer fitting structure, reducing manufacturing difficulty and cost.

[0046] As shown in Figure 6, one embodiment of the present invention further provides a robot joint 1 having the transmission mechanism 10 described in any of the above embodiments.

[0047] As shown in Figure 6, one embodiment of the present invention further provides a robot having at least one of the robot joints 1 described above.

[0048] The above-described power transmission mechanism 10 for the rotary joint has at least the following beneficial effects.

[0049] In the transmission mechanism 10, as shown in Figures 2 and 5, the input shaft 400 is driven and connected to the drive end 110a and the input end 220, transmitting the kinetic energy output from the drive end 110a of the drive member 100 to the input end 220 of the transmission member 200 via the input shaft 400, and the output shaft 300 is driven and connected to the output end 210, outputting the kinetic energy of the transmission member 200, thereby realizing the transmission of kinetic energy from the drive member 100 to the transmission member 200. The housing 500, input shaft 400 and output shaft 300 form a three-layer fitting structure, which satisfies good assembly coaxiality compared to the conventional arrangement method of linear distribution along the axial direction from right to left, and allows for a shorter overall length of the joint, for example, the length of the three-layer fitting structure can be shortened to 20 millimeters or less. Compared to the conventional arrangement method of linear distribution along the axial direction, approximately 26% of axial space is saved, and radial space is fully utilized.

[0050] The technical features of the embodiments described above can be combined in any way. For the sake of brevity, not all possible combinations of the technical features of the embodiments described above have been described, but these combinations should be considered to fall within the scope described herein as long as they do not contradict each other.

[0051] The embodiments described above are merely some embodiments of the present application, and although their descriptions are specific and detailed, they should not be interpreted as limiting the scope of the patent of this application. Furthermore, a person skilled in the art may make various modifications and improvements to the present application, as long as they do not deviate from the spirit of the application, and all such modifications and improvements fall within the scope of protection of this application. Therefore, the scope of protection of the patent of this application should be based on the attached claims.

Claims

1. A transmission mechanism for a rotary joint used in a robot joint, A drive member having a drive end, A transmission member having an output terminal and an input terminal, An output shaft driven and connected to the aforementioned output terminal, An input shaft is connected to both the drive end and the input end and is fitted onto the output shaft, The input shaft includes a housing fitted onto the input shaft, The aforementioned rotary joint transmission mechanism has opposing first and second sides, and the output shaft and the input shaft extend from the first side to the second side. The output shaft includes a first transmission shaft and a first mounting shaft. The input shaft includes a second transmission shaft and a second mounting shaft. A transmission mechanism for a rotary joint, characterized in that at least a portion of the first mounting shaft is inserted into the portion of the first transmission shaft adjacent to the second side, and at least a portion of the second mounting shaft is inserted into the portion of the second transmission shaft adjacent to the second side.

2. The rotary joint transmission mechanism according to claim 1, characterized in that both the drive member and the transmission member are provided on the first side.

3. The output shaft, the input shaft, and the second end of the housing are arranged in a stepped manner in order, and the end of the output shaft protrudes from the end of the input shaft and the end of the housing. The power transmission mechanism for a rotary joint according to feature 2.

4. The portion of the first transmission shaft adjacent to the first side is driven and connected to the output end of the transmission member, and the portion of the first transmission shaft adjacent to the second side is fixedly connected to the first mounting shaft. The rotary joint transmission mechanism according to claim 2, characterized in that the portion of the second transmission shaft adjacent to the first side is driven and connected to the input end of the transmission member, the portion of the second transmission shaft away from the first side is fixedly connected to the second mounting shaft, and the second transmission shaft is driven and connected to the drive end of the drive member.

5. The power transmission mechanism for a rotary joint according to claim 4, characterized in that the outer diameter of the first transmission shaft is larger than the outer diameter of the first mounting shaft, and the inner diameter of the second transmission shaft is smaller than the inner diameter of the second mounting shaft.

6. The rotary joint transmission mechanism according to claim 4, characterized in that a first bearing is fitted between the first mounting shaft and the second mounting shaft, and a first shoulder portion is provided on the outer wall of the first mounting shaft, configured to restrict movement of the first bearing toward the first side.

7. The rotary joint transmission mechanism according to claim 4, characterized in that a second bearing is fitted between the second mounting shaft and the housing, and a second shoulder portion is provided on the inner wall of the housing, configured to restrict the movement of the second bearing toward the first side.

8. A robot joint characterized by including a transmission mechanism for a rotary joint as described in any one of claims 1 to 7.

9. A robot comprising the robot joint described in claim 8.

Citation Information

Patent Citations

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