Mechanical connection yoke

By designing the connection, activity, synchronization and guidance mechanism of the mechanical connection fork, the complex problems of existing mechanical connection fork installation are solved, flexible adjustment and stability of the docking components are achieved, and the performance and accuracy of the transmission system are improved.

CN223178113UActive Publication Date: 2025-08-01ZHEJIANG JIYAN TRANSMISSION MASCH CO LTD
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Patent Information

Application Number
CN202422683478.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-05
Publication Date
2025-08-01
Estimated Expiration
2034-11-05

AI Technical Summary

Technical Problem

Due to the integrated processing and molding of existing mechanical connection forks, the installation process is complicated and affects the performance and accuracy of the mechanical system.

Method used

A mechanical connection fork is designed, including a connecting mechanism, a movable mechanism, a synchronization mechanism and a guide mechanism to ensure that the docking assembly can be seamlessly connected, and flexible adjustment of the docking assembly is achieved through the synchronization and guide mechanism.

Benefits of technology

The installation process is simplified, the adaptability and flexibility of mechanical connection forks are improved, making them more widely used in the transmission system.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of mechanical manufacturing, and discloses a mechanical connection yoke which comprises a connection mechanism, butt joint assemblies used for being in butt joint with other transmission mechanisms are arranged on the upper portions of the two sides of the connection mechanism, and a movable mechanism used for fixedly connecting the butt joint assemblies and driving the butt joint assemblies to move is arranged at the upper end of the connection mechanism. A synchronizing mechanism used for enabling the movable mechanism to synchronously move towards the two sides is arranged between the connecting mechanism and the movable mechanism, guiding mechanisms used for assisting the movable mechanism in guiding and moving are arranged on the two sides of the connecting mechanism, and the guiding mechanisms provide necessary guiding and supporting for the movable mechanism so that the movable mechanism can stably move on a preset path. Due to the synergistic effect of the synchronizing mechanism and the guiding mechanism, the distance between the two butt joint assemblies becomes easy to adjust, the installation process is simplified, the adaptability and flexibility of the mechanical connection yoke are improved, and the mechanical connection yoke can be more widely applied to various transmission systems.
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Description

Technical Field

[0001] The utility model relates to the technical field of mechanical manufacturing, and specifically, to a mechanical connection joint fork. Background Technique

[0002] A mechanical connection fork is an important mechanical component, usually in the shape of a "fork", which is processed from multiple metal materials and is mainly used to support and connect various machine devices. It has a wide variety of types, including rod fork parts, shift fork parts, flange fork parts, etc. Each type of fork part can be further classified according to its shape characteristics, such as narrow fork opening type, wide fork opening type, Y-shaped fork, C-shaped fork, etc.

[0003] There is an important defect in the installation process of the mechanical connection fork in the prior art. Since the mechanical connection fork is integrally processed and formed, it is easily restricted by the distance between the connection forks during installation, resulting in a complex and inconvenient installation process. This restriction not only increases the installation time but also may affect the overall performance and accuracy of the mechanical system. Therefore, the personnel in this technical field provide a mechanical connection joint fork to solve the problems raised in the above background technique. Content of the Utility Model

[0004] The purpose of the utility model is to provide a mechanical connection joint fork to solve the problems that the mechanical connection fork in the prior art is integrally processed and formed, so it is easily restricted by the distance between the connection forks during installation, resulting in a complex and inconvenient installation process. This restriction not only increases the installation time but also may affect the overall performance and accuracy of the mechanical system.

[0005] The utility model provides the following technical solution: A mechanical connection joint fork includes a connection mechanism. At the upper part on both sides of the connection mechanism, there are docking components for docking with other transmission mechanisms. At the upper end of the connection mechanism, there is a movable mechanism for fixedly connecting the docking components and driving the docking components to move. Between the connection mechanism and the movable mechanism, there is a synchronization mechanism for synchronously moving the movable mechanism to both sides. On both sides of the connection mechanism, there is a guiding mechanism for assisting the guiding and moving of the movable mechanism.

[0006] As a preference of the above technical solution, the connection mechanism includes a connection rod, and a support plate is fixedly connected to the upper end of the connection rod.

[0007] As a preference of the above technical solution, the guiding mechanism includes two side support bars. The two side support bars are respectively fixedly connected to both sides of the support plate, and guiding grooves are respectively formed in the inner sides of the two side support bars close to each other.

[0008] Preferably, as the above technical solution, the synchronization mechanism includes a central rod, the central rod is fixedly connected to the center of the upper end of the support plate, a bearing is fixedly sleeved outside the central rod, and a gear is fixedly sleeved on the outer ring of the bearing.

[0009] Preferably, as the above technical solution, the moving mechanism includes two moving plates. Guide rails are fixedly connected to the centers of both sides of the two moving plates. The four guide rails are respectively slidably sleeved inside the two guide grooves. Sleeve buckles are fixedly connected to the sides far away from each other at the centers of the upper ends of the two moving plates. Moving cavities are formed on the sides close to each other at the lower ends of the two moving plates. Rack bars are fixedly connected to the sides far away from each other inside the two moving cavities. The two rack bars are respectively in meshing transmission with the gear.

[0010] Preferably, as the above technical solution, the docking assembly includes two connecting forks. The two connecting forks are respectively fixedly connected to the sides far away from each other of the two moving plates. Sleeve holes penetrate through the centers of the upper parts inside the two connecting forks.

[0011] Preferably, traction springs are hung on the outer sides of the two sleeve buckles.

[0012] Preferably, a protective cover is fixedly connected to the upper ends of the two side support bars.

[0013] Compared with the prior art, the beneficial effects of the present utility model are as follows:

[0014] A mechanical connection joint fork, the core component of which includes a connection mechanism. Docking assemblies are arranged above both sides of the connection mechanism. The docking assemblies are designed to achieve seamless docking with other transmission mechanisms, ensuring that the mechanical connection joint fork can be effectively integrated into the transmission system. In order to flexibly adjust the position of the docking assemblies, a moving mechanism is mounted on the upper end of the connection mechanism. The moving mechanism is not only responsible for stabilizing the docking assemblies, but also has the ability to move horizontally. In order to achieve bilateral synchronization during the movement of the moving mechanism, a synchronization mechanism is also provided between the connection mechanism and the moving mechanism. This innovative design ensures that when the moving mechanism moves, its two sides can maintain exactly the same actions, thus greatly enhancing the stability and coordination of the mechanical connection joint fork. In addition, in order to further improve the moving accuracy and smoothness of the moving mechanism, guide mechanisms are also equipped on both sides of the connection mechanism. The guide mechanisms provide necessary guidance and support for the moving mechanism, enabling it to move smoothly along a predetermined path. Thanks to the synergistic effect of the synchronization mechanism and the guide mechanisms, the distance between the two docking assemblies becomes easy to adjust. This beneficial effect not only simplifies the installation process, but also improves the adaptability and flexibility of the mechanical connection joint fork, enabling it to be more widely applied to various transmission systems. Description of the Drawings

[0015] Figure 1 It is a three-dimensional structure schematic diagram of a mechanical connection joint fork;

[0016] Figure 2 It is a three-dimensional structure schematic diagram of another perspective of a mechanical connection joint fork;

[0017] Figure 3 It is a three-dimensional disassembled structure schematic diagram of a mechanical connection joint fork;

[0018] Figure 4 It is a three-dimensional structure schematic diagram of a movable mechanism of a mechanical connection joint fork;

[0019] Figure 5 It is a three-dimensional structure schematic diagram of another perspective of a movable mechanism of a mechanical connection joint fork.

[0020] Legend Explanation:

[0021] 1. Connection mechanism; 101. Connection rod; 102. Support plate; 2. Guide mechanism; 201. Side support bar; 202. Guide groove; 3. Synchronization mechanism; 301. Central rod; 302. Bearing; 303. Gear; 4. Movable mechanism; 401. Movable plate; 402. Guide rail; 403. Sleeve buckle; 404. Movable cavity; 405. Rack; 5. Docking component; 501. Connection fork; 502. Sleeve hole; 6. Traction spring; 7. Protective cover. Specific Embodiment

[0022] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention.

[0023] As Figures 1 - 3As shown in the figure, the utility model provides a technical solution: a mechanical connection joint fork, which includes a connection mechanism 1. At the upper parts on both sides of the connection mechanism 1, there are docking components 5 for docking with other transmission mechanisms. At the upper end of the connection mechanism 1, there is a moving mechanism 4 for fixedly connecting the docking components 5 and driving the docking components 5 to move. Between the connection mechanism 1 and the moving mechanism 4, there is a synchronization mechanism 3 for enabling the moving mechanism 4 to move synchronously to both sides. On both sides of the connection mechanism 1, there are guiding mechanisms 2 for assisting the guiding and moving of the moving mechanism 4. Docking components 5 are arranged above both sides of the connection mechanism 1. The docking components 5 are designed to achieve seamless docking with other transmission mechanisms, ensuring that the mechanical connection joint fork can be effectively integrated into the transmission system. In order to flexibly adjust the position of the docking components 5, the moving mechanism 4 is mounted on the upper end of the connection mechanism 1. The moving mechanism 4 not only is responsible for stabilizing the docking components 5 but also has the ability to move horizontally. In order to achieve the bilateral synchronization of the moving mechanism 4 during the moving process, a synchronization mechanism 3 is also arranged between the connection mechanism 1 and the moving mechanism 4. This innovative design ensures that when the moving mechanism 4 moves, its two sides can maintain exactly the same actions, thus greatly enhancing the stability and coordination of the mechanical connection joint fork. In addition, in order to further improve the moving accuracy and smoothness of the moving mechanism 4, guiding mechanisms 2 are also equipped on both sides of the connection mechanism 1. The guiding mechanisms 2 provide necessary guidance and support for the moving mechanism 4, enabling it to move smoothly along a predetermined path. Thanks to the synergistic effect of the synchronization mechanism 3 and the guiding mechanisms 2, the distance between the two docking components 5 becomes easy to adjust. This beneficial effect not only simplifies the installation process but also improves the adaptability and flexibility of the mechanical connection joint fork, enabling it to be more widely applied to various transmission systems.

[0024] As an implementation manner in this embodiment, as Figure 3As shown, the connecting mechanism 1 includes a connecting rod 101. A support plate 102 is fixedly connected to the upper end of the connecting rod 101. The guiding mechanism 2 includes two side support bars 201. The two side support bars 201 are respectively fixedly connected to both sides of the support plate 102. A guiding groove 202 is formed through the inner sides of the two side support bars 201 close to each other. A protective cover 7 is fixedly connected to the upper ends of the two side support bars 201. The synchronization mechanism 3 includes a central rod 301. The central rod 301 is fixedly connected to the center of the upper end of the support plate 102. A bearing 302 is fixedly sleeved on the outer side of the central rod 301. A gear 303 is fixedly sleeved on the outer ring of the bearing 302. The connecting mechanism 1, as the core of the entire mechanical connecting joint fork, is mainly composed of the connecting rod 101 and the support plate 102. The connecting rod 101, as the main structure, plays the roles of connection and support, and the support plate 102 is firmly fixed to its upper end, providing a stable installation platform for other components. In order to guide the movement of the movable mechanism 4, the guiding mechanism 2 is designed and installed on both sides of the support plate 102. The two side support bars 201 are respectively fixedly connected to both sides of the support plate 102. The guiding grooves 202 are formed through the inner sides of the two side support bars 201 close to each other. The two guiding grooves 202 provide a clear path and necessary support for the movement of the movable mechanism 4, ensuring the stability and accuracy of its movement. At the same time, in order to protect the guiding grooves 202 from external environmental interference, the protective cover 7 is also fixedly connected to the upper ends of the two side support bars 201. The synchronization mechanism 3 is responsible for ensuring the bilateral synchronization of the movable mechanism 4 during the movement. It is mainly composed of the central rod 301, the bearing 302 and the gear 303. The central rod 301 is fixedly connected to the center of the upper end of the support plate 102, and the bearing 302 is firmly sleeved on the outer side of the central rod 301. This design enables the gear 303 to rotate stably on the outer ring of the bearing 302, and then realizes the bilateral synchronous movement of the movable mechanism 4 through meshing with other transmission components. The beneficial effect of this structural design is that it greatly improves the stability and coordination of the mechanical connecting joint fork. Through the guidance and support of the guiding mechanism 2, the movable mechanism 4 can move smoothly along the predetermined path, and the addition of the synchronization mechanism 3 ensures the bilateral synchronization of the movable mechanism 4 during the movement, thus avoiding vibrations and noises caused by non-synchronization. In addition, this design also makes the distance between the two docking components 5 easy to adjust, further improving the adaptability and flexibility of the mechanical connecting joint fork.

[0025] As an implementation manner in this embodiment, as Figures 3 - 5As shown in the figure, the movable mechanism 4 includes two movable plates 401. At the centers of both sides of the two movable plates 401, guide rails 402 are fixedly connected. The four guide rails 402 are respectively sleeved and slidably arranged inside the two guide grooves 202. At the centers of the upper ends of the two movable plates 401, on the sides away from each other, buckle sleeves 403 are fixedly connected. At the sides of the lower ends of the two movable plates 401 close to each other, movable cavities 404 are formed. At the sides away from each other inside the two movable cavities 404, racks 405 are fixedly connected. The two racks 405 are respectively in meshing transmission with the gears 303. A traction spring 6 is hung outside the two buckle sleeves 403. The docking assembly 5 includes two connecting forks 501. The two connecting forks 501 are respectively fixedly connected to the sides of the two movable plates 401 away from each other. At the upper parts of the centers of the two connecting forks 501, sleeve holes 502 are respectively penetrated and sleeved. The movable mechanism 4 is a key part for realizing dynamic adjustment in the mechanical connection joint fork. It consists of two movable plates 401. The two movable plates 401 can move relative to each other to adjust the distance between the two docking assemblies 5. In order to ensure the stable and precise movement of the movable plates 401, guide rails 402 are fixedly connected to the centers of both sides of the two movable plates 401. The four guide rails 402 are respectively sleeved and slidably arranged inside the two aforementioned guide grooves 202. This design strictly limits the movement of the movable plates 401 on the tracks of the guide grooves 202, thus ensuring the linearity and stability of the movement. At the centers of the upper ends of the movable plates 401, on the sides away from each other, buckle sleeves 403 are fixedly connected. A traction spring 6 is hung outside the two buckle sleeves 403. The traction spring 6 provides a restoring force for the movement of the movable plates 401, ensuring that the movable plates 401 can automatically return to the initial position when the external force disappears. At the sides of the lower ends of the movable plates 401 close to each other, movable cavities 404 are formed. At the sides away from each other inside the two movable cavities 404, racks 405 are fixedly connected. The two racks 405 are respectively in meshing transmission with the aforementioned gears 303. When the gears 303 rotate, they drive the two movable plates 401 to move relative to each other through the racks 405, thus realizing the adjustment of the distance between the docking assemblies 5. The docking assembly 5 consists of two connecting forks 501. The two connecting forks 501 are respectively fixedly connected to the sides of the two movable plates 401 away from each other. At the upper parts of the centers of the connecting forks 501, sleeve holes 502 are respectively penetrated and sleeved. These sleeve holes 502 are used for docking with other transmission mechanisms. The beneficial effect of this structural design is that it realizes the flexible adjustment of the distance between the docking assemblies 5. Driven by the synchronization mechanism 3, the movable mechanism 4 can move smoothly and precisely, thereby driving the docking assembly 5 to achieve the required position adjustment. At the same time, the addition of the traction spring 6 provides a stable restoring force for the movement of the movable mechanism 4, ensuring the stability and reliability of the mechanical connection joint fork. In addition, the coordinated action of the guiding mechanism 2 and the guide rails 402 further improves the linearity and accuracy of the movement of the movable mechanism 4.Enable the mechanical connection joint fork to exhibit more excellent performance in the transmission system.

[0026] Working principle: The connecting mechanism 1, as the core of the entire mechanical connecting joint fork, is mainly composed of a connecting rod 101 and a support plate 102. The connecting rod 101, as the main structure, plays a role in connection and support. The support plate 102 is firmly fixed at its upper end, providing a stable installation platform for other components. In order to guide the movement of the moving mechanism 4, the guiding mechanism 2 is designed and installed on both sides of the support plate 102. Two side support bars 201 are respectively fixedly connected to both sides of the support plate 102. Guide grooves 202 are respectively opened on the inner sides of the two side support bars 201 close to each other. The two guide grooves 202 provide a clear path and necessary support for the movement of the moving mechanism 4, ensuring the stability and accuracy of its movement. At the same time, in order to protect the guide grooves 202 from external environmental interference, protective covers 7 are fixedly connected to the upper ends of the two side support bars 201. The synchronization mechanism 3 is responsible for ensuring the bilateral synchronization of the moving mechanism 4 during movement. It is mainly composed of a central rod 301, a bearing 302, and a gear 303. The central rod 301 is fixedly connected to the center of the upper end of the support plate 102, and the bearing 302 is firmly sleeved on the outside of the central rod 301. This design enables the gear 303 to rotate stably on the outer ring of the bearing 302, and then through meshing with other transmission components, realizes the bilateral synchronous movement of the moving mechanism 4. The moving mechanism 4 is the key part of the mechanical connecting joint fork to achieve dynamic adjustment, and is composed of two moving plates 401. The two moving plates 401 can move relative to each other to adjust the distance between the two docking components 5. In order to ensure the stable and precise movement of the moving plates 401, guide rails 402 are fixedly connected to the centers of both sides of the two moving plates 401. The four guide rails 402 are respectively slidably sleeved inside the two previously mentioned guide grooves 202. This design strictly limits the movement of the moving plates 401 on the track of the guide grooves 202, thus ensuring the linearity and stability of the movement. At the centers of the upper ends of the moving plates 401, on the sides far from each other, buckle sleeves 403 are fixedly connected. Traction springs 6 are hung on the outside of these two buckle sleeves 403. The traction springs 6 provide a restoring force for the movement of the moving plates 401, ensuring that the moving plates 401 can automatically return to the initial position when the external force disappears. On the sides close to each other at the lower ends of the moving plates 401, moving cavities 404 are respectively opened. On the sides far from each other inside the two moving cavities 404, racks 405 are fixedly connected. The two racks 405 respectively achieve meshing transmission with the previously mentioned gear 303. When the gear 303 rotates, it drives the two moving plates 401 to move relative to each other through the racks 405, thereby realizing the adjustment of the distance between the docking components 5. The docking components 5 are composed of two connecting forks 501. The two connecting forks 501 are respectively fixedly connected to the sides of the two moving plates 401 far from each other. Sleeve holes 502 are respectively penetrated and sleeved at the upper centers inside the connecting forks 501. These sleeve holes 502 are used for docking with other transmission mechanisms.

[0027] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it.

Claims

1. A mechanical connecting joint fork, comprising a connecting mechanism (1), characterized in that: At the upper parts near both sides of the connecting mechanism (1), there are docking components (5) for docking with other transmission mechanisms. At the upper end of the connecting mechanism (1), there is a movable mechanism (4) for fixedly connecting the docking components (5) and driving the docking components (5) to move. Between the connecting mechanism (1) and the movable mechanism (4), there is a synchronization mechanism (3) for synchronously moving the movable mechanism (4) to both sides. On both sides of the connecting mechanism (1), there are guiding mechanisms (2) for assisting the guiding and moving of the movable mechanism (4).

2. The mechanical connection joint fork according to claim 1, wherein: The connecting mechanism (1) includes a connecting rod (101), and a support plate (102) is fixedly connected to the upper end of the connecting rod (101).

3. A mechanical connection joint fork according to claim 1, characterized in that: The guiding mechanism (2) includes two side support bars (201). The two side support bars (201) are respectively fixedly connected to both sides of the support plate (102). On the inner sides close to each other of the two side support bars (201), guiding grooves (202) are respectively formed through them.

4. The mechanical connecting joint fork according to claim 2, characterized in that: The synchronization mechanism (3) includes a central rod (301). The central rod (301) is fixedly connected to the center of the upper end of the support plate (102). An outer ring of a bearing (302) is fixedly sleeved on the outer side of the central rod (301), and a gear (303) is fixedly sleeved on the outer ring of the bearing (302).

5. A mechanical connecting joint fork according to claim 4, characterized in that: The movable mechanism (4) includes two movable plates (401). At the centers of both sides of the two movable plates (401), guiding rails (402) are fixedly connected. The four guiding rails (402) are respectively slidably sleeved inside the two guiding grooves (202). At the outer sides of the centers far away from each other of the upper ends of the two movable plates (401), socket buckles (403) are fixedly connected. At the inner sides close to each other of the lower ends of the two movable plates (401), movable cavities (404) are respectively formed. At the outer sides far away from each other of the two movable cavities (404), racks (405) are fixedly connected. The two racks (405) are respectively in meshing transmission with the gear (303).

6. The mechanical connection joint fork according to claim 1, wherein: The docking component (5) includes two connecting forks (501). The two connecting forks (501) are respectively fixedly connected to the outer sides of the two movable plates (401) far away from each other. Through holes (502) are respectively sleeved through the centers of the upper parts of the two connecting forks (501).

7. A mechanical connection joint fork according to claim 5, characterized in that: Traction springs (6) are hung on the outer sides of the two socket buckles (403).

8. The mechanical connecting joint fork according to claim 3, wherein: A protective cover (7) is fixedly connected to the upper ends of the two side support bars (201).