Dual-slide synchronous buffer mechanism
By using a buffered synchronous slide assembly to mitigate the inertial impact force of the slide, the problems of slide collision damage and synchronous movement are solved, achieving smooth and coordinated movement and protection of the slide.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- DONGTAI OULI TRANSMISSION PARTS CO LTD
- Filing Date
- 2025-08-23
- Publication Date
- 2026-07-31
AI Technical Summary
Existing dual-slide mechanisms continue to slide due to inertia after the drive stops, leading to collision damage. Furthermore, the motion response time is difficult to synchronize, and the slide is easily damaged when the span is too large.
The system employs a buffered synchronous slide assembly, including a sliding base, positioning rail, rubber pad, buffer seat, and auxiliary positioning rod. The buffer block and rubber pad mitigate inertial impact forces, and the force-bearing rod and the same force frame move in tandem to prevent the transmission of torsional forces.
It effectively mitigates the inertial impact of the slide, prevents damage from hard collisions, ensures synchronous movement of the slide, and protects the slide from damage caused by excessive torsional forces.
Smart Images

Figure CN224579686U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of mechanical transmission equipment technology, and in particular to a dual-slide synchronous buffer mechanism. Background Technology
[0002] In modern industrial automated production processes, double-slide mechanisms are widely used in various equipment. For example, when production line robots move in and out of exposure machines, they often need to use a double-slide synchronous buffer mechanism to achieve specific functions.
[0003] When using existing dual-slide mechanisms, the slides may continue to slide and collide after the drive stops due to inertia and other factors, causing damage to parts. Furthermore, the response time of the two slides is difficult to synchronize, and there may be situations where one slide moves first while the other slide has not yet started moving. Since the span between the two slides is large, the slide that moves first will generate a large bending moment on the slide that moves later, which may very likely damage the slide.
[0004] To address the aforementioned issues that existing slides cannot adapt to damage caused by inertia, and that excessively large spans between two slides can easily damage the slides, we propose a dual-slide synchronous buffer mechanism. Utility Model Content
[0005] The purpose of this invention is to provide a dual-slide synchronous buffer mechanism, which solves the problems that existing slides cannot adapt to the damage caused by inertia, and that the slides are easily damaged when the span between the two slides is too large.
[0006] To achieve the above objectives, this utility model employs a dual-slide synchronous buffer mechanism, comprising a mounting plate and a buffer-type synchronous slide assembly. The buffer-type synchronous slide assembly includes a sliding base, a sliding cavity, a positioning rail, a rubber pad, and a buffer seat. The sliding base is fixedly connected to the mounting plate and located on one side of the mounting plate. The sliding cavity is fixedly connected to the sliding base and located on the inner side of the sliding base away from the mounting plate. The positioning rail is fixedly connected to the sliding base and located on the inner side of the sliding base, and is disposed inside the sliding cavity. The positioning rail is also parallel to the sliding base. The rubber pad is detachably connected to the sliding base and located on the inner side of the sliding base, and is disposed on one side of the positioning rail. The rubber pad is also disposed on one side of the sliding cavity. The buffer seat is fixedly connected to the sliding base and located on the inner side of the sliding base near the mounting plate, and is disposed on one side of the rubber pad. The buffer seat is also disposed on the side of the positioning rail near the mounting plate.
[0007] The buffered synchronous slide assembly further includes an auxiliary positioning rod, which is fixedly connected to the sliding base and located inside the sliding base. The auxiliary positioning rod is also located inside the sliding cavity and on one side of the positioning rail. The auxiliary positioning rod is also parallel to the sliding base.
[0008] The buffered synchronous slide assembly further includes a slide table and a buffer block. The slide table is disposed on the outer surface of the positioning rail and the auxiliary positioning rod, and is also slidably connected to the sliding base and located inside the sliding base. The slide table is also disposed inside the sliding cavity. The buffer block is fixedly connected to the slide table and is located on the side of the slide table close to the buffer base, and the slide block and the buffer base are on the same vertical line.
[0009] The buffered synchronous slide assembly further includes a mounting rail, which is fixedly connected to the mounting plate and located on the side of the mounting plate away from the sliding base, and the mounting rail is arranged parallel to the mounting plate.
[0010] The buffered synchronous slide assembly further includes a connecting block, a force-bearing rod, and a force-coupling frame. The connecting block is fixedly connected to the slide and is located on the side of the slide away from the sliding base. The force-bearing rod is detachably connected to the connecting block and is located at the end of the connecting block away from the slide. The force-coupling frame is detachably connected to the force-bearing rod and is located on the side of the force-bearing rod away from the connecting block.
[0011] This utility model discloses a dual-slide synchronous buffer mechanism, comprising a mounting plate and a buffer-type synchronous slide assembly. The buffer-type synchronous slide assembly includes a sliding base, a sliding cavity, a positioning rail, a rubber pad, and a buffer seat. The sliding base is fixedly connected to the mounting plate and located on one side of the mounting plate. The sliding cavity is fixedly connected to the sliding base and located on the inner side of the sliding base away from the mounting plate. The positioning rail is fixedly connected to the sliding base and located on the inner side of the sliding base, and the positioning rail is disposed inside the sliding cavity. The positioning rail is also parallel to the sliding base. The rubber pad and the sliding cavity are connected to the sliding cavity. The base is detachably connected and located inside the sliding base. The rubber pad is located on one side of the positioning rail and also inside the sliding cavity. The buffer seat is fixedly connected to the sliding base and located inside the sliding base near the mounting plate. The buffer seat is located on one side of the rubber pad and also on the side of the positioning rail near the mounting plate. By modifying and replacing the original slide table structure with a buffer-type synchronous slide table assembly, the problems of existing slide tables being unable to adapt to the damage caused by inertia and the slide table being easily damaged when the span between the two slide tables is too large are effectively solved. Attached Figure Description
[0012] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0013] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0014] Figure 2 This is a utility model Figure 1 Enlarged view of the local structure at point A.
[0015] Figure 3 This is a front view of the entire utility model.
[0016] 101-Mounting plate, 102-Mounting rail, 103-Sliding base, 104-Sliding cavity, 105-Positioning rail, 106-Auxiliary positioning rod, 107-Sliding table, 108-Rubber pad, 109-Buffer seat, 110-Buffer block, 111-Connecting block, 112-Force-bearing rod, 113-Co-force frame. Detailed Implementation
[0017] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this utility model, and should not be construed as limiting this utility model.
[0018] Please see Figures 1-3 , Figure 1 This is a schematic diagram of the overall structure of this utility model. Figure 2 This is a utility model Figure 1 Enlarged view of the local structure at point A. Figure 3 This is a front view of the entire utility model.
[0019] This utility model provides a dual-slide synchronous buffer mechanism, including a mounting plate 101 and a buffer-type synchronous slide assembly. The buffer-type synchronous slide assembly includes a sliding base 103, a sliding cavity 104, a positioning rail 105, a rubber pad 108, a buffer seat 109, an auxiliary positioning rod 106, a sliding table 107, a buffer block 110, a mounting rail 102, a connecting block 111, a force-bearing rod 112, and a force-coordinating frame 113. This solution addresses the problems of existing slides being unable to adapt to damage caused by inertia, and the tendency for excessively large spans between the two slides to cause damage. Yes, when the aforementioned solution is in use, the mounting plate 101 can be easily installed and fixed to external equipment via the mounting rail 102. The sliding table 107 can slide along the positioning rail 105 and the auxiliary positioning rod 106 within the sliding cavity 104 of the sliding base 103. The positioning rail 105 and the auxiliary positioning rod 106 provide stable guidance for the sliding table 107, ensuring the smoothness of the sliding process. When the sliding table 107 slides to a position close to the buffer seat 109, the sliding table 10... The buffer block 110 on the 7 will first contact the buffer seat 109. The cooperation between the buffer seat 109 and the buffer block 110 can effectively alleviate the impact force caused by the inertia of the sliding table 107. At the same time, the rubber pad 108 can also further play a role in buffering and shock absorption, avoiding damage caused by a hard collision between the sliding table 107 and the sliding base 103. The force-bearing rod 112 and the co-force frame 113 are important components connecting the two sliding tables 107. When the two sliding tables 107 are at different height positions, the force-bearing rod 112... 12 will bear the force from the two sliding tables 107, ensuring that the two sliding tables 107 move in coordination to a certain extent. When the force-bearing rod 112 cannot bear the torsional force, the co-force frame 113 will automatically disconnect, thereby preventing excessive torsional force from being transmitted to the sliding table 107, thus protecting the sliding table 107 and preventing it from being damaged due to excessive torsional force. This effectively solves the problem that existing sliding tables cannot adapt to the damage caused by inertia, and that the sliding table is easily damaged when the span between the two sliding tables is too large.
[0020] In this specific embodiment, the sliding base 103 is fixedly connected to the mounting plate 101 and located on one side of the mounting plate 101. The sliding cavity 104 is fixedly connected to the sliding base 103 and located on the inner side of the sliding base 103 away from the mounting plate 101. The positioning rail 105 is fixedly connected to the sliding base 103 and located on the inner side of the sliding base 103. The positioning rail 105 is disposed inside the sliding cavity 104 and is also parallel to the sliding base 103. The rubber pad... 108 is detachably connected to the sliding base 103 and is located on the inner side of the sliding base 103. The rubber pad 108 is disposed on one side of the positioning rail 105. The rubber pad 108 is also disposed on one side of the sliding cavity 104. The buffer seat 109 is fixedly connected to the sliding base 103 and is located on the inner side of the sliding base 103 near the mounting plate 101. The buffer seat 109 is disposed on one side of the rubber pad 108. The buffer seat 109 is also disposed on the side of the positioning rail 105 near the mounting plate 101.
[0021] The auxiliary positioning rod 106 is fixedly connected to the sliding base 103 and is located inside the sliding base 103. The auxiliary positioning rod 106 is also located inside the sliding cavity 104 and is also located on one side of the positioning rail 105. The auxiliary positioning rod 106 is also parallel to the sliding base 103.
[0022] Secondly, the sliding table 107 is disposed on the outer surface of the positioning rail 105 and the auxiliary positioning rod 106, and the sliding table 107 is also slidably connected to the sliding base 103 and located inside the sliding base 103. The sliding table 107 is also disposed inside the sliding cavity 104. The buffer block 110 is fixedly connected to the sliding table 107 and is located on the side of the sliding table 107 close to the buffer seat 109. The sliding block and the buffer seat 109 are on the same vertical line.
[0023] Meanwhile, the mounting rail 102 is fixedly connected to the mounting plate 101 and is located on the side of the mounting plate 101 away from the sliding base 103, and the mounting rail 102 is arranged parallel to the mounting plate 101.
[0024] The connecting block 111 is fixedly connected to the sliding table 107 and is located on the side of the sliding table 107 away from the sliding base 103. The force-bearing rod 112 is detachably connected to the connecting block 111 and is located at the end of the connecting block 111 away from the sliding table 107. The force-bearing frame 113 is detachably connected to the force-bearing rod 112 and is located on the side of the force-bearing rod 112 away from the connecting block 111.
[0025] When using this utility model, the mounting plate 101 can be easily installed and fixed to external equipment via the mounting rail 102. The sliding table 107 can slide along the positioning rail 105 and the auxiliary positioning rod 106 within the sliding cavity 104 of the sliding base 103. The positioning rail 105 and the auxiliary positioning rod 106 provide stable guidance for the sliding table 107, ensuring the smoothness of the sliding process. When the sliding table 107 slides close to the buffer seat 109, the buffer block 110 on the sliding table 107 will first contact the buffer seat 109. The cooperation between the buffer seat 109 and the buffer block 110 can effectively alleviate the impact force caused by the inertia of the sliding table 107. At the same time, the rubber pad 108 can further play a role in buffering and shock absorption, avoiding... The sliding table 107 is damaged by a hard collision with the sliding base 103. The force-bearing rod 112 and the co-force frame 113 are important components connecting the two sliding tables 107. When the two sliding tables 107 are at different heights, the force-bearing rod 112 will bear the force from the two sliding tables 107, ensuring that the two sliding tables 107 move in coordination to a certain extent. When the force-bearing rod 112 cannot bear the torsional force, the co-force frame 113 will automatically disconnect, thereby preventing excessive torsional force from being transmitted to the sliding table 107, thus protecting the sliding table 107 and preventing it from being damaged due to excessive torsional force. This effectively solves the problem that existing sliding tables cannot adapt to the damage caused by inertia, and that the sliding tables are easily damaged when the span between the two sliding tables is too large.
[0026] The above-disclosed embodiments are merely preferred embodiments of the present utility model and should not be construed as limiting the scope of the present utility model. Those skilled in the art can understand that implementing all or part of the above-described embodiments and making equivalent changes in accordance with the claims of the present utility model are still within the scope of the utility model.
Claims
1. A dual-slide synchronous buffer mechanism, comprising a mounting plate, characterized in that, It also includes a buffered synchronous slide assembly, which includes a sliding base, a sliding cavity, a positioning rail, a rubber pad, and a buffer seat. The sliding base is fixedly connected to the mounting plate and located on one side of the mounting plate. The sliding cavity is fixedly connected to the sliding base and located on the inner side of the sliding base away from the mounting plate. The positioning rail is fixedly connected to the sliding base and located on the inner side of the sliding base, and the positioning rail is disposed inside the sliding cavity. The positioning rail is also parallel to the sliding base. The rubber pad is detachably connected to the sliding base and located on the inner side of the sliding base, and the rubber pad is disposed on one side of the positioning rail. The rubber pad is also disposed on one side of the sliding cavity. The buffer seat is fixedly connected to the sliding base and located on the inner side of the sliding base near the mounting plate, and the buffer seat is disposed on one side of the rubber pad. The buffer seat is also disposed on the side of the positioning rail near the mounting plate.
2. The dual-slide synchronous buffer mechanism as described in claim 1, characterized in that, The buffered synchronous slide assembly also includes an auxiliary positioning rod, which is fixedly connected to the sliding base and located on one side inside the sliding base. The auxiliary positioning rod is also located on one side inside the sliding cavity and on one side of the positioning rail. The auxiliary positioning rod is also arranged parallel to the sliding base.
3. The dual-slide synchronous buffer mechanism as described in claim 2, characterized in that, The buffered synchronous slide assembly further includes a slide table and a buffer block. The slide table is disposed on the outer surface of the positioning rail and the auxiliary positioning rod, and the slide table is also slidably connected to the sliding base and located inside the sliding base. The slide table is also disposed inside the sliding cavity. The buffer block is fixedly connected to the slide table and located on the side of the slide table close to the buffer base, and the slide block and the buffer base are on the same vertical line.
4. The dual-slide synchronous buffer mechanism as described in claim 1, characterized in that, The buffered synchronous slide assembly also includes a mounting rail, which is fixedly connected to the mounting plate and located on the side of the mounting plate away from the sliding base, and the mounting rail is arranged parallel to the mounting plate.
5. The dual-slide synchronous buffer mechanism as described in claim 3, characterized in that, The buffered synchronous slide assembly further includes a connecting block, a force-bearing rod, and a force-coupling frame. The connecting block is fixedly connected to the slide and is located on the side of the slide away from the sliding base. The force-bearing rod is detachably connected to the connecting block and is located at the end of the connecting block away from the slide. The force-coupling frame is detachably connected to the force-bearing rod and is located on the side of the force-bearing rod away from the connecting block.