A vibration platform
By combining vertical and horizontal vibration structures on a vibration platform, multi-dimensional vibration is achieved, solving the problem of low production efficiency in existing technologies and improving the density and strength of concrete products.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JILIN RUIXIN ENVIRONMENTAL PROTECTION NEW BUILDING MATERIALS CO LTD
- Filing Date
- 2025-06-30
- Publication Date
- 2026-07-31
AI Technical Summary
Existing concrete product vibration platforms have simple structures, resulting in low production efficiency and failing to meet actual needs.
By combining vertical and horizontal vibration structures, and superimposing the vertical and horizontal vibration structures, multi-dimensional vibration is achieved, thereby increasing the vibration effect.
It improves the density and strength of concrete products and increases production efficiency.
Smart Images

Figure CN224575859U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of concrete product manufacturing equipment, and in particular to a vibration platform. Background Technology
[0002] Vibration platforms can compact loose materials, reducing air and gaps within the materials. In the dry-process concrete product manufacturing industry, vibration platforms are used to remove air bubbles from concrete products to be formed, resulting in denser and stronger products. Existing vibration platforms for concrete products use vibration motors to directly drive the platform, which is relatively simple in structure, increases operation time, and leads to low production efficiency, failing to meet the needs of actual use. Utility Model Content
[0003] The purpose of this invention is to provide a vibration platform to solve the problems mentioned in the background art.
[0004] To achieve the above objectives, this utility model provides the following technical solution: a vibration platform, including a vibration plate, which is disposed above a workbench. A vertical vibration structure is disposed below the vibration plate, and transverse vibration structures are disposed at both ends of the vibration plate. The vertical vibration structure includes a vibration rod disposed in a slide groove. A vertical eccentric wheel is disposed below the vibration rod and is disposed on a first drive shaft. The transverse vibration structure includes a transverse eccentric wheel and is disposed on a second drive shaft.
[0005] The vibrating plate has mounting plates on both sides, and the ends of the mounting plates have displacement grooves that cooperate with the transverse eccentric wheels on both sides of the worktable.
[0006] The transverse eccentric wheel is mounted on the slide rail on the bracket, and the slide rail enters the displacement groove with a gap between it and the displacement groove.
[0007] The second drive shaft is set in the groove, and the horizontal position of the transverse eccentric wheel is located in the middle of the displacement groove.
[0008] The slide rails are fixedly mounted on the supports on both sides of the worktable.
[0009] The vibrating plate is equipped with mounting grooves.
[0010] The technical effects and advantages of this utility model are as follows: This utility model adopts a vertical vibration structure, which realizes the vibration of the vibrating plate and the forming mold on the vibrating plate. The two ends of the vibrating plate are also provided with a transverse vibration structure, which causes the vibrating plate to move laterally and superimposes the vibration of the vibrating plate. The multi-dimensional vibration can increase the vibration effect of the vibration platform. Attached Figure Description
[0011] Figure 1 This is a three-dimensional structural diagram of the present invention; Figure 2 This is a schematic diagram of the vertical vibration structure and the installation structure of the vibration plate of this utility model; Figure 3 This is a schematic diagram of the transverse vibration structure and the installation structure of the vibration plate of this utility model; In the figure: 1. Vibrating plate, 2. Mounting groove, 3. Workbench, 4. Vibrating rod, 5. Vertical eccentric wheel, 6. First drive shaft, 7. Slide groove, 8. Horizontal eccentric wheel, 9. Second drive shaft, 10. Mounting plate, 11. Displacement groove, 12. Slide rail, 13. Bracket, 14. Groove, 15. Vertical vibration structure, 16. Horizontal vibration structure. Detailed Implementation
[0012] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0013] This utility model provides, for example Figures 1-3 The vibration platform shown is used to vibrate the forming mold in cement brick production to eliminate air bubbles in the brick and increase the strength of the brick. The vibration platform includes a vibration plate 1 with a mounting groove 2, and the forming mold is confined within the mounting groove 2.
[0014] A vibrating plate 1 is positioned above the workbench 3, and a vertical vibration structure 15 is positioned below the vibrating plate 1. The vertical vibration structure 15 is used to vibrate the vibrating plate 1 and the forming mold on the vibrating plate 1. The vertical vibration structure 15 includes a vibrating rod 4, and a vertical eccentric wheel 5 is positioned below the vibrating rod 4. The vertical eccentric wheel 5 is mounted on a first drive shaft 6, which drives the first drive shaft 6 to rotate. The first drive shaft 6 drives the vertical eccentric wheel 5 to rotate. During the rotation of the vertical eccentric wheel 5, the vibrating rod 4 is pushed up and down. Multiple vibrating rods 4 are provided. The vibration of the vibrating plate 1 is achieved under the action of multiple vibrating rods 4. The vibrating rod 4 is positioned in a sliding groove 7 and slides with the inner wall of the sliding groove 7. The sliding groove 7 guides the vibrating rod 4.
[0015] The vibrating plate 1 has transverse vibration structures 16 at both ends. The transverse vibration structure 16 includes a transverse eccentric wheel 8, which is mounted on a second drive shaft 9 and drives the second drive shaft 9 to rotate. The second drive shaft 9 drives the transverse eccentric wheel 8 to rotate, and the transverse eccentric wheel 8 drives the vibrating plate 1 to move laterally during rotation. Specifically, the vibrating plate 1 has mounting plates 10 on both sides, and the end of the mounting plate 10 has a displacement groove 11. The displacement groove 11 cooperates with the transverse eccentric wheels 8 on both sides of the worktable 3. During rotation, the transverse eccentric wheels 8 alternately collide with the side walls on both sides of the displacement groove 11, causing the vibrating plate 1 to move laterally and superimposing the vibration of the vibrating plate 1.
[0016] The slide rail 12 is fixedly mounted on the brackets 13 on both sides of the workbench 3. The slide rail 12 limits the movement of the vibrating plate 1. The transverse eccentric wheel 8 is mounted on the slide rail 12 on the bracket 13. The slide rail 12 enters the displacement groove 11 and leaves a gap with the displacement groove 11. The slide rail 12 limits the transverse movement range of the vibrating plate 1 and does not obstruct the vertical movement of the vibrating plate 1.
[0017] The slide rail 12 is also provided with a mounting structure groove 14 for the transverse eccentric wheel 8. The second drive shaft 9 is set in the groove 14. The horizontal position of the transverse eccentric wheel 8 is located in the middle of the displacement groove 11. During the rotation of the eccentric wheel, it can collide with the three side walls of the displacement groove 11, control the rotation frequency and speed of the transverse eccentric wheels 8 on both sides of the vibrating plate 1, and subject the vibrating plate 1 to multi-dimensional impact and vibration.
Claims
1. A vibration platform, characterized in that, It includes a vibrating plate, which is set above the worktable. A vertical vibration structure is set below the vibrating plate, and a horizontal vibration structure is set at both ends of the vibrating plate. The vertical vibration structure includes a vibrating rod, which is set in a chute. A vertical eccentric wheel is set below the vibrating rod and is set on a first drive shaft. The horizontal vibration structure includes a horizontal eccentric wheel, which is set on a second drive shaft.
2. A vibrating platform according to claim 1, wherein The vibrating plate has mounting plates on both sides, and the ends of the mounting plates have displacement grooves that cooperate with the transverse eccentric wheels on both sides of the worktable.
3. A vibrating platform according to claim 2, wherein, The transverse eccentric wheel is mounted on the slide rail on the bracket, and the slide rail enters the displacement groove with a gap between it and the displacement groove.
4. A vibrating platform according to claim 3, wherein, The slide rail has a groove, the second drive shaft is located in the groove, and the horizontal position of the transverse eccentric wheel is located in the middle of the displacement groove.
5. A vibrating platform according to claim 4, wherein, The slide rails are fixedly mounted on the supports on both sides of the worktable.
6. A vibration platform according to claim 1, wherein, The vibrating plate is equipped with mounting grooves.