Synchronous vibration system of brick machine
By using springs and deformation sleeves to enhance the connection between the moving and stationary molds in the synchronous vibration system of the brick machine, the problem of poor vibration damping caused by insufficient deformation of the rubber sleeves was solved, achieving more uniform vibration and protection of the moving mold.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- FUJIAN WEIKYONG MASCH CO LTD
- Filing Date
- 2023-12-27
- Publication Date
- 2026-05-05
AI Technical Summary
The existing synchronous vibration system of brick making machines has low rubber sleeve deformation, resulting in poor shock absorption and easy damage to the moving and stationary molds.
A spring is used to replace the rubber sleeve to connect the moving mold and the stationary mold, and extension plates and deformation sleeves are set on both sides of the connecting seat to enhance the shock absorption effect. Combined with the existing crank rocker structure, the moving mold is driven to vibrate.
It increases the amount of movement between the moving mold and the stationary mold, resulting in more uniform vibration and reducing the risk of damage to the moving mold during vibration.
Smart Images

Figure CN224196978U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of brick machine equipment, and specifically relates to a synchronous vibration system for brick machines. Background Technology
[0002] Synchronous vibration systems are commonly used in brick-making equipment. They are used to vibrate and compact raw materials within the mold during filling. Existing synchronous vibration systems include a moving mold, a stationary mold, and a rubber sleeve. A screw and nut connect the moving mold and the stationary mold. The rubber sleeve is fitted onto the screw and is located between the moving mold and the stationary mold, as well as between the nut and the stationary mold. Because the rubber sleeve itself has low deformation, and it is further compressed by gravity after the moving mold and the stationary mold are installed, the damping effect of the moving mold and the stationary mold is insufficient during vibration, which can easily cause damage to the moving mold and the stationary mold. In view of this, this solution was developed. Utility Model Content
[0003] In view of the shortcomings of the existing technology, the technical problem to be solved by this utility model is to provide a synchronous vibration system for brick making machines, which has a better shock absorption effect.
[0004] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is: a synchronous vibration system for a brick machine, including a moving mold, a stationary mold, a first connecting rod, and a vibration drive assembly. The moving mold has first through holes on both sides, and the stationary mold has second through holes on both sides. The moving mold and the stationary mold are arranged vertically at intervals, and the first and second through holes correspond to each other. The first connecting rod passes through the first and second through holes. The first connecting rod has a top abutment above the first through hole, and the top abutment abuts against the upper surface of the moving mold. The first connecting rod is connected to a first locking ring below the second through hole. Springs are provided between the moving mold and the stationary mold, and between the stationary mold and the first locking ring. The springs are sleeved on the first connecting rod. The vibration drive assembly is used to drive the moving mold to vibrate vertically.
[0005] Furthermore, the first connecting rod is a bolt, and the first locking ring is a nut.
[0006] Furthermore, the upper surface of the moving mold is connected to multiple connecting seats, which are spaced apart. The length of each connecting seat is parallel to the direction of the multiple first through holes. The connecting seats have extension plates extending from the moving mold on both sides. Each extension plate has a third through hole, and a second connecting rod is disposed in the third through hole. The upper end of the second connecting rod has a locking end, which abuts against the upper surface of the extension plate. The lower end of the second connecting rod is connected to a second locking ring. A deformation sleeve is disposed between the second locking ring and the extension plate, and the deformation sleeve is sleeved on the second connecting rod.
[0007] Furthermore, the deformation sleeve is a rubber sleeve.
[0008] Furthermore, the second connecting rod is a screw, and the second locking ring is a nut.
[0009] Compared with the prior art, the present invention has the following beneficial effects:
[0010] 1. This utility model improves the rubber ring between the moving mold and the stationary mold, as well as between the stationary mold and the first locking ring, by replacing it with a spring, which makes the movement between the moving mold and the stationary mold greater, improves the vibration effect, and makes the vibrating material more uniform.
[0011] 2. The extension seat, second connecting rod, nut and deformation sleeve are set on both sides of the connecting seat to further dampen the moving mold during vibration and prevent the moving mold from cracking in the middle during vibration. Attached Figure Description
[0012] Figure 1 This is a three-dimensional structural diagram of a synchronous vibration system for a brick machine according to the present invention;
[0013] Figure 2 This utility model Figure 1 A magnified schematic diagram of the partial structure at point A in the middle;
[0014] Figure 3 This is a side view of the structure of this utility model.
[0015] The markings in the diagram are: 1. Moving mold; 11. Connecting seat; 12. Extension plate; 2. Stationary mold; 3. First connecting rod; 4. First locking ring; 5. Spring; 6. Second connecting rod; 7. Second locking ring; 8. Deformation sleeve; 9. Vibration drive assembly. Detailed Implementation
[0016] To make the above-mentioned features and advantages of this utility model more apparent and understandable, specific embodiments are described below in conjunction with the accompanying drawings for detailed explanation.
[0017] like Figure 1-3 As shown, this embodiment provides a synchronous vibration system for a brick machine, including a moving mold 1, a stationary mold 2, a first connecting rod 3, a first locking ring 4, a second connecting rod 6, a second locking ring 7, and a vibration drive assembly 9.
[0018] The moving mold 1 has first through holes on both sides. The stationary mold 2 is fixedly set and has second through holes on both sides. The moving mold 1 and the stationary mold 2 are spaced apart vertically, with the first and second through holes corresponding to each other. A first connecting rod 3 passes through the first and second through holes. The first connecting rod 3 has a top abutment above the first through hole, which abuts against the upper surface of the moving mold 1. Specifically, the first connecting rod 3 is a bolt, and the top abutment is a bolt head. A first locking ring 4, which is a nut, is connected to the first connecting rod 3 below the second through hole. A spring 5 is provided between the moving mold 1 and the stationary mold 2, and between the stationary mold 2 and the first locking ring 4. The spring 5 is sleeved on the first connecting rod 3.
[0019] Multiple connecting seats 11 are connected to the upper surface of the moving mold 1. The connecting seats 11 are spaced apart, and their lengths are parallel to the direction of the multiple first through holes. Extension plates 12 extend from both sides of the connecting seats 11, and each extension plate 12 has a third through hole. A second connecting rod 6 is installed within the third through hole. The upper end of the second connecting rod 6 has a locking end that abuts against the upper surface of the extension plate 12. The second connecting rod 6 is a screw, and the locking end is a bolt head. A second locking ring 7, which is a nut, is connected to the lower end of the second connecting rod 6. A deformation sleeve 8 is installed between the second locking ring 7 and the extension plate 12. The deformation sleeve 8 is fitted onto the second connecting rod 6. Specifically, the deformation sleeve 8 is a rubber sleeve. The extension seats, second connecting rods 6, nuts, and deformation sleeves 8 on both sides of the connecting seats 11 are provided to further dampen the moving mold 1 during vibration and prevent it from cracking in the middle during vibration.
[0020] Preferably, a nut is also provided between the deformation sleeve 8 and the extension plate 12. This is because the lateral deformation does not need to be too large, and a large gap may be generated between the deformation sleeve 8 and the extension plate 12. The nut is used to fill the corresponding gap.
[0021] The vibration drive assembly 9 is used to drive the moving mold 1 to vibrate up and down. In this solution, the vibration drive assembly 9 adopts the crank rocker structure in the prior art to realize the vibration of the moving mold 1.
[0022] Working principle: The vibration drive assembly 9 drives the moving mold 1 to vibrate. When the vibration drive assembly 9 drives the moving mold 1 upward, the spring 5 below the stationary mold 2 is compressed; when the vibration drive assembly 9 drives the moving mold 1 upward, the spring 5 above the stationary mold 2 is compressed. The vibration drive assembly is used to drive the moving mold to vibrate up and down. In this solution, the vibration drive assembly adopts the crank-rocker structure of the existing technology to achieve the vibration of the moving mold.
[0023] Working principle: The vibration drive component drives the moving mold to vibrate. When the vibration drive component drives the moving mold upward, the spring below the stationary mold is compressed. When the vibration drive component drives the moving mold upward, the spring above the stationary mold is compressed.
[0024] The foregoing has shown and described the basic principles and main features of this invention, as well as its advantages. Those skilled in the art should understand that this invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this invention. Various changes and modifications can be made to this invention without departing from its spirit and scope. All such changes and modifications fall within the scope of this invention as defined by the appended claims and their equivalents.
Claims
1. A synchronous vibration system for a brick machine, characterized in that: The device includes a moving mold, a stationary mold, a first connecting rod, and a vibration drive assembly. The moving mold has first through holes on both sides, and the stationary mold has second through holes on both sides. The moving mold and the stationary mold are spaced apart vertically, and the first and second through holes correspond to each other. The first connecting rod passes through the first and second through holes. The first connecting rod has a top abutment above the first through hole, which abuts against the upper surface of the moving mold. A first locking ring is connected to the first connecting rod below the second through hole. Springs are provided between the moving mold and the stationary mold, and between the stationary mold and the first locking ring. The springs are sleeved on the first connecting rod. The vibration drive assembly is used to drive the moving mold to vibrate up and down.
2. The synchronous vibration system for a brick machine according to claim 1, characterized in that: The first connecting rod is a bolt, and the first locking ring is a nut.
3. The synchronous vibration system for a brick machine according to claim 1, characterized in that: The upper surface of the moving mold is connected to multiple connecting seats, which are spaced apart. The length of each connecting seat is parallel to the direction of the multiple first through holes. The connecting seats have extension plates extending from the moving mold on both sides. Each extension plate has a third through hole, and a second connecting rod is disposed in the third through hole. The upper end of the second connecting rod has a locking end, which abuts against the upper surface of the extension plate. The lower end of the second connecting rod is connected to a second locking ring. A deformation sleeve is disposed between the second locking ring and the extension plate, and the deformation sleeve is sleeved on the second connecting rod.
4. The synchronous vibration system for a brick machine according to claim 3, characterized in that: The deformation sleeve is a rubber sleeve.
5. A brick-making synchronous vibration system according to claim 3, characterized in that: The second connecting rod is a screw, and the second locking ring is a nut.