Vibrating device of tile tiling machine

By separating the vibration mechanism from the gripping part on the tile paving machine and using retaining rings and buffer components to isolate the vibration, the problem of hand fatigue for the gripper is solved, resulting in a stronger vibration effect and higher work efficiency.

CN224149108UActive Publication Date: 2026-04-21NINGBO APOWER MECHANICAL&TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
NINGBO APOWER MECHANICAL&TECH CO LTD
Filing Date
2025-05-13
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Existing tile pavers cannot avoid hand fatigue injuries to the operator during vibration, affecting user comfort.

Method used

The vibration mechanism is separated from the gripping part, and vibration transmission is isolated by a retaining ring and a buffer assembly. A vibration motor drives an eccentric wheel to generate strong vibration, and the vibration effect is optimized by a buffer assembly.

Benefits of technology

It effectively avoids hand fatigue damage, improves grip comfort, and enhances vibration effect and equipment working efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a ceramic tile tiling machine vibration device, and relates to the technical field of building equipment, the ceramic tile tiling machine vibration device comprises a shell, a holding rod connected to one side of the shell, a suction cup movably arranged in the shell and a base plate arranged at the bottom of the shell, the suction cup is arranged on the base plate, and a cavity used for forming negative pressure is defined between the suction cup and the base plate; the suction cup is connected with an adsorption mechanism used for driving the suction cup to adsorb ceramic chips, a mounting ring groove is formed in the shell, a connecting pipe is integrally connected to the edge of the base plate, the top of the connecting pipe is movably clamped in the mounting ring groove, and a vibration mechanism used for generating a vibration effect is mounted on the base plate. The vibration mechanism can drive the top of the connecting pipe to shake in the mounting ring groove, and a buffer assembly is arranged in the mounting ring groove. The vibration effect of the tile tiling machine is enhanced, meanwhile, the vibration influence on the hands of workers during equipment use is weakened, the operation comfort of the workers is improved, and the fatigue feeling is reduced.
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Description

Technical Field

[0001] This application relates to the field of building equipment technology, and in particular to a vibration device for a tile paving machine. Background Technology

[0002] A tile paving machine is a specialized piece of equipment used for laying tiles, primarily to improve the efficiency and precision of tile laying. It mainly consists of a suction cup assembly, a vibration assembly, and a navigation system to help workers quickly pick up tiles and secure them to the ground. Specifically, an internal motor drives an eccentric block to vibrate, helping the tile adhere tightly to the ground or wall. Simultaneously, the suction cup assembly holds the tile in place, preventing it from shifting during the laying process.

[0003] However, existing tile pavers inevitably cause hand fatigue during vibration. Especially during prolonged use, the vibration mechanism can cause hand strain and injury. Therefore, the vibration structure of tile pavers still needs improvement. Utility Model Content

[0004] In order to improve the structure of existing tile pavers so that the user can shield themselves from the effects of tile pavers’ vibrations and improve user comfort, this application provides a vibration device for a tile paver.

[0005] The vibratory device for a tile paving machine provided in this application adopts the following technical solution:

[0006] A vibration device for a tile paving machine includes a housing, a gripping rod connected to one side of the housing, a suction cup movably disposed within the housing, and a base plate disposed at the bottom of the housing. The suction cup is disposed on the base plate and forms a cavity with the base plate to create a negative pressure. The suction cup is connected to an adsorption mechanism for driving the suction cup to adsorb ceramic tiles. An installation annular groove is formed inside the housing. A connecting tube is integrally connected to the edge of the base plate. The top of the connecting tube is movably engaged in the installation annular groove. A vibration mechanism for generating a vibration effect is mounted on the base plate. The vibration mechanism can drive the top of the connecting tube to sway within the installation annular groove. A buffer component is disposed within the installation annular groove.

[0007] Optionally, a retaining ring is detachably fitted on the top of the connecting pipe, and the retaining ring is movably engaged in the mounting ring groove. The top of the housing is provided with a communicating ring groove that communicates with the mounting ring groove. The buffer assembly includes a sealing cap for closing the communicating ring groove and several springs, one end of which is connected to the bottom side of the mounting ring groove. The other end of each of the springs abuts against the bottom of the retaining ring.

[0008] Optionally, the bottom of the sealing cap is provided with a rubber pad layer to prevent the retaining ring from violently colliding with the sealing cap.

[0009] Optionally, the retaining ring has two symmetrical through holes 1 on its inner side, and the connecting tube has two through holes 2 corresponding to the two through holes 1 respectively. The housing is provided with a connector for detachably connecting the retaining ring and the connecting tube. The two ends of the connector along the length direction pass through the two through holes 2 respectively and are threaded into the two through holes 1 respectively.

[0010] Optionally, the connector includes a central sleeve portion, two screw portions threaded through both ends of the sleeve portion, and two rotating portions respectively sleeved on the two screw portions. The two rotating portions are threadedly sleeved with the two screw portions, and the two screw portions are respectively threaded through the two through holes and threaded into the two through holes.

[0011] Optionally, the adsorption mechanism includes a connecting post integrally connected to the suction cup and a pull rod with one end hinged to the inner wall of the housing. The middle part of the pull rod is hinged to the end of the connecting post away from the suction cup. A first connecting rod is connected to the sleeve part. A second connecting rod is hinged to the pull rod and is hinged to the end of the first connecting rod away from the sleeve part. A limiting ring is connected to the first connecting rod to prevent the first connecting rod from moving laterally. When the pull rod is pulled up to a predetermined position, the retaining ring abuts against the sealing cover.

[0012] In summary, this application includes at least one of the following beneficial technical effects:

[0013] 1. This application separates the vibration mechanism of the tile paving machine from the structure of the hand gripping part, so that the tile paving machine can effectively avoid fatigue damage to the worker's hands when vibrating, improve gripping comfort, and enable long-term gripping operation;

[0014] 2. This application separates the vibration mechanism of the tile paving machine from the housing, so that the equipment can have greater vibration kinetic energy when vibrating, thereby optimizing the vibration effect of the tile paving machine and improving its working efficiency. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the overall structure of a vibration device for a tile paving machine according to this application.

[0016] Figure 2 yes Figure 1 Cross-sectional view at point AA.

[0017] Figure 3 This is a schematic diagram of the internal structure of a vibration device for a tile paving machine according to this application.

[0018] Figure 4 This is an exploded view of the connection structure between the retaining ring and the connecting pipe of the vibration device of a tile paving machine according to this application.

[0019] Explanation of reference numerals in the attached drawings: 1. Housing; 11. Grip rod; 12. Mounting ring groove; 13. Connecting ring groove; 121. Snap ring; 1211. Perforation 1; 2. Suction cup; 3. Base plate; 31. Connecting pipe; 311. Perforation 2; 4. Adsorption mechanism; 41. Connecting column; 42. Pull rod; 43. Connecting rod 1; 44. Connecting rod 2; 45. Limiting ring; 5. Vibration mechanism; 51. Vibration motor; 52. Eccentric wheel; 6. Buffer assembly; 61. Sealing cover; 62. Spring; 63. Rubber pad; 7. Connector; 71. Sleeve part; 72. Screw part; 73. Rotating part. Detailed Implementation

[0020] The following is in conjunction with the appendix Figure 1-4 This application will be described in further detail.

[0021] This application discloses a vibration device for a tile paving machine.

[0022] Reference Figure 1 and Figure 2 A vibrating device for a tile paving machine includes a housing 1, a gripping rod 11 connected to one side of the housing 1, a suction cup 2 movably disposed within the housing 1, and a base plate 3 disposed at the bottom of the housing 1. The suction cup 2 is mounted on the base plate 3, forming a closed cavity between them. When the suction cup 2 vibrates, air within this cavity is drawn out, creating a negative pressure that firmly adheres the tile to the bottom of the device. An adsorption mechanism 4 is connected to the suction cup 2 to drive its vibration, thereby creating negative pressure to firmly adhere the tile.

[0023] Reference Figure 2 Furthermore, the housing 1 has an internal mounting ring groove 12, and a connecting pipe 31 is integrally connected to the edge of the chassis 3. The end of the connecting pipe 31 away from the chassis 3 extends into the interior of the mounting ring groove 12, forming a snap-fit ​​effect. A retaining ring 121 is provided inside the mounting ring groove 12 to snap the connecting pipe 31 in place, so that the connecting pipe 31 will not accidentally come out of the mounting ring groove 12.

[0024] Meanwhile, the chassis 3 is also equipped with a vibration mechanism 5 for generating vibration, so that when the equipment is working, the vibration mechanism 5 can drive the suction cup 2 and the chassis 3 to vibrate simultaneously, increasing the kinetic energy of the vibration and optimizing the vibration effect. Compared with the prior art, the vibration mechanism 5 in this application can achieve a stronger vibration effect because it can drive the chassis 3 to shake.

[0025] The vibration mechanism 5 specifically includes a vibration motor 51 mounted on the chassis 3 and an eccentric wheel 52 fixedly sleeved on the output shaft of the vibration motor 51. When the vibration motor 51 drives the eccentric wheel 52 to rotate, the uneven weight distribution will cause the chassis 3 to move up and down, thus achieving the purpose of vibration.

[0026] Since this structure is relatively simple and belongs to the prior art, the above content is only an explanation of one possible solution of the structure of the vibration mechanism 5 applicable to this application, and is not intended to limit the scope of protection of Zhen Shenqing.

[0027] It should be noted that the cross-section of the mounting ring groove 12 in this application is a T-shaped structure, that is, the inner diameter of the bottom outlet of the mounting ring groove 12 is smaller than its inner diameter, so as to ensure that the movement of the retaining ring 121 is smoother and will not cause the retaining ring 121 to fall out of the mounting ring groove 12.

[0028] Reference Figure 2 and Figure 3 Specifically, the retaining ring 121 is detachably fitted onto the top of the connecting pipe 31. A communicating annular groove 13, which communicates with the mounting annular groove 12, is provided on the top of the housing 1 to facilitate quick disassembly of the retaining ring 121 and the base. A buffer assembly 6 is also provided within the mounting annular groove 12 to facilitate the reset of the chassis 3 and prevent excessive vibration of the equipment.

[0029] The buffer assembly 6 specifically includes a sealing cap 61 and several springs 62, one end of which is connected to the bottom side of the mounting ring groove 12. The sealing cap 61 is positioned at the position of the connecting ring groove 13 to close the connecting ring groove 13 while limiting the position of the retaining ring 121. The other ends of the springs 62 abut against the bottom side of the retaining ring 121 to improve the vibration effect and protect the structural integrity of the parts.

[0030] Reference Figure 2 and Figure 3 Furthermore, a rubber pad 63 is also laid at the bottom of the sealing cover 61. The function of the rubber pad 63 is to provide cushioning for the retaining ring 121 and the chassis 3 connected to the retaining ring 121, thereby preventing the retaining ring 121 and the sealing cover 61 from colliding violently during equipment vibration, which could cause damage to the parts.

[0031] Reference Figure 2 and Figure 4The detachable connection between the retaining ring 121 and the connecting tube 31 specifically refers to the following: the inner side of the retaining ring 121 has two symmetrical through holes 1211, and the end of the connecting tube 31 has two symmetrical through holes 311. Both through holes 1211 and 311 are coaxial. A connector 7 is provided inside the housing 1 for detachably connecting the retaining ring 121 and the connecting tube 31. During connection, both ends of the connector 7 along its length pass through the two through holes 311, and then are threaded into the two through holes 1211.

[0032] More specifically, the connector 7 includes a central sleeve portion 71, two symmetrically arranged threaded portions 72 passing through both ends of the sleeve portion 71, and two rotating portions 73 respectively fitted onto the threaded portions 72. The two rotating portions 73 are symmetrically threaded onto the two threaded portions 72. During installation, simply driving the rotating portions 73 to rotate allows the threaded portions 72 to pass through through holes 311 and 1211. This structure is easy to install and simple in design, which helps reduce production costs and improves the practical cost-effectiveness of the equipment.

[0033] Reference Figure 3 and Figure 4 The adsorption mechanism 4 specifically includes a connecting post 41 integrally connected to the suction cup 2 and a pull rod 42 with one end hinged to the inner wall of the housing 1. The middle part of the pull rod 42 is hinged to the end of the connecting post 41 away from the suction cup 2. When the pull rod 42 is rotated, the connecting post 41 will drive the suction cup 2 to bulge towards one side of the housing 1, thereby creating a negative pressure in the cavity formed by the suction cup 2 and the base 3, achieving the purpose of adsorbing ceramic tiles.

[0034] Furthermore, the sleeve 71 is connected to a first connecting rod 43, and a second connecting rod 44 is hinged to the pull rod 42. The ends of the first connecting rod 43 and the second connecting rod 44 are hinged to each other so that when the pull rod 42 rotates, the first connecting rod 43 can be moved, thereby moving the retaining ring 121.

[0035] In order to enable the retaining ring 121 to move only up and down, thereby fixing the position of the retaining ring 121 when adsorbing ceramic pieces and preventing the ceramic pieces from moving unevenly, a limiting ring 45 is designed on the pull rod 42 to restrict the lateral movement of the connecting rod 43.

[0036] In this application, when the pull rod 42 rotates to the predetermined position, the retaining ring 121 abuts against the sealing cover 61, thereby restricting the movement of the chassis 3 and ensuring the stability of the equipment structure when adsorbing ceramic tiles.

[0037] The implementation principle of the vibration device for a tile laying machine in this embodiment is as follows:

[0038] The connection structure between the retaining ring 121 and the connecting pipe 31 allows the retaining ring 121 to drive the chassis 3 to vibrate synchronously under the drive of the vibration mechanism 5. Furthermore, since the chassis 3 itself has weight and is movably secured inside the housing 1 via the connecting pipe 31, the gripping rod 11 is not affected by the vibration during the equipment's vibration process, and the vibration effect of the equipment is also stronger. Compared to existing technologies, this application achieves the separation of the vibration mechanism 5 from the gripping part.

[0039] The above are all preferred embodiments of this application and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A vibration device for a tile paving machine, comprising a housing (1), a gripping rod (11) connected to one side of the housing (1), a suction cup (2) movably disposed within the housing (1), and a base plate (3) disposed at the bottom of the housing (1), wherein the suction cup (2) is disposed on the base plate (3) and forms a cavity with the base plate (3) for creating a negative pressure, and the suction cup (2) is connected to an adsorption mechanism (4) for driving the suction cup (2) to adsorb ceramic tiles, characterized in that: The housing (1) has an installation ring groove (12) inside. The chassis (3) is integrally connected to a connecting pipe (31) at the edge. The top of the connecting pipe (31) is movably locked in the installation ring groove (12). The chassis (3) is equipped with a vibration mechanism (5) for generating vibration. The vibration mechanism (5) can drive the top of the connecting pipe (31) to shake in the installation ring groove (12). A buffer assembly (6) is provided in the installation ring groove (12).

2. A tile laying machine vibration apparatus as claimed in claim 1, wherein: The top of the connecting pipe (31) is detachably connected to a retaining ring (121), which is movably engaged in the mounting ring groove (12). The top of the housing (1) is provided with a connecting ring groove (13) that communicates with the mounting ring groove (12). The buffer assembly (6) includes a sealing cap (61) for closing the connecting ring groove (13) and several springs (62) with one end connected to the bottom side of the mounting ring groove (12). The other end of the several springs (62) abuts against the bottom of the retaining ring (121).

3. A tile layer vibrating device according to claim 2, wherein: The bottom of the sealing cap (61) is covered with a rubber pad layer (63) to prevent the retaining ring (121) from violently colliding with the sealing cap (61).

4. A tile laying machine vibration apparatus as claimed in claim 3, wherein: The retaining ring (121) has two symmetrical through holes (1211) on its inner side. The connecting tube (31) has two through holes (311) that correspond to the two through holes (1211) respectively. The housing (1) is provided with a connector (7) for detachably connecting the retaining ring (121) and the connecting tube (31). The two ends of the connector (7) along the length direction pass through the two through holes (311) respectively and are threaded into the two through holes (1211) respectively.

5. A tile layer vibrating device according to claim 4, wherein: The connector (7) includes a central sleeve portion (71), two screw portions (72) threaded through both ends of the sleeve portion (71), and two rotating portions (73) respectively sleeved on the two screw portions (72). The two rotating portions (73) are threadedly sleeved with the two screw portions (72). The two screw portions (72) are respectively provided with two through holes (311) and are respectively threaded into the two through holes (1211).

6. A tile laying machine vibration apparatus as claimed in claim 5, wherein: The adsorption mechanism (4) includes a connecting post (41) integrally connected to the suction cup (2) and a pull rod (42) with one end hinged to the inner wall of the housing (1). The middle part of the pull rod (42) is hinged to the end of the connecting post (41) away from the suction cup (2). The sleeve part (71) is connected to a connecting rod one (43). A connecting rod two (44) is hinged to the pull rod (42) and is hinged to the end of the connecting rod one (43) away from the sleeve part (71). A limiting ring (45) is connected to the connecting rod one (43) to prevent the connecting rod one (43) from moving laterally. When the pull rod (42) is pulled up to a predetermined position, the retaining ring (121) abuts against the sealing cover (61).