Concrete pouring and vibrating equipment
The design of wedge grooves and fixing rods solves the problems of rope slippage and cumbersome fixation of the vibration motor, achieving stable fixation of the rope and improving the vibration effect, while facilitating the disassembly and installation of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-10
- Publication Date
- 2026-03-10
AI Technical Summary
Commonly available concrete pouring vibration equipment is prone to loosening and slipping when pulled by ropes, affecting the vibration effect. In addition, fixing the vibration motor is cumbersome and affects maintenance efficiency.
The rope is secured using a wedge-shaped groove, and the design of the fixing rod and connecting components prevents the rope from slipping and coming off. At the same time, it facilitates the disassembly and installation of the vibration motor, improving the securing effect and maintenance efficiency.
This achieves a secure fixation of the rope, preventing slippage and detachment, improving the vibration effect and equipment convenience, and simplifying the disassembly and installation process of the vibratory motor.
Smart Images

Figure CN223984259U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of concrete vibration technology, and in particular to a concrete pouring vibration device. Background Technology
[0002] During the civil construction of substations, concrete pouring vibration equipment is needed to vibrate concrete structures with large areas and thin thicknesses, such as concrete pavements, floors, and slabs in substations. Concrete pouring vibration equipment typically consists of a vibrating plate and a vibrating motor. The vibrating motor drives the vibrating plate to generate vibration, which is transmitted to the concrete surface through contact with the concrete. This makes the concrete surface dense and smooth, ensuring a tight bond and eliminating honeycomb and pitting phenomena, thereby improving its strength and ensuring the quality of concrete components. However, common concrete pouring vibration equipment on the market usually requires the use of ropes to pull the equipment for vibration. But when the ropes are connected to the equipment, they are prone to loosening and slipping after being tied, affecting the vibration effect. Furthermore, the vibrating motor requires laborious tightening of bolts for fixation, which is cumbersome and affects maintenance efficiency. Utility Model Content
[0003] This disclosure relates to a concrete pouring vibration device. When it is necessary to vibrate the inside of the concrete in a substation, the device can control the rope to be wound around the outside of a fixed rod. When the rope is tightened, the fixed rod is subjected to force and slides upward on the outside of the connecting assembly. When the vibrating plate assembly and the vibrating motor are pulled, the fixed rod is subjected to force to squeeze the rope. The rope is fixed by the anti-slip groove to prevent it from slipping and detaching, thus ensuring the fixation effect of the rope and preventing it from detaching, thereby ensuring the vibration effect.
[0004] In a first aspect, this disclosure provides a concrete pouring vibration device, specifically comprising: a vibratory plate assembly; the vibratory plate assembly is a rectangular structure with inclined edges, and a connecting component is spliced to the side of the vibratory plate assembly via an installation groove. The connecting component is a U-shaped structure, and a fixing rod is fitted onto the outside of the connecting component and slides freely outside the connecting component. The top of the fixing rod is a wedge-shaped structure with a wedge groove. A vibration motor; the vibration motor is installed in the middle of the vibratory plate assembly, and a moving head and a fixing structure are slidably installed at the bottom of the vibration motor via a fixing seat and a guide groove. The outer end of the fixing structure of the U-shaped structure is a wedge-shaped structure, and the outer end of the fixing structure is engaged with an outer rod, which is welded and fixed inside the vibratory plate assembly.
[0005] In at least some embodiments, a reinforcing rod is fixed inside the vibrating plate assembly, and the inside of the reinforcing rod is welded and fixed to two outer rods. Four mounting slots are respectively opened on both sides of the vibrating plate assembly, and the mounting slots are T-shaped structures. Two fixing bolts are fixed inside both sides of the vibrating plate assembly, and one fixing bolt is fixed between the two mounting slots. Nuts are installed on the outside of the fixing bolts, and fixing plate assemblies are fixed to the fixing bolts by the nuts. The fixing plate assembly is welded inside the connecting assembly. A sliding component with a T-shaped structure is provided on the inner side of the connecting assembly. The sliding component is inserted into the inside of the mounting slot. An adsorption component with a magnet is fixed on both sides of the connecting assembly, and the adsorption component is adsorbed and fixed to the fixing rod.
[0006] In at least some embodiments, the bottom of the vibration motor is fixed with a fixed base, and a pressure plate structure is fixed to the side of the fixed base. The bottom of the pressure plate structure contacts the top of the outer rod. The fixed base has a guide groove inside, and a moving head is inserted into the guide groove and slides freely. The moving head has a T-shaped structure, and a threaded hole is opened through the inside of the moving head. A freely rotatable adjustment structure is rotatably installed at the upper middle position of the fixed base. The adjustment structure has two symmetrically arranged threads and is inserted into the threaded hole for rotation. Handwheels are provided at both ends of the adjustment structure. A wedge-shaped connecting groove is opened at the bottom of the outer rod, and a fixing structure is inserted into the connecting groove.
[0007] This utility model provides a concrete pouring vibration device, which has the following beneficial effects:
[0008] When it is necessary to vibrate the inside of the substation concrete, the rope can be controlled to wrap around the outside of the fixed rod. When the rope is tightened, the fixed rod slides upward on the outside of the connecting component under force. When the vibrating plate assembly and the vibrating motor are pulled, the fixed rod is forced to squeeze the rope. The wedge groove helps to fix the rope to prevent slippage and detachment, thus ensuring the fixation effect of the rope and preventing the rope from detaching, and ensuring the vibration effect.
[0009] When maintenance of the vibratory motor is required, the handwheel can be rotated directly, causing the adjustment structure to rotate as well. This allows the adjustment structure to move along with the fixed structure via two threaded sections, enabling the fixed structure to detach from the connecting groove. This facilitates easy disassembly, replacement, or repair of the vibratory motor. Conversely, during installation, the adjustment structure can be moved in the reverse direction for easy installation of the vibratory motor. The outer end of the fixed structure fits into the inner part of the connecting groove, and the inclined contact surface effectively ensures a secure connection, enhancing the ease of installation. Attached Figure Description
[0010] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings of the embodiments will be briefly described below.
[0011] The accompanying drawings described below are only related to some embodiments of the present invention and are not intended to limit the scope of the present invention.
[0012] In the attached diagram:
[0013] Figure 1 A three-dimensional structural schematic diagram of this application is shown;
[0014] Figure 2 An exploded three-dimensional structural diagram of this application is shown;
[0015] Figure 3 This is a schematic diagram of the exploded bottom view of the structure of this application;
[0016] Figure 4 This paper shows a partial cross-sectional exploded three-dimensional structural diagram of the vibrating plate assembly of this application;
[0017] Figure 5 This paper shows an exploded three-dimensional structural diagram of the vibration motor of this application;
[0018] Figure 6 This paper shows an exploded bottom view of the vibration motor structure of this application;
[0019] List of reference numerals
[0020] 1. Vibrating plate assembly; 101. Reinforcing rod; 102. Mounting slot; 103. Fixing bolt; 104. Fixing plate assembly; 105. Connecting assembly; 106. Sliding assembly; 107. Adsorption assembly; 108. Fixing rod;
[0021] 2. Vibration motor; 201. Fixed base; 202. Pressure plate structure; 203. Guide groove; 204. Adjustment structure; 205. Moving head; 206. Fixed structure; 207. Outer rod; 208. Connecting groove. Detailed Implementation
[0022] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this utility model. Based on the described embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.
[0023] Example 1: Please refer to Figures 1 to 6 :
[0024] This utility model discloses a concrete pouring vibration device, comprising: a vibratory plate assembly 1; the vibratory plate assembly 1 has a rectangular structure, the edges of the vibratory plate assembly 1 are inclined, and a connecting assembly 105 is spliced to the side of the vibratory plate assembly 1 through an installation groove 102. The connecting assembly 105 has a U-shaped structure, and a fixing rod 108 is fitted on the outside of the connecting assembly 105, which slides freely outside the connecting assembly 105. The top of the fixing rod 108 has a wedge-shaped structure and a wedge-shaped groove, allowing the fixing rod 108 to move outside the connecting assembly 105, compressing and fixing the pulled rope to prevent slippage, thereby improving the fixing effect of the rope. To prevent the rope from slipping and ensuring the pulling displacement effect of the vibrating plate assembly 1; Vibrating motor 2; Vibrating motor 2 is installed in the middle of the vibrating plate assembly 1. The bottom of the vibrating motor 2 is slidably installed with a moving head 205 and a fixing structure 206 through a fixing seat 201 and a guide groove 203. The outer end of the U-shaped fixing structure 206 is a wedge-shaped structure. The outer end of the fixing structure 206 is engaged with the outer rod 207. The outer rod 207 is welded and fixed inside the vibrating plate assembly 1, so that the fixing structure 206 is inserted into the connecting groove 208 for a stable connection, ensuring the convenience of connection and the fixing effect, and facilitating disassembly and maintenance.
[0025] In this embodiment of the disclosure, such as Figure 3 and Figure 4 As shown, a reinforcing rod 101 is fixed inside the vibrating plate assembly 1. The inside of the reinforcing rod 101 is welded and fixed to two outer rods 207. After being connected together, the overall strength is improved. Four mounting slots 102 are respectively opened on both sides of the vibrating plate assembly 1. The mounting slots 102 are T-shaped structures, which allow the sliding component 106 to move and engage inside the mounting slots 102, thereby driving the connecting component 105 to be installed and used securely. Two fixing bolts 103 are fixed inside both sides of the vibrating plate assembly 1. One fixing bolt 103 is fixed between two mounting slots 102. The outside of the fixing bolt 103 is... The bolt is fitted with a nut, and the fixing bolt 103 is fixed to the fixing plate assembly 104 by the nut, so that the fixing plate assembly 104 drives the connecting assembly 105 to be firmly fixed; the fixing plate assembly 104 is welded to the inside of the connecting assembly 105, and the inner side of the connecting assembly 105 is provided with a T-shaped sliding assembly 106. The sliding assembly 106 is inserted into the inside of the mounting groove 102 and can be positioned and spliced for use. On both sides of the connecting assembly 105, there is an adsorption assembly 107 with a magnet. The adsorption assembly 107 is adsorbed and fixed to the fixing rod 108, so that the fixing rod 108 is firmly installed and used.
[0026] In this embodiment of the disclosure, such as Figure 5 and Figure 6As shown, a fixed base 201 is fixed to the bottom of the vibration motor 2, which drives the vibration motor 2 to be installed stably. A pressure plate structure 202 is fixed to the side of the fixed base 201. The bottom of the pressure plate structure 202 contacts the top of the outer rod 207 for positioning and fitting. A guide groove 203 is opened inside the fixed base 201. The moving head 205 is inserted into the guide groove 203 and slides freely, so that the moving head 205 drives the fixed structure 206 to move together. The moving head 205 has a T-shaped structure and a threaded hole is opened through the moving head 205, so that the adjusting structure 204 and the thread are inserted into it for rotation and adjustment. A freely rotatable adjusting structure 204 is rotatably installed at the middle position of the upper part of the fixed base 201. The adjusting structure 204 has two symmetrically arranged threads and is inserted into the threaded hole for rotation. Handwheels are provided at both ends of the adjusting structure 204 for easy control of the rotation of the adjusting structure 204. A wedge-shaped connecting groove 208 is opened at the bottom of the outer rod 207. The fixed structure 206 is inserted into the connecting groove 208 for positioning and fixing.
[0027] The working principle of this embodiment is as follows: When it is necessary to vibrate the road surface of the substation, firstly, control the vibration motor 2 to be installed inside the vibrating plate assembly 1, so that the fixing structure 206 is aligned with the connecting groove 208. Then, control the handwheel and the adjusting structure 204 to rotate, so that the adjusting structure 204 controls the moving head 205 and the fixing structure 206 to move together through the thread, so that the fixing structure 206 is inserted into the inside of the connecting groove 208, driving the vibration motor 2 to be installed firmly, improving the positioning and splicing effect and installation efficiency. Later, it is also convenient to control the release of the fixation, which is convenient for replacement and maintenance. Then, control the rope to be tied to the outside of the fixing rod 108. After the rope is tightened, control the vibration motor 2 to run, and then pull the vibrating plate assembly 1 and the vibration motor 2 together through the rope. The rope is fixed in anti-slip contact with the fixing rod 108, which drives the vibrating plate assembly 1 to move and vibrate conveniently, improving the convenience and efficiency of vibration.
[0028] The following points should be noted in this article:
[0029] 1. The accompanying drawings of the embodiments disclosed herein only relate to the structures involved in the embodiments disclosed herein; other structures can be referred to in general design.
[0030] 2. Where there is no conflict, the embodiments of this disclosure and the features in the embodiments can be combined with each other to obtain new embodiments.
[0031] The above are merely specific embodiments of this disclosure, but the scope of protection of this disclosure is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this disclosure should be included within the scope of protection of this disclosure. Therefore, the scope of protection of this disclosure should be determined by the scope of the claims.
Claims
1. A concrete placing and vibrating apparatus, characterized by Include: Vibration plate assembly (1); the vibration plate assembly (1) is rectangular structure, the edge position of vibration plate assembly (1) is inclined structure, the side of vibration plate assembly (1) is spliced with connecting assembly (105) through mounting groove (102), connecting assembly (105) is U-shaped structure, fixed rod (108) is sleeved on the outside of connecting assembly (105) and freely slides on the outside of connecting assembly (105), the top of fixed rod (108) is wedge structure, and wedge slot is formed in the top; Vibration motor (2); the vibration motor (2) is installed at the inside middle position of vibration plate assembly (1), the bottom of vibration motor (2) is slidably installed with moving head (205) and fixed structure (206) through fixing seat (201) and guide groove (203), the outer end of U-shaped structure fixed structure (206) is wedge structure, the outer end of fixed structure (206) is clamped with outer rod (207), and outer rod (207) is welded and fixed in the inside of vibration plate assembly (1).
2. A concrete placing and vibrating apparatus according to claim 1, wherein The inside of the vibration plate assembly (1) is fixed with a reinforcing rod (101), the inside of the reinforcing rod (101) is welded with two outer rods (207), and four mounting grooves (102) are formed in the two sides of the vibration plate assembly (1), the mounting grooves (102) are T-shaped structure.
3. A concrete placing and vibrating apparatus according to claim 2, wherein Two fixed bolts (103) are fixed in the two sides of the vibration plate assembly (1), one fixed bolt (103) is fixed between the two mounting grooves (102), the outside of the fixed bolt (103) is provided with a nut through a bolt, and the fixed bolt (103) is fixed with a fixed plate assembly (104) through the nut.
4. A concrete placing and vibrating apparatus according to claim 3, wherein The fixed plate assembly (104) is welded in the inside of the connecting assembly (105), the inside of the connecting assembly (105) is provided with a sliding assembly (106) of T-shaped structure, the sliding assembly (106) is inserted in the inside of the mounting groove (102), and one adsorption assembly (107) with a magnet is fixed in the two sides of the connecting assembly (105), and the adsorption assembly (107) is adsorbed and fixed with the fixed rod (108).
5. A concrete placing and vibrating apparatus according to claim 4, wherein The bottom of the vibration motor (2) is fixed with a fixing seat (201), the side of the fixing seat (201) is fixed with a pressing plate structure (202), and the bottom of the pressing plate structure (202) is in contact with the top of the outer rod (207).
6. A concrete placing and vibrating apparatus according to claim 5, wherein The inside of the fixing seat (201) is provided with a guide groove (203), and the moving head (205) is inserted in the inside of the guide groove (203) and freely slides, the moving head (205) is T-shaped structure, and a threaded hole is formed in the inside of the moving head (205).
7. A concrete placing and vibrating apparatus according to claim 6, wherein The upper middle position of the fixing seat (201) is rotatably installed with a free rotating adjusting structure (204), the adjusting structure (204) is provided with two threads symmetrically, is inserted in the inside of the threaded hole and rotates, the both ends of the adjusting structure (204) are provided with hand wheels, the bottom of the outer rod (207) is provided with a connecting groove (208) of wedge structure, and the connecting groove (208) is inserted with the fixed structure (206).