Die for floor with aluminum alloy wrapped with wood plastic
By introducing structures such as movable chambers, support rods, hammers, and springs into the floor mold, automated demolding is achieved, solving the problem of low demolding efficiency caused by repeated hammering in the existing technology and realizing a more efficient demolding process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-11
- Publication Date
- 2026-03-24
AI Technical Summary
The existing floor molds require workers to repeatedly tap the molds during the demolding process, which is time-consuming and labor-intensive, and affects demolding efficiency.
A floor mold with an aluminum alloy outer cladding and wood-plastic composite was designed, which includes a movable chamber, support rod, hammer, spring, pressure plate, rotating seat, pressure plate and tension spring. By stepping on the pedal, the pressure plate is moved down and the tension spring is stretched, realizing the automated hammering action of the hammer and assisting in the demolding of the floor.
No need to repeatedly tap the bottom of the mold with tools; the hammering effect is uniform, the floor demolding is smoother and more stable, improving demolding efficiency and ease of use.
Smart Images

Figure CN224028170U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of floor mold technology, and in particular to floor molds with aluminum alloy outer covering wood-plastic composite. Background Technology
[0002] Aluminum alloy wood-plastic composite material combines the advantages of aluminum alloy and wood-plastic composite materials, possessing benefits such as waterproofing, moisture resistance, corrosion resistance, wear resistance, environmental friendliness, energy saving, fire resistance, and aesthetic appeal. Due to these numerous advantages, aluminum alloy wood-plastic composite material is well-suited for use in flooring mold making.
[0003] In existing technologies, flooring molds typically employ a square, basin-like structure. Workers pour raw materials into the mold and then use a hammer to vibrate the material, expelling air bubbles. After sufficient time, the mold is flipped over, and the back is struck to release the flooring. However, this demolding process requires repeated hammering, consuming time and manpower, and reducing demolding efficiency. Therefore, an improved flooring mold with an aluminum alloy cladding over wood-plastic composite is proposed. Utility Model Content
[0004] The purpose of this invention is to at least solve one of the aforementioned technical defects.
[0005] Therefore, one objective of this utility model is to propose a floor mold with an aluminum alloy outer layer of wood-plastic composite, so as to solve the problems mentioned in the background art and overcome the shortcomings of the existing technology.
[0006] To achieve the above objectives, one embodiment of this utility model provides a floor mold for aluminum alloy cladding with wood-plastic composite, comprising a mold body, a side edge fixedly connected to the side of the mold body, a movable chamber provided at the lower part of the mold body, a support foot fixedly connected to the bottom of the mold body, a plurality of support rods inserted into the movable chamber, a horizontal connecting plate fixedly connected to the top of the support rods, a striking hammer fixedly connected to the top of the horizontal connecting plate, a spring provided between the horizontal connecting plate and the bottom wall of the movable chamber, and a pressure plate fixedly connected to the bottom end of the support rods; a rotating seat provided at the bottom of the mold body, a pressure plate rotatably connected inside the rotating seat, a pedal fixedly connected to the end of the pressure plate, and a tension spring provided between the pressure plate and the mold body.
[0007] Preferably, in any of the above solutions, the side edge adopts a trapezoidal structure, and the planar dimensions of the movable compartment are consistent with the planar dimensions of the forming groove of the mold body.
[0008] The above technical solution employs the following: The mold body provides space for the flooring material, and a side edge is provided on the side of the mold body, providing a striking platform for workers. After the flooring material is placed into the mold body, the side edge is struck using external tools, causing the material to vibrate within the mold body and expel air bubbles. The side edge has a trapezoidal structure, which improves its stability. The movable chamber provides installation and movement space for the hammer and spring.
[0009] Preferably, in any of the above solutions, the support leg has an L-shaped structure, and the top surface of the side edge has rough texture.
[0010] The above technical solution involves installing support legs at the bottom of the mold body. These legs provide support for the mold body and also provide space for the installation and movement of the pressure plate. The support legs have an L-shaped structure, which helps improve the stability of the mold body. Rough textures are created on the top surface of the side edges to improve stability during impact.
[0011] Preferably, of any of the above solutions, the plurality of support rods are evenly arranged along the width direction of the mold body, and the hammer adopts a spherical structure.
[0012] The above technical solution employs a support rod and a cross plate to provide a mounting platform for the hammer, which is used to strike the bottom wall of the forming groove of the mold body. The evenly distributed support rods facilitate the even distribution of the hammer.
[0013] Preferably, in any of the above embodiments, the striking hammer is attached to the bottom wall of the forming groove of the mold body when no external force is applied, and there are several striking hammers that are evenly arranged.
[0014] The above technical solution employs a spring that provides elastic support for the crossbar and the hammer. Under external force, the support rod and crossbar move the hammer downwards. As the external force is removed, the spring returns to its original position, pushing the hammer upwards. The hammer strikes the bottom wall of the forming groove in the mold body, assisting in the demolding of the floor. The evenly distributed arrangement of several hammers ensures that different parts of the floor are struck, resulting in a smoother and more stable demolding process.
[0015] Preferably, in any of the above embodiments, some of the springs are sleeved on the outside of the support rods, and the length of some of the support rods gradually increases from the rotating seat to the pedal.
[0016] The above technical solution involves a spring sleeved on the outside of the support rod, which constrains the rod and prevents displacement in other directions. By setting support rods of different lengths, multiple hammering components can be synchronously driven to vertical displacement by a pressure plate rotatably connected to the bottom of the mold body.
[0017] Preferably, of any of the above embodiments, the tension springs are of several lengths and are evenly arranged along the width direction of the pressure plate, and the pedal is provided with rough texture.
[0018] The above technical solution employs a pressure plate to drive the pressure plate, support rod, cross plate, and hammer to vertical displacement. Stepping on the pedal causes the pressure plate to move downwards, stretching the tension springs. Releasing the pedal then causes the tension springs to return the pressure plate to its original position, and the springs then drive the pressure plate, support rod, cross plate, and hammer to return to their original positions to perform the hammering action. The evenly distributed tension springs contribute to the balance and stability of the springs.
[0019] Compared with the prior art, the advantages and beneficial effects of this utility model are as follows:
[0020] 1. This aluminum alloy-clad wood-plastic flooring mold, through the design of a movable chamber, support rods, a hammer, springs, a pressure plate, a rotating seat, a pressure plate, and tension springs, utilizes a mechanism for demolding. Stepping on the pedal lowers the pressure plate, stretching the tension springs and causing the pressure plate, support rods, cross plates, and hammer to move downwards. Releasing the pedal resets the pressure plate, and the springs then reposition the pressure plate, support rods, cross plates, and hammer to perform a hammering action, causing the flooring to detach from the mold body due to vibration. This eliminates the need for repeated hammering of the mold body's bottom surface with tools, making it more convenient to use. The hammering effect is uniform, resulting in superior demolding performance.
[0021] 2. This aluminum alloy-clad wood-plastic flooring mold features a trapezoidal side edge structure, which enhances side edge stability. Rough textures on the top surface of the side edges further improve stability during impact. Several evenly distributed hammers ensure that different areas of the flooring are struck, resulting in smoother and more stable demolding. By using support rods of varying lengths, multiple hammer components can be synchronously moved vertically by a pressure plate rotatably connected to the bottom of the mold body.
[0022] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description
[0023] The above and / or additional aspects and advantages of this utility model will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:
[0024] Figure 1 This is a first-view structural diagram of the present invention;
[0025] Figure 2 This is a schematic diagram of the second-view structure of the present invention;
[0026] Figure 3 This is a schematic diagram of the transverse cross-section structure of this utility model;
[0027] Figure 4 This is a schematic diagram of the longitudinal section structure of this utility model.
[0028] In the diagram: 1-Mold body, 2-Side edge, 3-Moving chamber, 4-Support leg, 5-Support rod, 6-Horizontal connecting plate, 7-Strike hammer, 8-Spring, 9-Pressure plate, 10-Rotating seat, 11-Pressure plate, 12-Pedal, 13-Tension spring. Detailed Implementation
[0029] 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.
[0030] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0031] like Figures 1-4 As shown, this utility model includes a mold body 1, a side edge 2 fixedly connected to the side of the mold body 1, a movable chamber 3 provided at the lower part of the mold body 1, a support leg 4 fixedly connected to the bottom of the mold body 1, several support rods 5 inserted into the movable chamber 3, a horizontal connecting plate 6 fixedly connected to the top of the support rod 5, a striking hammer 7 fixedly connected to the top of the horizontal connecting plate 6, a spring 8 provided between the horizontal connecting plate 6 and the bottom wall of the movable chamber 3, and a pressure plate 9 fixedly connected to the bottom end of the support rod 5; a rotating seat 10 provided at the bottom of the mold body 1, a pressure plate 11 rotatably connected inside the rotating seat 10, a pedal 12 fixedly connected to the end of the pressure plate 11, and a tension spring 13 provided between the pressure plate 11 and the mold body 1.
[0032] Example 1: The side edge 2 adopts a trapezoidal structure, and the planar dimensions of the movable chamber 3 are consistent with the planar dimensions of the forming groove of the mold body 1. The mold body 1 provides a space to hold the flooring material. A side edge 2 is provided on the side of the mold body 1, providing a striking platform for the workers. After the flooring material is placed into the mold body 1, the side edge 2 is struck with an external tool to vibrate the flooring material within the mold body 1, expelling air bubbles. The trapezoidal structure of the side edge 2 is beneficial to its stability. The movable chamber 3 provides installation and movement space for the striking hammer 7 and the spring 8.
[0033] The support leg 4 has an L-shaped structure, and the top surface of the side edge 2 has rough texture. The support leg 4 is located at the bottom of the mold body 1, providing support for the mold body 1 and also providing space for the installation and movement of the pressure plate 11. The L-shaped structure of the support leg 4 helps improve the stability of the mold body 1. The rough texture on the top surface of the side edge 2 helps improve stability during impact.
[0034] Example 2: Several support rods 5 are evenly arranged along the width of the mold body 1, and the hammer 7 adopts a spherical structure. The support rods 5, together with the cross plate 6, provide an installation platform for the hammer 7, which is used to hammer the bottom wall of the forming groove of the mold body 1. The even arrangement of the support rods 5 provides the conditions for the even arrangement of the hammer 7.
[0035] The hammers 7 are attached to the bottom wall of the forming groove of the mold body 1 when no external force is applied. There are several hammers 7, which are evenly distributed. Springs 8 provide elastic support for the cross plate 6 and the hammers 7. Under the action of external force, the support rod 5 and the cross plate 6 move the hammers 7 downward. As the external force is removed, the springs 8 return to their original position and push the hammers 7 upward. The hammers 7 strike the bottom wall of the forming groove of the mold body 1, assisting in the demolding of the floor. The even distribution of several hammers 7 ensures that different positions of the floor are struck, resulting in a smoother and more stable demolding of the floor.
[0036] Example 3: Some springs 8 are sleeved on the outside of the support rods 5, and the length of several support rods 5 gradually increases from the rotating seat 10 to the pedal 12. The springs 8 are sleeved on the outside of the support rods 5 so that they can be constrained by the support rods 5 and prevent them from displacing in other directions. By setting support rods 5 of different lengths, multiple sets of hammering components can be synchronously driven to vertical displacement by the pressure plate 11 rotatably connected to the bottom of the mold body 1.
[0037] Several tension springs 13 are evenly arranged along the width of the pressure plate 11, and the pedal 12 has rough texture. The pressure plate 11 is used to drive the pressure plate 9, support rod 5, cross plate 6, and hammer 7 to move vertically. Stepping on the pedal 12 causes the pressure plate 11 to move downward, at which time the tension springs 13 are stretched. Then, releasing the pedal 12 causes the tension springs 13 to return the pressure plate 11 to its original position, and the spring 8 drives the pressure plate 9, support rod 5, cross plate 6, and hammer 7 to return to their original position to perform the hammering action. The even arrangement of several tension springs 13 is beneficial to the balance and stability of the tension springs 13.
[0038] The working principle of this utility model is as follows:
[0039] S1. Pour the raw material into the mold body 1, and use an external tool to tap the side edge 2 to make the floor material vibrate inside the mold body 1 and expel the air bubbles.
[0040] S2. After the floor material solidifies, stepping on the pedal 12 causes the pressure plate 11 to move downward. At this time, the tension spring 13 is stretched, and the pressure plate 9, support rod 5, cross plate 6 and hammer 7 are moved downward.
[0041] S3. Release pedal 12, tension spring 13 drives pressure plate 11 to reset, spring 8 drives pressure plate 9, support rod 5, cross plate 6 and hammer 7 to reset and perform hammering action, the floor is vibrated and detaches from mold body 1.
[0042] Compared with the prior art, the present invention has the following advantages:
[0043] 1. This aluminum alloy-clad wood-plastic floor mold, through the arrangement of a movable chamber 3, support rod 5, striking hammer 7, spring 8, pressure plate 9, rotating seat 10, pressure plate 11, and tension spring 13, utilizes a structure where, during demolding, stepping on the pedal 12 moves the pressure plate 11 downwards. At this time, the tension spring 13 is stretched, causing the pressure plate 9, support rod 5, cross plate 6, and striking hammer 7 to move downwards. Releasing the pedal 12 then causes the tension spring 13 to return the pressure plate 11 to its original position, and the spring 8 causes the pressure plate 9, support rod 5, cross plate 6, and striking hammer 7 to return to their original positions for a hammering action. The floor, vibrating, detaches from the mold body 1. This eliminates the need for repeated hammering of the mold body's bottom surface with tools, making it more convenient to use. The hammering effect is uniform, resulting in superior demolding performance.
[0044] 2. The aluminum alloy-clad wood-plastic floor mold features a trapezoidal structure on its side edge 2, which enhances its stability. Rough textures on the top surface of the side edge 2 further improve stability during impact. Several evenly distributed hammers 7 ensure that different parts of the floor can be struck, resulting in smoother and more stable demolding. By using support rods 5 of varying lengths, multiple hammer components can be synchronously moved vertically by the pressure plate 11 rotatably connected to the bottom of the mold body 1.
Claims
1. A floor mold with an aluminum alloy outer cladding and wood-plastic composite, comprising a mold body (1); characterized in that, The mold body (1) has a side edge (2) fixedly connected to its side. The mold body (1) has a movable chamber (3) at its lower part. The mold body (1) has a support foot (4) fixedly connected to its bottom. The movable chamber (3) has several support rods (5) inserted into it. The top of the support rod (5) is fixedly connected to a horizontal connecting plate (6). The top of the horizontal connecting plate (6) is fixedly connected to a striking hammer (7). A spring (8) is provided between the horizontal connecting plate (6) and the bottom wall of the movable chamber (3). The bottom of the support rod (5) is fixedly connected to a pressure plate (9). The bottom of the mold body (1) has a rotating seat (10). A pressure plate (11) is rotatably connected inside the rotating seat (10). A pedal (12) is fixedly connected to the end of the pressure plate (11). A tension spring (13) is provided between the pressure plate (11) and the mold body (1).
2. The aluminum alloy-clad wood-plastic flooring mold as described in claim 1, characterized in that: The side edge (2) adopts a trapezoidal structure, and the planar dimensions of the movable compartment (3) are consistent with the planar dimensions of the forming groove of the mold body (1).
3. The aluminum alloy-clad wood-plastic flooring mold as described in claim 2, characterized in that: The support leg (4) adopts an L-shaped structure, and the top surface of the side edge (2) is provided with rough texture.
4. The aluminum alloy-clad wood-plastic flooring mold as described in claim 3, characterized in that: Several of the support rods (5) are evenly arranged along the width direction of the mold body (1), and the hammer (7) adopts a spherical structure.
5. The aluminum alloy-clad wood-plastic flooring mold as described in claim 4, characterized in that: The hammers (7) are attached to the bottom wall of the forming groove of the mold body (1) when there is no external force. There are several hammers (7) and they are evenly arranged.
6. The aluminum alloy-clad wood-plastic flooring mold as described in claim 5, characterized in that: Some of the springs (8) are sleeved on the outside of the support rods (5), and the length of some of the support rods (5) gradually increases from the rotating seat (10) to the pedal (12).
7. The aluminum alloy-clad wood-plastic flooring mold as described in claim 6, characterized in that: The tension springs (13) are of several lengths and are evenly arranged along the width direction of the pressure plate (11), and the pedal (12) has rough texture.