Building material regeneration baking-free brick vibration taking equipment
By spraying mold release agent, blowing away impurities and double vibration, the problem of insufficient adhesion and vibration of brick materials is solved, and efficient forming and high-quality production of brick materials are achieved.
Patent Information
- Application Number
- CN202510665803.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-22
- Publication Date
- 2025-07-04
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
When existing fire-free brick machines vibrate and collect materials, the bricks are prone to stick to the mold and cause damage, dust and impurities affect the uniformity and compactness of the bricks, and the vibration effect is insufficient, resulting in bubbles and void defects.
The liquid spraying adjustment component is used to spray the release agent, the blowing adjustment component removes impurities, the vibration adjustment component strengthens the vibration of the brick material, reduces the adhesion between the brick material and the mold by spraying the release agent, blows away dust and impurities, and ensures that the brick material is closely arranged through double vibration.
Effectively prevent brick damage, improve brick uniformity and compactness, reduce bubbles and void defects, and improve production efficiency and quality.
Smart Images

Figure CN120245171A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of non - fired bricks, and particularly to a vibrating material - taking device for recycled non - fired brick materials for building materials. Background Art
[0002] Non - fired brick materials are a kind of wall materials made from construction waste, mainly using waste concrete blocks, red bricks, washed sand mud and other construction waste, and then through processes such as crushing into raw material stone powder, screening, mixing and batching, stirring, pressing, etc., without the need for high - temperature calcination, and are processed by specific processes of non - fired brick equipment.
[0003] When the existing non - fired brick machines perform vibrating material taking, they usually directly press the brick materials and then separate them by vibration. However, sometimes due to the large viscosity of the brick materials, the adhesion force between the brick materials and the die parts is too large, making it difficult to smoothly separate, resulting in damage to the formed brick materials during the process of separating from the die. At the same time, during the next pressing and forming, due to the dust and impurities brought by the brick materials not being effectively cleaned, the uniformity and density of the brick materials are affected by the impurities during the pressing of the next group of brick materials, resulting in defects such as air bubbles and voids inside the bricks. Also, only through the action of the vibrating motor on the die, it is difficult to quickly and fully vibrate and compact the brick materials, affecting the density and forming effect of the bricks. Therefore, the present application provides a vibrating material - taking device for recycled non - fired brick materials for building materials to meet the requirements. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to provide a vibrating material - taking device for recycled non - fired brick materials for building materials, so as to solve the problems that the existing formed brick materials are sometimes easily damaged during the process of separating from the die, and at the same time, due to the dust and impurities brought by the brick materials not being effectively cleaned, the uniformity and density of the next group of brick materials are affected by the impurities during pressing, resulting in defects such as air bubbles and voids, and only through the action of the vibrating motor on the die, it is difficult to quickly and fully vibrate and compact the brick materials.
[0005] To solve the above - mentioned technical problems, the present invention provides the following technical solutions:
[0006] A vibration material taking device for recycled non - fired brick materials of building materials, including a frame. One end of the frame is installed with a control center. One end of the frame is installed with a lifting rod. One end of the lifting rod is installed with a pressing plate. The bottom of the pressing plate is installed with a pressing head. The bottom of the frame is installed with a support frame. The top of the support frame is installed with a brick - loading plate. The top of the brick - loading plate is provided with a mold frame. One side of the mold frame is installed with a vibration motor. Inside the mold frame is a formed brick; a liquid spraying and adjusting component, which is installed on the top of the brick - loading plate and is used for spraying release agent inside the mold frame; a blowing force adjusting component, which is installed inside the liquid spraying and adjusting component and is used for blowing the inner wall of the mold frame with wind force; a vibration adjusting component, which is installed at the bottom of the support frame and is used for applying an up - and - down vibration force to the brick - loading plate; the liquid spraying and adjusting component is installed at one end of the blowing force adjusting component, and the blowing force adjusting component is installed above the vibration adjusting component.
[0007] Optionally, the liquid spraying and adjusting component includes a support block installed on the top of the brick - loading plate. Inside the support block is installed a cylinder, and inside the cylinder is installed an inner sleeve.
[0008] Optionally, a second spring is installed on the outer surface of the inner sleeve. A conduit is installed at the bottom of the cylinder. One end of the conduit is installed with a cavity cylinder, and a push block is slidably connected inside the cavity cylinder.
[0009] Optionally, one end of the push block is installed with a first spring. One end of the cavity cylinder is installed with a hollow circular seat. Inside the hollow circular seat is inserted a pressing rod. Inside the inner sleeve is installed a turbine chamber, and both ends of the turbine chamber are provided with openings.
[0010] Optionally, a rotating rod is installed at the bottom of the turbine chamber. Turbine blades are installed on the surface of the rotating rod. An infusion chamber is installed at the top of the turbine chamber.
[0011] Optionally, the blowing force adjusting component includes a liquid guide groove sleeved on the surface of the rotating rod. A clamping groove is installed at the top of the liquid guide groove.
[0012] Optionally, a support seat is further provided at the top of the liquid guide groove. A fan blade is installed on the top of the support seat. A clamping head is installed at the top of the rotating rod, and the clamping head and the clamping groove are on the same axis.
[0013] Optionally, the vibration adjusting component includes a carrier block installed at the bottom of the support frame. A driving motor is installed on the top of the carrier block. A main shaft is rotatably connected inside the carrier block.
[0014] Optionally, a runner is installed at one end of the main shaft, a crank is installed at one end of the main shaft, and a connecting rod is rotatably connected to one end of the crank.
[0015] Optionally, a building block is installed at one end of the connecting rod, a sliding rod is installed at the top of the building block, a connecting rod is elastically connected inside the sliding rod, and a connecting groove is installed at the top of the connecting rod.
[0016] Compared with the prior art, the present invention has at least the following beneficial effects:
[0017] In the above solution, by setting the liquid spraying adjustment component, when the brick material is pressed, the inside of the mold is first sprayed with a release agent to prevent the bricks from being damaged during the demolding process, reduce the friction and adhesion between the bricks and the mold, ensure the forming quality of the bricks, and at the same time, ensure that the mold is not easily worn and damaged during long-term use, reduce the replacement of the mold, reduce production costs, and can effectively reduce the adhesion between the bricks and the mold, so that the bricks can be more easily separated from the mold after pressing, speed up the separation speed, and improve production efficiency.
[0018] By setting the blowing force adjustment component, before the brick material is pressed, the residual brick material in the previous group inside the mold is blown by wind to blow away the impurities from the surface of the mold, ensure the smoothness of the surface, improve the purity of the product with extremely high efficiency while avoiding the generation of bubble and void defects, and, the smooth surface helps the spraying of the release agent, reduces the friction between the bricks and the mold, makes the demolding more smooth, reduces the breakage of the bricks during demolding, improves the production quality, and at the same time, the cleaning of the impurities inside the mold by the wind reduces the wear of the inner wall of the mold and improves the service life.
[0019] By setting the vibration adjustment component, after the press head presses the brick material inside the mold, the vibration motor first vibrates the brick material inside the mold, which helps the brick material to be more evenly distributed inside the mold, reduces voids and bubbles, and then through the kinetic energy of the up and down vibration, the particles in the brick material are further closely arranged together to form a more solid structure, which not only enhances the strength of the bricks, but also improves the density and uniformity of the bricks again. At the same time, the double vibration effect makes the pressing process of the brick material more stable and efficient, reduces the probability of failures during the production process, improves the production quality, reduces errors, and can also improve the overall production efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] The drawings incorporated herein and constituting a part of the specification illustrate embodiments of the present invention and, together with the specification, are further used to explain the principles of the present invention and enable those skilled in the relevant art to implement and use the present invention.
[0021] Figure 1Schematic diagram of the main view three-dimensional structure of the vibration material taking device for the non-fired brick material of the present invention;
[0022] Figure 2 Schematic diagram of the three-dimensional structure of another perspective of the vibration material taking device for the non-fired brick material of the present invention;
[0023] Figure 3 Schematic diagram of the three-dimensional structure of the mold rack of the present invention;
[0024] Figure 4 Schematic diagram of the three-dimensional structure of the position relationship between the brick-carrying plate and the formed brick of the present invention;
[0025] Figure 5 Schematic diagram of the three-dimensional structure of the position relationship between the support block and the cylinder of the present invention;
[0026] Figure 6 Schematic diagram of the three-dimensional structure of the position relationship between the hollow circular seat and the pressing rod of the present invention;
[0027] Figure 7 Schematic diagram of the cross-sectional plane structure of the liquid spraying and adjusting assembly of the present invention;
[0028] Figure 8 Schematic diagram of the three-dimensional structure of the position relationship between the inner sleeve and the second spring of the present invention;
[0029] Figure 9 Schematic diagram of the three-dimensional structure of the position relationship between the turbine chamber and the infusion chamber of the present invention;
[0030] Figure 10 Schematic diagram of the three-dimensional structure of the fan blade of the present invention;
[0031] Figure 11 Schematic diagram of the three-dimensional structure of the blowing force adjusting assembly of the present invention;
[0032] Figure 12 Schematic diagram of the three-dimensional structure of the position relationship between the carrier block and the support frame of the present invention;
[0033] Figure 13 Schematic diagram of the three-dimensional structure of the support frame of the present invention;
[0034] Figure 14 Schematic diagram of the three-dimensional structure of the position relationship between the main shaft and the crank of the present invention;
[0035] Figure 15 Schematic diagram of the three-dimensional structure of the vibration adjusting assembly of the present invention.
[0036] Reference numerals:
[0037] 1. Frame; 2. Control center; 3. Lifting rod; 4. Pressing plate; 5. Pressing head; 6. Liquid spraying adjustment assembly; 61. Support block; 62. Cylinder; 63. Inner sleeve; 64. Conduit; 65. Chamber cylinder; 66. Hollow round seat; 67. Pressing rod; 68. Pushing block; 69. First spring; 610. Second spring; 611. Turbine chamber; 612. Turbine blade; 613. Rotating rod; 614. Liquid infusion chamber; 7. Blowing force adjustment assembly; 71. Liquid guide groove; 72. Card slot; 73. Support seat; 74. Fan blade; 75. Chuck; 8. Vibration adjustment assembly; 81. Carrier block; 82. Driving motor; 83. Runner; 84. Main shaft; 85. Crank; 86. Connecting rod; 87. Building block; 88. Slide bar; 89. Connecting rod; 810. Connecting groove; 9. Support frame; 10. Brick loading plate; 11. Mold frame; 12. Vibration motor; 13. Molded brick.
[0038] As shown in the figure, in order to clearly implement the structure of the embodiments of the present invention, specific structures and devices are marked in the figure. However, this is only for schematic purposes and is not intended to limit the present invention to this specific structure, device, and environment. Those of ordinary skill in the art can adjust or modify these devices and environments according to specific needs. Detailed implementation manners
[0039] The following describes in detail a vibrating material taking device for recycled non - fired brick materials of building materials provided by the present invention with reference to the accompanying drawings and specific embodiments. At the same time, it should be noted here that in order to make the embodiments more detailed, the following embodiments are the best and preferred embodiments. For some well - known technologies, those skilled in the art can also adopt other alternative methods for implementation; moreover, the accompanying drawings are only for more specific description of the embodiments and are not intended to specifically limit the present invention.
[0040] It should be pointed out that in the specification, terms such as "an embodiment", "embodiment", "exemplary embodiment", "some embodiments" indicate that the described embodiments may include specific features, structures, or characteristics, but not necessarily every embodiment includes such specific features, structures, or characteristics. Additionally, when combining embodiments to describe specific features, structures, or characteristics, implementing such features, structures, or characteristics in combination with other embodiments (whether explicitly described or not) should be within the knowledge scope of those skilled in the relevant art.
[0041] As Figures 1 to 15As shown, an embodiment of the present invention provides a vibrating material taking device for recycled non-fired brick materials of building materials, including a frame 1, a control center 2 is installed at one end of the frame 1, a lifting rod 3 is installed at one end of the frame 1, a pressing plate 4 is installed at one end of the lifting rod 3, a pressing head 5 is installed at the bottom of the pressing plate 4, a support frame 9 is installed at the bottom of the frame 1, a brick loading plate 10 is installed at the top of the support frame 9, a mold frame 11 is arranged at the top of the brick loading plate 10, a vibration motor 12 is installed on one side of the mold frame 11, and a formed brick 13 is arranged inside the mold frame 11; a liquid spraying adjustment component 6, the liquid spraying adjustment component 6 is installed at the top of the brick loading plate 10, and the liquid spraying adjustment component 6 is used for spraying a demolding agent inside the mold frame 11; a blowing force adjustment component 7, the blowing force adjustment component 7 is installed inside the liquid spraying adjustment component 6, and the blowing force adjustment component 7 is used for blowing the inner wall of the mold frame 11 with wind; a vibration adjustment component 8, the vibration adjustment component 8 is installed at the bottom of the support frame 9, and the vibration adjustment component 8 is used for applying an up-and-down vibration force to the brick loading plate 10; the liquid spraying adjustment component 6 is installed at one end of the blowing force adjustment component 7, and the blowing force adjustment component 7 is installed above the vibration adjustment component 8.
[0042] As an implementation manner in this embodiment, as Figures 4 to 8As shown in the figure, the liquid spraying and adjusting assembly 6 includes a support block 61, which is installed on the top of the brick-loading plate 10. Inside the support block 61, there is a cylinder 62. Inside the cylinder 62, there is an inner sleeve 63. On the outer surface of the inner sleeve 63, there is a second spring 610. At the bottom of the cylinder 62, there is a conduit 64. One end of the conduit 64 is installed with a cavity cylinder 65. Inside the cavity cylinder 65, there is a sliding connection with a push block 68. One end of the push block 68 is installed with a first spring 69. One end of the cavity cylinder 65 is installed with a hollow circular seat 66. Inside the hollow circular seat 66, there is a plug-in pressing rod 67. Inside the inner sleeve 63, there is a turbine chamber 611. Both ends of the turbine chamber 611 are provided with openings. At the bottom of the turbine chamber 611, there is a rotating rod 613. On the surface of the rotating rod 613, there are turbine blades 612. At the top of the turbine chamber 611, there is an infusion chamber 614. When the support block 61 starts to coincide with the bottom of the empty slot inside the mold frame 11, and at the same time, when the edge of the mold frame 11 is descending, it squeezes the pressing rod 67. When the pressing rod 67 is squeezed by the bottom edge of the mold frame 11, it starts to move downward. When the pressing rod 67 moves, it squeezes the release agent inside the hollow circular seat 66. The squeezed release agent flows into the inside of the cavity cylinder 65 through the conduit 64 at one end of the hollow circular seat 66. At this time, the release agent entering the inside of the cavity cylinder 65 squeezes the push block 68 inside the cavity cylinder 65. After being squeezed, the push block 68 acts on the first spring 69 and the release agent at the other end of the push block 68. At this time, the first spring 69 is squeezed and contracts. When the first spring 69 starts to contract, the release agent is transported to the inside of the cylinder 62 through the conduit 64 at one end of the cavity cylinder 65. At this time, due to the input of the release agent, the inner sleeve 63 rises under the impact of the release agent. When the inner sleeve 63 rises, the second spring 610 contracts, and the release agent enters the turbine chamber 611 through the openings at both ends of the turbine chamber 611. At the same time, the release agent impacts the turbine blades 612 inside the turbine chamber 611. When the turbine blades 612 are impacted, the turbine blades 612 rotate. When the turbine blades 612 start to rotate, they drive the rotating rod 613 to rotate. The rotation of the rotating rod 613 drives the inner sleeve 63 to rotate together. When the inner sleeve 63 rotates, the release agent is continuously transported to the infusion chamber 614 through the turbine chamber 611. When the release agent is transported to the infusion chamber 614, it starts to push up the liquid guide groove 71. When the liquid guide groove 71 is pushed up, the release agent passes through the openings at both ends of the inner sleeve 63 and starts to be sprayed onto the inner wall of the mold frame 11 in a rotating manner for spraying the release agent.
[0043] As an implementation method in this embodiment, as Figures 7 to 11As shown, the blowing force adjusting assembly 7 includes a liquid guide groove 71 sleeved on the surface of the rotating rod 613. A clamping groove 72 is installed at the top of the liquid guide groove 71. A support seat 73 is also provided at the top of the liquid guide groove 71. A fan blade 74 is installed on the top of the support seat 73. A clamping head 75 is installed at the top of the rotating rod 613. The clamping head 75 and the clamping groove 72 are on the same axis. When the liquid guide groove 71 is jacked up by the release agent, the liquid guide groove 71 moves upward. During the movement of the liquid guide groove 71, the clamping groove 72 and the support seat 73 installed at the top of the liquid guide groove 71 move upward together. When the support seat 73 moves, the fan blade 74 installed on the support seat 73 moves together. At this time, the clamping groove 72 continues to move upward until the clamping groove 72 coincides with the clamping head 75 installed at the top of the rotating rod 613. When the clamping head 75 enters the inside of the clamping groove 72, the fan blade 74 extends to the top of the inner sleeve 63. And after the clamping head 75 and the clamping groove 72 overlap each other, the clamping groove 72 rotates together with the rotating rod 613. When the clamping groove 72 rotates, it drives the liquid guide groove 71 to rotate as well. At this time, the rotation of the liquid guide groove 71 causes the support seat 73 to move accordingly. The movement of the support seat 73 drives the fan blade 74 to rotate on the top of the inner sleeve 63. At this time, the wind force generated by the rotation of the fan blade 74 blows on the inner wall of the empty groove of the mold frame 11 to remove the impurities on the surface. Then, after the fan blade 74 finishes blowing, the openings at both ends of the inner sleeve 63 spray the release agent on the inner wall of the mold frame 11. When the spraying of the release agent is completed, under the action of the elastic force of the second spring 610, the inner sleeve 63 starts to reset. At the same time, the fan blade 74 also starts to descend into the inside of the inner sleeve 63.
[0044] As an implementation mode in this embodiment, as Figures 12 to 15As shown in the figure, the vibration adjustment assembly 8 includes a carrier block 81. The carrier block 81 is installed at the bottom of the support frame 9. A drive motor 82 is installed on the top of the carrier block 81. A main shaft 84 is rotatably connected inside the carrier block 81. A runner 83 is installed at one end of the main shaft 84. A crank 85 is installed at one end of the main shaft 84. One end of the crank 85 is rotatably connected to a connecting rod 86. A building block 87 is installed at one end of the connecting rod 86. A slide bar 88 is installed on the top of the building block 87. An adjusting rod 89 is elastically connected inside the slide bar 88. A connecting groove 810 is installed at the top of the adjusting rod 89. After the press head 5 presses the mold frame 11, the vibration adjustment assembly 8 starts to operate. At this time, the drive motor 82 on the carrier block 81 at the bottom of the support frame 9 starts to operate, driving the runner 83 to rotate. When the runner 83 rotates, the runner 83 drives the main shaft 84 to rotate. At this time, the rotation of the main shaft 84 drives the crank 85 to rotate. The rotation of the crank 85 drives the connecting rod 86 connected by rotation to move along with the crank 85. When the connecting rod 86 moves along with the crank 85, the building block 87 rotatably connected to the other end of the connecting rod 86 is pulled. When the building block 87 is pulled, the slide bar 88 installed on the top of the building block 87 moves together. When the slide bar 88 moves, it continuously impacts the adjusting rod 89. When the adjusting rod 89 is impacted by the slide bar 88, the connecting groove 810 at one end of the adjusting rod 89 vibrates, transmitting the vibration to the support frame 9. Then the vibration continues to be transmitted to the brick loading plate 10 through the support frame 9. The brick material inside the mold frame 11 is vibrated and becomes more compact and firm, obtaining the formed brick 13.
[0045] The working principle of the technical solution provided by the present invention is as follows:
[0046] When using this device, first check the connection of the circuit. Then place the brick loading plate 10 above the support frame 9 of the frame 1. Then control the lifting rod 3 through the control center 2. First, lower the mold frame 11 to the top of the brick loading plate 10, close to the brick loading plate 10. At this time, the liquid spraying adjustment assembly 6 and the blowing force adjustment assembly 7 start to operate, blowing air inside the mold frame 11 and spraying the mold release agent inside the mold frame 11. Then manually transport the evenly stirred brick material into the empty slots of the multi-group formed bricks 13 inside the mold frame 11. Then control the pressing plate 4 to move downward through the control center 2. When the pressing plate 4 moves downward, the press head 5 installed at the bottom of the pressing plate 4 moves downward synchronously. When the press head 5 touches the brick material in the empty slot inside the mold frame 11, the vibration motor 12 starts to vibrate. At this time, the brick material inside the mold frame 11 is vibrated, gradually distributed in the empty slots inside the mold frame 11, and gradually compacted. At this time, the press head 5 continues to extrude the brick material inside the mold frame 11.
[0047] When the mold rack 11 reaches the surface of the brick-carrying plate 10 through the lifting rod 3, the liquid spraying adjustment component 6 starts to operate. The support block 61 begins to coincide with the bottom of the empty slot inside the mold rack 11. At the same time, during the descent of the edge of the mold rack 11, the pressing rod 67 is squeezed. When the pressing rod 67 is squeezed by the bottom edge of the mold rack 11, it starts to move downward. When the pressing rod 67 moves, the release agent inside the hollow round seat 66 is squeezed. The squeezed release agent flows into the interior of the cylinder 65 through the conduit 64 at one end of the hollow round seat 66. At this time, the release agent entering the interior of the cylinder 65 squeezes the push block 68 inside the cylinder 65. After being squeezed, the push block 68 acts on the first spring 69 and the release agent at the other end of the push block 68. At this time, the first spring 69 is squeezed and contracts. When the first spring 69 starts to contract, the release agent is transported to the interior of the cylinder 62 through the conduit 64 at one end of the cylinder 65. At this time, due to the input of the release agent, the inner sleeve 63 rises under the impact force of the release agent. After the inner sleeve 63 rises, the second spring 610 contracts, and the release agent enters the turbine chamber 611 through the openings at both ends of the turbine chamber 611. At the same time, the release agent impacts the turbine blades 612 inside the turbine chamber 611. When the turbine blades 612 are impacted, the turbine blades 612 rotate. When the turbine blades 612 start to rotate, they drive the rotating rod 613 to rotate. The rotation of the rotating rod 613 drives the inner sleeve 63 to rotate together. When the inner sleeve 63 rotates, the release agent is continuously transported to the liquid infusion chamber 614 through the turbine chamber 611. When the release agent is transported to the liquid infusion chamber 614, it starts to push up the liquid guide groove 71. After the liquid guide groove 71 is pushed up, the release agent starts to be sprayed onto the inner wall of the mold rack 11 in a rotating manner through the openings at both ends of the inner sleeve 63 for spraying the release agent.
[0048] When the mold release agent is transported upward through the liquid infusion chamber 614, the blowing force adjustment assembly 7 starts to operate. At this time, the liquid guide groove 71 is lifted upward by the mold release agent, and the liquid guide groove 71 moves upward. During the movement of the liquid guide groove 71, the clamping groove 72 and the support base 73 installed at the top of the liquid guide groove 71 are driven to move upward together. When the support base 73 is moving, the fan blades 74 installed on the support base 73 move together. At this time, the clamping groove 72 continues to move upward until the clamping groove 72 coincides with the clamping head 75 installed at the top of the rotating rod 613. When the clamping head 75 enters the inside of the clamping groove 72, at this time, the fan blades 74 extend to the top of the inner sleeve 63, and after the clamping head 75 overlaps with the clamping groove 72, the clamping groove 72 rotates together with the rotating rod 613. When the clamping groove 72 rotates, it drives the liquid guide groove 71 to rotate as well. At this time, the rotation of the liquid guide groove 71 causes the support base 73 to move accordingly, and the movement of the support base 73 drives the fan blades 74 to rotate on the top of the inner sleeve 63. At this time, the wind force generated by the rotation of the fan blades 74 blows the inner wall of the empty groove of the mold rack 11 to remove surface impurities. Then, after the fan blades 74 perform the wind blowing, the openings at both ends of the inner sleeve 63 spray the mold release agent on the inner wall of the mold rack 11. When the spraying of the mold release agent is completed, under the action of the elastic force of the second spring 610, the inner sleeve 63 starts to reset, and at the same time, the fan blades 74 also start to descend into the inside of the inner sleeve 63.
[0049] After the press head 5 presses the mold rack 11, the vibration adjustment assembly 8 starts to operate. At this time, the drive motor 82 on the carrier block 81 at the bottom of the support frame 9 starts to operate, driving the runner 83 to rotate. When the runner 83 rotates, the runner 83 drives the main shaft 84 to rotate. At this time, the rotation of the main shaft 84 drives the crank 85 to rotate, and the rotation of the crank 85 drives the connecting rod 86 connected by rotation to move along with the crank 85. When the connecting rod 86 moves along with the crank 85, the building block 87 connected by rotation at the other end of the connecting rod 86 is pulled. When the building block 87 is pulled, the sliding rod 88 installed on the top of the building block 87 moves together. When the sliding rod 88 moves, it continuously impacts the connecting rod 89. When the connecting rod 89 is impacted by the sliding rod 88, the connecting groove 810 at one end of the connecting rod 89 is vibrated, transmitting the vibration to the support frame 9, and then the vibration continues to be transmitted to the brick loading plate 10 through the support frame 9. The brick material inside the mold rack 11 is vibrated and becomes more compact and solid, obtaining the formed brick 13.
[0050] The present invention encompasses any alternatives, modifications, equivalent methods, and solutions that are within the spirit and scope of the present invention. To enable the public to have a thorough understanding of the present invention, specific details are described in detail in the following preferred embodiments of the present invention. However, those skilled in the art can fully understand the present invention even without the description of these details. Additionally, well-known methods, processes, procedures, components, and circuits are not described in detail to avoid unnecessary confusion with the essence of the present invention.
[0051] The above description is only a preferred embodiment of the present invention. It should be noted that for those of ordinary skill in the art, without departing from the principle of the present invention, several improvements and refinements can be made, and these improvements and refinements should also be regarded as the protection scope of the present invention.
Claims
1. A vibration material taking device for recycled non - fired brick material of building materials, characterized in that, It includes a frame, at one end of which a control center is installed, at one end of the frame a lifting rod is installed, at one end of the lifting rod a pressing plate is installed, at the bottom of the pressing plate a pressing head is installed, at the bottom of the frame a support frame is installed, at the top of the support frame a brick-carrying plate is installed, on the top of the brick-carrying plate a mold frame is arranged, on one side of the mold frame a vibration motor is installed, and inside the mold frame there is a formed brick; A liquid spraying adjustment component, which is installed on the top of the brick-carrying plate and is used for spraying a release agent inside the mold frame; A blowing force adjustment component, which is installed inside the liquid spraying adjustment component and is used for blowing the inner wall of the mold frame with wind; A vibration adjustment component, which is installed at the bottom of the support frame and is used for applying an up-and-down vibration force to the brick-carrying plate; The liquid spraying adjustment component is installed at one end of the blowing force adjustment component, and the blowing force adjustment component is installed above the vibration adjustment component.
2. The vibrating material taking device for the recycled non-fired brick material of building materials according to claim 1, wherein The liquid spraying adjustment component includes a support block installed on the top of the brick-carrying plate. Inside the support block, a cylinder is installed, and inside the cylinder, an inner sleeve is installed.
3. The vibrating material taking device for the building material recycled non-fired brick material according to claim 2, characterized in that, A second spring is installed on the outer surface of the inner sleeve. A conduit is installed at the bottom of the cylinder. One end of the conduit is installed with a cavity cylinder, and a push block is slidably connected inside the cavity cylinder.
4. The vibrating material taking device for the recycled non-fired brick material of building materials according to claim 3, characterized in that, One end of the push block is installed with a first spring. One end of the cavity cylinder is installed with a hollow round seat, and a pressing rod is inserted inside the hollow round seat. A turbine chamber is installed inside the inner sleeve, and openings are provided at both ends of the turbine chamber.
5. The vibrating material taking device for the building material recycled non-fired brick material according to claim 4, characterized in that, A rotating rod is installed at the bottom of the turbine chamber, turbine blades are installed on the surface of the rotating rod, and an infusion chamber is installed at the top of the turbine chamber.
6. The vibrating material taking device for the recycled non-fired brick material of building materials according to claim 5, characterized in that, The blowing force adjustment component includes a liquid guide groove sleeved on the surface of the rotating rod, and a clamping groove is installed at the top of the liquid guide groove.
7. The vibrating material taking device for the recycled non-fired brick material of building materials according to claim 6, characterized in that, A support seat is further arranged at the top of the liquid guide groove, a fan blade is installed on the top of the support seat, and a clamping head is installed at the top of the rotating rod, and the clamping head and the clamping groove are on the same axis.
8. The vibrating material taking device for the building material recycled non-fired brick material according to claim 7, characterized in that, The vibration adjustment component includes a carrier block installed at the bottom of the support frame, a driving motor is installed on the top of the carrier block, and a main shaft is rotatably connected inside the carrier block.
9. The vibrating material taking device for recycled non-fired building material bricks according to claim 8, characterized in that, A runner is installed at one end of the main shaft, a crank is installed at one end of the main shaft, and a connecting rod is rotatably connected at one end of the crank.
10. The vibrating material taking device for recycled non-fired brick material of building materials according to claim 9, characterized in that, One end of the connecting rod is installed with a building block, a sliding rod is installed on the top of the building block, a connecting rod is elastically connected inside the sliding rod, and a connecting groove is installed at the top of the connecting rod.