Energy-saving and environment-friendly building brick production device

The brick production device addresses inefficiencies in traditional methods by integrating precise material distribution and vibration-assisted ejection, enhancing efficiency and reducing waste through continuous processing and consistent brick formation.

CN120307427AActive Publication Date: 2025-07-15JIANGSU SHENYU HARBOR AFFAIRS ENG CO LTD

Patent Information

Application Number
CN202510750974.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-06
Publication Date
2025-07-15
Estimated Expiration
2045-06-06

AI Technical Summary

Technical Problem

Traditional bricklaying production equipment has the problem of low processing efficiency and inability to process continuously, and large-scale feeding leads to waste and residue of raw materials, affecting the suppression effect and production efficiency.

Method used

The combination of upper press die assembly and lower press die assembly is adopted, and combined with the automatic design of the vibration component, the uninterrupted loading, stamping and unloading process is achieved, ensuring uniform extrusion of raw materials, and improving the demolding efficiency through the vibration component.

Benefits of technology

It improves raw material utilization, reduces waste and environmental pollution, ensures consistency in quality of bricks, realizes an efficient brick production process, and avoids the problem of inefficiency in traditional processes.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an energy-saving and environment-friendly building brick production device, which relates to the technical field of building brick production, and comprises an equipment unit, a production unit and a control unit, comprising an upper pressing die assembly arranged on a supporting piece and a forming assembly arranged at the bottom of the upper pressing die assembly and used for conducting extrusion forming on bricks. The upper pressing die assembly and the lower pressing die assembly are used for extruding the forming assembly, so that the forming assembly is moved to the bottom of the hopper for feeding, the utilization rate of raw materials is increased, and the problems of waste and residues caused by the fact that the raw materials cannot effectively enter a forming cavity are solved. And through accurate matching of the upper pressing die assembly and the lower pressing die assembly, materials in the forming assembly are evenly extruded into blocks, the quality and consistency of the bricks are ensured, meanwhile, the continuous feeding, stamping, forming and discharging processes are achieved through automatic design of the device, and the production efficiency is effectively improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of building brick production, and particularly relates to an energy-saving and environment-friendly building brick production device. Background Art

[0002] Modern buildings mainly use reinforced concrete. As a traditional masonry material, bricks are changing from mainly using clay as raw materials to using industrial waste, and from sintered to non-sintered. According to different usage parts, bricks are divided into wall bricks, load-bearing bricks, non-load-bearing bricks, etc. At present, the production method of non-fired pressing saves resources and has less pollution, and has become an energy-saving and environment-friendly brick production method.

[0003] At present, most brick materials adopt the production method of non-fired pressing and forming. However, the traditional pressing process has problems such as low processing efficiency and inability to continuously process. Moreover, the existing brick processing device uses a large-area feeding method during feeding, resulting in the raw materials being unable to effectively enter the forming cavity, causing waste and being easily left on the surface of the forming cavity, affecting the pressing effect. At the same time, it is difficult for the bricks to smoothly fall off from the forming cavity after the brick production is completed, affecting the conveying speed and thus reducing the production efficiency. Summary of the Invention

[0004] In view of the above problems existing in the existing energy-saving and environment-friendly building brick production device, the present invention is proposed.

[0005] Therefore, the present invention provides an energy-saving and environment-friendly building brick production device, and its purpose is to solve the problems of low efficiency of the traditional pressing process, inability to continuously process, waste caused by large-area feeding, residue in the forming cavity, and difficulty in brick removal.

[0006] To solve the above technical problems, the present invention provides the following technical solutions: An equipment unit, including a support member, and a hopper provided on the top of the support member for feeding materials. A production unit, including an upper pressing die assembly provided on the support member, a forming assembly provided at the bottom of the upper pressing die assembly for extruding and forming bricks, a lower pressing die assembly slidably provided at the bottom of the forming assembly and cooperating with the upper pressing die assembly, and a vibration assembly provided on one side of the forming assembly for vibrating and feeding bricks. Moreover, the upper pressing die assembly, the forming assembly, the lower pressing die assembly, and the vibration assembly are all fixedly connected to the support member. A feeding unit, including a feeding assembly provided on the other side of the forming assembly for feeding and transporting bricks, and the feeding assembly is fixedly connected to the support member.

[0007] As a preferred embodiment of the energy-saving and environment-friendly building brick production device of the present invention, the upper pressing die assembly includes a connecting member disposed on the support member, a first hydraulic rod disposed on the top of the connecting member, a first pressing plate disposed at the output end of the first hydraulic rod, a first pressing block disposed at the bottom of the first pressing plate, a first rotating shaft disposed on the first pressing plate, a first linkage rod rotatably disposed on the outer diameter of the first rotating shaft, and a support rod disposed at the bottom of the connecting member, and the support rod is slidably connected to both the first pressing plate and the lower pressing die assembly.

[0008] As a preferred embodiment of the energy-saving and environment-friendly building brick production device of the present invention, the forming assembly includes a fixing plate disposed on the support member, a conveying member slidably disposed on the top of the fixing plate, buffer spring members disposed at both ends of the conveying member, a second rotating shaft disposed at one end of the buffer spring member, and the second rotating shaft is rotatably connected to the first linkage rod, and a mold member disposed at one end of the conveying member, and the mold member is slidably connected to the blanking assembly.

[0009] Inside the conveying member, a first reset spring is provided, and at the other end of the first reset spring, a push plate is provided, and the push plate is slidably connected to the conveying member. Inside the conveying member, a top plate is provided, and the top plate is slidably connected to the push plate.

[0010] At the bottom of the fixing plate, a forming member is provided, and the forming member is slidably connected to the second pressing block.

[0011] As a preferred embodiment of the energy-saving and environment-friendly building brick production device of the present invention, the lower pressing die assembly includes a support block disposed on the support member, a second hydraulic rod disposed on the support block, a second pressing plate disposed at the output end of the second hydraulic rod, and a second pressing block disposed on the top of the second pressing plate, and the second pressing block is slidably connected to the fixing plate.

[0012] At both the front and rear ends of the second pressing plate, a third rotating shaft is provided, and a second linkage rod is rotatably disposed on the outer diameter of the third rotating shaft, and the other end of the second linkage rod is rotatably connected to the second rotating shaft.

[0013] As a preferred embodiment of the energy-saving and environment-friendly building brick production device of the present invention, the vibration assembly includes a motor disposed on the support member, a rotating disk disposed at the output end of the motor, a rotating rod disposed on one side of the top of the rotating disk, a pushing rod rotatably disposed on the outer diameter of the rotating rod, and a contracting member disposed at the top of the other end of the pushing rod.

[0014] As a preferred embodiment of the energy-saving and environment-friendly building brick production device of the present invention, the following is provided: a limiting rod is arranged on the support member, a second reset spring is arranged inside the limiting rod, the other end of the second reset spring is provided with an extension rod, a clamping groove is arranged at the bottom of the extension rod, and the clamping groove is slidably connected with the contraction member, and the extension rod is fixedly connected with the conveying member.

[0015] As a preferred embodiment of the energy-saving and environment-friendly building brick production device of the present invention, the following is provided: a blanking assembly, including a fixing frame arranged on one side of the support member, an electric push rod arranged inside the fixing frame, a connecting plate arranged at the output end of the electric push rod, and a moving plate arranged on the top of the connecting plate, and the moving plate is slidably connected with the fixing frame.

[0016] The beneficial effects of the present invention are as follows: by crushing the waste materials of chemical industry and other materials and putting them into the hopper, using the upper pressing die assembly and the lower pressing die assembly to extrude the forming assembly, so that the forming assembly moves to the bottom of the hopper for feeding in a linkage manner, not only improves the utilization rate of raw materials, but also reduces the waste and residue problems caused by the ineffective entry of raw materials into the forming cavity, and through the precise cooperation of the upper pressing die assembly and the lower pressing die assembly, the materials inside the forming assembly are evenly extruded into blocks, ensuring the quality and consistency of the bricks. At the same time, the automatic design of the device realizes the continuous feeding, stamping, forming and blanking processes, effectively improves the production efficiency, and avoids the problems of low processing efficiency and inability to continuously process existing in the traditional pressing process. The vibration assembly further improves the demoulding efficiency of the bricks, reduces the problems of reduced conveying speed and production efficiency caused by the difficulty of the bricks falling off smoothly from the forming cavity, and controls the feeding and forming process of the raw materials, reduces the energy waste and environmental pollution caused by raw material residue and uneven feeding, and realizes green production. Description of the Drawings

[0017] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0018] Figure 1 It is a schematic diagram of the extrusion structure of the energy-saving and environment-friendly building brick production device of the present invention.

[0019] Figure 2 It is a schematic diagram of the unfolded structure of the energy-saving and environment-friendly building brick production device of the present invention.

[0020] Figure 3 It is a schematic diagram of the side view structure of the energy-saving and environment-friendly building brick production device of the present invention.

[0021] Figure 4 This is a schematic cross-sectional structure diagram of the energy-saving and environment-friendly building brick production device of the present invention.

[0022] Figure 5 This is the energy-saving and environment-friendly building brick production device of the present invention Figure 4 and is an enlarged structure diagram at position A thereof.

[0023] Figure 6 This is a schematic structure diagram of the upper pressing die assembly of the energy-saving and environment-friendly building brick production device of the present invention.

[0024] Figure 7 This is a schematic structure diagram of the feeding assembly of the energy-saving and environment-friendly building brick production device of the present invention.

[0025] Figure 8 This is a schematic structure diagram of the lower pressing die assembly of the energy-saving and environment-friendly building brick production device of the present invention.

[0026] Figure 9 This is a schematic structure diagram of the vibration assembly of the energy-saving and environment-friendly building brick production device of the present invention.

[0027] Figure 10 This is a schematic structure diagram of the blanking assembly of the energy-saving and environment-friendly building brick production device of the present invention.

[0028] Explanation of reference numerals: 100, equipment unit; 101, support member; 102, hopper; 200, production unit; 201, upper pressing die assembly; 2011, connecting member; 2012, hydraulic rod 1; 2013, pressing plate 1; 2014, pressing block 1; 2015, support rod; 2016, rotating shaft 1; 2017, linkage rod 1; 202, forming assembly; 2021, fixing plate; 2022, conveying member; 2023, die member; 2024, buffer spring member; 2025, rotating shaft 2; 2026, return spring 1; 2027, push plate; 2028, top plate; 2029, forming member; 203, lower pressing die assembly; 2031, support block; 2032, hydraulic rod 2; 2033, pressing plate 2; 2034, pressing block 2; 2036, rotating shaft 3; 2037, linkage rod 2; 204, vibration assembly; 2041, motor; 2042, rotating disk; 2043, rotating rod; 2044, pushing rod; 2045, contracting member; 2046, limiting rod; 2047, return spring 2; 2048, extending rod; 2049, card slot; 300, blanking unit; 301, blanking assembly; 3011, fixing frame; 3012, electric push rod; 3013, connecting plate; 3014, moving plate. Detailed implementation manners

[0029] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and understandable, the following will specifically describe the detailed implementation manners of the present invention with reference to the accompanying drawings of the specification.

[0030] Example 1, referring to Figures 1-3 , which is the first embodiment of the present invention, provides an energy-saving and environment-friendly building brick production device, which includes: a device unit 100, a production unit 200, and a blanking unit 300.

[0031] Among them, the device unit 100 includes a support member 101 and a hopper 102 provided at the top of the support member 101 for blanking; The production unit 200 includes an upper pressing die assembly 201 provided on the support member 101, a forming assembly 202 provided at the bottom of the upper pressing die assembly 201 for extruding and forming bricks, a lower pressing die assembly 203 slidably provided at the bottom of the forming assembly 202 and cooperating with the upper pressing die assembly 201, and a vibrating assembly 204 provided on one side of the forming assembly 202 for vibrating and blanking bricks. The upper pressing die assembly 201, the forming assembly 202, the lower pressing die assembly 203, and the vibrating assembly 204 are all fixedly connected to the support member 101; The blanking unit 300 includes a blanking assembly 301 provided on the other side of the forming assembly 202 for blanking and transporting bricks, and the blanking assembly 301 is fixedly connected to the support member 101. When producing bricks, after crushing the waste materials such as chemical industry materials, they are put into the hopper 102. The upper pressing die assembly 201 and the lower pressing die assembly 203 start to extrude towards the middle forming assembly 202. Under the extrusion of the upper pressing die assembly 201 and the lower pressing die assembly 203, the forming assembly 202 moves to the bottom of the hopper 102. Then the hopper 102 starts to feed materials, filling the inside of the forming assembly 202 with materials. Then, as the upper pressing die assembly 201 and the forming assembly 202 separate, the forming assembly 202 is driven to move between the upper pressing die assembly 201 and the lower pressing die assembly 203 again, transporting the materials into the inside of the forming part 2029 at the bottom of the forming assembly 202. Then the upper pressing die assembly 201 and the forming assembly 202 extrude towards the forming assembly 202 again, causing the conveying part 2022 inside the forming assembly 202 to move out, and the die part 2023 enters between the upper pressing die assembly 201 and the lower pressing die assembly 203. With the extrusion of the upper pressing die assembly 201 and the lower pressing die assembly 203, all the materials inside the forming part 2029 are extruded into the inside of the die part 2023. Then the upper pressing die assembly 201 and the lower pressing die assembly 203 start to cooperate to extrude and form the materials inside the forming assembly 202.

[0032] While extruding, the hopper 102 starts feeding the conveying part 2022 again. After the extrusion is completed, the upper pressing die assembly 201 and the lower pressing die assembly 203 move in opposite directions, causing the die part 2023 to move to the top of the blanking assembly 301, while the conveying part 2022 moves to the top of the forming part 2029 for re-feeding. At the same time, the vibration assembly 204 starts vibrating, causing the blanking assembly 301 to start shrinking downward at the bottom of the die part 2023, starting to vibrate and discharge the bricks inside the die part 2023. And through the vibration of the vibration assembly 204, the bricks can fall off more stably and quickly. At the same time, the materials inside the conveying part 2022 can be fed more evenly and tightly. After the blanking is completed, the blanking assembly 301 transports the formed bricks out. Through the cooperation of the upper pressing die assembly 201, the lower pressing die assembly 203 and the forming assembly 202, a complete set of processes of continuous feeding, stamping, forming, and blanking can be completed.

[0033] During use, when producing bricks, after crushing the waste materials of chemical industry and other materials, they are put into the hopper 102. The upper pressing die assembly 201 and the lower pressing die assembly 203 start extruding towards the middle forming assembly 202. Under the extrusion of the upper pressing die assembly 201 and the lower pressing die assembly 203, the forming assembly 202 moves to the bottom of the hopper 102, and then the hopper 102 starts feeding, filling the inside of the forming assembly 202 with materials. Then, as the upper pressing die assembly 201 and the forming assembly 202 separate, the forming assembly 202 is driven to move between the upper pressing die assembly 201 and the lower pressing die assembly 203 again, transporting the materials into the inside of the forming part 2029 at the bottom of the forming assembly 202. Then, the upper pressing die assembly 201 and the forming assembly 202 extrude towards the forming assembly 202 again, causing the conveying part 2022 inside the forming assembly 202 to move out, and the die part 2023 enters between the upper pressing die assembly 201 and the lower pressing die assembly 203. With the extrusion of the upper pressing die assembly 201 and the lower pressing die assembly 203, all the materials inside the forming part 2029 are extruded into the inside of the die part 2023. Then, the upper pressing die assembly 201 and the lower pressing die assembly 203 start to cooperate to extrude and form the materials inside the forming assembly 202.

[0034] While extruding, the hopper 102 starts feeding the conveying member 2022 again. After the extrusion is completed, the upper pressing die assembly 201 and the lower pressing die assembly 203 move in opposite directions, causing the die member 2023 to move to the top of the blanking assembly 301, while the conveying member 2022 moves to the top of the forming member 2029 for re-feeding. At the same time, the vibration assembly 204 starts vibrating, causing the blanking assembly 301 to start shrinking downward at the bottom of the die member 2023, starting to vibrate and discharge the bricks inside the die member 2023. And through the vibration of the vibration assembly 204, the bricks can fall off more stably and quickly. At the same time, the materials inside the conveying member 2022 can be fed more evenly and tightly. After the blanking is completed, the blanking assembly 301 transports the formed bricks out. Through the cooperation of the upper pressing die assembly 201, the lower pressing die assembly 203 and the forming assembly 202, the whole process of continuous feeding, stamping, forming, and blanking can be completed, avoiding the problems of low processing efficiency and inability to continuously process existing in traditional pressing processes. Moreover, the existing bricklaying processing device uses a large-area feeding method during feeding, resulting in the raw materials being unable to effectively enter the forming cavity, causing waste and being easily left on the surface of the forming cavity, affecting the pressing effect. At the same time, it is difficult for the bricks to fall off smoothly from the forming cavity after the bricklaying production is completed, affecting the conveying speed, and further reducing the production efficiency.

[0035] Example 2, referring to Figures 1-8, which is the second embodiment of the present invention. The difference between this embodiment and the first embodiment is as follows: The upper pressing die assembly 201 includes a connecting member 2011 disposed on the support member 101, a first hydraulic rod 2012 disposed on the top of the connecting member 2011, a first pressing plate 2013 disposed on the output end of the first hydraulic rod 2012, a first pressing block 2014 disposed on the bottom of the first pressing plate 2013, a first rotating shaft 2016 disposed on the first pressing plate 2013, a first linkage rod 2017 rotatably disposed on the outer diameter of the first rotating shaft 2016, and a support rod 2015 disposed at the bottom of the connecting member 2011. The support rod 2015 is slidably connected to both the first pressing plate 2013 and the lower pressing die assembly 203. The forming assembly 202 includes a fixing plate 2021 disposed on the support member 101, a conveying member 2022 slidably disposed on the top of the fixing plate 2021, buffer spring members 2024 disposed at both ends of the conveying member 2022, a second rotating shaft 2025 disposed at one end of the buffer spring member 2024, and the second rotating shaft 2025 is rotatably connected to the first linkage rod 2017. A die member 2023 is disposed at one end of the conveying member 2022, and the die member 2023 is slidably connected to the blanking assembly 301. A first return spring 2026 is disposed inside the conveying member 2022. The other end of the first return spring 2026 is provided with a push plate 2027, and the push plate 2027 is slidably connected to the conveying member 2022. A top plate 2028 is disposed inside the conveying member 2022, and the top plate 2028 is slidably connected to the push plate 2027. When producing bricks, after an operator puts raw materials into the hopper 102, the first hydraulic rod 2012 at the top of the connecting member 2011 starts to drive, causing the first pressing plate 2013 to move downward with the first pressing block 2014. At the same time, the first linkage rod 2017 also starts to rotate around the first rotating shaft 2016, and the first linkage rod 2017 starts to push the second rotating shaft 2025, causing the second rotating shaft 2025 to move the buffer spring member 2024 and the conveying member 2022 to directly below the hopper 102. And when the conveying member 2022 moves to directly below the hopper 102, the die member 2023 just moves to the bottom of the first pressing block 2014. Then the hopper 102 starts to feed materials into the inside of the conveying member 2022. After the feeding is completed, the first hydraulic rod 2012 moves upward, so that the first linkage rod 2017 pulls the conveying member 2022 back to the top of the fixing plate 2021 again, causing all the materials inside the conveying member 2022 to fall into the inside of the forming member 2029 at the bottom of the fixing plate 2021. Then the first hydraulic rod 2012 moves downward again, and the first linkage rod 2017 squeezes the conveying member 2022 out of the fixing plate 2021 again and moves it to the bottom of the hopper 102. At the same time, the die member 2023 moves to the top of the fixing plate 2021. As the first hydraulic rod 2012 presses downward with the first pressing block 2014, the bricks are extruded and formed.

[0036] Compared with Embodiment 1, further, the lower pressing die assembly 203 includes a support block 2031 disposed on the support member 101, a second hydraulic rod 2032 disposed on the support block 2031, a second pressing plate 2033 disposed at the output end of the second hydraulic rod 2032, and a second pressing block 2034 disposed on the top of the second pressing plate 2033. The second pressing block 2034 is slidably connected to the fixing plate 2021. A forming member 2029 is disposed at the bottom of the fixing plate 2021, and the forming member 2029 is slidably connected to the second pressing block 2034. Rotating shafts three 2036 are disposed at both the front and rear ends of the second pressing plate 2033. A second linkage rod 2037 is rotatably disposed on the outer diameter of the rotating shaft three 2036, and the other end of the second linkage rod 2037 is rotatably connected to the rotating shaft two 2025. When the upper pressing die assembly 201 presses downward, the second hydraulic rod 2032 also drives the second pressing plate 2033 and the second pressing block 2034 to move upward, starting to cooperate with the pressing of the upper pressing die assembly 201. At the same time, during the upward movement of the second hydraulic rod 2032, the rotating shaft three 2036 also rotates the second linkage rod 2037, cooperating with the first linkage rod 2017 to drive the movement of the rotating shaft two 2025 and the conveying member 2022. And during the upward movement of the second pressing block 2034, the material inside the forming member 2029 is extruded into the inside of the mold member 2023, and in cooperation with the first pressing block 2014, the bricks inside the mold member 2023 are extruded and formed. And when the first pressing block 2014 and the second pressing block 2034 press the mold member 2023, the conveying member 2022 returns to the bottom of the hopper 102, starting the second round of feeding, and under the cooperation of the first return spring 2026 and the push plate 2027, the material inside is pressed. After the first pressing block 2014 and the second pressing block 2034 complete the pressing, the upper pressing die assembly 201 and the lower pressing die assembly 203 run in the reverse direction to move the conveying member 2022 back to the top of the fixing plate 2021, enabling the conveying member 2022 to start the second round of feeding, and then the mold member 2023 moves to the top of the blanking assembly 301 for blanking, thus completing the entire workflow of feeding, extrusion forming, and blanking.

[0037] During use, when producing bricks, after the operator puts the raw materials into the hopper 102, the hydraulic rod 2012 at the top of the connecting piece 2011 starts to drive, causing the pressing plate 2013 to drive the pressing block 2014 downward. At the same time, the linkage rod 2017 also starts to rotate around the rotating shaft 2016, and the linkage rod 2017 starts to push the rotating shaft 2025, causing the rotating shaft 2025 to drive the buffer spring member 2024 and the conveying member 2022 to move to directly below the hopper 102. And when the conveying member 2022 moves below the hopper 102, the mold member 2023 just moves to the bottom of the pressing block 2014. Then the hopper 102 starts to feed the inside of the conveying member 2022. After the feeding is completed, the hydraulic rod 2012 moves upward, so that the linkage rod 2017 pulls the conveying member 2022 back to the top of the fixed plate 2021, making all the materials inside the conveying member 2022 fall into the inside of the forming member 2029 at the bottom of the fixed plate 2021. Then the hydraulic rod 2012 moves downward again, and the linkage rod 2017 squeezes the conveying member 2022 out of the fixed plate 2021 and moves it to the bottom of the hopper 102 again. At the same time, the mold member 2023 moves to the top of the fixed plate 2021, and as the hydraulic rod 2012 drives the pressing block 2014 to press downward, the bricks are extruded and formed.

[0038] When the upper pressing die assembly 201 presses downward, the hydraulic rod 2032 also drives the pressing plate 2033 and the pressing block 2034 upward, starting to cooperate with the extrusion of the upper pressing die assembly 201. At the same time, during the upward movement of the hydraulic rod 2032, the rotating shaft 2036 also causes the linkage rod 2037 to rotate, cooperating with the linkage rod 2017 to drive the movement of the rotating shaft 2025 and the conveying member 2022 together. And during the upward movement of the pressing block 2034, the materials inside the forming member 2029 are extruded and squeezed into the inside of the mold member 2023. And with the cooperation of the pressing block 2014, the bricks inside the mold member 2023 are extruded and formed. And when the pressing block 2014 and the pressing block 2034 squeeze the mold member 2023, the conveying member 2022 returns to the bottom of the hopper 102 again, starting the second-round feeding. And with the cooperation of the return spring 2026 and the push plate 2027, the materials inside are pressed. After the pressing block 2014 and the pressing block 2034 complete the extrusion, the upper pressing die assembly 201 and the lower pressing die assembly 203 run in the reverse direction to move the conveying member 2022 back to the top of the fixed plate 2021 again, making the conveying member 2022 start the second-round feeding. Then the mold member 2023 moves to the top of the feeding assembly 301 for feeding, thus completing the whole working process of feeding, extrusion forming and feeding.

[0039] The remaining structure is the same as that of Embodiment 1.

[0040] Example 3, referring to Figures 1-10 , which is the third embodiment of the present invention. The difference between this embodiment and the second embodiment is that the vibration assembly 204 includes a motor 2041 disposed on the support member 101, a rotating disk 2042 disposed at the output end of the motor 2041, a rotating rod 2043 disposed on one side of the top of the rotating disk 2042, a push rod 2044 rotatably disposed on the outer diameter of the rotating rod 2043, and a contraction member 2045 disposed at the top of the other end of the push rod 2044. A limiting rod 2046 is disposed on the support member 101. A second return spring 2047 is disposed inside the limiting rod 2046. The other end of the second return spring 2047 is provided with an extension rod 2048. A card slot 2049 is disposed at the bottom of the extension rod 2048, and the card slot 2049 is slidably connected to the contraction member 2045. The extension rod 2048 is fixedly connected to the conveying member 2022. After the upper die assembly 201 and the lower die assembly 203 perform brick extrusion molding on the molding assembly 202, after moving the mold member 2023 to the top of the blanking assembly 301, the motor 2041 starts to drive, so that the rotating rod 2043 on the top of the rotating disk 2042 drives the push rod 2044 and the contraction member 2045 to move left and right together, and under the action of the contraction member 2045, the extension rod 2048 drives the mold member 2023 and the conveying member 2022 to move slightly left and right, thereby generating vibration, so that when the conveying member 2022 discharges materials inside the molded part 2029, the materials can be discharged more evenly due to vibration. At the same time, the bricks molded inside the mold member 2023 can also be vibrated and discharged, which can effectively prevent the bricks from sticking to the inner wall of the mold member 2023, so that the bricks can be separated more quickly, and the conveying member 2022 can be loaded more quickly. And when the conveying member 2022 moves towards the bottom of the hopper 102, the movement of the conveying member 2022 can also be limited and guided by the extension rod 2048 pressing the second return spring 2047 and sliding into the limiting rod 2046, so that the conveying member 2022 moves more stably under the drive of the upper die assembly 201 and the lower die assembly 203.

[0041] Compared with Embodiment 2, further, the blanking assembly 301 includes a fixing frame 3011 arranged on one side of the support member 101, an electric push rod 3012 arranged inside the fixing frame 3011, a connecting plate 3013 arranged at the output end of the electric push rod 3012, and a moving plate 3014 arranged on the top of the connecting plate 3013. The moving plate 3014 is slidably connected to the fixing frame 3011. When the upper die assembly 201 and the lower die assembly 203 move the die part 2023 to the top of the moving plate 3014, the electric push rod 3012 starts to cooperate with the vibration of the vibration assembly 204, so that the moving plate 3014 starts to move downward along the fixing frame 3011, and cooperates with the vibration of the vibration assembly 204 for blanking, so that the bricks formed inside the die part 2023 can be separated more stably and quickly.

[0042] During the use process, after the upper die assembly 201 and the lower die assembly 203 extrude and form bricks on the forming assembly 202, when the die part 2023 is moved to the top of the blanking assembly 301, the motor 2041 starts to drive, so that the rotating rod 2043 on the top of the rotating disk 2042 drives the push rod 2044 and the retracting member 2045 to move left and right together, and under the action of the retracting member 2045, the extension rod 2048 drives the die part 2023 and the conveying member 2022 to move slightly left and right, thereby generating vibration, so that when the conveying member 2022 feeds materials inside the forming part 2029, the materials can be fed more evenly due to vibration, and at the same time, the bricks formed inside the die part 2023 can also be vibrated for blanking, which can effectively prevent the bricks from sticking to the inner wall of the die part 2023, so that the bricks can be separated more quickly, and the conveying member 2022 can be fed more quickly. And when the conveying member 2022 moves to the bottom of the hopper 102, the movement of the conveying member 2022 can also be limited and guided by the extension rod 2048 squeezing the second return spring 2047 and sliding into the inside of the limiting rod 2046, so that the conveying member 2022 moves more stably under the drive of the upper die assembly 201 and the lower die assembly 203.

[0043] When the upper die assembly 201 and the lower die assembly 203 move the die part 2023 to the top of the moving plate 3014, the electric push rod 3012 starts to cooperate with the vibration of the vibration assembly 204, so that the moving plate 3014 starts to move downward along the fixing frame 3011, and cooperates with the vibration of the vibration assembly 204 for blanking, so that the bricks formed inside the die part 2023 can be separated more stably and quickly, reducing the problems of reduced conveying speed and production efficiency caused by the difficulty of the bricks falling off smoothly from the forming cavity, and controlling the feeding and forming process of the raw materials, reducing the energy waste and environmental pollution caused by raw material residue and uneven feeding, and realizing green production.

[0044] The remaining structure is the same as that of Embodiment 2.

[0045] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and not to limit them. Although the present invention has been described in detail with reference to the preferred embodiments, those of ordinary skill in the art should understand that the technical solutions of the present invention can be modified or equivalently replaced without departing from the spirit and scope of the technical solutions of the present invention, and they should all be covered within the scope of the claims of the present invention.

Claims

1. An energy-saving and environment-friendly building brick production device, characterized in that: Comprising: A device unit (100), including a support member (101), and a hopper (102) disposed on the top of the support member (101) for discharging materials; A production unit (200), including an upper pressing die assembly (201) disposed on the support member (101), a forming assembly (202) disposed at the bottom of the upper pressing die assembly (201) for extruding and forming bricks, a lower pressing die assembly (203) slidably disposed at the bottom of the forming assembly (202) and cooperating with the upper pressing die assembly (201), and a vibration assembly (204) disposed on one side of the forming assembly (202) for vibrating and discharging bricks. The upper pressing die assembly (201), the forming assembly (202), the lower pressing die assembly (203), and the vibration assembly (204) are all fixedly connected to the support member (101); A discharging unit (300), including a discharging assembly (301) disposed on the other side of the forming assembly (202) for discharging and transporting bricks for building, and the discharging assembly (301) is fixedly connected to the support member (101).

2. The energy-saving and environment-friendly building brick production device according to claim 1, characterized in that: The upper pressing die assembly (201) includes a connecting member (2011) disposed on the support member (101), a first hydraulic rod (2012) disposed on the top of the connecting member (2011), a first pressing plate (2013) disposed at the output end of the first hydraulic rod (2012), a first pressing block (2014) disposed at the bottom of the first pressing plate (2013), a first rotating shaft (2016) disposed on the first pressing plate (2013), a first linkage rod (2017) rotatably disposed on the outer diameter of the first rotating shaft (2016), and a support rod (2015) disposed at the bottom of the connecting member (2011). The support rod (2015) is slidably connected to both the first pressing plate (2013) and the lower pressing die assembly (203).

3. The energy-saving and environment-friendly building brick production device according to claim 2, characterized in that: The forming assembly (202) includes a fixing plate (2021) disposed on the support member (101), a conveying member (2022) slidably disposed on the top of the fixing plate (2021), buffer spring members (2024) disposed at both ends of the conveying member (2022), a second rotating shaft (2025) disposed at one end of the buffer spring member (2024), and the second rotating shaft (2025) is rotatably connected to the first linkage rod (2017), and a die member (2023) disposed at one end of the conveying member (2022), and the die member (2023) is slidably connected to the discharging assembly (301).

4. The energy-saving and environment-friendly building brick production device according to claim 3, characterized in that: A first reset spring (2026) is disposed inside the conveying member (2022), the other end of the first reset spring (2026) is provided with a push plate (2027), and the push plate (2027) is slidably connected to the conveying member (2022). A top plate (2028) is disposed inside the conveying member (2022), and the top plate (2028) is slidably connected to the push plate (2027).

5. The energy-saving and environment-friendly building brick production device according to claim 4, characterized in that: A forming member (2029) is disposed at the bottom of the fixing plate (2021), and the forming member (2029) is slidably connected to a second pressing block (2034).

6. The energy-saving and environment-friendly building brick production device according to claim 5, characterized in that: The downward pressing die assembly (203) includes a support block (2031) disposed on the support member (101), a second hydraulic rod (2032) disposed on the support block (2031), a second pressing plate (2033) disposed at the output end of the second hydraulic rod (2032), and a second pressing block (2034) disposed on the top of the second pressing plate (2033), and the second pressing block (2034) is slidably connected to the fixing plate (2021).

7. The energy-saving and environment-friendly building brick production device according to claim 6, characterized in that: Rotating shafts three (2036) are disposed at both the front and rear ends of the second pressing plate (2033), a second linkage rod (2037) is rotatably disposed on the outer diameter of the rotating shaft three (2036), and the other end of the second linkage rod (2037) is rotatably connected to the rotating shaft two (2025).

8. The energy-saving and environment-friendly building brick production device according to claim 7, characterized in that: The vibration assembly (204) includes a motor (2041) disposed on the support member (101), a rotating disk (2042) disposed at the output end of the motor (2041), a rotating rod (2043) disposed on one side of the top of the rotating disk (2042), a pushing rod (2044) rotatably disposed on the outer diameter of the rotating rod (2043), and a contracting member (2045) disposed at the top of the other end of the pushing rod (2044).

9. The energy-saving and environment-friendly building brick production device according to claim 8, characterized in that: A limiting rod (2046) is disposed on the support member (101), a second reset spring (2047) is disposed inside the limiting rod (2046), an extending rod (2048) is disposed at the other end of the second reset spring (2047), a card slot (2049) is disposed at the bottom of the extending rod (2048), and the card slot (2049) is slidably connected to the contracting member (2045), and the extending rod (2048) is fixedly connected to the conveying member (2022).

10. The energy-saving and environment-friendly building brick production device according to claim 9, characterized in that: The blanking assembly (301) includes a fixing frame (3011) disposed on one side of the support member (101), an electric push rod (3012) disposed inside the fixing frame (3011), a connecting plate (3013) disposed at the output end of the electric push rod (3012), a moving plate (3014) disposed on the top of the connecting plate (3013), and the moving plate (3014) is slidably connected to the fixing frame (3011).

Citation Information

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