High-load-bearing building waste recycling grass-planting brick and production equipment thereof

By using a drive assembly and a driven assembly in conjunction with a rake plate to stir the material inside the rectangular frame and guide it into the lower mold, and then using a scraper assembly to collect the material from the top of the lower mold, the problems of material waste and ground dirt in the production of grass pavers are solved, achieving efficient material utilization and clean production.

CN116587399BActive Publication Date: 2026-05-15ANHUI LIANGYAN KUNPENG CITY ENVIRONMENTAL PROTECTION TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
ANHUI LIANGYAN KUNPENG CITY ENVIRONMENTAL PROTECTION TECH CO LTD
Filing Date
2023-05-30
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

In existing grass paver production equipment, materials are prone to detaching from the gaps during reciprocating vibration, leading to material waste and ground dirt.

Method used

The drive and driven components work together with the rake plate to stir the material inside the rectangular frame cavity, causing it to enter the lower template cavity. The scraper assembly collects the material from the top of the lower template, preventing material spillage and ground soiling.

Benefits of technology

It improves material utilization, reduces material loss and floor dirt, and ensures cleanliness and efficiency in the production process.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention discloses a high-load-bearing capacity recycled grass paver from construction waste and its production equipment. The production equipment includes a lower template: a conveyor platform and a carrier platform are respectively arranged on the right and left sides of the lower template; a rectangular frame is placed on the top of the carrier platform; and a pushing component and a driving component are arranged on the left side of the rectangular frame. This invention uses the cooperation of the driving component and the driven component to drive a rake plate to reciprocate within the inner cavity of the rectangular frame, causing the rake plate to push the material in the inner cavity of the rectangular frame into the inner cavity of the lower template. This avoids the material shaking to the top periphery of the lower template during the reciprocating movement of the rectangular frame. Simultaneously, a scraper component collects the small amount of material remaining on the top of the lower template into a collection trough, thus preventing material overflow during the lower template's feeding process. Collecting the small amount of material on the top of the lower template also reduces material loss and ground soiling during the grass paver production process.
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Description

Technical Field

[0001] This invention belongs to the field of grass paver production technology, and in particular relates to a high-load-bearing capacity recycled grass paver from construction waste and its production equipment. Background Technology

[0002] Grass pavers made from recycled construction waste are produced by pressing construction waste and other ingredients together using a high-pressure brick machine. These grass pavers have strong compressive strength, excellent stability when laid on the ground, and provide extensive green coverage. The recycled aggregate is produced from construction waste through resource recycling. The production and utilization of recycled construction waste aggregate is of great significance for saving resources, protecting the environment, and achieving sustainable development of the construction industry.

[0003] During processing, grass paver machines require moving a U-shaped frame carrying material to the top of the lower mold, followed by reciprocating vibration of the frame to allow the material to enter the inner cavity of the lower mold. This method is relatively mature and structurally stable. However, during the reciprocating vibration of the U-shaped frame, material enters the gap between the frame and the lower mold. Subsequently, the material between them vibrates and detaches from the gap to both sides of the top of the lower mold, resulting in material waste. Furthermore, material around the top of the lower mold falls to the ground during production, causing dirt accumulation. Therefore, a high-load-bearing capacity recycled grass paver from construction waste and its production equipment are needed. This would avoid reciprocating vibration of the U-shaped frame and collect the material at the top of the lower mold, thereby reducing material waste during the feeding process and minimizing ground dirt accumulation. Summary of the Invention

[0004] The purpose of this invention is to provide a high-load-bearing capacity recycled grass paver from construction waste and its production equipment. Through the cooperation of a drive component, a driven component, and a rake plate, the material in the inner cavity of the rectangular frame is agitated, causing the material to fall into the inner cavity of the lower template. This avoids the need for reciprocating vibration when the rectangular frame is being fed, thereby preventing the material from coming out through the gap between the rectangular frame and the lower template. At the same time, a scraper component collects a small amount of material on the top of the lower template into a collection trough, preventing the material from falling to the ground, thus solving the technical problems mentioned in the background art.

[0005] The technical solution of the present invention to solve the above-mentioned technical problems is as follows: A production equipment for high load-bearing capacity recycled grass pavers from construction waste includes a lower template; a conveyor platform and a carrier platform are respectively arranged on the right and left sides of the lower template; a rectangular frame is placed on the top of the carrier platform; a pushing component and a driving component are arranged on the left side of the rectangular frame; driven components are arranged on both the front and rear sides of the rectangular frame; a rake plate is installed between the two driven components; a scraper assembly is arranged on the top of the lower template; a vertical frame is arranged through the upper part of the lower template; the bottom end of the vertical frame extends to the bottom of the lower template; a cylinder is fixedly installed on the top of the vertical frame; the output end of the cylinder is fixedly connected to the vertical frame; the vertical frame is welded to the lower template; a base plate is welded to the surface of the vertical frame; a cylinder is fixedly installed on the surface of the vertical frame; an upper mold is fixedly connected to the output end of the cylinder; the punch of the upper mold is adapted to the cavity of the lower template; and a brick-carrying plate is placed on the top of the base plate.

[0006] Preferably, the pushing component includes two support blocks welded to the left side of the rectangular frame, a dual-axis motor fixedly installed between the two support blocks, the output shaft of the dual-axis motor passing through the outside of the support blocks and having rollers welded thereon, cabinet strips being attached to the surface of the rollers, and the cabinet strips being welded to the platform.

[0007] Preferably, the drive assembly includes a motor one fixedly mounted on the left side of the rectangular frame, the output shaft of the motor one being fixedly connected to a gear one, and a gear two meshing with the surface of the gear one.

[0008] Preferably, the driven component includes an L-shaped rod slidably connected to the surface of a rectangular frame. A rectangular plate is welded to the surface of the L-shaped rod. Two first rotating wheels are rotatably connected to the surface of the rectangular plate. Two shafts are rotatably connected to both sides of the rectangular frame via lugs. Second rotating wheels are welded to the ends of the shafts. Two fixed rods are welded to one side of the rectangular frame. A belt is fixedly connected between the left and right fixed rods. Both first rotating wheels and second rotating wheels are connected to the surface of the belt for transmission. The opposite ends of the front and rear shafts pass through lugs and are welded together. Second gears are welded to the surface of the shafts.

[0009] Preferably, the rake plate has several rectangular grooves on its right side, the rake plate is a stainless steel component, the bottom of the rake plate is flush with the bottom of the rectangular frame, and the front and rear sides of the rake plate are in contact with the inner wall of the rectangular frame.

[0010] Preferably, the scraper assembly includes four upright lugs welded to the top of the lower template. One side of each upright lug is rotatably connected to a chuck via a rotating shaft. The surfaces of the front and rear chucks are connected to a chain ring, and a scraper is fixedly connected between the two chain rings. A second motor is fixedly installed on the front side of the upright lug located on the right front side. The output shaft of the second motor passes through the upright lug and is fixedly connected between the chuck and the chuck. A drive shaft is welded between the two chucks located on the right side.

[0011] Preferably, the rectangular frame has sliding grooves on both the front and rear sides that are adapted to the L-shaped rod, and two cover plates are welded to the top of the rectangular frame. The tops of the two cover plates are inclined in opposite directions, and the cover plates are arc-shaped plates.

[0012] Preferably, a collection groove is provided on the right side of the lower template, and a bolt is installed between the collection groove and the lower template. An inclined surface adapted to the collection groove is provided on the right side of the lower template.

[0013] Preferably, both the conveyor and the platform are fixedly connected to the ground, the bottom of the rectangular frame is flush with the top of the lower template, and the top of the conveyor is flush with the top of the base plate.

[0014] A high-load-bearing capacity grass paver made from recycled construction waste is disclosed. This L-shaped paver is made primarily from recycled aggregates processed from construction waste. It is integrally formed using a mold, resulting in a regular appearance, good adhesion to mortar, and high compressive and flexural strength, as well as high load-bearing capacity. The preparation method of this high-load-bearing capacity grass paver is as follows:

[0015] Step 1: The construction waste powder and other ingredients prepared in a certain proportion are conveyed to the inner cavity of the rectangular frame via a conveyor belt. Then, the dual-axis motor is turned on, which drives two rollers to move on the surface of the cabinet strip and moves the rectangular frame to the top of the lower template through the support block.

[0016] Step Two: Then, the motor is turned on, which drives the gear to rotate through the gear. The gear then drives the wheel to rotate clockwise through the shaft. At this time, under the transmission of the belt, the two wheels rotate counterclockwise and move the rectangular plate to the right. Then, the two rectangular plates drive the rake plate to move to the right in the inner cavity of the rectangular frame through the L-shaped rod and stir the material. Then, the motor rotates in the opposite direction and drives the rake plate to move to the left. This stirs the material in the inner cavity of the rectangular frame and makes the material fall into the inner cavity of the lower mold. This avoids the material from entering the gap between the rectangular frame and the lower mold when the rectangular frame moves back and forth. This also prevents the material from being pulled out through the gap between the two during the subsequent movement of the rectangular frame and falling to the top of the lower mold. This avoids the material falling to the ground through the top of the lower mold and causing dirt and waste. This improves the utilization rate of the material and the cleanliness of the ground when the material enters the mold cavity.

[0017] Step 3: By pushing the component, the rectangular frame moves to the left to reset. At this time, a small amount of material will remain on the top of the lower template. Then, cylinder 2 is turned on to move the upper mold down and press the material in the inner cavity of the lower template. After that, cylinder 1 is turned on to move the lower template up through the vertical frame until it fits against the horizontal plate of the upper mold. Then, the lower template continues to move up and cylinder 2 is turned off to move the upper mold up. The grass brick can then be removed from the inner cavity of the lower template to the top of the brick-carrying plate. Then, the external pushing device pushes the brick-carrying plate and the grass brick on its top together to the top of the conveyor. Then, the conveyor removes the finished brick.

[0018] Step 4: Both the lower template and the upper mold are reset to their original positions. At this time, the second motor is turned on to drive the two right-side chucks to rotate counterclockwise, causing the two left and right chain rings to rotate counterclockwise and drive the scraper to rotate. When the scraper rotates to the top of the lower template, it fits against it and scrapes the material on top of it to the right side of the top of the lower template. The material is then collected in the inner cavity of the collection trough. This avoids a small amount of material left on the top of the lower template, which could cause a gap between the rectangular frame and the lower template in the next cycle. This improves the fit between the rectangular frame and the top of the lower template, and the material is collected through the collection trough.

[0019] 1. The beneficial effects of the present invention are as follows: The present invention drives the rake plate to reciprocate within the inner cavity of the rectangular frame through the cooperation of the driving component and the driven component. This causes the rake plate to push the material in the inner cavity of the rectangular frame to the inner cavity of the lower template, thus avoiding the situation where the material shakes to the top periphery of the lower template when the rectangular frame reciprocates and discharges material. At the same time, the scraper component collects the small amount of material remaining on the top of the lower template into the collection trough, thereby avoiding the situation where the material overflows when the rectangular frame discharges material into the lower template. In addition, collecting the small amount of material on the top of the lower template reduces material loss and ground dirt during the grass brick production process.

[0020] 2. The present invention protects the inner cavity of the chute by setting a shield, thereby preventing material from entering the inner cavity of the chute during the feeding process into the rectangular frame, and thus preventing the inner cavity of the chute from becoming blocked.

[0021] 3. The present invention facilitates the disassembly of the collection tank and the lower template by using bolts, avoiding the inconvenience of emptying and cleaning the material inside the collection tank, thus improving the convenience for users. Attached Figure Description

[0022] The advantages of the present invention, both above and / or other aspects, will become clearer and more readily understood through the following detailed description taken in conjunction with the accompanying drawings, which are merely illustrative and do not limit the invention, wherein:

[0023] Figure 1 This is a schematic diagram of the structure of one embodiment of the present invention;

[0024] Figure 2 This is a three-dimensional disassembled view of the template and brick-carrying plate according to one embodiment of the present invention;

[0025] Figure 3 This is a perspective view of a driving component and a driven component according to an embodiment of the present invention;

[0026] Figure 4 This is a perspective view of a scraper assembly according to an embodiment of the present invention;

[0027] Figure 5 This is one embodiment of the present invention. Figure 4 A magnified view of point A in the middle;

[0028] Figure 6 This is a bottom view of the template and base plate in one embodiment of the present invention.

[0029] The attached diagram lists the components represented by each number as follows:

[0030] 1. Lower template, 2. Conveyor table, 3. Platform, 4. Rectangular frame, 5. Pushing assembly, 51. Support block, 52. Dual-axis motor, 53. Roller, 54. Cabinet strip, 6. Drive assembly, 61. Motor 1, 62. Gear 1, 63. Gear 2, 7. Driven assembly, 71. L-shaped rod, 72. Rectangular plate, 73. Rotary wheel 1, 74. Shaft, 75. Rotary wheel 2, 76. Fixed rod, 77. Belt, 8. Rake plate, 9. Scraper assembly, 91. Lug block, 92. Picking wheel, 93. Chain ring, 94. Scraper, 95. Motor 2, 10. Slide groove, 11. Cover plate, 12. Collection trough, 13. Bolt, 14. Stand, 15. Cylinder 1, 16. Stand frame, 17. Base plate, 18. Cylinder 2, 19. Upper mold, 20. Carrying brick plate. Detailed Implementation

[0031] In the following description, embodiments of the high load-bearing capacity recycled grass pavers from construction waste and their production equipment will be described with reference to the accompanying drawings.

[0032] The embodiments described herein are specific implementations of the present invention, used to illustrate the concept of the invention, and are illustrative and exemplary, and should not be construed as limiting the implementation or scope of the invention. In addition to the embodiments described herein, those skilled in the art can employ other obvious technical solutions based on the content disclosed in the claims and specification of this application. These technical solutions include those that make any obvious substitutions and modifications to the embodiments described herein.

[0033] The accompanying drawings in this specification are schematic diagrams to aid in illustrating the concept of the invention, and schematically show the shapes of the various parts and their interrelationships. Please note that, in order to clearly demonstrate the structure of the components in the embodiments of the invention, the drawings are not drawn to the same scale. The same reference numerals are used to indicate the same parts.

[0034] Figure 1-6This invention illustrates a production device for high-load-bearing capacity recycled grass pavers from construction waste, comprising a lower template 1. A conveyor platform 2 and a carrier platform 3 are respectively arranged on the right and left sides of the lower template 1. A rectangular frame 4 is placed on top of the carrier platform 3. A pushing component 5 and a driving component 6 are arranged on the left side of the rectangular frame 4. The pushing component 5 includes two support blocks 51 welded to the left side of the rectangular frame 4. A dual-axis motor 52 is fixedly installed between the two support blocks 51. The output shaft of the dual-axis motor 52 extends through to the outside of the support blocks 51 and is welded to a roller 53. A strip 54 is attached to the surface of the roller 53 and welded to the carrier platform 3. The driving component 6 includes a motor 61 fixedly installed on the left side of the rectangular frame 4. A gear 62 is fixedly connected to the output shaft of the motor 61. Gear 63 meshes with the surface of wheel 62. Driven components 7 are provided on both the front and rear sides of the rectangular frame 4. Each driven component 7 includes an L-shaped rod 71 slidably connected to the surface of the rectangular frame 4. A rectangular plate 72 is welded to the surface of the L-shaped rod 71. Two first-rotor wheels 73 are rotatably connected to the surface of the rectangular plate 72. Two shafts 74 are rotatably connected to both sides of the rectangular frame 4 via lugs. Second-rotor wheels 75 are welded to the ends of the shafts 74. Two fixed rods 76 are welded to one side of the rectangular frame 4. A belt 77 is fixedly connected between the two fixed rods 76. Both first-rotor wheels 73 and second-rotor wheels 75 are connected to the surface of the belt 77. The opposite ends of the two shafts 74 pass through lugs and are welded together. Gear 63 is welded to the surface of the shaft 74. The two driven components... A rake plate 8 is installed together among the components 7. Several rectangular slots are provided on the right side of the rake plate 8. The rake plate 8 is a stainless steel component. The bottom of the rake plate 8 is flush with the bottom of the rectangular frame 4. The front and rear sides of the rake plate 8 are in contact with the inner wall of the rectangular frame 4. A scraper assembly 9 is provided on the top of the lower template 1. The scraper assembly 9 includes four lugs 91 welded to the top of the lower template 1. One side of each lug 91 is rotatably connected to a chuck 92 via a rotating shaft. Chain rings 93 are connected to the surfaces of the front and rear chucks 92. A scraper 94 is fixedly connected between the two chain rings 93. A second motor 95 is fixedly installed on the front side of the lug 91 located on the right front side. The output shaft of the second motor 95 passes through the lug 91 and is fixedly connected to the chuck 92. A welded joint is provided between the two chucks 92 located on the right side. The drive shaft and the rectangular frame 4 both have grooves 10 on their front and rear sides that fit the L-shaped rod 71. Two baffles 11 are welded to the top of the rectangular frame 4, with their tops tilted in opposite directions. The baffles 11 are arc-shaped plates. These baffles protect the inner cavity of the grooves 10, preventing material from entering the grooves 10 during feeding into the rectangular frame 4, thus preventing blockage. A collection trough 12 is located on the right side of the lower template 1. Bolts 13 are installed between the collection trough 12 and the lower template 1, facilitating disassembly of the collection trough 12 and the lower template 1. This prevents material from being difficult to empty and clean within the collection trough 12, improving user convenience.A sloping surface adapted to the collection trough 12 is provided on the right side of the lower template 1. A vertical frame 14 is installed through the upper part of the lower template 1, with its bottom end extending to the bottom of the lower template 1. A cylinder 15 is fixedly installed on the top of the vertical frame 14, and a vertical frame 16 is fixedly connected to the output end of the cylinder 15. The vertical frame 16 is welded to the lower template 1. A base plate 17 is welded to the surface of the vertical frame 14. A second cylinder 18 is fixedly installed on the surface of the vertical frame 14, and an upper mold 19 is fixedly connected to the output end of the second cylinder 18. The punch of the upper mold 19 is adapted to the cavity of the lower template 1. A brick-carrying plate 20 is placed on the top of the base plate 17. The conveyor table 2 and the platform 3 are both fixedly connected to the ground. The bottom of the rectangular frame 4 is flush with the top of the lower template 1, and the top of the conveyor table 2 is flush with the top of the base plate 17.

[0035] A high-load-bearing capacity grass paver made from recycled construction waste is disclosed. This L-shaped paver is made primarily from recycled aggregates processed from construction waste. It is integrally formed using a mold, resulting in a regular appearance, good adhesion to mortar, and high compressive and flexural strength, as well as high load-bearing capacity. The preparation method of this high-load-bearing capacity grass paver is as follows:

[0036] Step 1: The construction waste powder and other ingredients prepared in a certain proportion are conveyed to the inner cavity of the rectangular frame 4 by a conveyor belt. Then, the dual-axis motor 52 is turned on, so that the dual-axis motor 52 drives the two rollers 53 to move on the surface of the cabinet strip 54 and drives the rectangular frame 4 to the top of the lower template 1 through the support block 51.

[0037] Step 2: Then, the motor 61 is turned on, which drives the gear 63 to rotate through the gear 62. The gear 63 then drives the wheel 75 to rotate clockwise through the shaft 74. At this time, under the transmission action of the belt 77, the two wheels 73 rotate counterclockwise and drive the rectangular plate 72 to move to the right. Then, the two rectangular plates 72 drive the rake plate 8 to move to the right in the inner cavity of the rectangular frame 4 through the L-shaped rod 71 and stir the material. Then, the motor 61 rotates in the opposite direction and drives the rake plate 8 to move to the left. This stirs the material in the inner cavity of the rectangular frame 4 and makes the material fall into the inner cavity of the lower mold plate 1. This avoids the material from entering the gap between the rectangular frame 4 and the lower mold plate 1 when the rectangular frame 4 moves back and forth. This also prevents the material from being pulled out through the gap between the two and falling to the top periphery of the lower mold plate 1 during the subsequent movement of the rectangular frame 4. This avoids the material falling to the ground through the top periphery of the lower mold plate 1, causing dirt and waste. This improves the utilization rate of the material and the cleanliness of the ground when the material enters the mold cavity.

[0038] Step 3: Push component 5 to move rectangular frame 4 to the left to reset. At this time, a small amount of material will remain on the top of the lower template 1. Then, turn on cylinder 18 to move the upper mold 19 down and press the material in the inner cavity of the lower template 1. After that, turn on cylinder 15 to move the lower template 1 up through the vertical frame 16 to fit with the horizontal plate of the upper mold 19. Then, the lower template 1 continues to move up and turn off cylinder 18 to move the upper mold 19 up. The grass brick can be removed from the inner cavity of the lower template 1 to the top of the brick carrier plate 20. Then, the external pushing device pushes the brick carrier plate 20 together with the grass brick on its top to the top of the conveyor 2. Then the conveyor 2 removes the finished brick.

[0039] Step 4: Both the lower template 1 and the upper mold 19 are reset to their original positions. At this time, the motor 2 95 is turned on to drive the two right-side chucks 92 to rotate counterclockwise, causing the two left and right chain rings 93 to rotate counterclockwise and drive the scraper 94 to rotate. When the scraper 94 rotates to the top of the lower template 1, it fits against it and scrapes the material on its top to the right side of the top of the lower template 1. Then the material is collected in the inner cavity of the collection trough 12, which can prevent a small amount of material left on the top of the lower template 1 from causing a gap between the rectangular frame 4 and the lower template 1 in the next cycle, thereby improving the fit between the rectangular frame 4 and the top of the lower template 1, and collecting the material through the collection trough 12.

[0040] In summary, this high-load-bearing capacity recycled grass paver from construction waste and its production equipment, through the cooperation of the drive component 6 and the driven component 7, drives the rake plate 8 to reciprocate within the inner cavity of the rectangular frame 4. This allows the rake plate 8 to move the material from the inner cavity of the rectangular frame 4 to the inner cavity of the lower template 1, thus preventing the material from shaking to the top periphery of the lower template 1 during the reciprocating feeding of the rectangular frame 4. At the same time, the scraper component 9 collects the small amount of material remaining on the top of the lower template 1 into the collection trough 12, thereby preventing material overflow when the rectangular frame 4 feeds into the lower template 1. The collection of the small amount of material on the top of the lower template 1 also reduces material loss and ground soiling during the grass paver production process.

[0041] The technical features disclosed above are not limited to the combinations of the disclosed features with other features. Those skilled in the art can also make other combinations of the technical features according to the purpose of the invention to achieve the purpose of the invention.

Claims

1. A production equipment for high-load-bearing capacity recycled grass pavers from construction waste, characterized in that, The lower template (1) includes a conveyor (2) and a platform (3) on its right and left sides, respectively. A rectangular frame (4) is placed on the top of the platform (3). A pushing component (5) and a driving component (6) are arranged on the left side of the rectangular frame (4). The driving component (6) includes a motor (61) fixedly installed on the left side of the rectangular frame (4). A gear (62) is fixedly connected to the output shaft of the motor (61). A gear (63) meshes with the surface of the gear (62). A driven component (7) is arranged on both the front and rear sides of the rectangular frame (4). The driven component (7) includes an L-shaped rod (71) slidably connected to the surface of the rectangular frame (4). A rectangular plate (72) is welded to the surface of (71). Two rotating wheels (73) are rotatably connected to the surface of the rectangular plate (72). Two shafts (74) are rotatably connected to both sides of the rectangular frame (4) through lugs. A rotating wheel (75) is welded to the end of the shaft (74). Two fixed rods (76) are welded to one side of the rectangular frame (4). A belt (77) is fixedly connected between the two fixed rods (76). The rotating wheels (73) and the rotating wheels (75) are connected to the surface of the belt (77) for transmission. The opposite ends of the two shafts (74) pass through the lugs and are welded together. The gear (63) is welded to the surface of the shaft (74). Two driven gears are connected to the shaft (74). A rake plate (8) is installed together among the components (7). A scraper assembly (9) is provided on the top of the lower template (1). The scraper assembly (9) includes four lugs (91) welded to the top of the lower template (1). A chuck (92) is rotatably connected to one side of the lug (91) via a rotating shaft. A chain ring (93) is connected to the surface of the front and rear chucks (92). A scraper (94) is fixedly connected between the two chain rings (93). A motor (95) is fixedly installed on the front side of the lug (91) located on the right front side. The output shaft of the motor (95) passes through the lug (91) and is fixedly connected to the chuck (92). A drive shaft is welded between the two chucks (92) located on the right side. A support frame (14) is provided above the lower template (1). The bottom end of the support frame (14) extends to the bottom of the lower template (1). A cylinder (15) is fixedly installed on the top of the support frame (14). A frame (16) is fixedly connected to the output end of the cylinder (15). The frame (16) is welded to the lower template (1). A base plate (17) is welded to the surface of the support frame (14). A cylinder (18) is fixedly installed on the surface of the support frame (14). An upper mold (19) is fixedly connected to the output end of the cylinder (18). The punching pile of the upper mold (19) is adapted to the cavity of the lower template (1). A brick-carrying plate (20) is placed on the top of the base plate (17).

2. The production equipment for high-load-bearing capacity recycled grass pavers from construction waste according to claim 1, characterized in that, The pushing assembly (5) includes two support blocks (51) welded to the left side of the rectangular frame (4). A dual-axis motor (52) is fixedly installed between the two support blocks (51). The output shaft of the dual-axis motor (52) extends through to the outside of the support block (51) and is welded with a roller (53). A cabinet strip (54) is attached to the surface of the roller (53). The cabinet strip (54) is welded to the platform (3).

3. The production equipment for high-load-bearing capacity recycled grass pavers from construction waste according to claim 2, characterized in that, The rake plate (8) has several rectangular grooves on its right side. The rake plate (8) is a stainless steel component. The bottom of the rake plate (8) is flush with the bottom of the rectangular frame (4). The front and rear sides of the rake plate (8) are in contact with the inner wall of the rectangular frame (4).

4. The production equipment for high-load-bearing capacity recycled grass pavers from construction waste according to claim 3, characterized in that, The rectangular frame (4) has sliding grooves (10) on both the front and rear sides that are adapted to the L-shaped rod (71). Two cover plates (11) are welded to the top of the rectangular frame (4). The tops of the two cover plates (11) are inclined in opposite directions. The cover plates (11) are arc-shaped plates.

5. The production equipment for high-load-bearing capacity recycled grass pavers from construction waste according to claim 4, characterized in that, A collection groove (12) is provided on the right side of the lower template (1), and a bolt (13) is installed between the collection groove (12) and the lower template (1). An inclined surface adapted to the collection groove (12) is provided on the right side of the lower template (1).

6. The production equipment for high-load-bearing capacity recycled grass pavers from construction waste according to claim 5, characterized in that, The conveyor (2) and the platform (3) are both fixedly connected to the ground. The bottom of the rectangular frame (4) is level with the top of the lower template (1), and the top of the conveyor (2) is level with the top of the base plate (17).