Geogrid feeding device

By designing an automated geogrid loading device, the automatic handling and rotation adjustment of geogrids is achieved using the drive motor and gear system, which solves the problems of cumbersome unloading, high labor intensity and difficulty in adjustment, and improves work efficiency and safety.

CN223060089UActive Publication Date: 2025-07-04宏诚合成材料(江苏)有限公司
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Patent Information

Application Number
CN202421741732.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-23
Publication Date
2025-07-04
Estimated Expiration
2034-07-23

AI Technical Summary

Technical Problem

The unloading and transfer of existing geogrids is cumbersome and time-consuming, with high labor intensity, and the lack of a rotating mechanism leads to difficulty in adjustment, affecting work efficiency and safety.

Method used

A feeding device including a bottom box, a device box, a feeding mechanism, a first and second drive motor, a rail plate, a pulley, a belt, a clamp, a rotating table plate, etc. is designed. By driving the belt and gear to rotate, the automatic handling and rotation adjustment of the geogrid is realized.

Benefits of technology

It improves the handling efficiency of geogrids, reduces manpower consumption, enhances the flexibility and adaptability of the feeding device, and improves construction efficiency and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of geotechnical material treatment, and discloses a geogrid feeding device which comprises a bottom box, the top of the bottom box is fixedly connected with a device box, and a feeding mechanism is arranged in the device box; and the feeding mechanism comprises a protection box, two first driving motors, a guide rail plate and pulleys, and the protection box is fixedly connected to the rear side wall of the device box. According to the feeding device, the problems that the working efficiency cannot be improved and the labor intensity is possibly high due to the fact that the unloading and transferring processes become tedious and time-consuming can be solved, and particularly, the problem that the working efficiency and the safety are influenced due to the fact that workers can feel tired under the condition that frequent feeding is needed can be solved; and the belt is driven to rotate in the guide rail plate through the rotating shaft at the output end of the first driving motor, so that the carrying of the geogrid is effectively improved, the consumption of a large amount of manpower is reduced, and the working efficiency is improved.
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Description

Technical Field

[0001] The utility model relates to the field of geotechnical material treatment, and particularly relates to a feeding device for geogrids. Background Art

[0002] Geogrids are materials used for engineering purposes such as drainage, filtration, and protection, and are widely used in fields such as foundation engineering, road construction, and river protection. In order to make more effective use of the performance of geogrids, a device that can quickly, accurately, and evenly put filling materials onto geogrids is needed.

[0003] When handling geogrids, a large amount of manpower is required for handling. The lack of a feeding mechanism may make the processes of unloading and transferring goods become cumbersome and time-consuming, resulting in the inability to improve work efficiency. There may be problems of high labor intensity. Especially in the case of frequent feeding, workers may feel fatigued, thus affecting work efficiency and safety. In addition, there is no rotating mechanism at the bottom of the feeding device during unloading and transferring goods, which may lead to the need for multiple adjustments of geogrids during feeding and the need to adjust or change the filling during the construction process. The lack of a rotating mechanism may make such adjustments more difficult and require more manpower and time. Summary of the Utility Model

[0004] The purpose of the utility model is to solve the deficiencies existing in the prior art. The utility model provides a feeding device for geogrids, aiming to improve the problems in the prior art that may lead to the cumbersome and time-consuming processes of unloading and transferring goods, resulting in the inability to improve work efficiency, the possible problem of high labor intensity. Especially in the case of frequent feeding, workers may feel fatigued, thus affecting work efficiency and safety, and the need for multiple adjustments of geogrids during feeding and the need to adjust or change the filling during the construction process. The lack of a rotating mechanism may make such adjustments more difficult and require more manpower and time.

[0005] Furthermore, a feeding device for geogrids includes a bottom box, a device box is fixedly connected to the top of the bottom box, and a feeding mechanism is arranged inside the device box.

[0006] The feeding mechanism includes: a protection box, two first driving motors, a guide rail plate and pulleys. The protection box is fixedly connected to the rear side wall of the device box. The bottom walls of the two first driving motors are fixedly connected inside the protection box. The output ends of the two first driving motors are both fixedly connected with rotating shafts. The outer sides of the two rotating shafts are both rotatably connected with belts. The other sides of the two belts are both rotatably connected inside the guide rail plate. The upper side walls of the middle parts of the two belts are both threadedly connected with clamping plates. The two clamping plates are both arranged inside the sliders. The bottom walls of the two sliders are both fixedly connected with pulleys. The eight pulleys are slidably connected in the card slots of the guide rail plate. The upper side walls of the two sliders are both fixedly connected with connecting plates. The front side walls of the two connecting plates are fixedly connected with fixing blocks.

[0007] Further, the front side wall of the fixing block is fixedly connected with a support plate. The front side walls of the support plate are both fixedly connected with telescopic rods. The front sides of the telescopic ends of the two telescopic rods are both fixedly connected with baffle plates.

[0008] Further, the bottom parts of the front side walls of the support plate are both fixedly connected with hinge frames. The inside of the two hinge frames are rotatably connected with hydraulic rods. The front sides of the telescopic ends of the two hydraulic rods are both fixedly connected with connecting blocks.

[0009] Further, the top walls of the two connecting blocks are fixedly connected with a circular joint plate. The top wall of the circular joint plate is threadedly connected to the bottom wall of the telescopic end of the telescopic rod.

[0010] Further, a second driving motor is arranged inside the bottom box. The output end of the second driving motor is fixedly connected with a connecting shaft. The other end of the connecting shaft is rotatably connected with a first gear.

[0011] Further, the inside of the top wall of the bottom box is fixedly connected with a circular groove plate. The inside of the circular groove plate is rotatably connected with a rotating table plate. The middle part of the bottom wall of the rotating table plate is fixedly connected with a connecting rod.

[0012] Further, the bottom end of the connecting rod is fixedly connected with a second gear. The second gear meshes with the connecting shaft. The inside of the bottom box is fixedly connected with support rods.

[0013] Further, the bottom walls of the bottom box are both fixedly connected with wheels. The left side wall of the bottom box is fixedly connected with a control console.

[0014] Compared with the prior art, the utility model has the following beneficial effects:

[0015] 1. The feeding device provided in the utility model can solve the problems that the processes of unloading and transferring goods become cumbersome and time-consuming, resulting in the inability to improve work efficiency and the possible high labor intensity. Especially in the case of frequent feeding, workers may feel fatigued, thus affecting work efficiency and safety. The rotating shaft on the output end of the first driving motor drives the belt to rotate inside the guide rail plate. At a part in the middle of the belt, it is fixed inside the slider through a splint, enabling the pulley at the bottom of the slider to move up and down inside the guide rail plate. A connecting plate is fixedly connected to the front side wall of the slider to fix the fixed block, thereby effectively improving the handling of geogrids, reducing the consumption of a large amount of manpower, and improving work efficiency.

[0016] 2. By providing a connecting shaft, a first gear, a circular groove plate, and a rotating table, the problems that multiple adjustments of the geogrid are required during feeding and the filling needs to be adjusted or changed during construction can be solved. The lack of a rotating mechanism may make such adjustments more difficult and require more manpower and time. The connecting shaft on the output end of the second driving motor drives the first gear to rotate. The outer side of the first gear drives the second gear to rotate, causing the connecting rod inside the second gear to rotate, driving the rotating table at the top to rotate inside the circular groove plate, driving the feeding mechanism at the top to rotate, and transferring and handling geogrids in different areas, thereby effectively improving the flexibility and adaptability of the geogrid feeding device, enabling it to better meet various engineering requirements and improving construction efficiency.

[0017] The parts not involved in this device are the same as or can be implemented using the prior art. Brief Description of the Drawings

[0018] Figure 1 It is a three-dimensional structure diagram of a geogrid feeding device proposed by the utility model;

[0019] Figure 2 It is a structure diagram of the device box of a geogrid feeding device proposed by the utility model;

[0020] Figure 3 It is a structure diagram of the guide rail of a geogrid feeding device proposed by the utility model;

[0021] Figure 4 It is a structure diagram of the slider of a geogrid feeding device proposed by the utility model;

[0022] Figure 5 It is a structure diagram of the clamping block of a geogrid feeding device proposed by the utility model;

[0023] Figure 6Schematic diagram of the telescopic rod of a geogrid feeding device proposed by the present utility model;

[0024] Figure 7 Structural diagram of the connecting block of a geogrid feeding device proposed by the present utility model;

[0025] Figure 8 Structural diagram of the first gear of a geogrid feeding device proposed by the present utility model.

[0026] Legend description:

[0027] 1. Bottom box; 2. Device box; 3. Feeding mechanism; 301. Protection box; 302. First driving motor; 303. Rotating shaft; 304. Belt; 305. Guide rail plate; 306. Slide block; 307. Connecting plate; 308. Pulley; 309. Clamping plate; 4. Fixed block; 5. Support plate; 6. Telescopic rod; 7. Baffle; 8. Hinge frame; 9. Hydraulic rod; 10. Connecting block; 11. Circular joint plate; 12. Second driving motor; 13. Connecting shaft; 14. First gear; 15. Circular groove plate; 16. Rotary table; 17. Connecting rod; 18. Second gear; 19. Support rod; 20. Wheel; 21. Control console. Detailed implementation manners

[0028] In order to make the technical means, creative features, achieved purposes and effects of the present utility model easy to understand, the present utility model will be further described below in conjunction with the detailed implementation manners.

[0029] As Figure 1 - Figure 8 shown: A geogrid feeding device includes a bottom box 1, a device box 2 is fixedly connected to the top of the bottom box 1, and a feeding mechanism 3 is arranged inside the device box 2;

[0030] The feeding mechanism 3 includes: a protection box 301, two first driving motors 302, a guide rail plate 305 and pulleys 308. The protection box 301 is fixedly connected to the rear side wall of the device box 2. The bottom walls of the two first driving motors 302 are fixedly connected inside the protection box 301. The output ends of the two first driving motors 302 are both fixedly connected with rotating shafts 303. The outer sides of the two rotating shafts 303 are both rotatably connected with belts 304. The other sides of the two belts 304 are both rotatably connected inside the guide rail plate 305. The upper side walls of the middle parts of the two belts 304 are both threadedly connected with clamping plates 309. The two clamping plates 309 are both arranged inside the slide blocks 306. The bottom walls of the two slide blocks 306 are both fixedly connected with pulleys 308. The eight pulleys 308 are slidably connected in the card slots of the guide rail plate 305. The upper side walls of the two slide blocks 306 are both fixedly connected with connecting plates 307. The front side walls of the two connecting plates 307 are fixedly connected with fixed blocks 4.

[0031] The feeding mechanism 3 is protected by passing through the interior of the device box 2. The rotating shaft 303 on the output end of the first driving motor 302 drives the belt 304 to slide up and down inside the guide rail plate 305, achieving the effect of moving the external device up and down, better supporting and handling the geogrid. A small part in the middle of the belt 304 is fixed inside the slider 306 by the clamping plate 309, driving the pulley 308 on the bottom side wall of the slider 306 to move inside the guide rail plate 305, and then connecting to the fixed block 4 through the connecting plate 307 fixed on the front side wall to drive the fixed block 4 to move up and down.

[0032] As Figure 1 - Figure 8 As shown, a support plate 5 is fixedly connected to the front side wall of the fixed block 4. Telescopic rods 6 are fixedly connected to the front side walls of the support plate 5. Baffles 7 are fixedly connected to the front sides of the telescopic ends of the two telescopic rods 6. Hinge frames 8 are fixedly connected to the bottoms of the front side walls of the support plate 5. A hydraulic rod 9 is rotatably connected inside the two hinge frames 8. Connecting blocks 10 are fixedly connected to the front sides of the telescopic ends of the two hydraulic rods 9. A circular joint plate 11 is fixedly connected to the top walls of the two connecting blocks 10. The top wall of the circular joint plate 11 is threadedly connected to the bottom wall of the telescopic end of the telescopic rod 6.

[0033] Through the support plate 5 fixed to the front side wall of the fixed block 4, the support plate 5 is driven to move up and down. When moving, the telescopic rod 6 and the baffle 7 on the telescopic end are driven to block the grille, preventing the grille from falling during handling. The circular joint plate 11 on the connecting block 10 on the front side of the telescopic end of the hydraulic rod 9 at the bottom is connected to the bottom of the telescopic end of the telescopic rod 6 to drive the telescopic rod 6 to expand and contract, adjusting the size of the loading area for more handling.

[0034] As Figure 1 - Figure 8 As shown, a second driving motor 12 is arranged inside the bottom box 1. A connecting shaft 13 is fixedly connected to the output end of the second driving motor 12. The other end of the connecting shaft 13 is rotatably connected to a first gear 14. A circular groove plate 15 is fixedly connected to the inside of the top wall of the bottom box 1. A rotating table plate 16 is rotatably connected to the inside of the circular groove plate 15. A connecting rod 17 is fixedly connected to the middle of the bottom wall of the rotating table plate 16. A second gear 18 is fixedly connected to the bottom end of the connecting rod 17. The second gear 18 meshes with the connecting shaft 13. Support rods 19 are fixedly connected to the inside of the bottom box 1. Wheels 20 are fixedly connected to the bottom wall of the bottom box 1. A control console 21 is fixedly connected to the left side wall of the bottom box 1.

[0035] The connecting shaft 13 on the output end of the second driving motor 12 drives the first gear 14 to rotate, which meshes with the second gear 18, driving the second gear 18 to rotate. During rotation, the internal connecting rod 17 is driven to rotate, driving the rotating table 16 to rotate inside the circular groove plate 15, enabling the feeding mechanism 3 to carry and adjust the direction of the gratings in different areas. It is fixed inside the bottom box 1 through the support rod 19 to support the inside of the bottom box 1 and prevent internal collapse. It can be conveniently moved through the wheels 20 and placed in a certain area, and the entire device is controlled through the console 21.

[0036] It should be noted that the present utility model is a geotextile winding and unwinding device. First, the first driving motor 302 is started through the console 21. The rotating shaft 303 on the output end of the first driving motor 302 drives the belt 304 to rotate inside the guide rail plate 305. At a part in the middle of the belt 304, it is fixed inside the slider 306 through the clamping plate 309, enabling the pulley 308 at the bottom of the slider 306 to slide up and down inside the guide rail plate 305. A connecting plate 307 is fixedly connected to the front side wall of the slider 306 to fix the fixed block 4, for feeding gratings at different heights.

[0037] When carrying the grating, the support plate 5 fixed to the front side wall of the fixed block 4 drives the support plate 5 to move up and down. During movement, the telescopic rod 6 and the baffle 7 at the telescopic end are driven to block the grating to prevent it from falling during transportation. The circular joint plate 11 on the connecting block 10 on the front side of the telescopic end of the hydraulic rod 9 at the bottom is connected to the bottom of the telescopic end of the telescopic rod 6 to drive the telescopic rod 6 to expand and contract, adjusting the size of the loading area for large-scale transportation.

[0038] The connecting shaft 13 on the output end of the second driving motor 12 drives the first gear 14 to rotate. The outside of the first gear 14 drives the second gear 18 to rotate, causing the connecting rod 17 inside the second gear 18 to rotate, driving the top rotating table 16 to rotate inside the circular groove plate 15, and driving the top feeding mechanism 3 to rotate for transferring and carrying geogrids in different areas.

[0039] The foregoing has shown and described the basic principles, main features, and advantages of the present utility model. Those skilled in the art should understand that the present utility model is not limited by the above embodiments. What is described in the above embodiments and the specification only illustrates the principles of the present utility model. Without departing from the spirit and scope of the present utility model, the present utility model will have various changes and improvements, and these changes and improvements all fall within the scope of the present utility model claimed. The scope of protection claimed by the present utility model is defined by the appended claims and their equivalents.

Claims

1. A geogrid feeding device, comprising a bottom box (1), characterized in that: The top of the bottom box (1) is fixedly connected with a device box (2), and a feeding mechanism (3) is arranged inside the device box (2); The feeding mechanism (3) includes: a protection box (301), two first driving motors (302), a guide rail plate (305) and pulleys (308). The protection box (301) is fixedly connected to the rear side wall of the device box (2). The bottom walls of the two first driving motors (302) are fixedly connected inside the protection box (301). The output ends of the two first driving motors (302) are both fixedly connected with rotating shafts (303). The outer sides of the two rotating shafts (303) are both rotatably connected with belts (304). The other sides of the two belts (304) are both rotatably connected inside the guide rail plate (305). The middle upper side walls of the two belts (304) are both threadedly connected with clamping plates (309). The two clamping plates (309) are both arranged inside the sliders (306). The bottom walls of the two sliders (306) are both fixedly connected with pulleys (308). The eight pulleys (308) are slidably connected in the card slots of the guide rail plate (305). The upper side walls of the two sliders (306) are both fixedly connected with connecting plates (307). The front side walls of the two connecting plates (307) are fixedly connected with fixing blocks (4).

2. The feeding device for geogrid according to claim 1, characterized in that: The front side wall of the fixing block (4) is fixedly connected with a support plate (5). The front side walls of the support plate (5) are both fixedly connected with telescopic rods (6). The front sides of the telescopic ends of the two telescopic rods (6) are both fixedly connected with baffles (7).

3. The feeding device for geogrid according to claim 2, wherein: The bottom parts of the front side walls of the support plate (5) are both fixedly connected with hinge frames (8). The inside of the two hinge frames (8) is rotatably connected with hydraulic rods (9). The front sides of the telescopic ends of the two hydraulic rods (9) are both fixedly connected with connecting blocks (10).

4. The feeding device for geogrid according to claim 3, wherein: The top walls of the two connecting blocks (10) are fixedly connected with a circular joint plate (11). The top wall of the circular joint plate (11) is threadedly connected to the bottom wall of the telescopic end of the telescopic rod (6).

5. The feeding device for geogrid according to claim 1, characterized in that: A second driving motor (12) is arranged inside the bottom box (1). The output end of the second driving motor (12) is fixedly connected with a connecting shaft (13). The other end of the connecting shaft (13) is rotatably connected with a first gear (14).

6. The feeding device for geogrid according to claim 5, characterized in that: The inside of the top wall of the bottom box (1) is fixedly connected with a circular groove plate (15). The inside of the circular groove plate (15) is rotatably connected with a rotating table (16). The middle part of the bottom wall of the rotating table (16) is fixedly connected with a connecting rod (17).

7. The feeding device for geogrid according to claim 6, characterized in that: The bottom end of the connecting rod (17) is fixedly connected with a second gear (18). The second gear (18) meshes with the connecting shaft (13). The inside of the bottom box (1) is fixedly connected with support rods (19).

8. The feeding device for geogrid according to claim 1, wherein: The bottom walls of the bottom box (1) are both fixedly connected with wheels (20). The left side wall of the bottom box (1) is fixedly connected with an operation console (21).