Novel material conveying equipment for constructional engineering
By driving the worm gear motor on the side of the drive column to rotate the worm wheel on the side of the feed cylinder, the problem of the existing equipment being unable to adjust the conveying height is solved, realizing the height adjustment and stability of the equipment, and improving the conveying efficiency and adaptability.
Patent Information
- Application Number
- CN202520218289.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-12
- Publication Date
- 2026-01-23
- Estimated Expiration
- 2035-02-12
AI Technical Summary
Existing material conveying equipment for construction projects cannot adjust the conveying height. In particular, when transporting sand and soil materials, operators need to pack them before transporting them, and the equipment cannot be adjusted according to project requirements, which has certain limitations.
The worm gear motor on the side of the drive column drives the worm wheel on the side of the feed cylinder to rotate, which in turn drives the conveying pipe at the bottom of the feed cylinder to rise and fall, thereby adjusting the conveying height. The self-locking function of the worm and worm wheel maintains the stability of the equipment.
It increases the adaptability and conveying efficiency of the equipment, can adjust the conveying height according to engineering needs, eliminates the need for operators to pack additional materials, and improves the stability and adaptability of the equipment.
Smart Images

Figure CN223822716U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of construction engineering, and in particular to a new type of material conveying equipment for construction engineering. Background Technology
[0002] An existing patent (publication number: CN222273176U) proposes a novel material conveying device for construction engineering. It includes a base plate, a movable frame on the upper surface of the base plate, a support plate at one end of the upper surface of the movable frame, a gear on the lower surface of the support plate, sliders fixedly connected to both ends of the lower surface of the support plate, clamps on both sides of the upper surface of the support plate, anti-slip pads fixedly connected to the sides of the clamps, limit rods fixedly connected to both ends of the other side of the clamps, and an electric push rod located in the middle of the clamp on the side away from the anti-slip pad. However, this device, where "the support plate is located at one end of the upper surface of the movable frame," relies on the support plate on the upper part of the movable frame to convey construction materials. For example, when transporting sand or soil, the operator must pack it before transport, and the conveying height cannot be adjusted, which has certain limitations. Summary of the Invention
[0003] This utility model addresses the aforementioned shortcomings of existing technologies by providing a novel material conveying equipment for construction projects. This equipment utilizes a worm gear motor on the side of the drive column to rotate a worm wheel on the side of the feed cylinder. The worm wheel then drives the conveying pipe at the bottom of the feed cylinder to rise and fall, allowing the equipment to adjust the conveying height of the building sand and soil material inside the feed cylinder and conveying pipe according to the actual needs of the project. This increases the adaptability of the equipment.
[0004] The objective of this utility model is achieved through the following technical solution:
[0005] A novel material conveying device for construction engineering includes a feeding base, an inlet cylinder, a conveying pipe, an outlet cylinder positioning shaft, an outlet box bracket, and an outlet box. The feeding base has an internal crossbeam. The upper part of the feeding base is fixedly connected to a drive column. The drive column is fixedly connected to the inlet box bracket, and the inlet box bracket is fixedly connected to the inlet box. The inlet box is adapted to the inlet cylinder and connected to it. The inlet cylinder rotates inside the inlet box. The upper part of the inlet box is fixedly connected to an inlet hopper. The side of the inlet cylinder has an inlet cylinder positioning shaft, and the side of the inlet box has a drive shaft. The moving shaft is adapted to the feeding cylinder positioning shaft, and the drive shaft is connected to the feeding cylinder positioning shaft. The feeding cylinder positioning shaft rotates inside the drive shaft. The side of the feeding cylinder positioning shaft is fixedly connected to the worm gear shaft. The upper part of the drive column has a worm gear shaft groove, and the worm gear shaft rotates inside the worm gear shaft groove. The front part of the worm gear shaft is fixedly connected to the worm gear. The front part of the drive column is fixedly connected to the worm gear frame. The worm gear frame is adapted to the worm and is connected to the worm. The worm rotates inside the worm gear frame, and the worm gear meshes with the upper part of the worm. The side of the worm gear frame is fixedly connected to the worm motor, and the rear part of the worm motor shaft is fixedly connected to the worm.
[0006] The lower part of the feed cylinder is fixedly connected to the conveying pipe. The conveying pipe has a spiral groove inside, which is adapted to the spiral shaft. The spiral groove is connected to the spiral shaft, and the spiral shaft rotates inside the spiral groove. The spiral shaft has spiral blades on its side.
[0007] The spiral blades rotate inside the conveying pipe. The rear part of the conveying pipe is fixedly connected to the spiral motor, the front part of the spiral motor shaft is fixedly connected to the spiral shaft, the front part of the conveying pipe is fixedly connected to the discharge cylinder, and the side of the discharge cylinder has a discharge cylinder positioning shaft. Beneficial effects
[0008] 1. During the use of this utility model engineering material conveying equipment, the worm motor on the side of the drive column drives the worm wheel on the side of the feed cylinder to rotate, so that the worm wheel drives the conveying pipe at the bottom of the feed cylinder to rise and fall. This allows the equipment to adjust the conveying height of the building sand and soil materials inside the feed cylinder and conveying pipe according to the actual needs of the project, thereby increasing the adaptability of the equipment.
[0009] 2. During the use of this utility model engineering material conveying equipment, bulk sand is loaded through the feed hopper, and the feed box is used to seal and position the feed cylinder at the rear of the conveying pipeline. This allows the equipment to convey bulk sand according to the actual conditions of the project, without the need for additional packaging by the operator, thereby increasing the conveying efficiency of the equipment.
[0010] 3. During the use of this utility model of engineering material conveying equipment, the worm motor drives the internal worm to drive the worm wheel to rotate. Because the transmission principle of the worm and worm wheel has a self-locking function, and in conjunction with the discharge box on the upper part of the storage trough, it positions and supports the end of the conveying pipeline, thereby maintaining the adjusted angle of the equipment and enhancing the stability of the equipment. Attached Figure Description
[0011] Figure 1 This is a schematic diagram of the structure of the novel building material conveying equipment described in this utility model.
[0012] Figure 2 This is a three-dimensional assembly diagram of the novel building material conveying equipment described in this utility model.
[0013] Figure 3 This is a partial cross-sectional three-dimensional assembly diagram of the feed box structure of the novel building material conveying equipment described in this utility model.
[0014] Figure 4 This is a three-dimensional assembly schematic diagram of a partial cross-section of the material conveying pipeline structure of the novel building material conveying equipment described in this utility model.
[0015] Figure 5This is a partial cross-sectional three-dimensional assembly diagram of the discharge box structure of the novel building material conveying equipment described in this utility model. Detailed Implementation
[0016] The present invention will be further described in detail below with reference to the accompanying drawings and embodiments:
[0017] Example 1:
[0018] A novel material conveying device for construction engineering includes a feeding base 01, an inlet cylinder 07, a conveying pipe 16, an outlet cylinder positioning shaft 22, an outlet box bracket 24, and an outlet box 25. The feeding base 01 has a crossbeam 02 inside. The upper part of the feeding base 01 is fixedly connected to a drive column 03. The drive column 03 is fixedly connected to an inlet box bracket 04 inside. The inlet box bracket 04 is fixedly connected to an inlet box 05 inside. The inlet box 05 is adapted to the inlet cylinder 07 and is connected to the inlet cylinder 07. The inlet cylinder 07 rotates inside the inlet box 05. The upper part of the feed box 05 is fixedly connected to the feed hopper 06. The feed cylinder 07 has a feed cylinder positioning shaft 08 on its side. During the use of the engineering material conveying equipment, the worm gear motor 15 on the side of the drive column 03 drives the worm wheel 12 on the side of the feed cylinder 07 to rotate, so that the worm wheel 12 drives the conveying pipe 16 at the bottom of the feed cylinder 07 to rise and fall. This allows the equipment to adjust the conveying height of the building sand and soil materials inside the feed cylinder 07 and the conveying pipe 16 according to the actual needs of the project, thereby increasing the adaptability of the equipment. The feed box 05 has a drive shaft 08 on its side. Drive shaft 09 is adapted to feed cylinder positioning shaft 08. Drive shaft 09 is connected to feed cylinder positioning shaft 08, and feed cylinder positioning shaft 08 rotates inside drive shaft 09. The side of feed cylinder positioning shaft 08 is fixedly connected to worm gear shaft 10. The upper part of drive column 03 has worm gear shaft groove 11, and worm gear shaft 10 is rotatably connected inside worm gear shaft groove 11. The front part of worm gear shaft 10 is fixedly connected to worm gear 12. The front of drive column 03 is fixedly connected to worm gear frame 13. Worm gear frame 13 is adapted to worm gear 14, and worm gear frame 13 is connected to worm gear 14. Worm gear 14 is in The worm gear frame 13 rotates internally, and the worm wheel 12 meshes with the upper part of the worm 14. During the use of the engineering material conveying equipment, the worm motor 15 drives the internal worm 14 to drive the worm wheel 12 to rotate. Because the transmission principle of the worm 14 and the worm wheel 12 has a self-locking function, and works with the discharge box 25 on the upper part of the storage trough 29 to position and support the end of the conveying pipe 16, the equipment maintains the adjusted angle, thereby enhancing the stability of the equipment. The side of the worm gear frame 13 is fixedly connected to the worm motor 15, and the rear part of the worm motor shaft is fixedly connected to the worm 14.
[0019] Example 2:
[0020] The lower part of the feed cylinder 07 of this utility model is fixedly connected to the conveying pipe 16. During the use of the engineering material conveying equipment, the bulk sand is loaded through the feed hopper 06, and the feed box 05 is used to seal and position the feed cylinder 07 at the rear of the conveying pipe 16. This allows the equipment to convey bulk sand according to the actual situation of the project without the need for additional packaging by the operator, thereby increasing the conveying efficiency of the equipment. The conveying pipe 16 has a spiral shaft groove 17 inside, which is adapted to the spiral shaft 18. The spiral shaft groove 17 is connected to the spiral shaft 18, and the spiral shaft 18 rotates inside the spiral shaft groove 17. The spiral shaft 18 has spiral blades 19 on its side.
[0021] Example 3:
[0022] The spiral blade 19 of this utility model rotates inside the conveying pipe 16. The rear part of the conveying pipe 16 is fixedly connected to the spiral motor 20, the front part of the spiral motor shaft is fixedly connected to the spiral shaft 18, the front part of the conveying pipe 16 is fixedly connected to the discharge cylinder 21, and the side of the discharge cylinder 21 has a discharge cylinder positioning shaft 22.
[0023] Example 4:
[0024] The discharge base 23 of this utility model is fixedly connected to the discharge box bracket 24, and the discharge box bracket 24 is fixedly connected to the discharge box 25. The discharge box 25 is adapted to the discharge cylinder 21 and is connected to the discharge cylinder 21. The discharge cylinder 21 rotates inside the discharge box 25. The upper part of the discharge base 23 and the side of the discharge box 25 both have positioning shaft grooves 26.
[0025] Example 5:
[0026] The positioning shaft groove 26 of this utility model is adapted to the positioning shaft 22 of the discharge cylinder. The positioning shaft groove 26 is connected to the positioning shaft 22 of the discharge cylinder. The positioning shaft 22 of the discharge cylinder rotates inside the positioning shaft groove 26. The lower part of the discharge cylinder 21 has a discharge cylinder opening 27. The lower part of the discharge box 25 is fixedly connected to the discharge hopper 28. The lower part of the discharge cylinder opening 27 corresponds to the position of the discharge hopper 28. The lower part of the discharge base 23 has a storage trough 29. The lower part of the discharge hopper 28 corresponds to the position inside the storage trough 29.
[0027] Example 6:
[0028] Installation steps of this utility model: Fix the upper part of the feeding base 01 to the drive column 03; fix the inside of the drive column 03 to the feed box bracket 04; fix the inside of the feed box bracket 04 to the feed box 05; rotate the feed cylinder 07 inside the feed box 05; fix the upper part of the feed box 05 to the feed hopper 06; rotate the feed cylinder positioning shaft 08 inside the drive shaft 09; fix the side of the feed cylinder positioning shaft 08 to the worm gear shaft 10; rotate the worm gear shaft 10 inside the worm gear shaft groove 11; fix the front part of the worm gear shaft 10 to the worm gear 12; fix the front part of the drive column 03 to the worm gear frame 13; rotate the worm 14 inside the worm gear frame 13; mesh the worm gear 12 on the upper part of the worm 14; fix the side of the worm gear frame 13 to the worm motor 15; fix the rear part of the worm motor shaft... The feed cylinder 07 is fixedly connected to the worm gear 14. The lower part of the feed cylinder 07 is fixedly connected to the conveying pipe 16. The screw shaft 18 rotates inside the screw shaft groove 17. The screw blade 19 rotates inside the conveying pipe 16. The rear part of the conveying pipe 16 is fixedly connected to the screw motor 20. The front part of the screw motor shaft is fixedly connected to the screw shaft 18. The front part of the conveying pipe 16 is fixedly connected to the discharge cylinder 21. The discharge base 23 is fixedly connected to the discharge box bracket 24. The discharge box bracket 24 is fixedly connected to the discharge box 25. The discharge cylinder 21 rotates inside the discharge box 25. The discharge cylinder positioning shaft 22 rotates inside the positioning shaft groove 26. The lower part of the discharge box 25 is fixedly connected to the discharge hopper 28. The lower part of the discharge cylinder opening 27 corresponds to the position of the discharge hopper 28. The lower part of the discharge hopper 28 corresponds to the position of the inside of the storage tank 29.
[0029] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present utility model, and these improvements and modifications should also be considered within the protection scope of the present utility model.
Claims
1. A novel material conveying equipment for construction engineering, characterized in that: The system includes a feeding base (01), an infeed cylinder (07), a conveying pipe (16), an outlet cylinder positioning shaft (22), an outlet box bracket (24), and an outlet box (25). The feeding base (01) has a crossbeam (02) inside. The upper part of the feeding base (01) is fixedly connected to the drive column (03). The inside of the drive column (03) is fixedly connected to the infeed box bracket (04). The inside of the infeed box bracket (04) is fixedly connected to the infeed box (05). The infeed box (05) is adapted to the infeed cylinder (07) and is connected to the infeed cylinder (07). The infeed cylinder (07) rotates inside the infeed box (05). The upper part of the infeed box (05) is fixedly connected to the infeed hopper (06). The side of the infeed cylinder (07) has an infeed cylinder positioning shaft (08). The side of the infeed box (05) has a drive shaft (09). The drive shaft (09) is connected to the infeed cylinder. The feed cylinder positioning shaft (08) is adapted to the drive shaft (09), which is connected to the feed cylinder positioning shaft (08). The feed cylinder positioning shaft (08) rotates inside the drive shaft (09). The side of the feed cylinder positioning shaft (08) is fixedly connected to the worm gear shaft (10). The upper part of the drive column (03) has a worm gear shaft groove (11). The worm gear shaft (10) is rotatably connected inside the worm gear shaft groove (11). The front part of the worm gear shaft (10) is fixedly connected to the worm gear (12). The drive column (03) is fixedly connected to the front of the worm gear frame (13). The worm gear frame (13) is adapted to the worm (14). The worm gear frame (13) is connected to the worm (14). The worm (14) rotates inside the worm gear frame (13). The worm wheel (12) meshes with the upper part of the worm (14). The side of the worm gear frame (13) is fixedly connected to the worm motor (15). The rear part of the worm motor shaft is fixedly connected to the worm (14).
2. The novel material conveying equipment for construction engineering according to claim 1, characterized in that: The lower part of the feed cylinder (07) is fixedly connected to the conveying pipe (16). The conveying pipe (16) has a spiral shaft groove (17) inside. The spiral shaft groove (17) is adapted to the spiral shaft (18). The spiral shaft groove (17) is connected to the spiral shaft (18). The spiral shaft (18) rotates inside the spiral shaft groove (17). The spiral shaft (18) has spiral blades (19) on its side.
3. The novel material conveying equipment for construction projects according to claim 2, characterized in that: The spiral blade (19) rotates inside the conveying pipe (16). The rear part of the conveying pipe (16) is fixedly connected to the spiral motor (20). The front part of the spiral motor shaft is fixedly connected to the spiral shaft (18). The front part of the conveying pipe (16) is fixedly connected to the discharge cylinder (21). The side of the discharge cylinder (21) has a discharge cylinder positioning shaft (22). The discharge base (23) is fixedly connected to the discharge box bracket (24). The discharge box bracket (24) is fixedly connected to the discharge box (25). The discharge box (25) is adapted to the discharge cylinder (21). The discharge box (25) is connected to the discharge cylinder (21). The discharge cylinder (21) rotates inside the discharge box (25). The upper part of the discharge base (23) and the side of the discharge box (25) both have positioning shaft grooves (26).
4. The novel material conveying equipment for construction projects according to claim 1, characterized in that: The positioning shaft groove (26) is adapted to the positioning shaft (22) of the discharge cylinder. The positioning shaft groove (26) is connected to the positioning shaft (22) of the discharge cylinder. The positioning shaft (22) of the discharge cylinder rotates inside the positioning shaft groove (26). The lower part of the discharge cylinder (21) has a discharge cylinder opening (27). The lower part of the discharge box (25) is fixedly connected to the discharge hopper (28). The lower part of the discharge cylinder opening (27) corresponds to the position of the discharge hopper (28). The lower part of the discharge base (23) has a storage trough (29). The lower part of the discharge hopper (28) corresponds to the position inside the storage trough (29).
Citation Information
Patent Citations
Material conveying equipment for constructional engineering
CN222273176U