Concrete processing system and processing method
By introducing a sliding-connected curved plate and rotating shaft structure into the concrete processing system, combined with components such as spiral blades, transmission rods, gears, and vibrating rods, the problem of insufficient autonomous rotation capability was solved, achieving uniform mixing and efficient processing of concrete.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- 冯超
- Filing Date
- 2023-09-25
- Publication Date
- 2026-04-17
AI Technical Summary
Existing concrete processing systems have limited autonomous rotation capabilities, making it difficult to meet the demands of modern concrete processing.
It adopts a sliding connection curved plate and rotating shaft structure, combined with components such as spiral blades, transmission rods, gears and vibrating rods, and drives the rotation through water flow power to realize the autonomous rotation, uniform mixing and separate conveying of concrete materials, and ensures processing efficiency through vibration and cleaning devices.
The system enhances the autonomous rotation capability of the concrete processing system, enabling uniform mixing, separate conveying, and timely cleaning of materials, thereby improving processing efficiency and effectiveness.
Smart Images

Figure CN121870922A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of concrete processing technology, and more specifically to a concrete processing system and processing method. Background Technology
[0002] Concrete processing systems and methods are among the most important civil engineering materials of our time. Concrete is an artificial stone material made by mixing cementitious materials, granular aggregates, water, and, when necessary, admixtures and additives in a certain proportion, uniformly stirring, compacting, and curing. Concrete is the most widely used and consumed building material in civil engineering. Designing and manufacturing concrete according to predetermined performance, and developing new varieties of lightweight, high-strength, and multifunctional concrete are all issues that need to be continuously addressed in the future. Utilizing modern technologies, vigorously developing new processes and equipment, and widely using industrial waste as raw materials are all topics that need to be continuously solved. Under current technology, the autonomous rotation capability of concrete processing systems is limited. Therefore, to solve the above problems, this application proposes a concrete processing system that can enhance the autonomous rotation capability of the concrete processing system. Summary of the Invention
[0003] To overcome the shortcomings of the prior art, the present invention provides a concrete processing system and processing method that can enhance the autonomous rotation capability of the concrete processing system.
[0004] The technical solution adopted by this invention to solve its technical problem is:
[0005] A concrete processing system includes a rotating shaft with a curved plate slidably connected to it, a rotating column connected to the curved plate, and a spiral blade fixedly connected to the rotating shaft.
[0006] A transmission rod is rotatably connected to the rotating column, a sliding plate is slidably connected to the rotating column, and a curved plate is fixedly connected to the sliding plate.
[0007] A gear A is fixedly connected to the transmission rod, a rack is meshed with the gear A, and a sliding plate is fixedly connected to the rack.
[0008] The concrete processing method includes the following steps:
[0009] Step 1: Send the materials required for concrete into the connecting cylinder of the device through the inlet, and send the required water into the connecting cylinder through the intermediate cylinder;
[0010] Step 2: The required material inside the mixing cylinder is fed into the mixing tank through the through hole by rotating the column, which in turn moves the semi-conical baffle upward.
[0011] Step 3: The rotating spiral blades inside the mixing drum rotate in the forward direction, driving the required materials to mix. When the spiral blades rotate in the reverse direction, the curved plate slides out of the rotating shaft, and the concrete is transferred to the conical cylinder through the rotating shaft via the spiral blades.
[0012] Step 4: The vibrating column intermittently contacts the cone cylinder and rotates. The protrusions on the vibrating column cause the cone cylinder to vibrate, allowing the concrete to flow out smoothly. Attached Figure Description
[0013] The present invention will now be described in further detail with reference to the accompanying drawings and specific implementation methods.
[0014] Figure 1 This is a schematic diagram of the concrete processing system in this invention;
[0015] Figure 2 This is a schematic diagram of the three-bladed fan in this invention;
[0016] Figure 3 This is a schematic diagram of the spiral blade in this invention;
[0017] Figure 4 This is a schematic diagram of the curved plate in this invention;
[0018] Figure 5 This is a schematic diagram of the structure of the transfer column in this invention;
[0019] Figure 6 This is a schematic diagram of the cleaning plate in this invention;
[0020] Figure 7 This is a schematic diagram of the cleaning plate in this invention;
[0021] Figure 8 This is a schematic diagram of the transmission belt structure in this invention;
[0022] Figure 9 This is a schematic diagram of the partition structure in this invention;
[0023] Figure 10 This is a schematic diagram of the structure of the vibration rod in this invention;
[0024] Figure 11 This is a schematic diagram of the cover structure in this invention. Detailed Implementation
[0025] Through observation Figures 1 to 11 An exemplary working process for autonomous rotation, as shown in the figure, is as follows:
[0026] A concrete processing system includes a rotating shaft 16 fixedly connected to a connecting gear 11, two gears C35 meshing with the connecting gear 11, and each bevel gear 12 meshing with one gear C35. A three-bladed fan 34 is fixedly connected to two bevel gears 12 respectively. After the device is installed, the required concrete material is fed into the device. When water enters, the three-bladed fan 34 rotates under the impact of the water flow. When the three-bladed fan 34 rotates, it will drive the bevel gears 12 fixedly connected on both sides to rotate. As the bevel gears 12 rotate, the gears C35 meshing with them rotate, which in turn drives the meshing connecting gear 11 to rotate, thereby driving the rotating shaft 16 fixedly connected to the connecting gear 11 to rotate, thus achieving the effect of autonomous rotation.
[0027] Through observation Figures 1 to 11 An exemplary working process for separating environments, based on the content shown in the figure, is as follows:
[0028] The drive column 30 is rotatably connected to the rotating shaft 16, and the semi-conical stop column 31 is slidably connected to the drive column 30. The lower end of the semi-conical stop column 31 is fastened to the partition plate 32. The partition plate 32 is provided with four through holes 33. After the device is installed, the materials required for concrete are sent into the device. When water enters, the rotating shaft 16 rotates, driving the drive column 30 rotatably connected to it to rotate. As the drive column 30 rotates, the semi-conical stop column 31 slidably connected to it will move upward, causing the semi-conical stop column 31 to separate from the partition plate 32 fastened to its lower end, making the through holes provided on the semi-conical stop column 31 visible, allowing the material in the connecting barrel 03 to pass through. Thus, the material can flow downward along the four through holes provided on the partition plate 32. When the material no longer enters the connecting barrel 03, the semi-conical stop column 31 will fasten to the partition plate 32, blocking the connection between the connecting barrel 03 and the mixing barrel 04, thereby achieving the effect of separating the environment.
[0029] Through observation Figures 1 to 11 An exemplary working process for achieving uniform mixing, as shown in the figure, is as follows:
[0030] It also includes a curved plate 14 slidably connected to the rotating shaft 16, a rotating column 15 connected to the curved plate 14, and a spiral blade 13 fixedly connected to the rotating shaft 16. After the device is installed, the materials required for concrete are fed into the device. When water enters, the rotating shaft 16 rotates, which simultaneously drives the fixedly connected spiral blade 13 to rotate. When the spiral blade 13 rotates, it drives the materials in the mixing drum 04 to rotate, thereby allowing the required materials to be uniformly mixed. After the mixing is completed, the rotating shaft 16 rotates in the opposite direction, and at the same time, the curved plate 14 moves backward and contracts. The spiral blade 13 conveys the concrete in the mixing drum 04 upward. When it is conveyed to the top of the spiral blade 13, the concrete enters the rotating shaft 16 through the notch at the upper end of the rotating shaft 16, so that the concrete can be conveyed to the lower cone 06, thereby achieving the effect of uniformly mixing concrete.
[0031] Through observation Figures 1 to 11 An exemplary working process for the barrier, as shown in the figure, is as follows:
[0032] The transmission rod 18 is rotatably connected to the rotating column 15, the sliding plate 17 is slidably connected to the rotating column 15, and the curved plate 14 is fixedly connected to the sliding plate 17. After the device is installed, the materials required for concrete are fed into the device. When water enters, the rotating shaft 16 rotates, driving the rotating column 15 to rotate, thereby driving the transmission rod 18 rotatably connected to it to rotate. When the transmission rod 18 rotates, the sliding plate 17 slidably connected to the rotating column 15 rotates inward. When the sliding plate 17 slides inward, the curved plate 14 fixedly connected to it also moves inward. As the curved plate 14 moves, a notch appears at the upper end of the rotating shaft 16, allowing the mixed concrete to be conveyed through the hollow inside the rotating shaft 16. After the conveying is completed, the rotating shaft 16 rotates in the forward direction, driving the rotating column 15 to rotate, causing the curved plate 14 to move outward, filling the notch at the upper end of the rotating shaft 16, allowing the device to re-mix the concrete, thereby achieving the barrier effect.
[0033] Through observation Figures 1 to 11 An exemplary working process that can be derived from the content shown in the figure is as follows:
[0034] The gear A20 is fixedly connected to the transmission rod 18, the rack 19 is meshed with the gear A20, and the sliding plate 17 is fixedly connected to the rack 19. After the device is installed, the concrete material is fed into the device. When water enters, the transmission rod 18, which is rotatably connected to the upper end of the rotating column 15, rotates. When the transmission rod 18 rotates, the gear A20, which is fixedly connected to the upper end of the transmission rod 18, also rotates, thereby driving the rack 19 meshing with the gear A20 to move. When the rack 19 moves, the sliding plate 17, which is fixedly connected to the rack 19, also slides, thereby driving the curved plate 14, which is fixedly connected to the sliding plate 17, to move, thereby driving the curved plate 14 to separate from the upper end of the rotating shaft 16, thus achieving the driving effect.
[0035] Through observation Figures 1 to 11 An exemplary cleaning process, as shown in the diagram, is as follows:
[0036] It also includes a rotating ring 24 rotatably connected to the tray 04, a rotating rod 23 fixedly connected to the rotating ring 24, a cleaning plate 21 fixedly connected to the rotating ring 24, and a cleaner 22 fixedly connected to the cleaning plate 21. After the device is installed, the materials required for concrete are sent into the device. When water enters, the rotating shaft 16 rotates, driving the rotating rod 23 to rotate. When the rotating rod 23 rotates, the rotating ring 24 fixedly connected to it rotates. When the rotating ring 24 rotates, the cleaning plate 21 fixedly connected to the rotating ring 24 rotates with the rotating ring 24. As the cleaning plate 21 rotates, it will clean the inner wall of the mixing drum 04, so that the concrete hanging on the wall of the mixing drum 04 is cleaned onto the rotating plate 13, thereby achieving the cleaning effect.
[0037] Through observation Figures 1 to 11 An exemplary workflow for timely cleanup, based on the content shown in the diagram, is as follows:
[0038] The cleaner 22 is fixedly connected to the cleaning plate 21, which has a groove. The slide rod 26 is fixedly connected to the cleaner 22, and the cleaning plate 25 is slidably connected to the slide rod 26. After the device is installed, the materials required for concrete are fed into the device. When water enters, the cleaner 22, fixedly connected to the cleaning plate 21, will operate after the cleaning plate 21 has finished cleaning the inner wall of the mixing drum 04, driven by the rotating shaft 16. This will push the cleaning plate 25, which is slidably connected in the cleaner 22, outward, so that the cleaning plate 25 slides down the slide rod 26. This allows the cleaning device on the cleaning plate 25 to clean the concrete residue on the cleaning plate 21. By circulating and reciprocating on the slide rod 26, the cleaning plate 21 is cleaned, thereby achieving the effect of timely cleaning.
[0039] Through observation Figures 1 to 11 An exemplary working process of reciprocating motion can be derived from the content shown in the figure:
[0040] The transmission belt 27 is fixedly connected to the cleaning plate 25, and the half-bevel gear shaft A28 is rotatably connected to the transmission belt 27. The half-bevel gear shaft A28 meshes with the half-bevel gear shaft B29, and the first motor is fixedly connected to the half-bevel gear shaft B29. After the device is installed, the materials required for concrete are fed into the device. When water enters and the concrete is being mixed, the first motor starts, driving the half-bevel gear shaft B29 fixedly connected to the first motor to rotate. As the half-bevel gear shaft B29 rotates, the meshing half-bevel gear shaft A28 on it rotates, which in turn causes the transmission belt 27 rotatably connected to the other end of the half-bevel gear shaft A28 to rotate. When the transmission belt 27 rotates, it drives the cleaning plate 25 fixedly connected to its lower end to move. As the transmission belt 27 reciprocates, the cleaning plate 25 also completes the reciprocating cleaning action, thereby achieving the effect of reciprocating motion.
[0041] Through observation Figures 1 to 11 An exemplary working process for obtaining vibration based on the content shown in the figure is as follows:
[0042] The turntable 05 is fixedly connected to the rotating shaft 16, the gear B10 is meshed with the turntable 05, the vibrating rod 09 is fixedly connected to the lower end of the gear B10, one end of the receiving rod 08 is rotatably connected to the lower end of the vibrating rod 09, and the conical cylinder 06 is fixedly connected to the other end of the receiving rod 08. After the device is installed, the materials required for concrete are sent into the device. When water enters, the rotating shaft 16 rotates, which drives the turntable 05 fixedly connected to it to rotate. As the turntable 05 rotates, the gear B10 meshing with it at its upper end rotates. When the gear B10 rotates, it drives the vibrating rod 09 fixedly connected to its lower end to rotate between the gear B10 and the receiving rod 08. Due to the contact between the protrusion on the vibrating rod 09 and the conical cylinder 06, the conical cylinder 06 vibrates, thereby achieving the desired effect.
Claims
1. A concrete processing system, characterized in that: It includes a rotating shaft (16) slidably connected to a curved plate (14), a rotating column (15) connected to the curved plate (14), and a spiral blade (13) fixedly connected to the rotating shaft (16).
2. The concrete processing system according to claim 1, characterized in that: A transmission rod (18) is rotatably connected to the rotating column (15), a sliding plate (17) is slidably connected to the rotating column (15), and a curved plate (14) is fixedly connected to the sliding plate (17).
3. The concrete processing system according to claim 2, characterized in that: A gear A (20) is fixedly connected to the transmission rod (18), a rack (19) is meshed with the gear A (20), and a sliding plate (17) is fixedly connected to the rack (19).
4. The concrete processing system according to claim 3, characterized in that: It also includes a tray (04) rotatably connected to a rotating ring (24), a rotating rod (23) fixedly connected to the rotating ring (24), and a cleaning plate (21) fixedly connected to the rotating ring (24).
5. The concrete processing system according to claim 4, characterized in that: A cleaner (22) is fixedly connected to the cleaning plate (21). The cleaning plate (21) has a groove. A slide rod (26) is fixedly connected to the cleaner (22). A cleaning plate (25) is slidably connected to the slide rod (26).
6. The concrete processing system according to claim 5, characterized in that: A transmission belt (27) is fixedly connected to the cleaning plate (25), a half-bevel gear shaft A (28) is rotatably connected to the transmission belt (27), a half-bevel gear shaft B (29) meshes with the half-bevel gear shaft A (28), and a first motor is fixedly connected to the half-bevel gear shaft B (29).
7. The concrete processing system according to claim 1, characterized in that: A drive column (30) is rotatably connected to the shaft (16), and a semi-conical stop column (31) is slidably connected to the drive column (30). A partition plate (32) is fastened to the lower end of the semi-conical stop column (31), and four through holes (33) are provided on the partition plate (32).
8. The concrete processing system according to claim 7, characterized in that: A turntable (05) is fixedly connected to the rotating shaft (16), a gear B (10) is meshed on the turntable (05), a vibration rod (09) is fixedly connected to the lower end of the gear B (10), a receiving rod (08) is rotatably connected to the lower end of the vibration rod (09), and a conical cylinder (06) is fixedly connected to the other end of the receiving rod (08).
9. The concrete processing system according to claim 8, characterized in that: A connecting gear (11) is fixedly connected to the rotating shaft (16). Two gears C (35) are meshed on the connecting gear (11). Each gear C (35) is meshed with a bevel gear (12). The two bevel gears (12) are respectively fixedly connected to a three-bladed fan (34).
10. The processing method of the concrete processing system according to claim 9, characterized in that: The method includes the following steps: Step 1: Send the materials required for concrete into the connecting cylinder (03) of the device through the inlet (02), and send the required water into the connecting cylinder (03) through the intermediate cylinder; Step 2: The required material in the mixing tank (03) is sent into the mixing tank (04) through the through hole (33) by the rotation of the column (30) and the upward movement of the semi-cone baffle (31). Step 3: The spiral blade (13) inside the mixing drum (04) rotates in the forward direction, driving the required materials to be mixed. The spiral blade (13) rotates in the reverse direction, and the curved plate (14) slides out of the rotating shaft (16). The concrete is transferred to the conical cylinder (06) through the spiral blade (13) via the rotating shaft (16). Step 4: The vibrating column (09) intermittently contacts the cone cylinder (06), and rotates. The protrusions on the vibrating column (09) cause the cone cylinder (06) to vibrate, allowing the concrete to flow out smoothly.