Automatic feeding structure of mixer for refractory materials
By designing an automatic feeding structure for a refractory material mixer and utilizing a motor-driven rotating connection to realize automatic feeding and mixing, the problem of low efficiency of manual feeding is solved and the mixing efficiency is improved.
Patent Information
- Application Number
- CN202422609730.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-28
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2034-10-28
AI Technical Summary
In the existing refractory material mixing process, manual loading is required when materials are scarce, resulting in a large workload and low efficiency, which reduces the mixing efficiency.
An automatic feeding structure of a refractory material mixer is designed, which includes supporting legs, triangular troughs, material storage boxes, inclined troughs, arc-shaped mixing boxes and other components. Automatic feeding and mixing of materials are achieved through motor-driven rotation connections.
It realizes automatic feeding and mixing of refractory materials, improves mixing efficiency, reduces manual operations and increases feeding speed.
Smart Images

Figure CN223337265U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of automatic feeding structures, in particular to an automatic feeding structure of a mixer for refractory materials. Background Art
[0002] Refractory materials refer to inorganic non-metallic materials with a refractoriness of not less than 1580℃, which can resist sudden high temperature changes and slag erosion and withstand high temperature loads.
[0003] During the mixing process of existing refractory materials, when there is a shortage of materials, workers are required to manually pour the pre-proportioned materials into the mixer for mixing. However, the manual loading workload is large and the loading efficiency is slow, thereby reducing the mixing efficiency.
[0004] Therefore, in view of the above-mentioned existing need to manually carry out the loading work of refractory materials, which leads to slow loading efficiency, an automatic loading structure of a refractory material mixer can be designed to solve the above-mentioned problem. Utility Model Content
[0005] In order to overcome the problem of lack of refractory materials for mixing, workers are required to manually pour the pre-proportioned materials into the mixer for mixing. However, manual loading is labor-intensive and has a slow loading efficiency, thereby reducing the mixing efficiency.
[0006] The technical solution of the utility model is as follows: an automatic feeding structure of a mixer for refractory materials, comprising a support leg, a triangular groove, a material storage box, an inclined groove, an arc-shaped material storage box, a material discharge port, a mixing motor, a mixing shaft, a mixing plate, a bottom rotating motor, a bottom rotating shaft, a rotating arm, a top rotating motor, a top rotating shaft, an arc-shaped connecting block, and a material storage trough; the support leg is provided with a triangular groove; the upper end of the support leg is provided with a material storage box; the material storage box is provided with an inclined groove; the front end of the material storage box is provided with an arc-shaped material storage box; the lower end of the arc-shaped material storage box is provided with a material discharge port Mouth; a mixing motor is provided on one side of the arc-shaped mixing box; a mixing shaft is rotatably connected to the mixing motor through a coupling; a mixing plate is provided on the mixing shaft; a bottom rotating motor is provided on the upper end of the mixing motor; the bottom rotating motor is rotatably connected to the bottom rotating shaft through a coupling; a rotating arm is provided on the bottom rotating shaft; a top rotating motor is provided on one side of the rotating arm; the top rotating motor is rotatably connected to the top rotating shaft through a coupling; an arc-shaped connecting block is provided between the top rotating shafts; a material holding trough is provided at the lower end of the arc-shaped connecting block.
[0007] Preferably, the main body feeding structure is provided to perform the feeding work, and the mixing structure is provided to perform the mixing work.
[0008] Preferably, there are two supporting legs, which are placed on both sides of the device, and each supporting leg is provided with a triangular groove, and the supporting legs and the triangular grooves are arranged in a one-to-one correspondence.
[0009] Preferably, the chute is configured as an oblique slot, and the slot angle of the chute is configured to be the same as that of the material trough, and the chute and the material trough are configured to fit tightly.
[0010] Preferably, the arc-shaped mixing box is configured to be in a semicircular shape, and the interior is configured to be hollow and slotted.
[0011] Preferably, ten mixing plates are provided on the mixing shaft.
[0012] Preferably, the bottom rotating motor, the bottom rotating shaft and the top rotating motor, the top rotating shaft are configured identically, and are respectively placed at both ends of the rotating arm.
[0013] Preferably, two rotating arms are provided, with a bottom rotating shaft and a top rotating shaft provided at both ends of one side, and a bottom rotating motor and a bottom rotating shaft and a top rotating motor and a top rotating shaft provided at both ends of the other side respectively.
[0014] Beneficial effects of the utility model:
[0015] 1. By setting up temporary storage and mixing, the materials that need to be loaded are temporarily stored and supported at the bottom. When mixing, the rotating connection is set to rotate and mix the materials. Then, a loading device is set at the upper end. Through the upper and lower rotating connections, it can realize the rotation while rotating, and realize the rotation digging and rotation unloading, which is convenient for mixing. It overcomes the disadvantage that when there is a lack of refractory materials for mixing, the staff needs to manually pour the pre-proportioned materials into the mixer for mixing, but the manual loading workload is large and the loading efficiency is slow, thereby reducing the mixing efficiency;
[0016] 2. The support legs are set to provide fixed support. The triangular trough has stability. The material box is used to place the material. The chute and the material trough are set to the same angle to facilitate digging. The bottom rotating motor is started to drive the bottom rotating shaft and the rotating arm to rotate to realize the revolution and drive the overall rotation. Then the top rotating motor is started to drive the top rotating shaft and the material trough to rotate to realize the self-rotation work, so that it fits the chute to dig materials and realize the loading work. After the digging is completed, the bottom rotating motor is started to drive the bottom rotating shaft and the rotating arm to rotate. The top rotating motor starts to drive the top rotating shaft and the material trough to rotate, so that the material in the material trough will not spill out. After reaching the top of the arc-shaped mixing box, the top rotating motor starts to drive the top rotating shaft and the material trough to rotate, so that the material in the material trough is discharged and the material enters the arc-shaped mixing box. The mixing motor starts to drive the mixing shaft and the mixing plate to rotate to realize the mixing work. The mixed material is discharged from the discharge port for use, completing the automatic loading of the refractory material mixer. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 Shown is a schematic diagram of the three-dimensional structure of the automatic feeding structure of the refractory material mixer of the present utility model;
[0018] Figure 2 Shown is a schematic diagram of the automatic feeding structure of the refractory material mixer of the present utility model;
[0019] Figure 3 Shown is a schematic diagram of the bottom rotating shaft of the automatic feeding structure of the refractory material mixer of the present utility model;
[0020] Figure 4 Shown is a schematic diagram of the automatic loading structure support legs of the refractory material mixer of the present utility model;
[0021] Explanation of the accompanying symbols: 1. Support foot; 2. Triangular groove; 3. Material storage box; 4. Inclined chute; 5. Arc-shaped mixing box; 6. Discharge port; 7. Mixing motor; 8. Mixing shaft; 9. Mixing plate; 10. Bottom rotating motor; 11. Bottom rotating shaft; 12. Rotating arm; 13. Top rotating motor; 14. Top rotating shaft; 15. Arc-shaped connecting block; 16. Material trough. DETAILED DESCRIPTION
[0022] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0023] See also Figures 1-4The utility model provides an embodiment: an automatic feeding structure of a refractory material mixer, comprising a support leg 1, a triangular groove 2, a material storage box 3, an inclined groove 4, an arc-shaped material storage box 5, a material discharge port 6, a mixing motor 7, a mixing shaft 8, a mixing plate 9, a bottom rotating motor 10, a bottom rotating shaft 11, a rotating arm 12, a top rotating motor 13, a top rotating shaft 14, an arc-shaped connecting block 15, and a material storage trough 16; the support leg 1 is provided with a triangular groove 2; the upper end of the support leg 1 is provided with a material storage box 3; the material storage box 3 is provided with an inclined groove 4; the front end of the material storage box 3 is provided with an arc-shaped material storage box 5; the lower end of the arc-shaped material storage box 5 is provided with a material discharge port Mouth 6; a mixing motor 7 is provided on one side of the arc-shaped mixing box 5; a mixing shaft 8 is rotatably connected to the mixing motor 7 via a coupling; a mixing plate 9 is provided on the mixing shaft 8; a bottom rotating motor 10 is provided on the upper end of the mixing motor 7; a bottom rotating shaft 11 is rotatably connected to the bottom rotating motor 10 via a coupling; a rotating arm 12 is provided on the bottom rotating shaft 11; a top rotating motor 13 is provided on one side of the rotating arm 12; a top rotating motor 13 is rotatably connected to the top rotating shaft 14 via a coupling; an arc-shaped connecting block 15 is provided between the top rotating shafts 14; a material trough 16 is provided at the lower end of the arc-shaped connecting block 15. Two legs 1 are provided and are placed on both sides of the device. A triangular groove 2 is provided on each leg 1, and the legs 1 and the triangular groove 2 are arranged to correspond one to one. The chute 4 is arranged to be an oblique slot, and the slotting angle of the chute 4 is the same as that of the material trough 16, and the chute 4 and the material trough 16 are arranged to fit tightly. The arc-shaped mixing box 5 is configured as a semicircular arc shape, with a hollow slot inside. Ten mixing plates 9 are provided on the mixing shaft 8. The support legs 1 provide fixed support, the triangular slots 2 provide stability, the material storage box 3 is used to place the materials, and the inclined slots 4 and the material storage trough 16 are configured to have the same angle to facilitate digging. The bottom rotating motor 10, the bottom rotating shaft 11, and the top rotating motor 13 and the top rotating shaft 14 are configured to be the same, and are respectively placed at the two ends of the rotating arm 12. There are two rotating arms 12, one end of which is provided with the bottom rotating shaft 11 and the top rotating shaft 14, and the other end of which is provided with the bottom rotating motor 10, the bottom rotating shaft 11, the top rotating motor 13, and the top rotating shaft 14.After the material is loaded into the chute 4, the mixing motor 7 starts, which drives the mixing shaft 8 and the mixing plate 9 to rotate, thereby realizing the mixing work.
[0024] During the work, the support leg 1 performs fixed support work, the triangular groove 2 has stability, the material box 3 is used to place the material, the inclined groove 4 and the material trough 16 are set to the same angle, which is convenient for digging work, and the bottom rotating motor 10 is started to drive the bottom rotating shaft 11 and the rotating arm 12 to rotate, realize the revolution work, and drive the overall rotation. Then the top rotating motor 13 is started to drive the top rotating shaft 14 and the material trough 16 to rotate, realize the self-rotation work, so that it fits with the inclined groove 4 to dig materials and realize the loading work. After the digging is completed, the bottom rotating motor 10 is started to drive the bottom rotating shaft 11 and The rotating arm 12 rotates to realize the revolution and drive the whole to rotate. At the same time, the top rotating motor 13 is started, driving the top rotating shaft 14 and the material holding trough 16 to rotate, so that the material in the material holding trough 16 will not spill out. After reaching the top of the arc-shaped mixing box 5, the top rotating motor 13 is started, driving the top rotating shaft 14 and the material holding trough 16 to rotate, so that the material in the material holding trough 16 is discharged, and the material enters the arc-shaped mixing box 5. The mixing motor 7 is started, driving the mixing shaft 8 and the mixing plate 9 to rotate to realize the mixing work. The mixed material is discharged from the discharge port 6 for use, and all work is completed.
[0025] Through the above steps, by setting up temporary storage and mixing, the materials that need to be loaded are temporarily stored, and support is provided at the bottom. When mixing, the rotating connection is set to rotate, mix and stir. The support leg 1 performs fixed support work, the triangular groove 2 has stability, the material storage box 3 is used to place the material, the chute 4 and the material trough 16 are set to the same angle to facilitate digging work, the bottom rotating motor 10 is started, driving the bottom rotating shaft 11 and the rotating arm 12 to rotate, realize the revolution work, and drive the overall rotation. Then the top rotating motor 13 is started, driving the top rotating shaft 14 and the material trough 16 to rotate, realize the self-rotation work, so that it fits with the chute 4 to dig materials and realize the loading work. Afterwards, a feeding material is set at its upper end, and through the upper and lower rotating connections, it can realize the revolution and the self-rotation work at the same time, realize the rotating digging and rotating unloading work, and facilitate the mixing work. After the excavation is completed, the bottom rotating motor 10 is started, driving the bottom rotating shaft 11 and the rotating arm 12 to rotate, realize the revolution work, and drive the overall rotation. At the same time, the top rotating motor 13 is started, driving the top rotating shaft 14 and the material holding trough 16 to rotate, so that the material in the material holding trough 16 will not spill out. After reaching the top of the arc mixing box 5, the top rotating motor 13 is started, driving the top rotating shaft 14 and the material holding trough 16 to rotate, so that the material in the material holding trough 16 is unloaded, and the material enters the arc mixing box 5. The mixing motor 7 is started, driving the mixing shaft 8 and the mixing plate 9 to rotate, realizes the mixing work, and the mixed material is discharged from the discharge port 6 for use. It overcomes the disadvantage that when there is a lack of refractory materials for mixing, workers need to manually pour the pre-proportioned materials into the mixer for mixing, but the manual loading workload is large and the loading efficiency is slow, thereby reducing the mixing efficiency.
[0026] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the purpose of the present invention.
Claims
1. An automatic feeding structure of a mixer for refractory materials, comprising a support leg (1); characterized in that: The invention also includes a triangular groove (2), a material storage box (3), an inclined groove (4), an arc-shaped mixing box (5), a material outlet (6), a mixing motor (7), a mixing shaft (8), a mixing plate (9), a bottom rotating motor (10), a bottom rotating shaft (11), a rotating arm (12), a top rotating motor (13), a top rotating shaft (14), an arc-shaped connecting block (15), and a material storage trough (16); a triangular groove (2) is provided on the support leg (1); a material storage box (3) is provided at the upper end of the support leg (1); an inclined groove (4) is provided on the material storage box (3); an arc-shaped mixing box (5) is provided at the front end of the material storage box (3); a material outlet (6) is provided at the lower end of the arc-shaped mixing box (5); A mixing motor (7) is provided on one side; a mixing shaft (8) is rotatably connected to the mixing motor (7) via a coupling; a mixing plate (9) is provided on the mixing shaft (8); a bottom rotating motor (10) is provided at the upper end of the mixing motor (7); a bottom rotating shaft (11) is rotatably connected to the bottom rotating motor (10) via a coupling; a rotating arm (12) is provided on the bottom rotating shaft (11); a top rotating motor (13) is provided on one side of the rotating arm (12); a top rotating shaft (14) is rotatably connected to the top rotating motor (13) via a coupling; an arc-shaped connecting block (15) is provided between the top rotating shafts (14); and a material trough (16) is provided at the lower end of the arc-shaped connecting block (15).
2. The automatic feeding structure of a refractory material mixer according to claim 1, characterized in that: Two supporting legs (1) are provided and are placed on both sides of the device. A triangular groove (2) is provided on each supporting leg (1), and the supporting legs (1) and the triangular groove (2) are arranged in a one-to-one correspondence.
3. The automatic feeding structure of a refractory material mixer according to claim 1, characterized in that: The inclined groove (4) is configured as an oblique groove, and the groove angle of the inclined groove (4) is configured to be the same as that of the material holding groove (16), and the inclined groove (4) and the material holding groove (16) are configured to fit tightly.
4. The automatic feeding structure of a refractory material mixer according to claim 1, characterized in that: The arc-shaped mixing box (5) is arranged in a semicircular arc shape, and the interior is arranged as a hollow slot.
5. The automatic feeding structure of a refractory material mixer according to claim 1, characterized in that: Ten mixing plates (9) are arranged on the mixing shaft (8).
6. The automatic feeding structure of a refractory material mixer according to claim 1, characterized in that: The bottom rotating motor (10), the bottom rotating shaft (11) and the top rotating motor (13), the top rotating shaft (14) are configured to be identical and are respectively placed at both ends of the rotating arm (12).
7. The automatic feeding structure of a refractory material mixer according to claim 1, characterized in that: Two rotating arms (12) are provided, with a bottom rotating shaft (11) and a top rotating shaft (14) provided at both ends of one side, and a bottom rotating motor (10), a bottom rotating shaft (11) and a top rotating motor (13), and a top rotating shaft (14) provided at both ends of the other side.