A new spiral automatic material taking machine device

CN224783005UActive Publication Date: 2026-09-22SHANXI TONGCAI IND & TRADE CO LTD
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Patent Information

Application Number
CN202522319373.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-31
Publication Date
2026-09-22
Estimated Expiration
2035-10-31

AI Technical Summary

Technical Problem

[0005]本实用新型的目的是为了解决现有技术中存在矿粉进入输料筒内部,在向外部排出时,不便于对抽取的矿粉进行收集,容易导致矿粉散落飞散,不便于集中收集清理抽取出来的矿粉的缺点,而提出的一种新型的螺旋自动取料机装置

Benefits of technology

1.本实用新型通过在输料筒的一端转动穿出螺旋取料叶,并在落料孔的底端,通过侧板和定位螺栓可拆卸安装承接板和承接框,如此,通过螺旋取料叶插入除尘箱体内部进行清理收取沉淀堆积的矿粉,而矿粉被抽取进入输料筒内部后,从落料孔向下掉落排出,并通过插接在导向罩内部底端的承接板和承接框进行承接收集,且避免矿粉四处飞散撒落,便于集中收集除尘箱体内部清理出来的矿粉。

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Abstract

The utility model relates to the technical field of precipitated mineral powder cleaning in water dust removal box of industry and trade enterprise, disclose a novel spiral automatic material taking machine device, including the feed cylinder, the rotation of feed cylinder is installed with spiral material taking leaf, one end of spiral material taking leaf is installed with driving motor, the bottom of feed cylinder is evenly provided with blanking hole, the bottom of feed cylinder and the position of outside of blanking hole fixed with guide cover, the bottom of guide cover is installed with the receiving plate. The utility model through the receiving and collection of the receiving plate and receiving frame of plug -in in the bottom of guide cover, and avoid mineral powder scatters everywhere, and the mineral powder that the dust removal box body inside cleaning comes out is convenient to collect, along with the first fixed frame of plug -in groove moves on the surface of support cylinder, can adjust the height of feed cylinder and spiral material taking leaf, to adapt to the dust removal box body inside cleaning extraction mineral powder of different height.
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Description

Technical Field

[0001] This utility model relates to the field of cleaning sedimented mineral powder in water dust collectors for industrial and commercial enterprises, and in particular to a novel spiral automatic feeder device. Background Technology

[0002] Currently, cleaning the settled mineral powder inside the dust collector requires at least 15 people to shovel it out one shovelful at a time. Because the mineral powder has a high moisture content, each shovelful weighs approximately 15 kg. This leads to employee fatigue and dissatisfaction, creating potential safety hazards. Using an automatic spiral feeder, however, only two people are needed to easily clean the dust collector, significantly improving efficiency, reducing workload, and maximizing worker safety.

[0003] Existing screw conveyor systems, when cleaning mineral powder deposited in the dust collector, use screw conveyors to extract the deposited mineral powder, which then enters the conveying cylinder. When the powder is discharged externally, it is difficult to collect the extracted powder, leading to scattering and difficulty in centralized collection and cleaning. Furthermore, for dust collectors installed at different heights, the height of the screw conveyors is relatively fixed, making it difficult to flexibly and stably adjust to a suitable position and hindering the cleaning and extraction of the deposited mineral powder.

[0004] Therefore, a new type of spiral automatic feeder device is proposed. Utility Model Content

[0005] The purpose of this invention is to solve the problem in the existing technology where mineral powder enters the conveying cylinder and is discharged to the outside, making it difficult to collect the extracted mineral powder, which easily leads to the mineral powder scattering and is not easy to collect and clean. Therefore, a new type of spiral automatic feeder device is proposed.

[0006] To achieve the above objectives, this utility model provides the following technical solution: A novel spiral automatic feeding machine device is designed, comprising a feeding cylinder, a spiral feeding blade mounted on the rotating feeding cylinder, a drive motor mounted on one end of the spiral feeding blade, and uniformly distributed discharge holes at the bottom end of the feeding cylinder. A guide cover is fixed at the bottom end of the feeding cylinder and outside the discharge holes, a receiving plate is mounted at the bottom end of the guide cover, and a receiving frame tightly inserted into the guide cover is fixed at the top end of the receiving plate. First support rods are fixed at both ends of the bottom end of the feeding cylinder, and a lifting adjustment mechanism is mounted at the bottom end of the first support rods. The lifting and adjusting mechanism includes a support cylinder inserted into the bottom end of the first support rod, a first fixing frame fixed to the bottom ends of the four sides of the first support rod and inserted into the surface of the support cylinder, and rollers installed at the bottom end of the support cylinder.

[0007] Furthermore, the feeding cylinder has a cylindrical structure and is horizontally arranged, with one end open. One end of the spiral feeding blade protrudes outward from one end of the feeding cylinder. The drive motor is fixedly installed at the other end of the feeding cylinder. The guide cover has a rectangular frame structure and is vertically arranged.

[0008] Furthermore, the receiving plate is a rectangular plate structure and is horizontally arranged. A sealing gasket is bonded to its top and at the bottom of the outer side of the receiving frame. The sealing gasket is tightly abutted against the bottom of the guide cover. The receiving frame is a rectangular frame structure.

[0009] Furthermore, positioning grooves are provided at both ends of the guide cover, and side plates are fixed at both ends of the receiving plate. Connecting holes are provided on the surface of the side plates. The connecting holes are threaded holes, through which positioning bolts pass horizontally. The inner end of the positioning bolts slides into the interior of the positioning grooves.

[0010] Furthermore, both the first support rod and the support cylinder are vertically arranged, the first fixing frame is a rectangular frame structure and is horizontally arranged, the surface of the support cylinder has an insertion groove, the height of the insertion groove is less than the height of the support cylinder, and the first fixing frame is slidably inserted into the insertion groove.

[0011] Furthermore, the outer surface of the support cylinder has an external thread structure, and a first nut is connected to its surface at the upper and lower ends of the first fixing frame. A second fixing frame is fixed to the bottom side of the support cylinder. The second fixing frame has a rectangular frame structure and is horizontally arranged.

[0012] Furthermore, the bottom of the support cylinder has an internal threaded surface structure, and a second support rod is rotatably connected to the bottom of the cylinder. The second support rod has a threaded rod structure, and a second nut is connected to its surface at the bottom of the support cylinder. A pad is fixed to the bottom of the second support rod.

[0013] Furthermore, the roller is rotatably mounted on the bottom end of the pad, and the surface of the pad is evenly provided with insertion holes, into which a positioning rod for directional rotation of the roller is inserted and installed.

[0014] The novel spiral automatic feeder device proposed in this utility model has the following advantages: 1. This utility model involves rotating a spiral feeding blade through one end of a conveying cylinder, and detachably installing a receiving plate and a receiving frame at the bottom of the discharge hole via a side plate and positioning bolts. In this way, the spiral feeding blade inserts into the dust collector to clean and collect the accumulated mineral powder. After the mineral powder is drawn into the conveying cylinder, it falls downward from the discharge hole and is collected by the receiving plate and receiving frame inserted into the bottom of the guide cover. This prevents the mineral powder from scattering and makes it easier to collect the mineral powder cleaned from inside the dust collector.

[0015] 2. This utility model fixes a first support rod at the bottom end of the feeding cylinder, and a first fixing frame is fixed at the bottom end of the first support rod. Thus, the first fixing frame can be moved up and down along the insertion groove on the surface of the support cylinder, and the first fixing frame and the support cylinder are fastened together by the first nut. In this way, the height of the feeding cylinder and the spiral feeding blade can be adjusted to accommodate the cleaning and extraction of mineral powder inside the dust collector at different heights. Moreover, a pad and rollers can be detachably installed at the bottom end of the support cylinder via a second support rod. Thus, the position of the feeding cylinder and the spiral feeding blade can be adjusted by moving the rollers closer to the dust collector, and the rollers worn by the mineral powder can be removed and replaced, maintaining the stable and smooth movement of the spiral automatic feeder. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This utility model Figure 1 A schematic diagram of the material conveying cylinder and the material discharge hole; Figure 3 This utility model Figure 1 A schematic diagram of the receiving plate and receiving frame; Figure 4 This utility model Figure 1 A schematic diagram of the support cylinder and rollers; Figure 5 This utility model Figure 1 A schematic diagram of the rollers and the second support rod.

[0017] In the diagram: 1. Feeding cylinder; 2. Spiral feeder blade; 3. Drive motor; 4. Guide cover; 5. First support rod; 6. Side plate; 7. Positioning bolt; 8. First nut; 9. Support cylinder; 10. Insertion groove; 11. Second support rod; 12. Pad plate; 13. Roller; 14. Positioning rod; 15. Second fixing frame; 16. Insertion hole; 17. Second nut; 18. First fixing frame; 19. Receiving plate; 20. Drop hole; 21. Positioning groove; 22. Receiving frame; 23. Sealing gasket; 24. Connection hole. Detailed Implementation

[0018] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.

[0019] For examples, please refer to Figures 1 to 5 The figure shows a novel spiral automatic feeding machine device, including a feeding cylinder 1, a spiral feeding blade 2 mounted on the rotating feeding cylinder 1, a drive motor 3 mounted on one end of the spiral feeding blade 2, and a uniformly distributed discharge hole 20 at the bottom end of the feeding cylinder 1. A guide cover 4 is fixed at the bottom end of the feeding cylinder 1 and outside the discharge hole 20. A receiving plate 19 is installed at the bottom end of the guide cover 4, and a receiving frame 22 tightly inserted into the guide cover 4 is fixed at the top end of the receiving plate 19. First support rods 5 are fixed at both ends of the bottom end of the feeding cylinder 1, and a lifting adjustment mechanism is installed at the bottom end of the first support rods 5.

[0020] The feeding cylinder 1 is a cylindrical structure and is horizontally set with one end open. One end of the spiral feeding blade 2 protrudes outward from one end of the feeding cylinder 1. The drive motor 3 is fixedly installed at the other end of the feeding cylinder 1. The guide cover 4 is a rectangular frame structure and is vertically set.

[0021] The receiving plate 19 is a rectangular plate structure and is set horizontally. A sealing gasket 23 is bonded to its top and at the bottom of the outer side of the receiving frame 22. The sealing gasket 23 is tightly abutted against the bottom of the guide cover 4. The receiving frame 22 is a rectangular frame structure.

[0022] The guide cover 4 has positioning grooves 21 at both ends, and the receiving plate 19 has side plates 6 fixed at both ends. The side plates 6 have connecting holes 24 on their surfaces. The connecting holes 24 are threaded holes, and positioning bolts 7 pass through them horizontally. The inner end of the positioning bolts 7 slides into the positioning grooves 21.

[0023] The spiral feeder blade 2 is inserted into the dust collector to clean and collect the accumulated mineral powder. After the mineral powder is drawn into the conveying cylinder 1, it falls down from the discharge hole 20 and is collected by the receiving plate 19 and the receiving frame 22 inserted into the bottom of the guide cover 4, which prevents the mineral powder from flying and scattering and facilitates the centralized collection of the mineral powder cleaned out of the dust collector.

[0024] The lifting and adjusting mechanism includes a support cylinder 9 inserted into the bottom end of the first support rod 5, a first fixing frame 18 fixed to the bottom end of the four sides of the first support rod 5 and inserted into the surface of the support cylinder 9, and a roller 13 installed at the bottom end of the support cylinder 9.

[0025] Both the first support rod 5 and the support cylinder 9 are vertically arranged. The first fixing frame 18 is a rectangular frame structure and is horizontally arranged. The surface of the support cylinder 9 has an insertion groove 10. The height of the insertion groove 10 is less than the height of the support cylinder 9. The first fixing frame 18 is slidably inserted into the inside of the insertion groove 10.

[0026] The outer surface of the support cylinder 9 has an external thread structure, and the first nut 8 is connected to the surface of the support cylinder 9 at the upper and lower ends of the first fixing frame 18. The second fixing frame 15 is fixed to the bottom side of the support cylinder 9. The second fixing frame 15 has a rectangular frame structure and is set horizontally.

[0027] The first fixed frame 18 moves up and down along the insertion groove 10 on the surface of the support cylinder 9, and the first fixed frame 18 and the support cylinder 9 are fastened together by the first nut 8. In this way, the height of the conveying cylinder 1 and the spiral feeding blade 2 can be adjusted to accommodate the cleaning and extraction of mineral powder inside the dust collector at different heights.

[0028] The bottom of the support cylinder 9 has an internal threaded surface structure, and a second support rod 11 is rotatably connected to the bottom of the support cylinder 9. The second support rod 11 has a threaded rod structure, and a second nut 17 is connected to its surface at the bottom of the support cylinder 9. A pad 12 is fixed to the bottom of the second support rod 11.

[0029] The roller 13 is rotatably mounted on the bottom end of the pad 12. The surface of the pad 12 is evenly provided with insertion holes 16, and a positioning rod 14 for directional rotation of the roller 13 is inserted into the insertion holes 16.

[0030] At the bottom end of the support cylinder 9, a pad 12 and a roller 13 are detachably installed via a second support rod 11. In this way, the position of the conveying cylinder 1 and the spiral feeder 2 can be adjusted by the roller 13 and moved closer to the dust collection box. The roller 13 worn by the mineral powder can be removed and replaced to maintain the stable and smooth movement of the spiral automatic feeder.

[0031] Working method: The spiral feeding blade 2 is rotated out from one end of the conveying cylinder 1. At the bottom of the discharge hole 20, the receiving plate 19 and the receiving frame 22 are detachably installed through the side plate 6 and the positioning bolt 7. In this way, the spiral feeding blade 2 is inserted into the dust collector to clean and collect the accumulated mineral powder. After the mineral powder is drawn into the conveying cylinder 1, it falls down from the discharge hole 20 and is collected by the receiving plate 19 and the receiving frame 22 inserted into the bottom of the guide cover 4. This prevents the mineral powder from flying and scattering everywhere and makes it easy to collect the mineral powder cleaned out of the dust collector.

[0032] A first support rod 5 is fixed at the bottom end of the feeding cylinder 1, and a first fixing frame 18 is fixed at the bottom end of the first support rod 5. Thus, the first fixing frame 18 moves up and down along the insertion groove 10 on the surface of the support cylinder 9, and the first fixing frame 18 and the support cylinder 9 are fastened together by the first nut 8.

[0033] In this way, the height of the conveying cylinder 1 and the spiral feed blade 2 can be adjusted to accommodate the cleaning and extraction of mineral powder inside the dust collector at different heights.

[0034] Furthermore, a pad 12 and a roller 13 can be detachably installed at the bottom of the support cylinder 9 via a second support rod 11. In this way, the position of the conveying cylinder 1 and the spiral feeder 2 can be adjusted by the roller 13 and moved closer to the dust collection box. The roller 13 worn by the mineral powder can also be removed and replaced to maintain the stable and smooth movement of the spiral automatic feeder.

[0035] The above are merely preferred embodiments of this utility model, but the scope of protection of this utility model is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in this utility model, based on the technical solution and inventive concept of this utility model, should be included within the scope of protection of this utility model.

Claims

1. A novel spiral automatic feeding machine device, comprising a feeding cylinder, characterized in that: The conveying cylinder is equipped with a rotating spiral feeding blade. A drive motor is installed at one end of the spiral feeding blade. The bottom end of the conveying cylinder is evenly provided with discharge holes. A guide cover is fixed at the bottom end of the conveying cylinder and outside the discharge holes. A receiving plate is installed at the bottom end of the guide cover. A receiving frame that is tightly inserted into the guide cover is fixed at the top end of the receiving plate. First support rods are fixed at both ends of the bottom end of the conveying cylinder. A lifting and adjusting mechanism is installed at the bottom end of the first support rods. The lifting and adjusting mechanism includes a support cylinder inserted into the bottom end of the first support rod, a first fixing frame fixed to the bottom ends of the four sides of the first support rod and inserted into the surface of the support cylinder, and rollers installed at the bottom end of the support cylinder.

2. The novel screw automatic feeder device according to claim 1, characterized in that: The feeding cylinder has a cylindrical structure and is horizontally arranged, with one end open. One end of the spiral feeding blade protrudes outward from one end of the feeding cylinder. The drive motor is fixedly installed at the other end of the feeding cylinder. The guide cover has a rectangular frame structure and is vertically arranged.

3. The novel screw automatic feeder device according to claim 1, characterized in that: The receiving plate is a rectangular plate structure and is horizontally arranged. A sealing gasket is bonded to its top and at the bottom of the outer side of the receiving frame. The sealing gasket is tightly abutted against the bottom of the guide cover. The receiving frame is a rectangular frame structure.

4. The novel screw automatic feeder device according to claim 1, characterized in that: The guide cover has positioning grooves at both ends, and the receiving plate has side plates fixed at both ends. The side plates have connecting holes on their surfaces. The connecting holes are threaded holes, through which positioning bolts pass horizontally. The inner end of the positioning bolts slides into the positioning grooves.

5. A novel screw automatic feeder device according to claim 1, characterized in that: Both the first support rod and the support cylinder are vertically arranged. The first fixing frame is a rectangular frame structure and is horizontally arranged. The surface of the support cylinder has an insertion groove, the height of which is less than the height of the support cylinder. The first fixing frame is slidably inserted into the insertion groove.

6. A novel screw automatic feeder device according to claim 5, characterized in that: The outer surface of the support cylinder has an external thread structure, and a first nut is connected to its surface at the upper and lower ends of the first fixing frame. A second fixing frame is fixed to the bottom side of the support cylinder. The second fixing frame has a rectangular frame structure and is horizontally arranged.

7. A novel screw automatic feeder device according to claim 1, characterized in that: The bottom of the support cylinder has an internal threaded surface structure, and a second support rod is rotatably connected to the bottom of the cylinder. The second support rod is a threaded rod structure, and a second nut is connected to its surface at the bottom of the support cylinder. A pad is fixed to the bottom of the second support rod.

8. A novel screw automatic feeder device according to claim 7, characterized in that: The roller is rotatably mounted on the bottom end of the pad. The surface of the pad has evenly spaced insertion holes, and a positioning rod for directional rotation of the roller is inserted into the insertion holes.