Shoe surface dedusting and polishing device

By designing a shoe surface dust removal and polishing device with integrated dust removal, polishing and spraying functions, the problems of low production efficiency and poor quality in the prior art are solved, and an efficient and automated shoe processing process is achieved.

CN120167731APending Publication Date: 2025-06-20GOLD EMPEROR GRP
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Patent Information

Application Number
CN202510647835.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-20
Publication Date
2025-06-20

AI Technical Summary

Technical Problem

The existing shoe dust removal and polishing process requires multiple equipment and manual operations, resulting in low production efficiency and poor quality, making it difficult to meet the needs of large-scale production.

Method used

Design a shoe surface dust removal and polishing device, integrating cleaning, vacuuming, polishing and spraying functions, realizing processor functions and angle switching through box rotation, and using electric telescopic rods and transmission gear systems to realize the automatic operation of the equipment.

Benefits of technology

It significantly improves production efficiency and processing quality, reduces equipment investment and processing process, and achieves an integrated shoe dust removal and polishing effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of shoe manufacturing and processing, and discloses a shoe surface dedusting and polishing device which comprises a protective cylinder, a square frame, a processing part, a regulation and control box, a driving part, a supporting part and a conveying part, driving gear rings are fixed to connectors at the two ends of the protective cylinder, and meanwhile two sets of mounting connectors and two sets of connecting connectors are arranged on the side portion of the protective cylinder; and the two groups of mounting interfaces are vertically and oppositely arranged and are used for conveying a medium into the protective cylinder and extracting airflow. Through rotation of the square frame, switching of functions and angles of the first processor and the second processor is achieved, so that when a cleaning brush in the first processor conducts cleaning and dust brushing treatment on the surfaces of shoes, a dust collecting cavity in the second processor collects brushed dust, and when a polishing brush in the second processor conducts polishing treatment on the surfaces of the shoes, the dust collecting cavity in the second processor conducts dust brushing treatment on the surfaces of the shoes. And an atomizing nozzle in the processor I sprays care solution to the shoes, so that the integrated shoe dedusting and polishing effects are achieved, the input amount and the processing flow of equipment are remarkably reduced, and the production efficiency and quality are improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of shoe manufacturing and processing, and particularly to a dust removal and polishing device for the surface of shoes. Background Art

[0002] As an important wearing item in daily life, the design and production technology of shoes has experienced a long-term development from traditional manual manufacturing to modern mechanized production. With the continuous improvement of consumers' requirements for comfort, fashionability and functionality, the technological innovation of footwear products is also constantly advancing, and it is an essential equipment in modern people's daily life.

[0003] In the process of shoe production, especially in the preparation of shoes with leather or suede, surface dust removal and polishing are key processes to ensure the quality of the finished product. Traditional processes usually adopt a step-by-step treatment method. First, dust and impurities on the surface are removed by manual or mechanical brushing, then a polishing device is used for surface treatment, and finally a care solution is sprayed to enhance the gloss and durability of the shoe surface. However, these steps require multiple different devices to complete, resulting in a long production process, frequent manual intervention, low production efficiency, and difficulty in meeting the needs of large-scale production.

[0004] Therefore, a dust removal and polishing device for the surface of shoes is proposed to solve the above defects. Summary of the Invention

[0005] (I) Technical Problems to be Solved

[0006] In view of the deficiencies of the prior art, the present invention provides a dust removal and polishing device for the surface of shoes, which has the advantages of integrating cleaning, dust collection, polishing and spraying into an integrated continuous operation device, significantly improving production efficiency and processing quality, and solving the problems of low production efficiency and poor quality existing in the current dust removal and polishing method for shoes, which requires multiple devices to cooperate with manual operation.

[0007] (II) Technical Solutions

[0008] To achieve the above object, the present invention provides the following technical solution: A dust removal and polishing device for the surface of shoes, comprising a protective cylinder, a square frame, a workpiece, a control box, a driving member, a supporting member and a conveying member. Driving gear rings are fixed on the interfaces at both ends of the protective cylinder. At the same time, two groups of mounting interfaces and two groups of connection interfaces are arranged on the side of the protective cylinder. The two groups of mounting interfaces are arranged vertically opposite to each other and are used for conveying media into the protective cylinder and extracting air flow. The two groups of connection interfaces are arranged horizontally opposite to each other and are used for conveying air flow into the protective cylinder. The mounting interfaces are connected to an external air collecting device for conveying air flow into the protective cylinder. The connection interfaces are respectively connected to an external liquid supply device and an external discharge device, and in different states, convey media into the protective cylinder or extract the air flow in the protective cylinder.

[0009] A square frame is movably connected inside the protective tube, and four flip grooves 1 and four flip grooves 2 are provided in the square frame. The four flip grooves 1 are arranged vertically opposite to each other in a group of two, and the four flip grooves 2 are arranged horizontally opposite to each other in a group of two. The square frame is formed by four rectangular plates welded at right angles, and each surface has two groove bodies with the same size and a sealing strip provided on the inside. The groove body vertically opposite to each other is flip groove 1, and the groove body horizontally opposite to each other is flip groove 2.

[0010] A protective cover is fixed to the sides of flip groove 1 and flip groove 2, and interface 1 and interface 2 are opened on the protective cover. Interface 1 is connected to the connection interface at a set angle, and interface 2 is connected to the installation interface at a set angle. The protective cover covers the outside of the groove body, so that an independent space is formed inside each groove body. The protective cover is semicircular and fits the inner side of the protective tube, so that when the frame rotates, interface 1 and interface 2 can be connected with the corresponding connection interface and installation interface. When interface 1 is connected with the connection interface, air flow is transported into the protective cover. When interface 2 is connected with the installation interface, medium is transported into the protective cover or gas in the protective cover is extracted. The medium cannot be transported and gas extracted at the same time.

[0011] A transmission gear is rotatably connected to the protective cover, a transmission gear is fixed on the transmission gear, and the transmission gear is meshed with a driving gear ring. When the square frame rotates, the transmission gear is driven to rotate under the meshing force of the transmission gear and the driving gear ring.

[0012] A transmission gear ring is fixed on the side of the frame, and the transmission gear ring is fitted on the side of the protective cover. The transmission gear ring is tightly attached to the protective covers on the four sides of the frame, so that the protective covers are fixed in the corresponding slots to avoid looseness.

[0013] There is a processing part movably connected in the frame, which consists of four processors 1 and four processors 2. Processor 1 is movably connected in flip groove 1 and is used for cleaning, brushing dust and spraying medium. Processor 2 is movably connected in flip groove 2 and is used for polishing and vacuuming. When processor 1 is in a horizontal relative state, it is used to clean the surface of shoes by brushing dust. When it is in a vertical relative state, it is used to spray the medium on the shoes. When processor 2 is in a horizontal relative state, it is used to polish the surface of shoes. When it is in a vertical relative state, it is used to collect the dust dropped by the brush.

[0014] It should be further explained that cleaning and brushing dust cannot be carried out at the same time as spraying media, and polishing cannot be carried out at the same time as vacuuming. However, cleaning dust and vacuuming can be carried out at the same time, and spraying media and polishing can be carried out at the same time.

[0015] Both ends of processor one and processor two are fixed with rotating gears, which mesh with the transmission gears. Under the meshing force of the tooth profile, when the transmission gear rotates, the rotating gear drives the corresponding processor to rotate in the opposite direction to flip, thereby realizing the function switching.

[0016] A regulating box is installed on the protective cylinder. Inside the regulating box, a driving gear and a transmission gear are rotatably connected. The driving gear meshes with the transmission gear, and the transmission gear meshes with a transmission gear ring. When the driving gear rotates, it causes the transmission gear to rotate, driving the transmission gear ring to rotate, thus flipping the entire square frame, achieving the angular position adjustment and function switching of Processor 1 and Processor 2.

[0017] One end of the regulating box is movably sleeved with a connecting piece, and the other end is rotatably connected with a connecting rod. The connecting piece is connected to either the driving gear or the connecting rod through displacement changes. At the same time, one end of the connecting rod is movably connected with a transmission piece, and one end of the transmission piece is movably connected with a screw rod. When the connecting piece is connected to the driving gear, it drives the driving gear to rotate simultaneously through the connecting piece. When the connecting piece is connected to the connecting rod, it drives the connecting rod to rotate simultaneously through the connecting piece. When the driving gear rotates, it rotates the entire square frame for adjustment. When the connecting rod rotates, it causes the screw rod to rotate, realizing the conveyance of the footwear into the protective cylinder.

[0018] A driving member is installed on the protective cylinder. The driving member includes a mounting bracket fixed on the protective cylinder. A driving motor and an electric telescopic rod are sequentially fixed on the mounting bracket from bottom to top. The driving motor is used to drive the connecting piece to rotate, and the electric telescopic rod is used to drive the displacement of the connecting piece. The driving motor has the function of bidirectional rotation. During operation, the output end drives the connecting piece to rotate, and the connecting piece is controlled to be connected to either the driving gear or the connecting rod through the electric telescopic rod, achieving dual-module drive.

[0019] A support member for providing stability to the screw rod is installed on the protective cylinder.

[0020] A conveying piece for providing a conveying force to the shoes is movably connected to the screw rod.

[0021] As a further improvement of the above solution, a feeding piece is movably connected to the installation interface. The feeding piece includes a connection head inserted into the installation interface, and an infusion tube and an air extraction tube are installed on the connection head.

[0022] Through the above technical solution, the infusion tube is connected to an external liquid supply device to realize the conveyance of the medium into the protective cylinder, and the air extraction tube is connected to an external exhaust device to realize the discharge of the air flow inside the protective cylinder, forming a negative pressure adsorption force.

[0023] As a further improvement of the above solution, Processor 1 includes a rotating plate 1 rotatably connected in the first flipping groove.

[0024] On the front surface of the rotating plate 1, a cleaning brush and a small protective cover 1 are provided, and on the back surface, a large protective cover 1 and an atomizing nozzle are provided. The cleaning brush is connected to the large protective cover 1, and the atomizing nozzle is connected to the small protective cover 1.

[0025] Through the above technical solution, the first rotating plate realizes the switching operation between the cleaning brush and the atomizing nozzle through flipping. At the same time, the first large shield is used to concentrate the airflow, drive the cleaning brush to rotate, and clean and brush the ash on the surface of the shoes. The first small shield is used to concentrate the medium and spray the medium on the surface of the shoes through the atomizing nozzle.

[0026] As a further improvement of the above solution, the second processor includes a second rotating plate rotatably connected in the second flipping groove.

[0027] The front surface of the second rotating plate is provided with a polishing brush and a second small shield, while the back surface is provided with a second large shield and a dust collection chamber. The polishing brush is communicated with the second large shield, and the dust collection chamber is communicated with the second small shield.

[0028] Through the above technical solution, the second rotating plate realizes the switching operation between the polishing brush and the dust collection chamber through flipping. At the same time, the second large shield is used to concentrate the airflow, drive the polishing brush to rotate, and polish the surface of the shoes. The second small shield forms a negative pressure adsorption force to collect the brushed dust through the dust collection chamber.

[0029] As a further improvement of the above solution, the first large shield is provided with a first air connection port, and the second large shield is provided with a second air connection port. The first air connection port and the second air connection port are respectively docked with the corresponding first interface in the shield at a set angle.

[0030] Through the above technical solution, when the first processor is in a horizontal relative state, the first air connection port, the corresponding first interface, and the connection interface are docked in sequence to realize the delivery of airflow into the first large shield.

[0031] When the second processor is in a horizontal relative state, the second air connection port, the first interface, and the connection interface are docked in sequence to realize the delivery of airflow into the second large shield.

[0032] As a further improvement of the above solution, the first small shield is provided with a first communication port, and the second small shield is provided with a second communication port. The first communication port and the second communication port are respectively docked with the corresponding second interface in the shield at a set angle.

[0033] Through the above technical solution, when the first processor is in a vertical relative state, the first communication port, the second interface, and the installation interface are docked in sequence to realize the delivery of the medium into the first small shield.

[0034] When the second processor is in a vertical relative state, the second communication port, the second interface, and the installation interface are docked in sequence to realize the extraction of the gas in the second small shield to form a negative pressure adsorption force.

[0035] As a further improvement of the above solution, one end of the cleaning brush and the polishing brush is fixed with a fixing rod. One end of the fixing rod penetrates through the corresponding first rotating plate and the second rotating plate, and is fixed with a fan blade. The fan blade is located in the corresponding first large shield and the second large shield.

[0036] Through the above technical solution, when air is conveyed into the first large shield, the fan blades drive the cleaning brush to rotate, realizing the cleaning and dusting of the shoe surface. When air is conveyed into the second large shield, the fan blades drive the polishing brush to rotate, realizing the polishing of the shoe surface.

[0037] As a further improvement of the above solution, the connecting member includes a moving tube movably sleeved in the driving gear. One end of the moving tube penetrates through the side of the regulating box and is internally provided with a special-shaped groove. A moving rod is movably sleeved in the special-shaped groove, and one end of the moving rod is fixed to the output end of the driving motor.

[0038] Through the above technical solution, the moving rod fits the shape in the special-shaped groove. When the driving motor operates, the output end drives the moving rod and the moving tube to rotate simultaneously.

[0039] As a further improvement of the above solution, a connecting block is fixed to one end of the moving tube. At the same time, a special-shaped interface one is provided in the driving gear, and a special-shaped interface two is provided at one end of the connecting rod. The connecting block is connected to the special-shaped interface one or the special-shaped interface two through displacement.

[0040] Through the above technical solution, the moving tube drives the connecting block to be connected to the special-shaped interface one or the special-shaped interface two through displacement. When connected to the special-shaped interface one, it realizes driving the driving gear to rotate. When connected to the special-shaped interface two, it realizes driving the connecting rod to rotate.

[0041] As a further improvement of the above solution, a linkage plate is fixed to one end of the moving tube, and one end of the linkage plate is fixed to the output end of the electric telescopic rod

[0042] Through the above technical solution, when the output end of the electric telescopic rod moves telescopically, it drives the moving tube to displace through the linkage plate.

[0043] As a further improvement of the above solution, the transmission member includes a gear one fixed to one end of the connecting rod and a gear two fixed to one end of the screw rod. A transmission belt is engaged with the sides of the gear one and the gear two.

[0044] Through the above technical solution, the transmission belt is used to transmit the rotational force generated by the gear one to the gear two, so that the screw rod and the connecting rod rotate synchronously.

[0045] As a further improvement of the above solution, the support member includes a support plate fixed to one end of the protective cylinder, and one end of the screw rod penetrates through the support plate.

[0046] A stabilizing support rod is fixed to the bottom of the support plate. The stabilizing support rod is parallel to the screw rod, and a stabilizing plate is rotatably connected to one ends of the screw rod and the stabilizing support rod.

[0047] Through the above technical solution, the support plate provides support for the screw rod. At the same time, a stabilizing support rod parallel to the screw rod is fixed at the bottom of the support plate, and a stabilizing plate is rotatably connected to the front ends of the stabilizing support rod and the screw rod. The stabilizing plate is used to provide stability for the screw rod and the stabilizing support rod.

[0048] As a further improvement of the above solution, the conveying member includes a moving plate threadedly connected to the side of the screw rod, and the moving plate is movably sleeved on the side of the stabilizing support rod.

[0049] A limiting chute is formed on the side of the moving plate, two sliding buttons are slidably connected in the limiting chute, a clamping plate is fixed on the sliding buttons, and a tension spring is fixed between the clamping plates.

[0050] Through the above technical solution, through the double clamping plate design on both sides, the dust removal and polishing operations can be carried out on the whole pair of two shoes at the same time.

[0051] As a further improvement of the above solution, a receiver is fixed on the support plate, and a transmitter is fixed on the moving plate. The transmitter is docked with the receiver at a set position. At the same time, the receiver is connected to the driving motor and the electric telescopic rod.

[0052] Through the above technical solution, when the support plate moves to the stabilizing support rod, the transmitter is docked with the receiver to send and execute commands, so that the whole square frame is flipped to realize the function switching operation, and the screw rod is controlled to rotate reversely, so that the support plate moves backward to the initial position at the front end, completing the two processes of dust removal and polishing.

[0053] Compared with the prior art, the present invention provides a shoe surface dust removal and polishing device, which has the following beneficial effects:

[0054] 1. For the shoe surface dust removal and polishing device, through the rotation of the square frame, the functions and angles of the first processor and the second processor are switched. Thus, when the cleaning brush in the first processor cleans and sweeps the surface of the shoe, the dust collection chamber in the second processor collects the brushed dust, and when the polishing brush in the second processor polishes the surface of the shoe, the atomizing nozzle in the first processor sprays the care solution on the shoe, realizing the integrated dust removal and polishing effect of the shoe, significantly reducing the equipment input and processing flow, and improving the production efficiency and quality.

[0055] 2. For the shoe surface dust removal and polishing device, by using the output end of the telescopic rod to drive the displacement of the moving pipe, the driving force generated by the driving motor is switched. Thus, when the connecting block is connected and rotated with the first special-shaped interface, the square frame rotates, realizing the position switching of the processor and the function switching on the processor. When the connecting block is connected and rotated with the second special-shaped interface, the screw rod rotates, realizing the conveying operation of the shoe by the conveying member, further improving the flexibility of the device use and reducing the equipment operation energy consumption.

[0056] 3. The dust removal and polishing device on the shoe surface adopts the method of driving the cleaning brush and polishing brush to rotate by wind energy instead of the traditional motor driving method, effectively reducing the manufacturing cost of the equipment and the complexity of the connection of the driving components, achieving the effect of rapid response, and improving the environmental protection of the equipment use. BRIEF DESCRIPTION OF THE DRAWINGS

[0057] Figure 1 It is a schematic top view structure diagram of the whole external part of the device of the present invention;

[0058] Figure 2 It is a schematic bottom view structure diagram of the whole external part of the device of the present invention;

[0059] Figure 3 For the present invention Figure 2 Schematic diagram of the structure at A in the present invention;

[0060] Figure 4 It is a schematic connection structure diagram of the protective cylinder, regulation box, driving part and support part of the device of the present invention;

[0061] Figure 5 It is a schematic connection structure diagram of the protective cylinder, support part and conveying part of the device of the present invention;

[0062] Figure 6 It is a schematic side view structure diagram of the whole plane of the device of the present invention;

[0063] Figure 7 It is a schematic front view structure diagram of the whole plane of the device of the present invention;

[0064] Figure 8 It is a schematic connection diagram of the cleaning brush, polishing brush and fan of the structure of the present invention;

[0065] Figure 9 It is a schematic sectional structure diagram of the whole device of the present invention;

[0066] Figure 10 For the present invention Figure 9 Schematic diagram of the structure at B in the present invention;

[0067] Figure 11 It is a schematic diagram of the whole structure of the conveying part of the present invention;

[0068] Figure 12 For the present invention Figure 11 Schematic diagram of the structure at C in the present invention;

[0069] Figure 13 It is a schematic connection structure diagram of the square box, processor, driving part and regulating part of the present invention;

[0070] Figure 14 It is a schematic diagram of the whole structure of processor one and processor two of the present invention;

[0071] Figure 15Schematic diagram of the overall structure of the processor of the present invention;

[0072] Figure 16 Schematic diagram of the overall structure of the second processor of the present invention.

[0073] In the attached drawings, the list of components represented by each reference numeral is as follows:

[0074] 1. Protective cylinder; 11. Driving gear ring; 12. Installation interface; 13. Connection interface; 14. Feeding part; 141. Connector; 142. Infusion tube; 143. Air extraction pipe;

[0075] 2. Square box; 21. First turning groove; 22. Second turning groove; 23. Protective cover; 231. First interface; 232. Second interface; 233. Transmission gear; 234. Conducting gear; 24. Transmission gear ring;

[0076] 3. Workpiece; 31. First processor; 311. First rotating plate; 312. Cleaning brush; 313. First small protective cover; 314. First communication port; 315. First large protective cover; 316. First air connection port; 317. Atomizing nozzle; 32. Second processor; 321. Second rotating plate; 322. Polishing brush; 323. Second small protective cover; 324. Second communication port; 325. Second large protective cover; 326. Second air connection port; 327. Dust collection chamber; 33. Rotating gear; 34. Fixed rod; 35. Fan blade;

[0077] 4. Regulation box; 41. Driving gear; 411. First special-shaped interface; 42. Transmission gear; 43. Connector; 431. Moving pipe; 432. Special-shaped groove; 433. Moving rod; 434. Linking plate; 435. Connecting block; 44. Connecting rod; 441. Second special-shaped interface; 45. Transmission part; 451. First gear; 452. Transmission belt; 453. Second gear; 46. Screw rod;

[0078] 5. Driving part; 51. Mounting frame; 52. Driving motor; 53. Electric telescopic rod;

[0079] 6. Support part; 61. Support plate; 62. Stable support rod; 63. Stable plate; 64. Receiver;

[0080] 7. Conveying part; 71. Moving plate; 711. Limit sliding groove; 712. Slide button; 72. Clamping plate; 721. Tensile spring; 73. Transmitter. Detailed implementation manners

[0081] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0082] Embodiment 1

[0083] Please refer to Figures 1 - 16 As shown, a dust removal and polishing device for the shoe surface proposed in this embodiment includes a protective cylinder 1, a square box 2, a workpiece 3, a control box 4, a driving member 5, a supporting member 6, and a conveying member 7. Driving gear rings 11 are fixed on the interfaces at both ends of the protective cylinder 1. At the same time, two groups of mounting interfaces 12 and two groups of connection interfaces 13 are provided on the side of the protective cylinder 1. The two groups of mounting interfaces 12 are arranged vertically opposite to each other for conveying medium into the protective cylinder 1 and extracting air flow. The two groups of connection interfaces 13 are arranged horizontally opposite to each other for conveying air flow into the protective cylinder 1. The mounting interface 12 is connected to an external air collecting device (such as a fan) for conveying air flow into the protective cylinder 1. The connection interfaces 13 are respectively connected to an external liquid supply device and an external discharge device, and in different states, convey medium into the protective cylinder 1 or extract the air flow in the protective cylinder 1.

[0084] A square box 2 is movably connected inside the protective cylinder 1. Four flipping grooves 21 and four flipping grooves 22 are formed in the square box 2. The four flipping grooves 21 are arranged in two groups vertically opposite to each other, and the four flipping grooves 22 are arranged in two groups horizontally opposite to each other. The square box 2 is formed by welding four rectangular plates at right angles, and two grooves are formed on each surface. The grooves are of the same size and are provided with sealing strips on the inner side. Among them, the vertically opposite grooves are flipping grooves 21, and the horizontally opposite grooves are flipping grooves 22.

[0085] Protective covers 23 are fixed on the sides of the flipping grooves 21 and the flipping grooves 22. An interface 231 and an interface 232 are formed on the protective cover 23. The interface 231 is docked with the connection interface 13 at a set angle, and the interface 232 is docked with the mounting interface 12 at a set angle. The protective cover 23 covers the outside of the groove, so that an independent space is formed inside each groove. The protective cover 23 is semi-circular and fits on the inner side of the protective cylinder 1. Thus, when the square box 2 rotates, the interface 231 and the interface 232 can be docked with the corresponding connection interface 13 and mounting interface 12. When the interface 231 is docked with the connection interface 13, air flow is conveyed into the protective cover 23. When the interface 232 is docked with the mounting interface 12, medium (leather care oil, cleaning liquid) is conveyed into the protective cover 23 or the gas in the protective cover 23 is extracted. Conveying medium and extracting gas cannot be carried out simultaneously.

[0086] A transmission gear 233 is rotatably connected to the protective cover 23. A conduction gear 234 is fixed to the transmission gear 233. The conduction gear 234 meshes with the driving tooth ring 11. When the square frame 2 rotates, under the meshing force of the conduction gear 234 and the driving tooth ring 11, the transmission gear 233 is driven to rotate.

[0087] A transmission tooth ring 24 is fixed to the side of the square frame 2. The transmission tooth ring 24 fits against the side of the protective cover 23. The transmission tooth ring 24 closely adheres to the protective cover 23 on the four sides of the square frame 2, realizing the fixation of the protective cover 23 in the corresponding groove body and avoiding loosening.

[0088] A workpiece 3 is movably connected inside the square frame 2. The workpiece 3 is composed of four processors one 31 and four processors two 32. The processor one 31 is movably connected in the flipping groove one 21 and is used for cleaning, brushing dust and spraying medium. The processor two 32 is movably connected in the flipping groove two 22 and is used for polishing and dust suction. When the processors one 31 are in a horizontal relative state, they are used for cleaning and brushing the surface of the shoes. When in a vertical relative state, they are used for spraying the medium on the shoes. When the processors two 32 are in a horizontal relative state, they are used for polishing the surface of the shoes. When in a vertical relative state, they are used for collecting the dust brushed off.

[0089] It should be further noted that cleaning and brushing dust cannot be carried out simultaneously with spraying the medium, polishing cannot be carried out simultaneously with dust suction, while cleaning dust and dust suction can be carried out simultaneously, and spraying the medium and polishing can be carried out simultaneously.

[0090] In addition, this device is mainly used for cleaning and polishing the surface of leather shoes, but is not limited to leather shoes. It can also be used for full-leather or semi-leather shoes of other types (such as: sports shoes, casual shoes). However, it should be noted whether the sprayed medium (care solution, polishing solution) will cause staining or corrosion problems to the color and mesh surface, and colorless and non-corrosive medium needs to be replaced for spraying operations.

[0091] Rotating gears 33 are fixed to both ends of the processor one 31 and the processor two 32. The rotating gears 33 mesh with the transmission gear 233. Under the meshing force of the tooth profiles, when the transmission gear 233 rotates, the rotating gears 33 drive the corresponding processors to rotate in the opposite direction for flipping, realizing the function of function switching.

[0092] A control box 4 is installed on the protective cylinder 1. A driving gear 41 and a transmission gear 42 are rotatably connected inside the control box 4. The driving gear 41 meshes with the transmission gear 42. The transmission gear 42 meshes with the transmission tooth ring 24. When the driving gear 41 rotates, the transmission gear 42 is driven to rotate, and the transmission tooth ring 24 is driven to rotate, causing the whole square frame 2 to flip, realizing the angle position adjustment and function switching of the processor one 31 and the processor two 32.

[0093] One end of the control box 4 is movably sleeved with a connecting piece 43, and the other end is rotatably connected with a connecting rod 44. The connecting piece 43 is respectively connected with the driving gear 41 or the connecting rod 44 through displacement changes. At the same time, one end of the connecting rod 44 is movably connected with a transmission piece 45, and one end of the transmission piece 45 is movably connected with a screw rod 46. When the connecting piece 43 is connected with the driving gear 41, the driving gear 41 is driven to rotate simultaneously by the connecting piece 43. When the connecting piece 43 is connected with the connecting rod 44, the connecting rod 44 is driven to rotate simultaneously by the connecting piece 43. When the driving gear 41 rotates, the whole square box 2 rotates and adjusts. When the connecting rod 44 rotates, the screw rod 46 rotates, realizing the conveying of the shoe into the protection cylinder 1.

[0094] A driving piece 5 is installed on the protection cylinder 1. The driving piece 5 includes a mounting frame 51 fixed on the protection cylinder 1. A driving motor 52 and an electric telescopic rod 53 are sequentially fixed on the mounting frame 51 from bottom to top. The driving motor 52 is used to drive the connecting piece 43 to rotate, and the electric telescopic rod 53 is used to drive the connecting piece 43 to displace. The driving motor 52 has the function of bidirectional rotation. During operation, the output end drives the connecting piece 43 to rotate, and the connecting piece 43 is controlled to be respectively connected with the driving gear 41 or the connecting rod 44 through the electric telescopic rod 53, realizing dual-module driving.

[0095] A support piece 6 for providing stability to the screw rod 46 is installed on the protection cylinder 1.

[0096] A conveying piece 7 for providing a conveying force to the shoes is movably connected to the screw rod 46.

[0097] Furthermore, a feeding piece 14 is movably connected to the installation interface 12. The feeding piece 14 includes a connecting head 141 inserted into the installation interface 12. An infusion tube 142 and an air extraction tube 143 are installed on the connecting head 141.

[0098] More specifically, the infusion tube 142 is connected to an external liquid supply device to realize the conveying of the medium into the protection cylinder 1, and the air extraction tube 143 is connected to an external exhaust device to realize the discharge of the air flow in the protection cylinder 1, forming a negative pressure adsorption force.

[0099] It should be further noted that a lock structure is provided on the connecting head 141. The connecting head 141 is installed in the installation interface 12 by plugging and fixed through the lock structure, which can realize quick disassembly and assembly.

[0100] Furthermore, the processor one 31 includes a rotating plate one 311 rotatably connected in the flipping groove one 21.

[0101] A cleaning brush 312 and a small protective cover one 313 are arranged on the front surface of the rotating plate one 311, and a large protective cover one 315 and an atomizing nozzle 317 are arranged on the back surface. The cleaning brush 312 is communicated with the large protective cover one 315, and the atomizing nozzle 317 is communicated with the small protective cover one 313.

[0102] More specifically, the first rotating plate 311 fits the size within the first flipping groove 21. The first rotating plate 311 realizes the switching operation between the cleaning brush 312 and the atomizing nozzle 317 through flipping. Meanwhile, the first large shield 315 is used to concentrate the airflow, drive the cleaning brush 312 to rotate, clean and brush the ash on the surface of the footwear, and the first small shield 313 is used to concentrate the medium and spray the medium on the surface of the footwear through the atomizing nozzle 317.

[0103] Further, the second processor 32 includes a second rotating plate 321 rotatably connected within the second flipping groove 22.

[0104] The front surface of the second rotating plate 321 is provided with a polishing brush 322 and a second small shield 323, while the back surface is provided with a second large shield 325 and a dust collection chamber 327. The polishing brush 322 communicates with the second large shield 325, and the dust collection chamber 327 communicates with the second small shield 323.

[0105] More specifically, the second rotating plate 321 fits the size within the second flipping groove 22. The second rotating plate 321 realizes the switching operation between the polishing brush 322 and the dust collection chamber 327 through flipping. Meanwhile, the second large shield 325 is used to concentrate the airflow, drive the polishing brush 322 to rotate, and perform a polishing treatment on the surface of the footwear. The second small shield 323 forms a negative pressure adsorption force to collect and process the dust brushed off through the dust collection chamber 327.

[0106] Further, an air intake port one 316 is provided on the first large shield 315, and an air intake port two 326 is provided on the second large shield 325. The air intake port one 316 and the air intake port two 326 are respectively docked with the interface one 231 within the corresponding protective cover 23 at a set angle.

[0107] More specifically, through the rotation of the square frame, when the first processor 31 is in a horizontal relative state, the first large shield 315 fits against the inner side of the corresponding protective cover 23. Meanwhile, the air intake port one 316 is docked with the corresponding interface one 231, and the interface one 231 is docked with the connection interface 13, thereby realizing the delivery of airflow into the first large shield 315.

[0108] When the second processor 32 is in a horizontal relative state, the second large shield 325 fits against the inner side of the corresponding protective cover 23. Meanwhile, the air intake port two 326 is docked with the corresponding interface one 231, and the interface one 231 is docked with the connection interface 13, thereby realizing the delivery of airflow into the second large shield 325.

[0109] Further, a communication port one 314 is provided on the first small shield 313, and a communication port two 324 is provided on the second small shield 323. The communication port one 314 and the communication port two 324 are respectively docked with the interface two 232 within the corresponding protective cover 23 at a set angle.

[0110] More specifically, by rotating the square box, when the first processor 31 is in the vertical relative state, the first small shield 313 fits against the inner side of the corresponding protective shield 23. At the same time, the first communication port 314 is docked with the corresponding second interface 232, and the second interface 232 is docked with the installation interface 12. The medium is transported into the first small shield 313 through the infusion tube 142.

[0111] When the second processor 32 is in the vertical relative state, the second small shield 323 fits against the inner side of the corresponding protective shield 23. At the same time, the second communication port 324 is docked with the corresponding second interface 232, and the second interface 232 is docked with the installation interface 12. The gas in the second small shield 323 is pumped out through the air extraction pipe 143, so as to form a negative pressure adsorption force in the second small shield 323.

[0112] Further, a fixing rod 34 is fixed to one end of the cleaning brush 312 and the polishing brush 322. One end of the fixing rod 34 penetrates through the corresponding first rotating plate 311 and the second rotating plate 321, and a fan blade 35 is fixed. The fan blade 35 is located in the corresponding first large shield 315 and the second large shield 325.

[0113] More specifically, when air flow is transported into the first large shield 315, the fan blade 35 drives the cleaning brush 312 to rotate, so as to realize the cleaning and dust removal treatment of the shoe surface. When air flow is transported into the second large shield 325, the fan blade 35 drives the polishing brush 322 to rotate, so as to realize the polishing treatment of the shoe surface.

[0114] Further, the connecting member 43 includes a moving tube 431 movably sleeved in the driving gear 41. One end of the moving tube 431 penetrates through the side of the regulation box 4, and a special-shaped groove 432 is formed inside. A moving rod 433 is movably sleeved in the special-shaped groove 432. One end of the moving rod 433 is fixed to the output end of the driving motor 52.

[0115] More specifically, the shape of the moving rod 433 matches the shape in the special-shaped groove 432 (such as pentagonal, hexagonal or octagonal). Thus, when the driving motor 52 operates, the output end drives the moving rod 433 and the moving tube 431 to rotate simultaneously.

[0116] It should be further noted that when the moving tube 431 rotates, it can also displace at the side of the moving rod 433, so that the connecting member 43 drives the driving gear 41 or the connecting rod 44 to rotate respectively.

[0117] Further, a connecting block 435 is fixed to one end of the moving tube 431. At the same time, a special-shaped interface one 411 is formed inside the driving gear 41, and a special-shaped interface two 441 is formed at one end of the connecting rod 44. The connecting block 435 is connected to the special-shaped interface one 411 or the special-shaped interface two 441 through displacement respectively.

[0118] More specifically, the movement of the moving tube 431 drives the connection block 435 to connect with the special-shaped interface one 411 or the special-shaped interface two 441. When the connection block 435 is inserted into the special-shaped interface one 411 and rotates, it drives the driving gear 41 to rotate. When the connection block 435 is inserted into the special-shaped interface two 441 and rotates, it drives the connecting rod 44 to rotate.

[0119] Further, one end of the moving tube 431 is fixed with a linkage plate 434, and one end of the linkage plate 434 is fixed on the output end of the electric telescopic rod 53.

[0120] More specifically, a linkage plate 434 is fixed on the side of the moving tube 431 near one end of the driving motor 52. The output end of the electric telescopic rod 53 is fixed at the top of the linkage plate 434. When the output end of the electric telescopic rod 53 moves telescopically, it drives the moving tube 431 to displace through the linkage plate 434.

[0121] Further, the transmission member 45 includes a gear one 451 fixed at one end of the connecting rod 44 and a gear two 453 fixed at one end of the screw rod 46. A transmission belt 452 meshes with the sides of the gear one 451 and the gear two 453.

[0122] More specifically, the transmission belt 452 is used to transmit the rotational force generated by the gear one 451 to the gear two 453. Thus, when the connecting rod 44 rotates, the screw rod 46 rotates simultaneously.

[0123] Further, the support member 6 includes a support plate 61 fixed at one end of the protective cylinder 1, and one end of the screw rod 46 penetrates through the support plate 61.

[0124] A stabilizing support rod 62 is fixed at the bottom of the support plate 61. The stabilizing support rod 62 is parallel to the screw rod 46, and a stabilizing plate 63 is rotatably connected to one ends of the screw rod 46 and the stabilizing support rod 62.

[0125] More specifically, the support plate 61 is arranged in an inverted "L" shape at one end of the protective cylinder 1. The screw rod 46 penetrates through the side of the support plate 61, and the support plate 61 provides a supporting force for the screw rod 46. At the same time, a stabilizing support rod 62 is fixed at the bottom of the support plate 61. The stabilizing support rod 62 is arranged parallel to the screw rod 46 and has the same length. A stabilizing plate 63 is rotatably connected to the front ends of the stabilizing support rod 62 and the screw rod 46. The stabilizing plate 63 is used to provide stability between the screw rod 46 and the stabilizing support rod 62, and prevent separation between the two rods when rotating or shaking.

[0126] The working principle of the shoe surface dust removal and polishing device proposed in this embodiment is:

[0127] During the first conveyance, two shoes are respectively clamped between two clamping plates 72 on both sides of the moving plate 71. When the output end of the electric telescopic rod 53 drives the moving pipe 431 to move forward and the connecting block 435 is inserted into the special-shaped interface two 441, the output end of the driving motor 52 rotates forward. Under the transmission of the transmission member 45, the screw rod 46 rotates, enabling the conveying member 7 to drive the shoes to move from the front end to the end of the stable support rod 62. At the same time, the first processor 31 is in a horizontal relative state, making the air intake port one 316 dock with the interface one 231 on the corresponding protective cover 23, and the interface one 231 is docked with the connecting interface 13, thereby realizing the conveyance of air flow into the large protective cover one 315. The fan blade 35 drives the cleaning brush 312 to rotate to clean and brush off the ash on the surface of the shoes. At the same time, the second processor 32 is in a vertical relative state, making the communication port two 324 dock with the corresponding interface two 232, and the interface two 232 is docked with the installation interface 12. With the cooperation of the external exhaust device connected through the exhaust pipe 143, the gas in the small protective cover two 323 is pumped out, creating a negative pressure adsorption force in the small protective cover two 323, so as to collect the brushed-off dust through the dust collection chamber 327 until the conveying member 7 drives the shoes to move to the end of the stable support rod 62, completing the first conveyance.

[0128] When the first conveyance is completed and the function is adjusted, the transmitter 73 is docked with the receiver 64 for instruction sending and execution. At this time, the output end of the electric telescopic rod 53 drives the moving pipe 431 to move backward, making the connecting block 435 inserted into the special-shaped interface one 411. Under the operation of the driving motor 52, the output end rotates 90°, causing the square frame 2 to drive the processor to rotate 90°, completing the position switching of the first processor 31 and the second processor 32. The first processor 31 changes from horizontal to vertical, and the second processor 32 changes from vertical to horizontal. At the same time, the first processor 31 and the second processor 32 rotate 180° under the action of the meshing of the rotating gear 33 and the driving gear ring 11 to complete the adjustment of the function.

[0129] During the second conveyance, the output end of the electric telescopic rod 53 drives the moving pipe 431 to move forward, causing the connecting block 435 to be inserted into the special-shaped interface two 441. At this time, the drive motor 52 operates, and its output end rotates reversely. Under the transmission of the transmission member 45, the screw rod 46 rotates reversely, enabling the conveying member 7 to drive the shoe to move from the end of the stable support rod 62 to the front end. At the same time, the second processor 32 is in a horizontal relative state. At this time, through the air intake port two 326, it is docked with the interface one 231 on the corresponding protective cover 23, and the interface one 231 is docked with the connection interface 13, thereby realizing the conveyance of air flow into the second large protective cover 325. The fan blade 35 drives the polishing brush 322 to rotate, polishing the surface of the shoe. At the same time, the first processor 31 is in a horizontal relative state, making the communication port one 314 dock with the interface two 232 on the corresponding protective cover 23, and the interface two 232 is docked with the installation interface 12. With the cooperation of the infusion tube 142 and the connected external liquid supply device, nursing liquid is conveyed into the first small protective cover 313 and sprayed on the surface of the shoe through the atomizing nozzle 317. Under the rotation of the polishing brush 322, the polishing operation on the surface of the shoe is completed until the conveying member 7 drives the shoe to move to the front end of the stable support rod 62, completing the second conveyance.

[0130] Embodiment 2

[0131] Please refer to Figures 11 - 12 As shown, the shoe surface dust removal and polishing device proposed in this embodiment, on the basis of Embodiment 1, this embodiment further includes that the conveying member 7 includes a moving plate 71 threadedly connected to the side of the screw rod 46, and the moving plate 71 is movably sleeved on the side of the stable support rod 62.

[0132] A limiting chute 711 is provided on the side of the moving plate 71. Two sliding buttons 712 are slidably connected in the limiting chute 711. A clamping plate 72 is fixed on the sliding buttons 712, and a tension spring 721 is fixed between the clamping plates 72.

[0133] More specifically, in the moving plate 71, two parallel circular holes are opened along its length direction. One of the circular holes has threads, while the other circular hole is smooth. The screw rod 46 is threadedly connected in the circular hole with threads, and the stable support rod 62 is movably sleeved in the smooth circular hole. Thus, when the screw rod 46 rotates, the moving plate 71 can slide smoothly on the side of the stable support rod 62, achieving the effect of displacing and conveying the clamped shoe.

[0134] At both ends on both sides of the moving plate 71, limiting sliding grooves 711 are provided. At the same time, two clamping plates 72 are vertically and oppositely arranged on both sides of the moving plate 71. At both ends of each clamping plate 72, a sliding button 712 is fixed. The two sliding buttons 712 are slidably connected in the two limiting sliding grooves 711 on the corresponding side. At the same time, a tension spring 721 is fixed between the two vertically opposite clamping plates 72. Under the tension of the tension spring 721, the two clamping plates 72 are close to each other towards the middle, clamping on the edge of the sole of the shoe, so as to fix the shoe.

[0135] Through the double clamping plate design on both sides, the dust removal and polishing operations are carried out on the whole pair of two shoes at the same time.

[0136] Embodiment III

[0137] Please refer to Figures 5 - 6 and Figure 9 、 Figure 11 As shown, for the shoe surface dust removal and polishing device proposed in this embodiment, on the basis of Embodiment II, this embodiment further includes that a receiver 64 is fixed on the support plate 61, and a transmitter 73 is fixed on the moving plate 71. The transmitter 73 is docked with the receiver 64 at a set position. At the same time, the receiver 64 is connected to the drive motor 52 and the electric telescopic rod 53.

[0138] More specifically, when the screw rod 46 rotates forward, when the support plate 61 moves from the front end to the end of the stable support rod 62 to the limit, a shoe conveying operation is completed. At the same time, the transmitter 73 is docked with the receiver 64 to send and execute instructions, so that the whole square 2 is flipped to realize the function switching operation, and the screw rod 46 is controlled to rotate reversely, so that the support plate 61 returns from the end to the initial position at the front end to complete the second shoe conveying operation. During the first conveying operation, the functions executed are cleaning, brushing ash and dust suction operations on the shoe. During the second conveying operation, the functions executed are polishing and spraying medium operations on the shoe.

[0139] It should be further noted that the instruction information sent and executed by the transmitter 73 to the receiver 64 is to control the electric telescopic rod 53 to drive the moving pipe 431 to move backward for the first time, so that the connecting block 435 is inserted into the special-shaped interface one 411, and under the forward rotation of the output end of the drive motor 52, the connecting member 43 is driven to flip as a whole to realize the function switching operation. Then, the electric telescopic rod 53 drives the moving pipe 431 to move forward for the second time, so that the connecting block 435 is inserted into the special-shaped interface two 441, and the output end of the drive motor rotates reversely to realize the second shoe conveying operation.

[0140] Although embodiments of the present invention have been shown and described, those of ordinary skill in the art will appreciate that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A shoe surface dust removal and polishing device, comprising a protective tube (1), a frame (2), a processing member (3), a control box (4), a driving member (5), a supporting member (6) and a conveying member (7), characterized in that: A driving gear ring (11) is fixed to the interfaces at both ends of the protective tube (1), and two groups of mounting interfaces (12) and two groups of connecting interfaces (13) are arranged on the side of the protective tube (1), the two groups of mounting interfaces (12) are arranged vertically opposite to each other, and the two groups of connecting interfaces (13) are arranged horizontally opposite to each other; The protective tube (1) is movably connected to a square frame (2), and the square frame (2) is provided with four flip grooves 1 (21) and four flip grooves 2 (22). The four flip grooves 1 (21) are arranged in groups of two and are vertically opposed to each other, and the four flip grooves 2 (22) are arranged in groups of two and are horizontally opposed to each other; A protective cover (23) is fixed to the side of the flip groove 1 (21) and the flip groove 2 (22), and an interface 1 (231) and an interface 2 (232) are provided on the protective cover (23), wherein the interface 1 (231) is docked with the connection interface (13) at a set angle, and the interface 2 (232) is docked with the installation interface (12) at a set angle; The protective cover (23) is rotatably connected to a transmission gear (233), a transmission gear (234) is fixed to the transmission gear (233), and the transmission gear (234) is meshed with a driving gear ring (11); A transmission gear ring (24) is fixed to the side of the square frame (2), and the transmission gear ring (24) is attached to the side of the protective cover (23); A processing piece (3) is movably connected in the square frame (2), and the processing piece (3) is composed of four processors 1 (31) and four processors 2 (32), the processors 1 (31) are movably connected in the flip groove 1 (21), and the processors 2 (32) are movably connected in the flip groove 2 (22); Both ends of the processor 1 (31) and the processor 2 (32) are fixed with rotating gears (33), and the rotating gears (33) are meshed with the transmission gears (233); The protective tube (1) is provided with a regulating box (4), and a driving gear (41) and a transmission gear (42) are rotatably connected in the regulating box (4), wherein the driving gear (41) meshes with the transmission gear (42), and the transmission gear (42) meshes with the transmission gear ring (24); One end of the regulating box (4) is movably sleeved with a connecting piece (43), and the other end is rotatably connected to a connecting rod (44); the connecting piece (43) is connected to the driving gear (41) or the connecting rod (44) through displacement change, and one end of the connecting rod (44) is movably connected to a transmission piece (45), and one end of the transmission piece (45) is movably connected to a spiral rod (46); A driving member (5) is mounted on the protective tube (1), and the driving member (5) comprises a mounting frame (51) fixed on the protective tube (1), and a driving motor (52) and an electric telescopic rod (53) are fixed on the mounting frame (51) in sequence from bottom to top, the driving motor (52) is used to drive the connecting member (43) to rotate, and the electric telescopic rod (53) is used to drive the connecting member (43) to move; A support member (6) is mounted on the protective cylinder (1) for providing stability to the spiral rod (46); The spiral rod (46) is movably connected to a conveying member (7) for providing conveying force to the shoes.

2. A shoe surface dust removal and polishing device according to claim 1, characterized in that: A material delivery member (14) is movably connected to the installation interface (12), and the material delivery member (14) comprises a connector (141) plugged into the installation interface (12), and a liquid delivery tube (142) and an air extraction tube (143) are installed on the connector (141).

3. A shoe surface dust removal and polishing device according to claim 1, characterized in that: The processor one (31) includes a rotating plate one (311) rotatably connected to the flip groove one (21); The front side of the rotating plate 1 (311) is provided with a cleaning brush (312) and a small protective cover 1 (313), while the back side is provided with a large protective cover 1 (315) and an atomizing nozzle (317), the cleaning brush (312) is connected to the large protective cover 1 (315), and the atomizing nozzle (317) is connected to the small protective cover 1 (313); The second processor (32) includes a second rotating plate (321) rotatably connected to the second flip groove (22); The front side of the rotating plate 2 (321) is provided with a polishing brush (322) and a small protective cover 2 (323), while the back side is provided with a large protective cover 2 (325) and a dust collecting chamber (327); the polishing brush (322) is connected to the large protective cover 2 (325), and the dust collecting chamber (327) is connected to the small protective cover 2 (323).

4. A shoe surface dust removal and polishing device according to claim 3, characterized in that: The large shield 1 (315) is provided with an air inlet 1 (316), and the large shield 2 (325) is provided with an air inlet 2 (326), and the air inlet 1 (316) and the air inlet 2 (326) are respectively connected to the interface 1 (231) in the corresponding shield (23) at a set angle; The small shield one (313) is provided with a communication port one (314), and the small shield two (323) is provided with a communication port two (324). The communication port one (314) and the communication port two (324) are respectively connected to the interface two (232) in the corresponding protective shield (23) at a set angle.

5. The shoe surface dust removal and polishing device according to claim 3, characterized in that: A fixing rod (34) is fixed to one end of the cleaning brush (312) and the polishing brush (322); one end of the fixing rod (34) passes through the corresponding rotating plate 1 (311) and the rotating plate 2 (321), and is fixed with a fan blade (35); the fan blade (35) is located in the corresponding large shield 1 (315) and the large shield 2 (325).

6. The shoe surface dust removal and polishing device according to claim 1, characterized in that: The connecting member (43) comprises a moving tube (431) movably sleeved in the driving gear (41), one end of the moving tube (431) passes through the side of the regulating box (4), and a special-shaped groove (432) is provided inside, a moving rod (433) is movably sleeved in the special-shaped groove (432), and one end of the moving rod (433) is fixed to the output end of the driving motor (52); A connecting block (435) is fixed at one end of the moving tube (431), a special-shaped interface 1 (411) is provided in the driving gear (41), and a special-shaped interface 2 (441) is provided at one end of the connecting rod (44), and the connecting block (435) is connected to the special-shaped interface 1 (411) or the special-shaped interface 2 (441) respectively through displacement; A linkage plate (434) is fixed to one end of the moving tube (431), and one end of the linkage plate (434) is fixed to the output end of the electric telescopic rod (53).

7. The shoe surface dust removal and polishing device according to claim 1, characterized in that: The transmission member (45) comprises a gear 1 (451) fixed to one end of the connecting rod (44) and a gear 2 (453) fixed to one end of the spiral rod (46), and a transmission toothed belt (452) is meshed on the sides of the gear 1 (451) and the gear 2 (453).

8. The shoe surface dust removal and polishing device according to claim 1, characterized in that: The support member (6) comprises a support plate (61) fixed to one end of the protective tube (1), and one end of the spiral rod (46) passes through the support plate (61); A stabilizing rod (62) is fixed to the bottom of the support plate (61), the stabilizing rod (62) is parallel to the spiral rod (46), and a stabilizing plate (63) is rotatably connected to one end of the spiral rod (46) and the stabilizing rod (62).

9. The shoe surface dust removal and polishing device according to claim 1, characterized in that: The conveying member (7) comprises a movable plate (71) threadedly connected to the side of the spiral rod (46), and the movable plate (71) is movably sleeved on the side of the stabilizing support rod (62); A limit slide groove (711) is provided on the side of the movable plate (71), two slide buttons (712) are slidably connected in the limit slide groove (711), a clamping plate (72) is fixed on the slide button (712), and a tension spring (721) is fixed between the clamping plates (72).

10. The shoe surface dust removal and polishing device according to claim 8, characterized in that: A receiver (64) is fixed on the support plate (61), and a transmitter (73) is fixed on the movable plate (71). The transmitter (73) is docked with the receiver (64) at a set position, and the receiver (64) is connected to the drive motor (52) and the electric telescopic rod (53).