Continuous shot blasting flitch material stripping device and method capable of achieving reverse shape righting
By designing a material stripping device that can continuously shot blast and reversely correct the shape of the sheet material, and utilizing the coordination of the moving components and the shot blasting wheel, the continuous flow operation and deformation correction of the product are achieved, solving the problems of low efficiency and uneven quality in the shot blasting process.
Patent Information
- Application Number
- CN202510785100.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-12
- Publication Date
- 2025-09-09
AI Technical Summary
The existing shot blasting process does not provide continuous surface treatment for products, which leads to low operating efficiency, product deformation and uneven treatment quality.
A continuous shot blasting and reversible correction sheet material stripping device is designed. The product is driven to continuously step and rotate through the moving component. The shot blaster is used to evenly treat the front and back of the product, and a sealing strip brush is combined to prevent dust from overflowing.
It realizes the continuous flow operation of the product, eliminates the idle time, improves the processing efficiency, and corrects the deformation position by rotation to ensure the uniformity of product quality.
Smart Images

Figure CN120606336A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of shot blasting stripping, and in particular to a device and method for stripping a sheet material capable of continuous shot blasting and reverse correction. Background Art
[0002] Shot blasting is a mechanical surface treatment process that uses high-speed projectiles to impact the surface of the product to remove impurities and strengthen the surface of the product.
[0003] Currently, shot blasting of product surfaces is typically performed in batches, requiring completion of one batch before the next can begin, severely impacting efficiency. Because the treatment process occurs only on a single side of the product, it can cause deformation and compromise product quality. Furthermore, depending on the kinetic energy and distribution density of the shot impacting the product surface, the treatment effect can vary significantly across different areas, with stronger effects directly in the center of the shot blasting wheel and weaker effects on the sides. Summary of the Invention
[0004] In view of this, in order to solve at least one of the aforementioned technical problems, an embodiment of the present invention provides a material stripping device and method for continuous shot blasting and reverse correction.
[0005] To achieve the above objectives, the present invention mainly provides the following technical solutions:
[0006] On the one hand, an embodiment of the present invention provides a sheet material stripping device capable of continuous shot blasting and reversible correction, comprising:
[0007] Box, shot blasting wheel, guide rails, connectors and moving components;
[0008] The box body includes an upper area, a shot inlet is opened on one side of the upper area in a first direction, the shot blasting machine is connected to the upper area, and the shot outlet of the shot blasting machine corresponds to the shot inlet;
[0009] The upper region is further provided with a notch, which extends from the top wall of the upper region to the side walls of the upper region in a second direction, the second direction being perpendicular to the first direction;
[0010] At least a portion of the guide rail located above the upper region extends in the second direction and corresponds to the notch in the vertical direction. The movable assembly is connected to the guide rail. A plurality of connectors are provided. The connectors are arranged at intervals along the guide rail. One end of the connector is connected to the movable assembly, and the other end of the connector is used to connect to the product.
[0011] The moving assembly is used to drive the connecting piece to drive the product to move along the guide rail, so as to drive the product to move into or out of the upper area through the slot, and to drive the product to rotate.
[0012] The box body further includes a lower area, which is located below the upper area and is connected to the upper area. The cross-sectional area of the lower area decreases downward from the upper area.
[0013] The notch extends in a straight line on the top wall of the upper region, or the notch extends in a curved line on the top wall of the upper region, or the notch extends in a broken line on the top wall of the upper region.
[0014] Among them, the extended area of the projectile inlet is larger than the projectile outlet; the shot blaster is movably connected to the upper area.
[0015] Among them, a guide chute is provided on the outside of at least one side of the projectile inlet, and a slide is provided on the edge of the projectile outlet of the shot blaster, and the slide slides and embeds into the guide chute.
[0016] Among them, the connection method between the connector and the product includes at least one of clamping, hooking, adsorption, plugging, and screwing.
[0017] Wherein, the moving assembly includes a synchronous wheel, a first synchronous belt and a second synchronous belt;
[0018] The synchronous wheel is movably connected to the guide rail;
[0019] The top of the connecting member is fixedly connected to the synchronous wheel, and the first synchronous belt and the second synchronous belt are arranged inside the guide rail and arranged along the extension direction of the guide rail. The first synchronous belt and the second synchronous belt are respectively mechanically matched with the synchronous wheel on both sides of the synchronous wheel to drive the synchronous wheel to move relative to the guide rail in the extension direction of the guide rail and rotate relative to the guide rail.
[0020] The device further comprises: a sealing strip brush, which is made of a flexible material;
[0021] There are at least two sealing strip brushes, which are respectively connected to two opposite sides of the notch and butt-jointed with each other.
[0022] On the other hand, the present application also provides a method for stripping a sheet material that can be reversibly corrected by continuous shot blasting, which is used in a device for stripping a sheet material that can be reversibly corrected by continuous shot blasting. The method comprises:
[0023] Connect the product to the connector, and the moving assembly drives the connector to drive the product through the slot into the box, and move it to the position facing the shot outlet of the shot blaster;
[0024] The moving component drives the front of the product to be at a first preset angle relative to the shot blasting direction of the shot blasting machine, and the shot blasting machine ejects the projectiles at the front of the product. After the front of the product is processed, the moving component drives the back of the product to be at a second preset angle relative to the shot blasting direction of the shot blasting machine, and the shot blasting machine ejects the projectiles at the back of the product. After the back of the product is processed, the moving component drives the product to extend in the moving direction and drives the product to move out of the box through the slot.
[0025] The moving assembly of the device includes a synchronous wheel, a first synchronous belt and a second synchronous belt, and the first synchronous belt and the second synchronous belt are connected to the synchronous wheel on both sides. The specific method is as follows:
[0026] Connect the product to the connector, control the first synchronous belt and the second synchronous belt to move in the same direction, and the driving connector drives the product through the slot into the box and moves to the position facing the shot outlet of the shot blasting machine;
[0027] Control the first synchronous belt and the second synchronous belt to move toward each other, drive the front side of the product to be at a first preset angle relative to the shot blasting direction of the shot blasting machine, and the shot blasting machine will project the projectiles at the front side of the product. After the front side of the product is processed, control the first synchronous belt and the second synchronous belt to move toward each other, drive the back side of the product to be at a second preset angle relative to the shot blasting direction of the shot blasting machine, and the shot blasting machine will project the projectiles at the back side of the product. After the back side of the product is processed, control the first synchronous belt and the second synchronous belt to move toward each other to drive the product to extend in the moving direction, control the first synchronous belt and the second synchronous belt to move toward each other, and drive the product to move out of the box through the slot.
[0028] The present invention proposes a device and method for stripping sheet materials that can be continuously shot blasted and reversely corrected. These methods address the shortcomings of the prior art, such as discontinuous operation, product deformation after treatment, and uneven treatment quality. By continuously stepping the product during the treatment process, continuous flow operation of the product is achieved, and by freely rotating the product, synchronous correction of the deformed position is achieved. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] Figure 1 A schematic structural diagram of a sheet material stripping device capable of continuous shot blasting and reverse correction provided by an embodiment of the present invention;
[0030] Figure 2 A schematic diagram of a partial structure of a sheet material stripping device capable of continuous shot blasting and reversible correction provided by an embodiment of the present invention;
[0031] Figure 3 A schematic structural diagram of a box in a continuous shot blasting and reversible correction sheet material stripping device provided by an embodiment of the present invention;
[0032] Figure 4A schematic structural diagram of a shot blasting machine in a continuous shot blasting and reversible correction sheet material stripping device provided by an embodiment of the present invention;
[0033] Figure 5 A schematic diagram of a portion of the guide rails, connectors, and moving components in a continuous shot blasting and reversible correction sheet material stripping device provided by an embodiment of the present invention, viewed from a first perspective;
[0034] Figure 6 A schematic diagram of a portion of the connecting member and the moving assembly in a continuous shot blasting and reversible correction sheet material stripping device provided by an embodiment of the present invention, viewed from a second perspective;
[0035] Figure 7 A flow chart of a method for stripping a sheet material by continuous shot blasting and reverse correction provided by an embodiment of the present invention. DETAILED DESCRIPTION
[0036] In order to further illustrate the technical means and effects adopted by the present invention to achieve the predetermined purpose of the invention, the following, in combination with the accompanying drawings and preferred embodiments, describes in detail the specific implementation method, structure, characteristics and effects of a continuous shot blasting and reversible correction material sheet material stripping device proposed by the present invention.
[0037] On the one hand, if Figure 1-2 As shown, an embodiment of the present invention provides a material stripping device for continuous shot blasting and reversible correction, comprising:
[0038] Box 1, shot blasting machine 2, guide rail 3, connecting piece 5 and moving assembly;
[0039] The housing 1 includes an upper area 11, a shot inlet 12 is provided on one side of the upper area 11 in the first direction X, the shot blasting machine 2 is connected to the upper area 11, and the shot outlet of the shot blasting machine 2 corresponds to the shot inlet 12;
[0040] The upper region 11 is further provided with a notch 13 , which extends from the top wall of the upper region 11 to the side walls of the upper region 11 in a second direction Y, where the second direction Y is perpendicular to the first direction X.
[0041] At least a portion of the guide rail 3 located above the upper region 11 extends in the second direction Y and corresponds vertically to the notch 13. The movable assembly is connected to the guide rail 3. A plurality of connectors 5 are provided, and the connectors 5 are arranged at intervals along the guide rail 3. One end of the connector 5 is connected to the movable assembly, and the other end of the connector 5 is used to connect to the product 9.
[0042] The moving assembly is used to drive the connecting member 5 to move the product 9 along the guide rail 3 to drive the product 9 to move into or out of the upper area 11 through the slot 13, and to drive the product 9 to rotate so that the shot blaster 2 processes the product 9.
[0043] The box body 1 is a hollow box-like structure. The upper area 11 is the area located at a higher position when in use. The upper area 11 can be a cube or a nearly cube. The product 9 is shot blasted in this area. Figure 1 As shown in FIG, the first direction X and the second direction Y are two mutually perpendicular directions in the horizontal plane, or can be referred to as the width direction and length direction of the upper area 11. The third direction Z is the vertical direction or the height direction. The second direction Y is the direction in which the product 9 moves into and out of the upper area 11.
[0044] like Figure 3 As shown, the shot inlet 12 is an opening opened on one side in the first direction X, which can be a square opening, or can be set according to the shape of the shot outlet of the shot blasting machine 2. The slot 13 is set in the middle position of the upper area 11 in the first direction X. The slot 13 runs through both sides of the upper area 11 in the second direction Y, that is, the slots 13 are distributed on the top wall and both side walls of the upper area 11. The slot 13 serves to make way for the connection member 5 to pass through and move, and provides a channel for the product 9 to move into and out of the upper area 11.
[0045] The guide rail 3 is located above the box body 1 as a whole. The shape of the guide rail 3 can be set to various shapes according to the moving path of the product 9 and the on-site conditions as needed, but at least part of the guide rail 3 is located directly above the notch 13 on the top wall. The extension direction of this part of the guide rail 3 is consistent with the extension direction of the notch 13 on the top wall, and the extension length of the guide rail 3 is greater than the extension length of the notch 13 on the top wall, so that the connector 5 can drive the product 9 to move in and out of the upper area 11 through the guidance of the guide rail 3. When the connector 5 drives the product 9 to move into the upper area 11, the connector 5 passes through the notch 13. The number of connectors 5 can be multiple as needed, such as the case where four connectors 5 are connected to four products 9 for shot blasting as shown in this application. The mobile component can be in various forms, and the mobile component should be able to drive the connector 5 to drive the product 9 to move and rotate along the guide rail 3.
[0046] The embodiments of the present application address the shortcomings of the prior art, such as discontinuous operation, product deformation after treatment, and uneven treatment quality. By continuously advancing product 9 through a mobile assembly, product 9 sequentially enters upper area 11 for shot blasting, achieving continuous flow operation of product 9. This transition from batch processing to continuous flow processing eliminates idle time and significantly improves product processing efficiency. By freely rotating product 9 through the mobile assembly, the optimal treatment angle can be achieved through the rotation of product 9. Furthermore, deformation caused by shot blasting the front of product 9 can be corrected by rotating it 180° and then shot blasting the back, achieving synchronous correction of deformation during the shot blasting process.
[0047] In one embodiment, the box body 1 further includes a lower area 14 , which is located below the upper area 11 and is connected to the upper area 11 , and the cross-sectional area of the lower area 14 decreases downward from the upper area 11 .
[0048] The lower region 14 may be a hollow inverted conical structure that contracts downward, facilitating the gathering and collection of the projectiles and slag.
[0049] In one embodiment, the notch 13 extends in a straight line on the top wall of the upper region 11 , or the notch 13 extends in a curved line on the top wall of the upper region 11 , or the notch 13 extends in a broken line on the top wall of the upper region 11 .
[0050] The notch 13 on the top wall of the upper region 11 is not limited to the following: Figure 3 The regular square shape can be set according to the optimal path during the incident and reflection process of the projectile, such as S-shaped, L-shaped, etc. However, the area of the notch 13 on the side wall of the upper area 11 is generally a vertical square.
[0051] In one embodiment, the extended area of the projectile inlet 12 is larger than that of the projectile outlet, thereby preventing the projectile inlet 12 from blocking the projectile.
[0052] Furthermore, the connection between the shot blasting machine 2 and the box body 1 is a movable connection, so that the shot blasting machine 2 can move relative to the box body 1 in the vertical direction Z or the second direction Y. There are many ways of movable connection. For example, in one embodiment, a guide groove 121 is provided on the outside of at least one side of the projectile inlet 12. Figure 3 As shown, vertically extending chutes 121 may be provided on both sides of the projectile inlet 12 in the second direction Y. Figure 4 As shown, the projectile outlet edge of the shot blasting machine 2 is provided with an outward-turned slide plate 21, which slides and fits into the guide chute 121. This sliding fit enables the shot blasting machine 2 to move in the vertical direction Z or the second direction Y. The chute 121 and the slide plate 21 are matched, and the structure is simple and easy to process and adjust.
[0053] Through the sliding of the shot blasting machine 2, the influence of the kinetic energy and distribution density of the projectiles in different processing areas on the processing effect can be eliminated, the projectile utilization rate and product processing quality can be improved, and the quality uniformity of the product can be effectively guaranteed.
[0054] In one embodiment, the connection method between the connector 5 and the product 9 includes at least one of clamping, hooking, adsorption, plugging, and screwing.
[0055] For example, screw holes or hanging holes may be processed on the product 9 to achieve screw connection or hanging connection between the connector 5 and the product 9 .
[0056] There are many ways to implement the mobile component. In one implementation, Figure 5-6 As shown, the moving assembly includes a synchronous wheel 6, a first synchronous belt 7, and a second synchronous belt 8. The synchronous wheel 6 is movably connected to the guide rail 3. The top of the connecting member 5 is fixedly connected to the synchronous wheel 6. The first synchronous belt 7 and the second synchronous belt 8 are arranged inside the guide rail 3 and arranged along the extension direction of the guide rail 3. The first synchronous belt 7 and the second synchronous belt 8 are mechanically engaged with the synchronous wheel 6 on both sides of the synchronous wheel 6 to drive the synchronous wheel 6 to move in the extension direction of the guide rail 3 and rotate relative to the guide rail 3.
[0057] The moving assembly also includes a drive member and a transmission member. The drive member connects the first and second synchronous belts 7 and 8 through the transmission member to drive the first and second synchronous belts 7 and 8 to move in either a forward or reverse direction. In this embodiment, the drive member and transmission member are not further limited, and conventional methods for driving synchronous belts in the art can be used. The guide rail 3 is a hollow structure with a clearance opening at its bottom. The synchronous pulley 6, the first and second synchronous belts 7 and 8 are all disposed within the guide rail 3. The guide rail 3 supports the synchronous pulley 6 from below. The first and second synchronous belts 7 and 8 are arranged along the extension direction of the guide rail 3. At the turning points of the guide rail 3, rollers can be provided to adjust the extension direction of the first and second synchronous belts 7 and 8 according to the guide rail 3. The synchronous pulley 6 is a gear. The first and second synchronous belts 7 and 8 mesh with the synchronous pulley 6 on either side of the radial direction. The first and second synchronous belts 7 and 8 can then be driven to move or rotate by the first and second synchronous belts 7 and 8 moving in opposite or same directions, thereby controlling the movement of the product 9 into or out of the upper area 11, or rotating the product 9. The method will be described in further detail later in conjunction with the implementation method. The connecting member 5 passes through the lower clearance opening of the guide rail 3 to connect with the synchronous wheel 6. The connecting member 5 and the synchronous wheel 6 should be coaxially connected.
[0058] In one embodiment, the device further includes: a sealing strip brush 4, which is arranged on the top wall of the upper area 11 and the notches 13 of the two side walls. The sealing strip brush 4 is made of a flexible material, such as soft rubber, foam or bristles. There are at least two sealing strip brushes 4, and the two sealing strip brushes 4 are respectively connected to the opposite sides of the notch 13. The two sealing strip brushes 4 are butt-jointed, and the sealing strip brushes 4 play a flexible sealing role on the notch 13 to prevent dust from overflowing during product processing. Figure 1-2 As shown, the two sealing brushes 4 can be butted together in a toothed configuration. A connector 5 is used to pass between the two sealing brushes 4, passing through the butt joint between them. It squeezes the sealing brushes 4 and moves along the slots 13, driving the product 9 to move and rotate. The product 9 is squeezed by the sealing brushes 4, passing between them and into or out of the upper area 11. The sealing brushes 4 clean the surface of the product 9.
[0059] On the other hand, Figure 7 As shown, the present application also provides a continuous shot blasting and reversible correction material sheet material stripping method, which is used for the continuous shot blasting and reversible correction material sheet material stripping device of any of the above embodiments, and the method includes:
[0060] S1. Connect the product 9 to the connector 5. The moving assembly drives the connector 5 to drive the product 9 into the box 1 through the slot 13 and move it to the position facing the shot outlet of the shot blaster 2.
[0061] S2. The mobile component drives the front side of the product 9 to be at a first preset angle relative to the projectile ejection direction of the shot blasting machine 2. The shot blasting machine 2 projects the projectiles at the front side of the product 9. After the front side of the product 9 is processed, the mobile component drives the back side of the product 9 to be at a second preset angle relative to the projectile ejection direction of the shot blasting machine 2. The shot blasting machine 2 projects the projectiles at the back side of the product 9. After the back side of the product 9 is processed, the mobile component drives the product 9 to extend in the moving direction and drives the product 9 to move out of the box 1 through the slot 13.
[0062] The mobile component can be in various forms. The following takes an embodiment in which the mobile component includes a synchronous wheel 6, a first synchronous belt 7 and a second synchronous belt 8, and the first synchronous belt 7 and the second synchronous belt 8 are engaged with the synchronous wheel 6 on both sides as an example. The structure can be referred to the specific description of the embodiment of the aforementioned continuous shot blasting and reversible correction material sheet material stripping device, which will not be repeated here.
[0063] In the following, the products 9 are taken as the first product 91, the second product 92, the third product 93 and the fourth product 94. The first product 91, the second product 92, the third product 93 and the fourth product 94 are respectively connected to the four connecting members 5. The first synchronous belt 7 and the second synchronous belt 8 are controlled to move in the same direction, such as Figure 2As shown, it can be moved in the clockwise direction, and then the connecting member 5 is driven to drive the third product 93 to pass through the sealing brush 4 of the slot 13 and enter the interior of the box 1. At this time, the processed second product 92 passes through the sealing brush 4 of the slot 13 and moves out of the box 1. The third product 93 is moved to a position facing the shot outlet of the shot blasting machine 2. The position of the shot blasting machine 2 can then be adjusted according to the position of the third product 93, or it can be adjusted as needed without having to do so.
[0064] Then, the first synchronous belt 7 and the second synchronous belt 8 are controlled to move toward each other, that is, to move in opposite directions. Under the action of the torsional force, the synchronous wheel 6 will drive the third product 93 to rotate in place until the front of the third product 93 is at a first preset angle relative to the projectile ejection direction of the shot blasting machine 2. The first preset angle can be set according to production needs. The shot blasting machine 2 is controlled to rotate, and the shot blasting machine 2 projects the projectiles at the front of the third product 93. After the front of the third product 93 is processed, the first synchronous belt 7 and the second synchronous belt 8 are controlled to move toward each other, driving the third product 93 to rotate in place until the back of the third product 93 is at a second preset angle relative to the projectile ejection direction of the shot blasting machine 2. The second preset angle can be the same as or different from the first preset angle. The shot blaster 2 projects the projectiles onto the back of the third product 93. After the back of the third product 93 is processed, the first synchronous belt 7 and the second synchronous belt 8 are controlled to move toward each other, driving the third product 93 to extend in the moving direction, that is, the front and back of the third product 93 extend in the plane formed by the second direction Y and the vertical direction, and then the third product 93 is oriented so that it can be easily removed from the box 1. Then, the first synchronous belt 7 and the second synchronous belt 8 are controlled to move toward each other, driving the third product 93 to pass through the sealing brush 4 of the slot 13 and move out of the box 1, and the fourth product 94 will pass through the sealing brush 4 of the slot 13 and enter the box 1, and the above steps are repeated.
[0065] The above description is merely a specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any modifications or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in the present invention should be included in the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be based on the scope of protection of the claims.
Claims
1. A continuous shot blasting and reversible correction material sheet material stripping device, characterized in that: include: Box (1), shot blasting machine (2), guide rail (3), connecting piece (5) and moving assembly; The housing (1) comprises an upper region (11), a shot inlet (12) is provided on one side of the upper region (11) in a first direction, the shot blasting machine (2) is connected to the upper region (11), and the shot outlet of the shot blasting machine (2) corresponds to the shot inlet (12); The upper region (11) is further provided with a notch (13), the notch (13) extending from the top wall of the upper region (11) to the side walls of the upper region (11) on both sides in a second direction, the second direction being perpendicular to the first direction; At least a portion of the guide rail (3) extends in the second direction and corresponds to the notch (13) located on the top wall in the vertical direction. The movable assembly is connected to the guide rail (3). There are a plurality of connecting members (5), and the plurality of connecting members (5) are arranged at intervals along the guide rail (3). One end of the connecting member (5) is connected to the movable assembly, and the other end of the connecting member (5) is used to connect to the product (9). The moving assembly is used to drive the connecting member (5) to drive the product (9) to move along the guide rail (3), so as to drive the product (9) to move into or out of the upper area (11) through the slot (13), and to drive the product (9) to rotate.
2. The continuous shot blasting and reversible correction sheet material stripping device according to claim 1 is characterized in that: The box body (1) further comprises a lower area (14), the lower area (14) being located below the upper area (11), the lower area (14) being connected to the upper area (11), and the cross-sectional area of the lower area (14) decreasing downward from the upper area (11).
3. The continuous shot blasting and reversible correction sheet material stripping device according to claim 1 is characterized in that: The notch (13) extends in a straight line on the top wall of the upper region (11), or the notch (13) extends in a curved line on the top wall of the upper region (11), or the notch (13) extends in a broken line on the top wall of the upper region (11).
4. The continuous shot blasting and reversible correction sheet material stripping device according to claim 1 is characterized in that: The projectile inlet (12) has an extended area larger than the projectile outlet; The shot blasting machine (2) is movably connected to the upper area (11).
5. The continuous shot blasting and reversible correction sheet material stripping device according to claim 4 is characterized in that: A guide groove (121) is provided on the outside of at least one side of the projectile inlet (12), and a slide plate (21) is provided on the edge of the projectile outlet of the shot blasting device (2), and the slide plate (21) is slidably embedded in the guide groove (121).
6. The continuous shot blasting and reversible correction sheet material stripping device according to claim 1 is characterized in that: The connection method between the connecting piece (5) and the product (9) includes at least one of clamping, hooking, adsorption, plugging, and screwing.
7. The continuous shot blasting and reversible correction sheet material stripping device according to claim 1 is characterized in that: The moving assembly comprises a synchronous wheel (6), a first synchronous belt (7) and a second synchronous belt (8); The synchronous wheel (6) is movably connected to the guide rail (3); The top end of the connecting member (5) is fixedly connected to the synchronous wheel (6); the first synchronous belt (7) and the second synchronous belt (8) are arranged inside the guide rail (3) and are arranged along the extension direction of the guide rail (3); the first synchronous belt (7) and the second synchronous belt (8) are respectively mechanically matched with the synchronous wheel (6) on both sides of the synchronous wheel (6) to drive the synchronous wheel (6) to move relative to the guide rail (3) in the extension direction of the guide rail (3) and to rotate relative to the guide rail (3).
8. The continuous shot blasting and reversible correction sheet material stripping device according to claim 1 is characterized in that: The device further comprises: A sealing strip brush (4), wherein the sealing strip brush (4) is made of a flexible material; There are at least two sealing strip brushes (4), and the two sealing strip brushes (4) are respectively connected to the two opposite sides of the slot (13), and the two sealing strip brushes (4) are butt-jointed.
9. A continuous shot blasting and reversible correction material sheet material stripping method, characterized in that: A material stripping device for continuous shot blasting with reversible correction, the method comprising: Connect the product to the connector, and the moving assembly drives the connector to drive the product through the slot into the box, and move it to a position facing the shot outlet of the shot blaster; The moving component drives the front side of the product to be at a first preset angle relative to the shot ejection direction of the shot blasting machine, and the shot blasting machine ejects the shot at the front side of the product. After the front side of the product is processed, the moving component drives the back side of the product to be at a second preset angle relative to the shot ejection direction of the shot blasting machine, and the shot blasting machine ejects the shot at the back side of the product. After the back side of the product is processed, the moving component drives the product to extend in the moving direction and drives the product to move out of the box through the slot.
10. The continuous shot blasting and reversible correction sheet material stripping method according to claim 9, characterized in that: The moving assembly of the device includes a synchronous wheel, a first synchronous belt, and a second synchronous belt, wherein the first synchronous belt and the second synchronous belt are connected to the synchronous wheel at both sides thereof, and the method is specifically as follows: Connect the product to the connecting member, control the first synchronous belt and the second synchronous belt to move in the same direction, and drive the connecting member to drive the product through the slot into the box body and move it to a position facing the shot outlet of the shot blasting machine; Control the first synchronous belt and the second synchronous belt to move toward each other, drive the front side of the product to be at a first preset angle relative to the shot ejection direction of the shot blasting machine, and the shot blasting machine ejects the projectiles at the front side of the product. After the front side of the product is processed, control the first synchronous belt and the second synchronous belt to move toward each other, drive the back side of the product to be at a second preset angle relative to the shot ejection direction of the shot blasting machine, and the shot blasting machine ejects the projectiles at the back side of the product. After the back side of the product is processed, control the first synchronous belt and the second synchronous belt to move toward each other to drive the product to extend in the moving direction, control the first synchronous belt and the second synchronous belt to move toward each other, and drive the product to move out of the box through the slot.