Resin grinding wheel mesh detection device

By designing a resin grinding wheel mesh inspection device, the problem of inaccurate mesh placement in the mold was solved, enabling precise gripping, conveying, and inspection of the mesh, thus ensuring the quality and production efficiency of the grinding wheel products.

CN223685841UActive Publication Date: 2025-12-19ZHEJIANG YAKEXI ABRASIVES CO LTD
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Patent Information

Application Number
CN202423317651.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-31
Publication Date
2025-12-19
Estimated Expiration
2034-12-31

AI Technical Summary

Technical Problem

Traditional resin grinding wheel mesh inspection devices cannot ensure that the mesh is accurately placed in the mold, resulting in quality problems such as missing mesh in grinding wheel products.

Method used

A resin grinding wheel mesh inspection device was designed, including a support component, a positioning frame, a material storage mechanism, a picking mechanism, a conveying mechanism, and a discharge component. Through precise control and positioning, it ensures that only one mesh is picked up at a time, and maintains stability and accurate positioning during the conveying process, ensuring that the mesh is accurately delivered after inspection.

Benefits of technology

This technology enables precise placement and inspection of the mesh during the resin grinding wheel production process, preventing mesh loss and ensuring the quality stability and production efficiency of the grinding wheel products.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of resin grinding wheel machining, and discloses a resin grinding wheel mesh detection device which comprises a supporting assembly, a positioning frame and a plurality of round grinding wheel meshes. A material storage mechanism used for storing a plurality of round grinding wheel meshes is arranged on one side of the supporting assembly, a material taking mechanism used for grabbing the single round grinding wheel meshes is arranged at the upper end of the material storage mechanism, the meshes are conveyed to a detection area under driving of the conveying mechanism, and the meshes are taken out after the positioning frame reaches the designated position under driving of the conveying mechanism. The material taking mechanism accurately places the grabbed round grinding wheel meshes in the positioning frame, when the meshes are detected to be qualified or unqualified, the discharging assembly is started, the positioning frame and the round grinding wheel meshes in the positioning frame are sent out of the device so that the follow-up grinding wheel forming process can be carried out, and the discharging guide assembly is used for guiding stable discharging of the positioning frame. And the meshes are prevented from falling off or shifting in the conveying process.
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Description

TECHNICAL FIELD

[0001] The utility model relates to resin grinding wheel processing technical field, specifically, and relates to a resin grinding wheel mesh detection device. BACKGROUND

[0002] The resin grinding wheel mesh detection device is a kind of equipment specially used to ensure that mesh is placed correctly in the manufacturing process of resin grinding wheel, and in the production of resin grinding wheel, fiber reinforced mesh cloth plays the role of reinforcing the rotation strength of grinding wheel, to prevent the rupture of grinding wheel when using.

[0003] Although the traditional mesh placing device can detect the presence and absence of mesh by proximity switch and confirm the action of mesh being placed, it cannot ensure whether mesh is accurately placed in mold, and in subsequent mesh baking and mesh pressing process, mesh can be carried away due to the adhesion of mesh pressing device, leading to serious quality problems of mesh loss of grinding wheel product, therefore, the technical personnel in the technical field provide a resin grinding wheel mesh detection device to solve the problems in the above background. UTILITY MODEL CONTENT

[0004] The utility model aims at providing a resin grinding wheel mesh detection device to solve the problems in the prior art.

[0005] The utility model provides the following technical scheme: a resin grinding wheel mesh detection device, including support assembly, positioning frame, multiple circular grinding wheel meshes, the support assembly upper end is provided with the conveying mechanism for driving positioning frame moves, the support assembly one side is provided with the material storage mechanism for storing multiple circular grinding wheel meshes, the material storage mechanism upper end is provided with the material taking mechanism for grabbing single circular grinding wheel mesh, the conveying mechanism one side is provided with the ejection assembly for the ejection of positioning frame, the conveying mechanism other side is provided with the ejection guide assembly for assisting the ejection of positioning frame.

[0006] As the preferred technical scheme of above, the support assembly includes support plate, the support plate is fixedly connected with expansion plate at the center of both sides of the two sides of the support plate, and the support plate is fixedly connected with multiple support columns at the center of both sides of the upper end of the support plate.

[0007] As a preferred form of the above technical solution, the conveying mechanism comprises a first butt joint plate and a second butt joint plate, the first butt joint plate and the second butt joint plate are respectively fixedly connected to the upper ends of the plurality of support columns on one side and the plurality of support columns on the other side, a support block is fixedly connected between the first butt joint plate and the second butt joint plate at the center, synchronous shafts are rotatably sleeved between the first butt joint plate and the second butt joint plate at the center on both sides through bearings, roller shafts are fixedly sleeved on the outer sides of the two synchronous shafts, a first motor is fixedly sleeved in the support block at the center on one side, a transmission shaft is fixedly sleeved in the first butt joint plate at the center, and the transmission shaft is fixedly connected to the output end of the first motor at the end close to the first motor.

[0008] As a preferred form of the above technical solution, the transmission shaft is fixedly connected with a first drive wheel and a second drive wheel at one end on the outer side, a transmission wheel is fixedly sleeved on the outer side of each of the two synchronous shafts at the end close to the transmission shaft, two transmission belts are sleeved on the outer sides of the first drive wheel and one of the transmission wheels and the second drive wheel and the other transmission wheel, a conveying belt is sleeved on the outer sides of the two roller shafts, a plurality of baffles are fixedly connected in an annular array on the outer side of the conveying belt, the positioning frame is arranged between two adjacent baffles, and the bottom end of the positioning frame is in contact with the upper end of the conveying belt.

[0009] As a preferred form of the above technical solution, the discharging guide assembly comprises a base plate, the base plate is fixedly connected at one end on the center of one side of the support plate, a plurality of top columns are fixedly connected in a filled array on the upper end of the base plate, top plates are fixedly connected to the upper ends of the plurality of top columns, and a first sliding channel and a second sliding channel are respectively formed at the center on both sides of the upper end of each top plate.

[0010] As a preferred form of the above technical solution, the discharging assembly comprises two support frames, the two support frames are respectively fixedly connected at both ends on the center of one side of the second butt joint plate away from the support block, a first cylinder and a second cylinder are respectively fixedly connected to the upper ends of the two support frames, and a first push plate and a second push plate are respectively fixedly connected to the output ends of the first cylinder and the second cylinder.

[0011] As a preferred form of the above technical solution, the material storage mechanism comprises a bottom plate, the bottom plate is fixedly connected at one end on the support plate close to the two extension plates, three third cylinders are fixedly connected in an annular array vertically on the center of the upper end of the bottom plate, a support disc is fixedly sleeved on the outer side of the center on the upper side of each of the three third cylinders, a guide column is fixedly connected to the center on the upper end of the support disc, and a tray is fixedly connected to the output end of each of the three third cylinders on the upper side.

[0012] As the preferred technical scheme of the above, the material taking mechanism comprises two vertical plates, a bearing column, the two vertical plates are fixedly connected to the upper ends of the two extension plates respectively, the bearing column is fixedly connected to the upper end center of the bottom plate on one side, the two vertical plates are fixedly connected with balance plates on the sides close to each other, support frames are fixedly connected between the two balance plates, the support frames are fixedly connected with the bearing column at the lower end of the bearing column on one end, connecting rods are fixedly connected to the ends of the support frames away from the bottom plate, photoelectric sensors are fixedly sleeved on the inner center of the connecting rods on one end, guide frames are fixedly sleeved in the support frames, lead screws are rotatably sleeved in the guide frames on the inner center of the guide frames on both ends, the lead screws are sleeved with sliding blocks on the outer sides in a threaded mode, the sliding blocks are slidably sleeved in the guide frames, fourth air cylinders are fixedly connected to the lower end centers of the sliding blocks perpendicularly, docking discs are fixedly connected to the output ends of the fourth air cylinders, a plurality of vacuum suction cups are fixedly and annularly arranged on the inner center edges of the docking discs, second motors are fixedly connected to the upper center sides of the bearing column, and the output ends of the second motors penetrate through one side of the support frame and extend to the other side of the support frame and are fixedly connected with one end of the lead screw.

[0013] Compared with the prior art, the resin grinding wheel mesh detection device has the following beneficial effects:

[0014] When the resin grinding wheel mesh detection device is in use, the material storage mechanism is used for storing a plurality of circular grinding wheel meshes, so that there is enough mesh supply in the production process, when it is necessary to place a circular grinding wheel mesh, the material taking mechanism is started to accurately grasp one circular grinding wheel mesh stored in the material storage mechanism, the mechanism ensures that only one mesh can be grasped each time through accurate control and positioning, and multiple grasping or omission is avoided, the conveying mechanism is responsible for moving the positioning frame from the initial position to the specified detection position, the mechanism ensures the stable movement and accurate positioning of the positioning frame through accurate driving and control, the positioning frame is used for carrying and placing the circular grinding wheel mesh, and the mesh is conveyed to the detection area under the driving of the conveying mechanism, after the positioning frame reaches the specified position, the material taking mechanism accurately places the grasped circular grinding wheel mesh in the positioning frame, and when the mesh is qualified or unqualified, the discharging assembly is started to send the positioning frame and the circular grinding wheel mesh in the positioning frame out of the device, so that subsequent grinding wheel forming processes are carried out, and the discharging guide assembly is used for guiding the stable discharging of the positioning frame, so that the mesh cannot fall off or shift in the conveying process. BRIEF DESCRIPTION OF DRAWINGS

[0015] Figure 1 It is a three-dimensional structure schematic view of a resin grinding wheel mesh detection device;

[0016] Figure 2 It is a three-dimensional structure schematic view of another view of a resin grinding wheel mesh detection device;

[0017] Figure 3It is a three-dimensional exploded view of a resin grinding wheel mesh detection device;

[0018] Figure 4 It is another perspective of a three-dimensional exploded view of a resin grinding wheel mesh detection device;

[0019] Figure 5 It is a three-dimensional exploded view of a resin grinding wheel mesh detection device conveying mechanism;

[0020] Figure 6 It is a three-dimensional exploded view of a resin grinding wheel mesh detection device discharging guide assembly;

[0021] Figure 7 It is a three-dimensional view of a resin grinding wheel mesh detection device discharging assembly;

[0022] Figure 8 It is a three-dimensional exploded view of a resin grinding wheel mesh detection device material storage mechanism;

[0023] Figure 9 It is a three-dimensional view of a resin grinding wheel mesh detection device material taking mechanism;

[0024] Figure 10 It is a three-dimensional view of a resin grinding wheel mesh detection device docking disc.

[0025] Legend:

[0026] 1, support assembly; 101, support plate; 102, expansion plate; 103, support column; 2, conveying mechanism; 201, support block; 202, first docking plate; 203, second docking plate; 204, synchronous shaft; 205, roller shaft; 206, first motor; 207, transmission shaft; 208, first drive wheel; 209, second drive wheel; 2010, transmission wheel; 2011, transmission belt; 2012, conveyor belt; 2013, baffle; 3, discharging guide assembly; 301, base plate; 302, top column; 303, top plate; 304, first slide; 305, second slide; 4, discharging assembly; 401, support frame; 402, first air cylinder; 403, second air cylinder; 404, first push plate; 405, second push plate; 5, material storage mechanism; 501, bottom plate; 502, third air cylinder; 503, support disc; 504, guide column; 505, tray; 506, circular grinding wheel mesh; 6, material taking mechanism; 601, vertical plate; 602, balance plate; 603, support frame; 604, connecting rod; 605, photoelectric sensor; 606, guide frame; 607, lead screw; 608, sliding block; 609, fourth air cylinder; 6010, docking disc; 6011, vacuum chuck; 6012, load-bearing column; 6013, second motor; 7, positioning frame. DETAILED DESCRIPTION

[0027] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention.

[0028] like Figures 1-4 As shown, this utility model provides a technical solution: a resin grinding wheel mesh detection device, including a support assembly 1, a positioning frame 7, and multiple circular grinding wheel meshes 506. The upper end of the support assembly 1 is equipped with a conveying mechanism 2 for moving the positioning frame 7. One side of the support assembly 1 is equipped with a material storage mechanism 5 for storing the multiple circular grinding wheel meshes 506. The upper end of the material storage mechanism 5 is equipped with a material-grabbing mechanism 6 for gripping a single circular grinding wheel mesh 506. One side of the conveying mechanism 2 is equipped with a discharge assembly 4 for discharging material from the positioning frame 7, and the other side of the conveying mechanism 2 is equipped with a discharge guide assembly 3 for assisting the discharge of material from the positioning frame 7. The material storage mechanism 5 stores multiple circular grinding wheel meshes 506, ensuring a sufficient supply of meshes during production. When a circular grinding wheel mesh 506 needs to be placed, the material-grabbing mechanism 6 is activated, precisely gripping one circular grinding wheel mesh stored in the material storage mechanism 5. The mechanism 506, through precise control and positioning, ensures that only one mesh can be grabbed at a time, avoiding multiple grabs or omissions. The conveying mechanism 2 is responsible for moving the positioning frame 7 from the initial position to the designated detection position. Through precise drive and control, this mechanism ensures the smooth movement and accurate positioning of the positioning frame 7. The positioning frame 7 is used to carry and place the circular abrasive wheel mesh 506. Driven by the conveying mechanism 2, the mesh is transported to the detection area. After the positioning frame 7 reaches the designated position, driven by the conveying mechanism 2, the picking mechanism 6 accurately places the grabbed circular abrasive wheel mesh 506 into the positioning frame 7. When the mesh is detected as qualified or unqualified, the discharge component 4 is activated, sending the positioning frame 7 and the circular abrasive wheel mesh 506 inside it out of the device for subsequent abrasive wheel forming processes. The discharge guide component 3 is used to guide the smooth discharge of the positioning frame 7, ensuring that the mesh will not fall off or shift during the conveying process.

[0029] As one implementation method in this embodiment, such as Figure 3 and Figure 4 As shown, the support assembly 1 includes a support plate 101. An extension plate 102 is fixedly connected to one end of the center of each side of the support plate 101. Multiple support columns 103 are arranged and fixedly connected to the center of the upper end of the support plate 101 on both sides. The support assembly 1 is mainly composed of the support plate 101, the extension plate 102, and the support columns 103. The support plate 101 provides a stable support surface. The extension plates 102 fixedly connected to one end of the center of each side are used to expand the support area to facilitate the installation of other components. The support columns 103 are vertically fixed to the center of the upper end of the support plate 101 on both sides to support the conveying mechanism 2 and other related components, ensuring the structural stability and smooth operation of the entire device.

[0030] As an implementation in the present embodiment, as shown in Figure 5 The conveying mechanism 2 includes a first butt plate 202 and a second butt plate 203, the first butt plate 202 and the second butt plate 203 are fixedly connected on the upper end of the plurality of support columns 103 at one side and the other side respectively, a support block 201 is fixedly connected between the first butt plate 202 and the second butt plate 203 at the center, a synchronous shaft 204 is rotatably sleeved between the first butt plate 202 and the second butt plate 203 at the center on both sides through bearings, a roller shaft 205 is fixedly sleeved on the outer side of the two synchronous shafts 204, a first motor 206 is fixedly sleeved in the inner center of the support block 201 at one side, a transmission shaft 207 is fixedly sleeved in the inner center of the first butt plate 202, the transmission shaft 207 is fixedly connected with the output end of the first motor 206 at the end close to the first motor 206, a first drive wheel 208 and a second drive wheel 209 are fixedly connected in an array on the outer side of the transmission shaft 207 at one end, a transmission wheel 2010 is fixedly sleeved on the outer side of the two synchronous shafts 204 at the end close to the transmission shaft 207, two transmission belts 2011 are sleeved on the outer side of the first drive wheel 208 and one of the transmission wheels 2010 and the second drive wheel 209 and the other transmission wheel 2010, a conveying belt 2012 is sleeved on the outer side of the two roller shafts 205, a plurality of baffles 2013 are fixedly connected in an annular array on the outer side of the conveying belt 2012, the positioning frame 7 is arranged between two adjacent baffles 2013, and the bottom end of the positioning frame 7 is in contact with the upper end of the conveying belt 2012. The conveying mechanism 2 is responsible for conveying the circular grinding wheel mesh 506 from the material storage mechanism 5 to the detection area, and then pushing it out by the discharging assembly 4. When the first motor 206 is started, the synchronous shaft 204 and the roller shaft 205 rotate through the transmission of the transmission shaft 207 and the first drive wheel 208 and the second drive wheel 209 and the transmission belt 2011, thereby driving the conveying belt 2012 to circulate, and the baffles 2013 are used for positioning and limiting the position of the positioning frame 7, ensuring the stability and accuracy during the conveying process.

[0031] As an implementation in the present embodiment, as shown in Figure 6As shown, the discharge guide assembly 3 includes a base plate 301 fixedly connected to the support plate 101 on one side of the center near one end, a plurality of top posts 302 are fixedly connected to the upper end of the base plate 301 in a filling array, a top plate 303 is fixedly connected to the upper end of the plurality of top posts 302, a first slide 304 and a second slide 305 are respectively provided on the upper end of the center near both sides of the top plate 303, the discharge guide assembly 3 is used to guide the stable discharge of the positioning frame 7 and the circular abrasive mesh 506 therein, the base plate 301 is fixed on one side of the support plate 101, the top post 302 and the top plate 303 constitute a support structure for discharging, and the first slide 304 and the second slide 305 are used to guide the movement track of the positioning frame 7 during the discharging process, so as to ensure that it can be smoothly and accurately slid off the conveyor belt 2012, the first slide 304 is responsible for collecting the positioning frame 7 without the circular abrasive mesh 506, and the second slide 305 is responsible for collecting the positioning frame 7 that has passed the detection.

[0032] As an embodiment in the present embodiment, as shown in Figure 7 As shown, the discharge assembly 4 includes two support frames 401 fixedly connected to the second butt joint plate 203 on one side of the center near both ends away from the support block 201, a first air cylinder 402 and a second air cylinder 403 are respectively fixedly connected to the upper ends of the two support frames 401, a first push plate 404 and a second push plate 405 are respectively fixedly connected to the output ends of the first air cylinder 402 and the second air cylinder 403, and the discharge assembly 4 is responsible for pushing the positioning frame 7 and the circular abrasive mesh 506 therein out of the conveyor belt 2012 after the detection is completed, the support frame 401 is fixed on the second butt joint plate 203 to provide support for the air cylinder, and the first air cylinder 402 and the second air cylinder 403 respectively drive the first push plate 404 and the second push plate 405 to move, so as to push the positioning frame 7 out of the end of the conveyor belt 2012, and this design ensures the accuracy and stability of the discharging.

[0033] As an embodiment in the present embodiment, as shown in Figure 8As shown, the material storage mechanism 5 comprises a bottom plate 501 fixedly connected to the support plate 101 near one end of the two extension plates 102, three third air cylinders 502 are fixedly connected in a ring shape at the center of the upper end of the bottom plate 501, a support disc 503 is fixedly connected to the upper end center of the support disc 503, a guide column 504 is fixedly connected to the upper end center of the support disc 503, the output end of the three third air cylinders 502 is fixedly connected to the tray 505, the tray 505 is slidably connected to the outside of the guide column 504, a plurality of circular abrasive mesh sheets 506 are arranged on the upper end of the tray 505, and the plurality of circular abrasive mesh sheets 506 are slidably connected to the outside of the guide column 504. The material storage mechanism 5 is used for storing the circular abrasive mesh sheets 506 to be detected, the bottom plate 501 is fixed on the support plate 101 to provide support for the whole mechanism, the third air cylinder 502 drives the tray 505 to move up and down along the guide column 504, so as to adjust the position of the circular abrasive mesh sheet 506, and the support disc 503 is used for supporting the tray 505 and the circular abrasive mesh sheet 506 to ensure the stability thereof. This design enables the material storage mechanism 5 to flexibly adjust the position of the circular abrasive mesh sheet 506, and facilitates the material taking mechanism 6 to perform the material taking operation.

[0034] As an embodiment in the present embodiment, as Figure 9 and Figure 10As shown, the taking-out mechanism 6 includes two vertical plates 601 and a load-bearing column 6012, both vertical plates 601 are fixedly connected to the upper ends of the two extension plates 102, the load-bearing column 6012 is fixedly connected to the upper end of the bottom plate 501 at a side near the center, both sides of the two vertical plates 601 close to each other are fixedly connected with balance plates 602, the two balance plates 602 are fixedly connected with a support frame 603 between them, one end of the support frame 603 near the lower end of the load-bearing column 6012 is fixedly connected with the top end of the load-bearing column 6012, the end of the support frame 603 away from the bottom plate 501 is fixedly connected with a connecting rod 604, an optoelectronic sensor 605 is fixedly sleeved at one end near the center inside the connecting rod 604, a guide frame 606 is fixedly sleeved inside the support frame 603, a lead screw 607 is rotatably sleeved at both ends near the center inside the guide frame 606 through bearings, a sliding block 608 is threadedly sleeved outside the lead screw 607, the sliding block 608 is slidingly sleeved inside the guide frame 606, a fourth cylinder 609 is fixedly connected with the sliding block 608 at the lower end center, the output end of the fourth cylinder 609 is fixedly connected with a docking disc 6010, a plurality of vacuum suction cups 6011 are fixedly and annularly connected inside the docking disc 6010 at a side near the center, a second motor 6013 is fixedly connected with the load-bearing column 6012 at a side near the upper center, the output end of the second motor 6013 penetrates through one side of the support frame 603 and extends to the other side of the support frame 603 and is fixedly connected with one end of the lead screw 607, the taking-out mechanism 6 is responsible for taking out the circular grinding wheel mesh 506 from the material storage mechanism 5 and placing it in the positioning frame 7 on the conveyor belt 2012, the vertical plate 601 and the balance plate 602 constitute the support structure of the taking-out mechanism 6, the support frame 603 is used for mounting other components, the guide frame 606 and the lead screw 607 are used in cooperation, the sliding block 608 is driven by the second motor 6013 to move to a specified position along the guide frame 606, the fourth cylinder 609 drives the docking disc 6010 to descend, the vacuum suction cup 6011 rises after adsorbing the circular grinding wheel mesh 506, and then moves to the above of the positioning frame 7 to release the mesh, this design ensures the accuracy and stability of the taking-out process, and the optoelectronic sensor 605 detects whether the circular grinding wheel mesh 506 is placed in the subsequent positioning frame 7.

[0035] Working principle: support assembly 1 is mainly composed of support plate 101 and expansion plate 102 and support column 103, support plate 101 provides stable support surface, its both sides center is fixedly connected with expansion plate 102 at one end, which is used to expand the support area, facilitate the installation of other components, support column 103 is vertically fixed at the upper end center of support plate 101 on both sides, used to support conveying mechanism 2 and other related components, ensure the structural stability and running stability of the whole device, conveying mechanism 2 is responsible for conveying the circular grinding wheel mesh 506 from material storage mechanism 5 to the detection area, and then pushing out by discharging assembly 4, when the first motor 206 starts, through the transmission of transmission shaft 207, first drive wheel 208, second drive wheel 209 and transmission belt 2011, synchronous shaft 204 and roller shaft 205 rotate, thereby driving the circular movement of conveyor belt 2012, baffle 2013 is used to position and limit the position of positioning frame 7, ensure its stability and accuracy in the conveying process, discharging guide assembly 3 is used to guide the stable discharge of positioning frame 7 and circular grinding wheel mesh 506 in it, base plate 301 is fixed on one side of support plate 101, top column 302 and top plate 303 constitute the support structure of discharging guide, first slide 304 and second slide 305 are used to guide the movement track of positioning frame 7 in the discharging process, ensure that it can be smoothly and accurately slid off from conveyor belt 2012, first slide 304 is responsible for collecting positioning frame 7 without placing circular grinding wheel mesh 506, second slide 305 is used to collect positioning frame 7 that passes the detection, discharging assembly 4 is responsible for pushing out positioning frame 7 and circular grinding wheel mesh 506 in it from conveyor belt 2012 after detection, support frame 401 is fixed on the second butt joint plate 203 to provide support for the cylinder, first cylinder 402 and second cylinder 403 drive first push plate 404 and second push plate 405 to move respectively, push out positioning frame 7 from the end of conveyor belt 2012, this design ensures the accuracy and stability of discharging, material storage mechanism 5 is used to store the circular grinding wheel mesh 506 to be detected, bottom plate 501 is fixed on support plate 101 to provide support for the whole mechanism, third cylinder 502 drives tray 505 to move up and down along guide column 504, thereby adjusting the position of circular grinding wheel mesh 506, support disc 503 is used to support tray 505 and circular grinding wheel mesh 506, ensure its stability, this design makes material storage mechanism 5 can flexibly adjust the position of circular grinding wheel mesh 506, facilitate the material taking operation of taking mechanism 6, taking mechanism 6 is responsible for taking circular grinding wheel mesh 506 from material storage mechanism 5 and placing it in positioning frame 7 on conveyor belt 2012, vertical plate 601 and balance plate 602 constitute the support structure of taking mechanism 6, support frame 603 is used to install other components, guide frame 606 and screw rod 607 are used in combination, through the drive of second motor 6013, slider 608 moves to the specified position along guide frame 606, fourth cylinder 609 drives butt joint disc 6010 to descend,The vacuum chuck 6011 is used to adsorb the circular grinding wheel mesh 506, and then is lifted, and then is moved to the position above the positioning frame 7 to release the mesh, so that the accuracy and stability of the taking process are ensured.

[0036] The above embodiments are only used to illustrate the technical solutions of the present application, and not to limit them.

Claims

1. A resin grinding wheel mesh detection device, comprising a support assembly (1), a positioning frame (7), a plurality of circular grinding wheel meshes (506), characterized in that: The support assembly (1) is provided with a conveying mechanism (2) for driving the positioning frame (7) to move, one side of the support assembly (1) is provided with a material storage mechanism (5) for storing a plurality of circular grinding wheel meshes (506), the upper end of the material storage mechanism (5) is provided with a material taking mechanism (6) for grabbing a single circular grinding wheel mesh (506), one side of the conveying mechanism (2) is provided with a discharging assembly (4) for discharging the positioning frame (7), and the other side of the conveying mechanism (2) is provided with a discharging guide assembly (3) for assisting the positioning frame (7) to discharge.

2. The resin bonded abrasive wheel web detection device of claim 1, wherein: The support assembly (1) comprises a support plate (101), and the support plate (101) is fixedly connected with an extension plate (102) at the center of the two sides away from each other and close to one end.

3. The resin bonded abrasive wheel web detection device of claim 2, wherein: The conveying mechanism (2) comprises a first butt joint plate (202) and a second butt joint plate (203), the first butt joint plate (202) and the second butt joint plate (203) are fixedly connected on the upper ends of the plurality of support columns (103) close to one side and the plurality of support columns (103) close to the other side respectively, the support block (201) is fixedly connected between the first butt joint plate (202) and the second butt joint plate (203) at the center, the synchronous shafts (204) are rotatably sleeved between the first butt joint plate (202) and the second butt joint plate (203) at the center and close to the two sides through bearings, the roller shafts (205) are fixedly sleeved outside the two synchronous shafts (204), the first motor (206) is fixedly sleeved inside the support block (201) close to one side at the center, the transmission shaft (207) is fixedly sleeved inside the first butt joint plate (202) at the center, and one end of the transmission shaft (207) close to the first motor (206) is fixedly connected with the output end of the first motor (206).

4. The resin bonded abrasive wheel web inspection apparatus of claim 3, wherein: The first driving wheel (208) and the second driving wheel (209) are fixedly connected in an array outside one end of the transmission shaft (207), the transmission wheels (2010) are fixedly sleeved outside the two synchronous shafts (204) close to one end of the transmission shaft (207), the two transmission belts (2011) are sleeved outside the first driving wheel (208) and one of the transmission wheels (2010) and the second driving wheel (209) and the other transmission wheel (2010), the conveying belt (2012) is sleeved outside the two roller shafts (205), the plurality of baffles (2013) are fixedly connected in an annular array outside the conveying belt (2012), the positioning frame (7) is arranged between two adjacent baffles (2013), and the bottom end of the positioning frame (7) is in contact with the upper end of the conveying belt (2012).

5. The resin bonded abrasive wheel web inspection apparatus of claim 2, wherein: The discharge guide assembly (3) comprises a base plate (301) fixedly connected at the center of one side of the support plate (101) close to one end, a plurality of top columns (302) are fixedly connected in a filling array on the upper end of the base plate (301), a top plate (303) is fixedly connected on the upper end of the plurality of top columns (302), and a first sliding groove (304) and a second sliding groove (305) are respectively formed on the upper end of the top plate (303) close to both sides of the center.

6. The resin bonded abrasive wheel web inspection apparatus of claim 3, wherein: The discharge assembly (4) comprises two support frames (401) fixedly connected at the center of one side of the second butt joint plate (203) away from the support block (201) close to both ends, a first air cylinder (402) and a second air cylinder (403) are respectively fixedly connected on the upper end of the two support frames (401), and a first push plate (404) and a second push plate (405) are respectively fixedly connected on the output end of the first air cylinder (402) and the second air cylinder (403).

7. The resin bonded abrasive wheel web inspection apparatus of claim 2, wherein: The material storage mechanism (5) comprises a bottom plate (501) fixedly connected at one end of the support plate (101) close to the two extension plates (102), three third air cylinders (502) are fixedly connected in a ring shape vertically on the upper end of the center of the bottom plate (501), a support disc (503) is fixedly sleeved on the outer side of the upper center of the three third air cylinders (502), a guide column (504) is fixedly connected on the upper end center of the support disc (503), a tray (505) is fixedly connected on the output end of the upper part of the three third air cylinders (502), the tray (505) is sleeved on the outer side of the guide column (504), a plurality of circular abrasive mesh sheets (506) are arranged on the upper end of the tray (505), and the plurality of circular abrasive mesh sheets (506) are sleeved on the outer side of the guide column (504).

8. The resinoid grinding wheel web detection device according to claim 7, characterized in that: Said taking mechanism (6) includes two riser plates (601), and a bearing column (6012), two said riser plates (601) are fixedly connected on the upper end of two extension plates (102) respectively, the bearing column (6012) is fixedly connected on the upper end center of the bottom plate (501) one side, the mutually close side of two said riser plates (601) is fixedly connected balance plate (602), two said balance plates (602) are fixedly connected with support frame (603), the lower end of support frame (603) is fixedly connected with the top end of bearing column (6012) one end, the end away from the bottom plate (501) of support frame (603) is fixedly connected with connecting rod (604), the inside center of connecting rod (604) one end is fixedly provided with photoelectric sensor (605), the inside of support frame (603) is fixedly provided with guide frame (606), the inside center of guide frame (606) both ends is rotatably provided with lead screw (607) through bearing, the outside of lead screw (607) is threadedly connected with sliding block (608), the sliding block (608) is slidably provided in the inside of guide frame (606), the lower end center of sliding block (608) is vertically fixedly connected with fourth air cylinder (609), the output end of fourth air cylinder (609) is fixedly connected with docking disc (6010), the inside center of docking disc (6010) edge is fixedly connected with a plurality of vacuum chuck (6011) in annular arrangement, the upper center of one side of bearing column (6012) is fixedly connected with second motor (6013), the output end of second motor (6013) penetrates through one side of support frame (603) and leads to the other side of support frame (603) and is fixedly connected with the one end of lead screw (607).