Glue application device for a medical device assembly equipment
By adjusting the contact position between the conveyor belt and the board and the design of the air-drying mechanism, combined with the cleaning mechanism and the brush mechanism, the problems of sliding and glue loss during the board coating are solved, and the stability and uniformity of the glue coating are achieved, reducing the difficulty and cost of processing.
Patent Information
- Application Number
- CN202510585029.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-08
- Publication Date
- 2025-07-08
- Estimated Expiration
- 2045-05-08
AI Technical Summary
During the assembly process of medical devices, the board easily slides when applying glue, resulting in uneven glue layer, and excess glue flows to the non-glue-coated area, increasing the difficulty and cost of subsequent processing.
A glue coating device is designed to adjust the contact position between the conveyor belt and the plate, and use an air drying mechanism to reduce the air pressure difference to make the plate and the conveyor belt closely fit, and combine the cleaning mechanism and the brush mechanism to treat excess glue to prevent sliding and glue loss.
The stability and uniformity of the glue coating of the board is achieved, the glue waste and subsequent grinding steps are avoided, and the processing accuracy and efficiency are improved.
Smart Images

Figure CN120094819B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of medical glue coating, and specifically relates to a glue coating device for a medical device assembly equipment. Background Art
[0002] In the medical device assembly industry, the assembly of precision components often requires a high-precision glue coating process to ensure the quality and performance of products.
[0003] In the field of medical device assembly, when supporting a board, the position of the conveyor belt used to support the board remains unchanged. When the width of the board increases, the distance from both sides of the board to the side of the conveyor belt increases. When the edge of the board is stressed, it will fall off the conveyor belt. In addition, the frictional resistance between the board and the conveyor belt is mainly provided by the gravity of the board, resulting in relative sliding between the board and the conveyor belt during coating, causing uneven glue layers at the slipping areas, reduced glue layer strength, and glue waste. Moreover, when the board is coated with glue, in order to completely cover the surface of the board with a glue layer, more glue than the coverage area of the board is applied to the surface of the board, causing the excess glue to flow from both sides of the board to the side of the board, resulting in the adhesion of glue in the non-coated area. This not only forces the side of the board to be re-polished in subsequent processes to remove the glue, but also this additional step not only consumes time, but may also affect the accuracy of the side of the board, thereby increasing the processing difficulty and cost, and even reducing the overall quality of the finished product. Summary of the Invention
[0004] The purpose of the present invention is to provide a glue coating device for a medical device assembly equipment to solve the problems raised in the above background art.
[0005] To achieve the above purpose, the present invention provides the following technical solution: A glue coating device for a medical device assembly equipment, including a bottom case, a dissolving liquid is provided in the inner cavity of the bottom case, the front and rear sides of the upper surface of the bottom case are symmetrically provided with side plates, the tops of the two side plates are fixedly installed with a top plate, the middle of the top plate is fixedly sleeved with a glue head, the glue head is connected to an external glue supply mechanism, the middle of the bottom surface of the inner cavity of the side plate is fixedly installed with a support plate, the left and right sides of the upper surface of the support plate are symmetrically fixed with fixing blocks, a support groove is opened in the middle of the fixing block, a drying mechanism is provided in the middle of the upper surface of the support plate, the upper parts of the inner sides of the two fixing blocks are fixedly installed with mounting plates, an air outlet is opened in the middle of the mounting plate, convex grooves are symmetrically opened on the left and right sides of the upper surface of the mounting plate, a limiting plate is fixedly installed in the middle of the upper surface of the mounting plate, conveying mechanisms are symmetrically provided on the front and rear sides of the convex groove, a driving mechanism is provided between the two conveying mechanisms, telescopic rods are fixedly installed on the sides of the two fixing blocks away from each other, cleaning mechanisms are symmetrically provided on the front and rear sides of the telescopic ends of the two telescopic rods, and a brush mechanism is provided at the bottom of the cleaning mechanism;
[0006] Among them, the cleaning mechanism on the front side includes two connecting blocks, the two connecting blocks are respectively fixedly connected to the telescopic ends on the front sides of the two telescopic rods, middle plates are fixedly installed on the inner sides of the two connecting blocks, support blocks are fixedly installed on the sides of the two middle plates close to the fixed block, the support blocks are slidably sleeved with the support grooves, second driving members are fixedly installed on the upper parts of the outer sides of the two middle plates, a belt shaft is movably sleeved between the upper and lower parts of the two second driving members, the upper belt shaft is fixedly connected to the output end of the second driving member, second belt wheels are fixedly installed on both sides of the two belt shafts, a hole belt is sleeved on the curved surfaces of the plurality of second belt wheels, a plurality of rectangular grooves are equidistantly formed on the curved surface of the hole belt, a plurality of inner plates are fixedly installed on the inner side surface of the hole belt at equal intervals, a baffle is fixedly installed on the upper parts of the two middle plates, and the baffle is in sliding contact with the inner plates.
[0007] Preferably, the air-drying mechanism includes an air shell, the air shell is fixedly installed in the middle of the upper surface of the support plate, the air shell is fixedly connected to the inner side surfaces of the two fixed blocks, and a plurality of blowers are fixedly sleeved on the front and rear sides of the air shell at equal intervals.
[0008] Preferably, the conveying mechanism on the front side includes two sliders, the two sliders are respectively slidably sleeved with the front parts of the convex grooves on the left and right sides, an elastic member is fixedly installed on the side of the slider close to the limiting plate, one end of the elastic member is fixedly connected to the limiting plate, an installation shell is fixedly installed on the upper surfaces of the two sliders, a resisting plate is fixedly installed on the side of the installation shell away from the limiting plate, a plurality of first belt sleeves arranged at equal intervals are movably sleeved on the side of the inner cavity of the installation shell away from the limiting plate, and a first belt is sleeved on the outer curved surfaces of the plurality of first belt sleeves.
[0009] Preferably, the driving mechanism includes two first driving members, the two first driving members are respectively fixedly sleeved on the upper parts of the two fixed blocks, a driving shaft is fixedly installed at the output ends of the two first driving members, a plurality of worm wheels arranged at equal intervals are fixedly sleeved on the curved surface of the driving shaft, a plurality of sliding shafts are fixedly sleeved at equal intervals in the middle of the limiting plate, the sliding shafts are slidably sleeved with the two first belt sleeves on the same side, a worm sleeve is fixedly sleeved in the middle of the sliding shaft, and the worm wheel meshes with the worm sleeve.
[0010] Preferably, the brush mechanism includes two movable seats, the two movable seats are respectively fixedly installed at the bottoms of the two middle plates on the sides away from the fixed blocks, a washing wheel is movably sleeved in the middle of the two movable seats, third driven belt wheels are fixedly installed at both ends of the washing wheel, third main belt wheels are fixedly installed at both ends of the lower belt shaft, a third belt is sleeved between the third driven belt wheel and the third main belt wheel, and flexible brushes are equidistantly arranged on the circumferential curved surface of the third belt.
[0011] Preferably, the front blower and the rear blower rotate in opposite directions. The contact surface between the slider and the convex groove is a smooth surface. The height of the upper surface of the slider is greater than the height of the upper surface of the mounting plate. Both the inner and outer surfaces of the first belt have a layer of rough coating.
[0012] Preferably, the drive shaft is made of high-strength material. The surface of the second pulley is provided with a rubber coating. The outer surface of the hole belt is coated with a wear-resistant smooth coating.
[0013] The beneficial effects of the present invention are as follows:
[0014] 1. In the present invention, first, the plate to be processed is placed on the upper surfaces of the two first belts. Then, the telescopic rod is started. The telescopic end of the telescopic rod drives the cleaning mechanism to move towards the plate. The cleaning mechanism pushes the conveying mechanism to move towards the plate, causing the front and rear first belts to approach each other until the hole belt contacts the side of the plate. Thus, the contact position between the two first belts and the bottom surface of the plate is adjusted according to the width of the plate, making the two first belts always in the symmetrical position at the bottom surface of the plate. At the same time, the upper surface of the first belt is thoroughly in contact with the bottom surface of the plate, improving the stability of the plate support. Then, multiple blowers are started, so that the air between the bottom of the plate and the upper surface of the mounting plate flows through the air outlet into the inner cavity of the air housing and finally flows to the outside of the air housing through the blower. At this time, due to the increase in the air flow velocity between the bottom of the plate and the mounting plate, the air pressure between the bottom surface of the plate and the upper surface of the mounting plate decreases, and the atmospheric pressure presses the plate to closely adhere to the first belt, avoiding relative sliding between the plate and the first belt during subsequent coating and cleaning operations of the plate.
[0015] 2. When the telescopic end of the telescopic rod drives the hole belt on the cleaning mechanism to contact the side of the plate in the present invention, the second driving member is started to make the contact surface between the hole belt and the plate rotate upward. At the same time, the cleaning mechanism drives the brush mechanism to scrub the bottom of the hole belt. Then, the driving mechanism is started. The driving mechanism drives the conveying mechanism to drive the plate to move, and at the same time, the rubber head applies glue to the upper surface of the plate. The excess glue applied to the plate flows to both sides of the plate under the push of the rubber head and into the rectangular groove on the side of the hole belt that is in sliding contact with the plate and rotates upward and adheres to the upper surface of the inner plate, thus overcoming the problem that in the existing equipment during the gluing process, the excess glue will flow from both sides of the plate to the side of the plate, causing the side of the plate that does not need to be glued to adhere to the glue, resulting in the need to re-polish and remove the glue on the side of the plate later, reducing the accuracy of the side of the plate and increasing the processing procedures. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 is a schematic diagram of the overall external structure of the present invention;
[0017] Figure 2 is a schematic diagram of the fixed block structure of the present invention;
[0018] Figure 3 This is a schematic structural diagram of the air-drying mechanism of the present invention;
[0019] Figure 4 This is a schematic structural diagram of the conveying mechanism of the present invention;
[0020] Figure 5 This is a schematic structural diagram of the slider of the present invention;
[0021] Figure 6 This is a schematic structural diagram of the cleaning mechanism of the present invention;
[0022] Figure 7 This is a schematic structural diagram of the brush mechanism of the present invention.
[0023] In the figure: 1, bottom shell; 2, side plate; 3, top plate; 4, rubber head; 5, support plate; 6, fixing block; 601, support groove; 7, air-drying mechanism; 701, air shell; 702, fan; 8, mounting plate; 801, air outlet; 802, convex groove; 9, limiting plate; 10, conveying mechanism; 1001, slider; 1002, elastic member; 1003, mounting shell; 1004, abutting plate; 1005, first belt sleeve; 1006, first belt; 11, driving mechanism; 1101, first driving member; 1102, driving shaft; 1103, worm gear; 1104, worm sleeve; 1105, sliding shaft; 12, telescopic rod; 13, cleaning mechanism; 1301, connecting block; 1302, middle plate; 1303, support block; 1304, second driving member; 1305, belt shaft; 1306, second belt pulley; 1307, perforated belt; 1308, inner plate; 1309, baffle; 14, brush mechanism; 1401, movable seat; 1402, washing wheel; 1403, third driven belt pulley; 1404, third belt; 1405, third main belt pulley. Specific embodiments
[0024] 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. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0025] Such as Figures 1 to 7As shown in the figure, an adhesive coating device for a medical device assembly equipment provided by an embodiment of the present invention includes a bottom case 1. A dissolving liquid is provided in the inner cavity of the bottom case 1, and the dissolving liquid uses an organic solvent that decomposes glue, thereby avoiding a large amount of subsequent glue from adhering to the surface of the hole belt 1307, causing the rectangular grooves on the side of the hole belt 1307 to be blocked, resulting in the glue on the side of the plate not being able to flow into the rectangular grooves. On the front and rear sides of the upper surface of the bottom case 1, side plates 2 are symmetrically arranged. At the top ends of the two side plates 2, a top plate 3 is fixedly installed. In the middle of the top plate 3, a glue head 4 is fixedly sleeved. The glue head 4 is connected to an external glue supply mechanism, thereby realizing providing a continuous supply of glue for the device and at the same time applying the glue to the upper surface of the plate. In the middle of the bottom surface of the inner cavity of the side plate 2, a support plate 5 is fixedly installed. On the left and right sides of the upper surface of the support plate 5, fixing blocks 6 are symmetrically fixed. In the middle of the fixing block 6, a support groove 601 is opened. In the middle of the upper surface of the support plate 5, a drying mechanism 7 is provided. On the upper parts of the inner sides of the two fixing blocks 6, a mounting plate 8 is fixedly installed. In the middle of the mounting plate 8, an air outlet 801 is opened. By opening the air outlet 801 in the middle of the mounting plate 8, when the drying mechanism 7 works, air can flow into the inner cavity of the air shell 701 through the air outlet 801, thereby increasing the flow rate of the air between the bottom of the plate and the mounting plate 8, reducing the air pressure between the bottom surface of the plate and the mounting plate 8, and thus enabling the atmospheric pressure to press the plate to closely fit with the first belt 1006, avoiding the plate from sliding with the first belt 1006 when the subsequent coating and cleaning mechanism 13 of the plate works. On the left and right sides of the upper surface of the mounting plate 8, convex grooves 802 are symmetrically opened. In the middle of the upper surface of the mounting plate 8, a limiting plate 9 is fixedly installed. On the front and rear sides of the convex groove 802, a conveying mechanism 10 is provided. Between the two conveying mechanisms 10, a driving mechanism 11 is provided. On the far sides of the two fixing blocks 6, telescopic rods 12 are fixedly installed. On the front and rear sides of the telescopic ends of the two telescopic rods 12, a cleaning mechanism 13 is provided. At the bottom of the cleaning mechanism 13, a brush mechanism 14 is provided.
[0026] As Figure 2 and Figure 3 shown in the figure, the drying mechanism 7 includes an air shell 701. The air shell 701 is fixedly installed in the middle of the upper surface of the support plate 5. The air shell 701 is fixedly connected to the inner sides of the two fixing blocks 6. On the front and rear sides of the air shell 701, a plurality of air blowers 702 are equidistantly and fixedly sleeved. The front air blowers 702 and the rear air blowers 702 rotate in opposite directions. Thus, when the plurality of air blowers 702 rotate simultaneously, the air in the inner cavity of the air shell 701 flows outwards through the air blowers 702, drying the dissolving liquid adhering to the surface of the hole belt 1307 on the side close to the air shell 701, avoiding the hole belt 1307 driving the dissolving liquid to flow to the surface of the plate, resulting in a reduction in the decomposition strength of the glue layer on the surface of the plate.
[0027] As Figure 2 、 Figure 4 and Figure 5As shown in the figure, the front transfer mechanism 10 includes two sliders 1001. The two sliders 1001 are respectively slidably sleeved on the front parts of the left and right convex grooves 802. The contact surfaces between the sliders 1001 and the convex grooves 802 are smooth surfaces, thereby reducing the frictional resistance between the sliders 1001 and the convex grooves 802. When the telescopic rod 12 pushes the transfer mechanism 10 to move through the cleaning mechanism 13, the load on the telescopic rod 12 is reduced, and the service life of the telescopic rod 12 is increased. The height of the upper surface of the slider 1001 is greater than the height of the upper surface of the mounting plate 8, thereby preventing the bottom surface of the mounting shell 1003 fixedly installed on the upper surface of the slider 1001 from contacting the upper surface of the mounting plate 8, avoiding the generation of frictional resistance between the mounting shell 1003 and the mounting plate 8, and reducing the load on the telescopic rod 12. An elastic member 1002 is fixedly installed on one side of the slider 1001 close to the limiting plate 9. One end of the elastic member 1002 is fixedly connected to the limiting plate 9. The upper surfaces of the two sliders 1001 are fixedly installed with a mounting shell 1003. A pressing plate 1004 is fixedly installed on the side of the mounting shell 1003 away from the limiting plate 9. A plurality of first belt sleeves 1005 arranged at equal intervals are movably sleeved on the side of the inner cavity of the mounting shell 1003 away from the limiting plate 9. A first belt 1006 is sleeved on the outer curved surfaces of the plurality of first belt sleeves 1005. Both the inner curved surface and the outer side surface of the first belt 1006 have a layer of rough coating, thereby increasing the frictional resistance between the first belt 1006 and the plate while increasing the frictional resistance between the first belt 1006 and the first belt sleeves 1005, and preventing slipping between the first belt 1006 and the plate and between the first belt sleeves 1005 and the first belt 1006, which may cause uneven movement speed of the plate on the upper surface of the first belt 1006, resulting in the aggregation and irregular patterns of the glue on the surface of the plate, reducing the strength of the glue layer and wasting a large amount of glue.
[0028] As Figure 1 , Figure 2 and Figure 5 shown in the figure, the driving mechanism 11 includes two first driving members 1101. The two first driving members 1101 are respectively fixedly sleeved on the upper parts of the two fixing blocks 6. The output ends of the two first driving members 1101 are fixedly installed with driving shafts 1102. The driving shafts 1102 are made of high-strength materials. The driving shafts 1102 are made of tungsten alloy, thereby overcoming the huge torque generated when the driving shafts 1102 drive a plurality of worm sleeves 1104 to rotate through a plurality of worm wheels 1103, preventing the driving shafts 1102 from bending and breaking, and increasing the service life of the driving shafts 1102. A plurality of worm wheels 1103 arranged at equal intervals are fixedly sleeved on the curved surfaces of the driving shafts 1102. A plurality of sliding shafts 1105 are fixedly sleeved at equal intervals in the middle of the limiting plate 9. The sliding shafts 1105 are slidably sleeved with the two first belt sleeves 1005 on the same side. A worm sleeve 1104 is fixedly sleeved in the middle of the sliding shafts 1105. The worm wheels 1103 and the worm sleeves 1104 are meshed with each other.
[0029] As Figure 1 , Figure 6and Figure 7 As shown in Figure 7 , the front cleaning mechanism 13 includes two connecting blocks 1301. The two connecting blocks 1301 are respectively fixedly connected to the telescopic ends on the front sides of the two telescopic rods 12. Middle plates 1302 are fixedly installed on the inner sides of the two connecting blocks 1301. Support blocks 1303 are fixedly installed on the sides of the two middle plates 1302 close to the fixed block 6. The support blocks 1303 are slidably sleeved in the support grooves 601. By providing the support blocks 1303 and the support grooves 601, the support strength of the cleaning mechanism 13 in the horizontal direction is improved, and the telescopic ends of the telescopic rods 12 are prevented from bending and breaking. Second driving members 1304 are fixedly installed on the upper parts of the outer sides of the two middle plates 1302. Belt shafts 1305 are movably sleeved between the upper and lower parts of the two second driving members 1304. The upper belt shaft 1305 is fixedly connected to the output end of the second driving member 1304. Second belt wheels 1306 are fixedly installed on both sides of the two belt shafts 1305. The curved surfaces of the second belt wheels 1306 are provided with rubber coatings, thereby increasing the frictional resistance between the second belt wheels 1306 and the hole belt 1307, and preventing slipping between the second belt wheels 1306 and the hole belt 1307 when the second belt wheels 1306 drive the hole belt 1307 to rotate, which may reduce the working efficiency of the cleaning mechanism 13. The curved surfaces of multiple second belt wheels 1306 are sleeved with a hole belt 1307. The outer surface of the hole belt 1307 is coated with a wear-resistant smooth coating, thereby reducing the viscosity of the glue and the dissolving liquid on the surface of the hole belt 1307, making it easier for the glue and the dissolving liquid to separate from the surface of the hole belt 1307, and reducing the burden on the subsequent brush mechanism 14 and the air drying mechanism 7. Multiple rectangular grooves are equidistantly formed on the curved surface of the hole belt 1307. Multiple inner plates 1308 are equidistantly fixedly installed on the inner side of the hole belt 1307. A baffle 1309 is fixedly installed on the upper part of the two middle plates 1302. The baffle 1309 is in sliding contact with the inner plates 1308.
[0030] As Figure 1 and Figure 7 shown in Figure 1 and Figure 7 , the brush mechanism 14 includes two movable seats 1401. The two movable seats 1401 are respectively fixedly installed at the bottoms of the two middle plates 1302 on the sides away from the fixed block 6. A washing wheel 1402 is movably sleeved in the middle of the two movable seats 1401. Third driven belt wheels 1403 are fixedly installed at both ends of the washing wheel 1402. Third main belt wheels 1405 are fixedly installed at both ends of the lower belt shaft 1305. A third belt 1404 is sleeved between the third driven belt wheels 1403 and the third main belt wheels 1405. Flexible brushes are equidistantly arranged on the circumferential surface of the curved surface of the third belt 1404, thereby facilitating the removal of the glue adhering to the bottom of the hole belt 1307 by the third belt 1404, and at the same time preventing the third belt 1404 from scratching the surface of the hole belt 1307.
[0031] Working principle:
[0032] When the present invention is in use, first place the plate to be processed on the upper surfaces of the two first belts 1006. Then start the telescopic rod 12. The telescopic end of the telescopic rod 12 drives the connecting block 1301 to move towards the plate. The connecting block 1301 drives the hole belt 1307 to move towards the plate through the middle plate 1302, the belt shaft 1305 and the second pulley 1306. The hole belt 1307 pushes the contact plate 1004 in contact with it to move towards the plate. The contact plate 1004 drives the first belt 1006 to move towards the limiting plate 9 through the mounting shell 1003 and the first belt sleeve 1005, so that the two first belts 1006 on the front and back sides approach each other. The mounting shell 1003 drives the slider 1001 to squeeze the elastic member 1002 to contract until the hole belt 1307 contacts the side of the plate, thereby realizing the adjustment of the contact position between the two first belts 1006 and the bottom surface of the plate according to the width of the plate, so that the two first belts 1006 are always in the symmetrical position of the bottom surface of the plate;
[0033] At the same time, the upper surface of the first belt 1006 is completely in contact with the bottom surface of the plate, improving the stability of the plate support. Then start a plurality of blowers 702. The blowers 702 rotate. The air between the bottom of the plate and the upper surface of the mounting plate 8 flows through the air outlet 801 into the inner cavity of the air shell 701 and finally flows to the outside of the air shell 701 through the blowers 702. At this time, since the air flow velocity between the bottom of the plate and the mounting plate 8 increases, the air pressure between the bottom surface of the plate and the mounting plate 8 decreases, so that the atmospheric pressure presses the plate to fit tightly with the first belt 1006, avoiding the occurrence of sliding between the plate and the first belt 1006 when the subsequent coating and cleaning mechanism 13 works.
[0034] After the telescopic end of the telescopic rod 12 drives the hole belt 1307 on the cleaning mechanism 13 to contact the side surface of the board, the second driving member 1304 is started, and the output end of the second driving member 1304 drives the upper belt shaft 1305 to rotate. The upper belt shaft 1305 drives the upper second pulley 1306 to rotate. The upper second pulley 1306 drives the hole belt 1307 to rotate. At this time, the surface of the hole belt 1307 in contact with the board moves upward. The hole belt 1307 drives the inner plate 1308 to move. The hole belt 1307 drives the lower belt shaft 1305 to rotate through the lower second pulley 1306. The lower belt shaft 1305 drives the third main pulley 1405 to rotate. The third main pulley 1405 drives the third driven pulley 1403 to rotate through the third belt 1404. The third driven pulley 1403 drives the washing wheel 1402 to rotate. The washing wheel 1402 scrubs the bottom of the hole belt 1307. Then the first driving member 1101 is started. The output end of the first driving member 1101 drives the driving shaft 1102 to rotate. The driving shaft 1102 drives the worm gear 1103 to rotate. The worm gear 1103 drives the worm sleeve 1104 to rotate. The worm sleeve 1104 drives the sliding shaft 1105 to rotate. The sliding shaft 1105 drives the first belt sleeve 1005 to rotate. The first belt sleeve 1005 drives the first belt 1006 to rotate. The first belt 1006 drives the board to move. At the same time, the rubber head 4 applies glue to the upper surface of the board. The excess glue applied to the board flows to both sides of the board under the push of the rubber head 4 and enters the rectangular groove on the side of the second pulley 1306 that is in sliding contact with the board and rotates upward and adheres to the upper surface of the inner plate 1308. Thus, it overcomes the problem that in the existing equipment during the gluing process, the excess glue will flow from both sides of the board to the side surface of the board, causing the side surface of the board that does not need to be glued to stick with glue, resulting in the need to re-polish and remove the glue on the side surface of the board later, causing a reduction in the accuracy of the side surface of the board and an increase in the processing procedures;
[0035] In addition, the glue adhered to the side surface and the upper surface of the inner plate 1308 moves into the inner cavity of the bottom shell 1 under the rotation of the inner plate 1308 and contacts the dissolving liquid in the inner cavity of the bottom shell 1 and dissolves. At the same time, the rotating washing wheel 1402 scrubs the inner plate 1308 soaked in the dissolving liquid to completely remove the glue. At the same time, the air generated by the air drying mechanism 7 dries the wet inner plate 1308 after cleaning, preventing the dissolving liquid adhered to the inner plate 1308 from contacting the glue surface above the board and causing the glue surface to decompose.
[0036] It should be noted that in this text, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprising", "including" or any other variant thereof are intended to cover non-exclusive inclusion, such that a process, method, article or device comprising a series of elements not only includes those elements but also includes other elements not expressly listed, or elements inherent to such process, method, article or device.
[0037] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand 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 glue - applying device for a medical device assembly equipment, including a bottom shell (1). A dissolving solution is provided in the inner cavity of the bottom shell (1). Symmetrically arranged side plates (2) are provided on the front and rear sides of the upper surface of the bottom shell (1). A top plate (3) is fixedly installed at the top ends of the two side plates (2). A glue head (4) is fixedly sleeved in the middle of the top plate (3), and it is characterized in that: The rubber head (4) is connected to an external glue supply mechanism. A support plate (5) is fixedly installed in the middle of the bottom surface of the inner cavity of the side plate (2). On the upper surface of the support plate (5), fixing blocks (6) are symmetrically fixed on the left and right sides. A support groove (601) is formed in the middle of the fixing block (6). An air drying mechanism (7) is arranged in the middle of the upper surface of the support plate (5). On the upper part of the inner side surfaces of the two fixing blocks (6), a mounting plate (8) is fixedly installed. An air outlet (801) is formed in the middle of the mounting plate (8). On the upper surface of the mounting plate (8), convex grooves (802) are symmetrically formed on the left and right sides. A limiting plate (9) is fixedly installed in the middle of the upper surface of the mounting plate (8). Conveying mechanisms (10) are symmetrically arranged on the front and rear sides of the convex groove (802). A driving mechanism (11) is arranged between the two conveying mechanisms (10). On the far sides of the two fixing blocks (6), telescopic rods (12) are fixedly installed. Cleaning mechanisms (13) are symmetrically arranged on the front and rear sides of the telescopic ends of the two telescopic rods (12). A brush mechanism (14) is arranged at the bottom of the cleaning mechanism (13). Among them, the front cleaning mechanism (13) includes two connecting blocks (1301). The two connecting blocks (1301) are respectively fixedly connected to the telescopic ends on the front sides of the two telescopic rods (12). On the inner sides of the two connecting blocks (1301), middle plates (1302) are fixedly installed. On the sides of the two middle plates (1302) close to the fixing block (6), support blocks (1303) are fixedly installed. The support blocks (1303) are slidably sleeved with the support groove (601). On the upper parts of the outer side surfaces of the two middle plates (1302), second driving parts (1304) are fixedly installed. On the upper and lower parts between the two second driving parts (1304), belt shafts (1305) are movably sleeved. The upper belt shaft (1305) is fixedly connected to the output end of the second driving part (1304). On both sides of the two belt shafts (1305), second belt wheels (1306) are fixedly installed. The curved surfaces of multiple second belt wheels (1306) are sleeved with a hole belt (1307). Multiple rectangular grooves are equidistantly formed on the curved surface of the hole belt (1307). On the inner side surface of the hole belt (1307), multiple inner plates (1308) are equidistantly fixedly installed. On the upper parts of the two middle plates (1302), a baffle (1309) is fixedly installed. The baffle (1309) is in sliding contact with the inner plate (1308).
2. The glue coating device of a medical device assembly equipment according to claim 1, characterized in that: The air drying mechanism (7) includes an air shell (701). The air shell (701) is fixedly installed in the middle of the upper surface of the support plate (5). The air shell (701) is fixedly connected to the inner side surfaces of the two fixing blocks (6). On the front and rear sides of the air shell (701), multiple air blowers (702) are equidistantly fixedly sleeved.
3. The glue coating device of a medical device assembly equipment according to claim 2, wherein: The front conveyor mechanism (10) includes two sliders (1001), and the two sliders (1001) are respectively slidably sleeved on the front parts of the left and right convex grooves (802). One side of the slider (1001) close to the limit plate (9) is fixedly installed with an elastic member (1002), and one end of the elastic member (1002) is fixedly connected to the limit plate (9). The upper surfaces of the two sliders (1001) are fixedly installed with a mounting shell (1003). One side of the mounting shell (1003) away from the limit plate (9) is fixedly installed with a pressing plate (1004). A plurality of equally spaced first belt sleeves (1005) are movably sleeved on the side of the inner cavity of the mounting shell (1003) away from the limit plate (9), and a first belt (1006) is sleeved on the outer curved surfaces of the plurality of first belt sleeves (1005).
4. The glue application device of a medical device assembly equipment according to claim 3, characterized in that: The driving mechanism (11) includes two first driving members (1101), and the two first driving members (1101) are respectively fixedly sleeved on the upper parts of the two fixing blocks (6). The output ends of the two first driving members (1101) are fixedly installed with driving shafts (1102). A plurality of equally spaced worm wheels (1103) are fixedly sleeved on the curved surfaces of the driving shafts (1102). A plurality of sliding shafts (1105) are equally spaced and fixedly sleeved in the middle of the limit plate (9). The sliding shafts (1105) are slidably sleeved with the two first belt sleeves (1005) on the same side. A worm sleeve (1104) is fixedly sleeved in the middle of the sliding shaft (1105), and the worm wheel (1103) meshes with the worm sleeve (1104).
5. The glue application device of a medical device assembly equipment according to claim 4, characterized in that: The brush mechanism (14) includes two movable seats (1401), and the two movable seats (1401) are respectively fixedly installed at the bottoms of the two middle plates (1302) on the side away from the fixing block (6). A washing wheel (1402) is movably sleeved in the middle of the two movable seats (1401). Third driven pulleys (1403) are fixedly installed at both ends of the washing wheel (1402). Third main pulleys (1405) are fixedly installed at both ends of the lower belt shaft (1305). A third belt (1404) is sleeved between the third driven pulley (1403) and the third main pulley (1405), and flexible brushes are equally spaced on the curved surface circumference of the third belt (1404).
6. The gluing device of a medical device assembly equipment according to claim 5, characterized in that: The front blower (702) and the rear blower (702) rotate in opposite directions. The contact surface between the slider (1001) and the convex groove (802) is a smooth surface. The height of the upper surface of the slider (1001) is greater than the height of the upper surface of the mounting plate (8). Both the inner curved surface and the outer side surface of the first belt (1006) have a layer of rough coating.
7. The glue - applying device of a medical device assembling equipment according to claim 6, characterized in that: The driving shaft (1102) is made of high-strength material. The curved surface of the second pulley (1306) is provided with a rubber coating. The outer surface of the hole belt (1307) is coated with a wear-resistant smooth coating.
Citation Information
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