Feeding transfer structure of display touch module and using method of feeding transfer structure
By designing the feeding transfer structure of the touch module, using the strata frame, conveying block and transmission components, the lag problems caused by dump storage and path changes in large modules are solved, and stable transmission and efficient transfer of the module are achieved.
Patent Information
- Application Number
- CN202510592833.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-09
- Publication Date
- 2025-06-06
- Estimated Expiration
- 2045-05-09
AI Technical Summary
When the modules are large, it is necessary to transfer and store the transfer to ensure the smooth progress of the next process and avoid accumulation; if the transfer path needs to be changed during the module transmission process, the module is prone to lag, which requires manual intervention to reduce the transfer efficiency.
A feeding transfer structure for displaying touch modules is designed, including a stent, a conveying block, a transmission assembly and an adjustment mechanism. By adjusting the coordination between the electric telescopic rod and the transmission assembly, stable transmission and direction adjustment of the conveyor block are achieved, ensuring the smoothness and safety of the module during the relay process.
It effectively solves the possible lag and accumulation problems during module transfer, improves the efficiency and automation of the transfer, and ensures the stability and safety of the module during the transmission process.
Smart Images

Figure CN120097068A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of material transfer equipment, and in particular to a material transfer structure of a display touch module and a use method thereof. Background Art
[0002] The loading and transfer structure of the display touch module is mainly composed of a transfer platform, a conveying device, a positioning mechanism, a buffer component and a control system. The transfer platform is the basic part of the entire structure and is used to carry and temporarily store the display touch module; the conveying device is responsible for moving the module from one position to the transfer platform or from the transfer platform to the next processing station; the positioning mechanism ensures the accurate position of the module on the transfer platform, providing precise positioning for subsequent processing; the buffer component can effectively reduce the vibration and collision of the module during the conveying and placement process; the control system coordinates the operation of each part to realize an automated loading and transfer process.
[0003] When the number of modules is large, they need to be transferred and stored to ensure the smooth progress of the next process and avoid accumulation. If the transfer needs to change the transmission path during the module transmission process, the module is prone to jamming during the path change process and requires manual intervention, which reduces the efficiency of the transfer. Summary of the invention
[0004] The purpose of the present invention is to provide a loading transfer structure for a display touch module and a method of using the same, so as to solve the problem that when the number of modules is large, transfer storage is required to ensure the smooth progress of the next process and avoid accumulation. If the transfer needs to change the transmission path during the module transmission process, the module is prone to jamming during the path change process and manual intervention is required, thereby reducing the efficiency of the transfer.
[0005] In order to solve the above technical problems, the present invention is achieved through the following technical solutions: The present invention is a feeding transfer structure for a display touch module, comprising a shaped frame, wherein the shaped frame is provided with two first mounting grooves, two second mounting grooves and two strip grooves, wherein the two strip grooves are respectively connected to the two second mounting grooves, and further comprising: A transfer mechanism, the transfer mechanism comprising two conveying blocks, a transmission assembly, the transmission assembly is used to drive the conveying blocks to move, and a loading assembly, the loading assembly is used to drive the conveying blocks to store; The feeding component includes U-shaped inclined plates respectively and fixedly installed on the left side and the right side of the U-shaped frame. On the mutually remote sides of the two U-shaped inclined plates, storage inclined rails are respectively and fixedly installed. One ends of the two storage inclined rails close to each other are fixedly connected to the U-shaped frame. A rotating shaft one and a rotating shaft two are rotatably installed in the U-shaped frame. A driving motor is fixedly installed on the left side of the U-shaped frame. The left end of the rotating shaft two extends outside the U-shaped frame and is fixedly connected to the output shaft of the driving motor; The transmission component includes pulley wheels respectively sleeved on the rotating shaft one and the rotating shaft two. A conveyor belt is sleeved on the two pulley wheels. A plurality of strip-shaped blocks are fixedly installed on the outer wall of the conveyor belt. The two conveying blocks are both arranged on the conveyor belt.
[0006] Further, conveying mechanisms are respectively arranged on the two conveying blocks. The conveying mechanism includes a module arranged on the conveying block. A back surface of the conveying block is provided with an L-shaped groove. An installation block is fixedly installed on the front surface of the conveying block. The installation block is adapted to the L-shaped groove.
[0007] Further, two sliding components are arranged on the installation block. The sliding component includes an installation groove opened on the installation block. An L-shaped installation plate is arranged in the installation groove. The top of the L-shaped installation plate is in contact with the top inner wall of the installation groove. A rotating wheel is rotatably installed on the L-shaped installation plate. An adaptation spring is fixedly installed on the left side of the L-shaped installation plate. The left end of the adaptation spring is fixedly connected to the left inner wall of the installation groove.
[0008] Further, a strip-shaped limiting block is fixedly installed at the bottom of the L-shaped installation plate. A strip-shaped limiting groove is quickly arranged on the bottom inner wall of the installation groove. The bottom of the strip-shaped limiting block extends into the strip-shaped limiting groove and is slidably connected to the strip-shaped limiting groove.
[0009] Further, two adjusting mechanisms are arranged on the top of the U-shaped frame. The adjusting mechanism includes an adjusting electric telescopic rod fixedly installed on the top of the U-shaped frame. An output end of the adjusting electric telescopic rod is fixedly installed with an L-shaped toothed plate. A rotating rod is rotatably installed in the first installation groove. The top end of the rotating rod extends outside the U-shaped frame. A gear is fixedly sleeved on the rotating rod. The gear is meshed with the L-shaped toothed plate. A hollow adjusting plate is fixedly sleeved on the rotating rod.
[0010] Further, the adjusting mechanism further includes a support rod one hingedly installed in the first installation groove. A support rod two is hingedly installed at the end of the support rod one. A T-shaped limiting plate is hingedly installed at the left end of the support rod two. The end of the T-shaped limiting plate slidably extends outside the hollow adjusting plate and is in contact with the back inner wall of the first installation groove. An adjusting spring is fixedly installed on the T-shaped limiting plate. The end of the adjusting spring is fixedly connected to the back inner wall of the hollow adjusting plate. An inclined groove is opened on the T-shaped limiting plate.
[0011] Further, closing electric telescopic rods are fixedly installed on the back surfaces of the two strip-shaped grooves respectively, closing strip-shaped blocks are fixedly installed on the output ends of the two closing electric telescopic rods respectively, and the fronts of the two closing strip-shaped blocks extend into the two second installation grooves respectively.
[0012] Further, the method for the feeding and transfer structure of a display touch module is as follows: S1: Rapid transfer of the module: Start the corresponding adjusting electric telescopic rod. The adjusting electric telescopic rod drives the L-shaped toothed plate to move away from the driving motor. The L-shaped toothed plate drives the gear to rotate, the gear drives the rotating rod to rotate, and the rotating rod drives the corresponding hollow adjusting plate to rotate into the C-shaped frame. When the adjusting electric telescopic rod stops running, the top of the hollow adjusting plate will contact the inner wall of the C-shaped frame. At this time, the T-shaped limiting plate in the hollow adjusting plate will also pop out. During the movement of the conveying block, the rotating wheel will contact the corresponding hollow adjusting plate. Under the guiding action of the hollow adjusting plate and the rotating wheel, the conveying block will change direction and break away from the conveyor belt and move onto the C-shaped inclined plate. During the continuous movement of the strip-shaped block, the direction of the conveying block will be corrected, and the conveying block will be completely turned towards the C-shaped inclined plate. Since the C-shaped inclined plate is connected to the storage inclined rail at an obtuse angle, when the subsequent conveying block passes through the hollow adjusting plate, it will push against the previous conveying block, and at this time, the previous conveying block will enter the storage inclined rail. S2: Reduce transfer friction: Since the distance between the two rotating wheels is greater than the diameter of the conveying block, the rotating wheel will first contact the inner wall of the C-shaped frame. When the rotating wheel contacts the inner wall of the C-shaped frame, it will rotate, and there will be no problem that the conveying block contacts the inner wall of the C-shaped frame and topples over due to friction, resulting in the module falling. During the transfer of the conveying block, due to the change in direction, the rotating wheel will move appropriately according to the width of the C-shaped inclined plate. When the rotating wheel contacts the inner wall of the track, it will slide into the installation groove. At this time, the adaptive spring will undergo compressive deformation, thereby improving the flexibility of the rotating wheel and avoiding the phenomenon of jamming. The rotating wheel can effectively ensure the stable transportation of the conveying block and improve the smoothness during transfer. S3: Embedded storage: The installation block on the subsequent conveying block will enter the L-shaped groove on the previous conveying block. At this time, the rotating wheel will also slide in the installation groove, so as to ensure that the installation block enters the L-shaped groove. Such an inlaid stacking method can reduce the use of space and facilitate the storage of more modules. When stacking modules, it is the mutual contact between the conveying blocks, and there is no module contact, which can reduce the damage rate of the modules and improve the safety of the modules during transfer. S4: Transfer storage completed: When the storage inclined rail is full, start the adjusting electric telescopic rod again. The adjusting electric telescopic rod drives the L-shaped tooth plate to return. At this time, the T-shaped limit plate will enter the first installation groove again under the action of the inclined groove. The T-shaped limit plate drives the second support rod to move away from the driving motor. The second support rod drives the first support rod to move synchronously. At this time, a triangle will be formed at the connection of the second support rod and the first support rod. The triangle abuts against the back of the conveying block and sends the conveying block in the U-shaped inclined plate into the storage inclined rail, ensuring that no conveying block remains in the U-shaped inclined plate during feeding.
[0013] The present invention has the following beneficial effects: (1) For the feeding and transfer structure of the display touch module of the present invention, start the driving motor. The driving motor drives the second rotating shaft to rotate. The second rotating shaft drives the first rotating shaft to rotate simultaneously under the action of the pulley and the conveyor belt. The rotation of the conveyor belt drives several strip-shaped blocks to rotate synchronously. Place the module on the conveying block, and then place the conveying block on the conveyor belt. The conveyor belt will drive the conveying block to stably transport under its friction force and the action of the strip-shaped blocks. When it is necessary to transfer the module, start the corresponding adjusting electric telescopic rod. The adjusting electric telescopic rod drives the L-shaped tooth plate to move away from the driving motor. The L-shaped tooth plate drives the gear to rotate. The gear drives the rotating rod to rotate. The rotating rod drives the corresponding hollow adjusting plate to rotate into the U-shaped frame. When the adjusting electric telescopic rod stops running, the top of the hollow adjusting plate will contact the inner wall of the U-shaped frame. At this time, the T-shaped limit plate in the hollow adjusting plate will also pop out. The rotating wheel will contact the corresponding hollow adjusting plate during the movement of the conveying block. Under the guiding action of the hollow adjusting plate and the rotating wheel, the conveying block will change direction and脱离 the conveyor belt and move to the U-shaped inclined plate. During the continuous movement of the strip-shaped blocks, the direction of the conveying block will be corrected and the conveying block will be completely turned to the U-shaped inclined plate. Since the U-shaped inclined plate is connected to the storage inclined rail at an obtuse angle, when the subsequent conveying block passes through the hollow adjusting plate, it will abut against the previous conveying block. At this time, the previous conveying block will enter the storage inclined rail. By analogy, the conveying blocks can be efficiently stored, thus alleviating the problem that a large number of parts cannot be processed in time; (2) In the loading and transfer structure of a display touch module according to the present invention, during the movement of the conveying block on the conveyor belt, due to inaccurate placement positions, the conveying block may deviate from the center of the conveyor belt during transmission, which may cause the conveying block to contact the inner wall of the U-shaped frame during transmission. Since the distance between the two rotating wheels is greater than the diameter of the conveying block, the rotating wheels will first contact the inner wall of the U-shaped frame. When the rotating wheels contact the inner wall of the U-shaped frame, they will rotate, and there will be no problem that the conveying block contacts the inner wall of the U-shaped frame and overturns due to friction, resulting in the dropping of the module. During the transfer of the conveying block, due to the change in direction, the rotating wheels will move appropriately according to the width of the U-shaped inclined plate. When the rotating wheels contact the inner wall of the track, they will slide into the installation groove. At this time, the adaptation spring will undergo compressive deformation, thereby improving the flexibility of the rotating wheels and avoiding the phenomenon of jamming. The rotating wheels can effectively ensure the stable transportation of the conveying block and improve the smoothness during transfer; (3) In the loading and transfer structure of a display touch module according to the present invention, when several conveying blocks enter the storage inclined rail, they will accumulate together under the action of inertia. The mounting blocks on the subsequent conveying blocks will enter the L-shaped grooves on the front conveying blocks. At this time, the rotating wheels will also slide in the installation grooves, thereby ensuring that the mounting blocks enter the L-shaped grooves. Such an inlaid stacking method can reduce the use of space and facilitate the storage of more modules. When stacking the modules, only the conveying blocks contact each other, and there is no module contact, which can reduce the damage rate of the modules and improve the safety during transfer; (4) In the loading and transfer structure of a display touch module according to the present invention, when the storage inclined rail is full, the adjusting electric telescopic rod is started again. The adjusting electric telescopic rod drives the L-shaped toothed plate to return. At this time, the T-shaped limiting plate will enter the first installation groove again under the action of the inclined groove. The T-shaped limiting plate drives the second support rod to move away from the driving motor. The second support rod drives the first support rod to move synchronously. At this time, a triangular shape will be generated at the connection between the second support rod and the first support rod. The triangular shape abuts against the back of the conveying block and sends the conveying block in the U-shaped inclined plate into the storage inclined rail, ensuring that no conveying block remains in the U-shaped inclined plate during discharging. When discharging, the closing electric telescopic rod is started. The closing electric telescopic rod drives the closing strip to move towards the inside of the strip groove. At this time, the frontmost conveying block in the storage inclined rail will leave the storage inclined rail and roll onto the conveyor belt under the inertia of the slope, improving the automation and production efficiency of the device.
[0014] Of course, it is not necessary for any product implementing the present invention to achieve all the above-mentioned advantages simultaneously. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] To more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.
[0016] Figure 1 Schematic diagram of the overall structure of the present invention; Figure 2 Schematic diagram of the side partial cross-sectional structure of the present invention; Figure 3 Schematic diagram of the partial cross-sectional structure of the conveying block of the present invention; Figure 4 Schematic diagram of the partial structure of the adjusting mechanism in the present invention; Figure 5 For the present invention Figure 4 Enlarged schematic diagram of A in the present invention; Figure 6 For the present invention Figure 4 Enlarged schematic diagram of B in the present invention; Figure 7 For the present invention Figure 1 Enlarged schematic diagram of C in the present invention; Figure 8 Schematic diagram of the method steps of the present invention.
[0017] In the drawings, the components represented by the respective reference numerals are as follows: In the figure: 1, U-shaped frame; 2, first installation groove; 3, second installation groove; 4, strip-shaped groove; 5, transfer mechanism; 501, U-shaped inclined plate; 502, storage inclined rail; 503, rotating shaft one; 504, rotating shaft two; 505, driving motor; 506, pulley; 507, conveyor belt; 508, strip-shaped block; 5011, conveying block; 6, conveying mechanism; 602, module; 603, L-shaped groove; 604, mounting block; 605, installation groove; 606, L-shaped mounting plate; 607, runner; 608, adapting spring; 609, strip-shaped limiting groove; 610, strip-shaped limiting block; 7, adjusting mechanism; 701, adjusting electric telescopic rod; 702, L-shaped toothed plate; 703, rotating rod; 704, gear; 705, hollow adjusting plate; 706, support rod one; 707, support rod two; 708, T-shaped limiting plate; 709, adjusting spring; 710, inclined groove; 711, closing electric telescopic rod; 712, closing strip-shaped block. Detailed implementation manners
[0018] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0019] See also Figure 1 - Figure 8 As shown, the present invention is a feeding transfer structure for a display touch module, comprising a molded frame 1, on which two first mounting grooves 2, two second mounting grooves 3 and two strip grooves 4 are provided, and the two strip grooves 4 are respectively connected to the two second mounting grooves 3, and further comprising: The transfer mechanism 5 includes two conveying blocks 5011, a transmission assembly, the transmission assembly is used to drive the conveying blocks 5011 to move, and a loading assembly, the loading assembly is used to drive the conveying blocks 5011 to store; The feeding assembly includes a tumbled plate 501 fixedly mounted on the left and right sides of the tumbled frame 1, respectively; a storage ramp 502 is fixedly mounted on the sides of the two tumbled plates 501 that are away from each other, respectively; the ends of the two storage ramps 502 that are close to each other are fixedly connected to the tumbled frame 1; a rotating shaft 1 503 and a rotating shaft 2 504 are rotatably mounted in the tumbled frame 1; a driving motor 505 is fixedly mounted on the left side of the tumbled frame 1; the left end of the rotating shaft 2 504 extends to the outside of the tumbled frame 1 and is fixedly connected to the output shaft of the driving motor 505; The transmission assembly includes pulleys 506 respectively mounted on the rotating shaft 1 503 and the rotating shaft 2 504 . A conveyor belt 507 is mounted on the two pulleys 506 . A plurality of strip blocks 508 are fixedly mounted on the outer wall of the conveyor belt 507 . Two conveyor blocks 5011 are both arranged on the conveyor belt 507 .
[0020] like Figure 3 As shown, a conveying mechanism 6 is respectively provided on the two conveying blocks 5011, and the conveying mechanism 6 includes a module 602 arranged on the conveying block 5011. The conveying block 5011 has an L-shaped groove 603 opened on the back, and a mounting block 604 is fixedly installed on the front of the conveying block 5011, and the mounting block 604 is adapted to the L-shaped groove 603.
[0021] The module 602 is placed on the conveying block 5011 , and then the conveying block 5011 is placed on the conveying belt 507 . The conveying belt 507 will drive the conveying block 5011 to be transported stably under the action of its friction force and the bar block 508 .
[0022] like Figure 3As shown, there are two sliding components provided on the mounting block 604. The sliding component includes a mounting groove 605 formed in the mounting block 604. An L-shaped mounting plate 606 is arranged in the mounting groove 605. The top of the L-shaped mounting plate 606 is in contact with the top inner wall of the mounting groove 605. A runner 607 is rotatably mounted on the L-shaped mounting plate 606. An adaptation spring 608 is fixedly mounted on the left side of the L-shaped mounting plate 606. The left end of the adaptation spring 608 is fixedly connected to the left inner wall of the mounting groove 605.
[0023] When the runner 607 contacts the inner wall of the C-shaped frame 1, it will rotate, and there will be no problem that the conveying block 5011 contacts the inner wall of the C-shaped frame 1 and topples over due to friction, resulting in the dropping of the module 602. When the conveying block 5011 turns, due to the change in direction, the runner 607 will move appropriately according to the width of the C-shaped inclined plate 501. When the runner 607 contacts the inner wall of the track, it will slide into the mounting groove 605. At this time, the adaptation spring 608 undergoes a compressive deformation, thereby improving the flexibility of the runner 607 and avoiding the phenomenon of jamming. The runner 607 can effectively ensure the stable transportation of the conveying block 5011 and improve the smoothness during the transfer.
[0024] As Figure 3 shown, a strip-shaped limiting block 610 is fixedly mounted at the bottom of the L-shaped mounting plate 606. A strip-shaped limiting groove 609 is formed on the bottom inner wall of the mounting groove 605. The bottom of the strip-shaped limiting block 610 extends into the strip-shaped limiting groove 609 and is slidably connected to the strip-shaped limiting groove 609.
[0025] When the runner 607 slides into the mounting groove 605, under the limiting action of the L-shaped mounting plate 606 and the strip-shaped limiting block 610, the stable sliding of the runner 607 is ensured.
[0026] As Figure 4 and Figure 5 shown, two adjusting mechanisms 7 are provided on the top of the C-shaped frame 1. The adjusting mechanism 7 includes an adjusting electric telescopic rod 701 fixedly mounted on the top of the C-shaped frame 1. The output end of the adjusting electric telescopic rod 701 is fixedly mounted with an L-shaped toothed plate 702. A rotating rod 703 is rotatably mounted in the first mounting groove 2. The top end of the rotating rod 703 extends outside the C-shaped frame 1. A gear 704 is fixedly sleeved on the rotating rod 703. The gear 704 meshes with the L-shaped toothed plate 702. A hollow adjusting plate 705 is fixedly sleeved on the rotating rod 703.
[0027] The adjusting electric telescopic rod 701 drives the L-shaped toothed plate 702 to move away from the driving motor 505. The L-shaped toothed plate 702 drives the gear 704 to rotate. The gear 704 drives the rotating rod 703 to rotate. The rotating rod 703 will drive the corresponding hollow adjusting plate 705 to rotate into the C-shaped frame 1. When the adjusting electric telescopic rod 701 stops operating, the top end of the hollow adjusting plate 705 will contact the inner wall of the C-shaped frame 1.
[0028] As Figure 5 and Figure 6 shown, the adjusting mechanism 7 further includes a first support rod 706 hingedly installed in the first installation groove 2. The end of the first support rod 706 is hingedly installed with a second support rod 707. The left end of the second support rod 707 is hingedly installed with a T-shaped limit plate 708. The end of the T-shaped limit plate 708 slides and extends outside the hollow adjusting plate 705 and contacts the inner wall of the back surface of the first installation groove 2. An adjusting spring 709 is fixedly installed on the T-shaped limit plate 708. The end of the adjusting spring 709 is fixedly connected to the inner wall of the back surface of the hollow adjusting plate 705. An inclined groove 710 is formed on the T-shaped limit plate 708.
[0029] Start the adjusting electric telescopic rod 701 again. The adjusting electric telescopic rod 701 drives the L-shaped toothed plate 702 to return. At this time, the T-shaped limit plate 708 will enter the first installation groove 2 again under the action of the inclined groove 710. The T-shaped limit plate 708 drives the second support rod 707 to move away from the driving motor 505. The second support rod 707 drives the first support rod 706 to move synchronously. At this time, a triangular shape will be generated at the connection of the second support rod 707 and the first support rod 706. The triangular shape abuts against the back surface of the conveying block 5011 and sends the conveying block 5011 in the C-shaped inclined plate 501 into the storage inclined rail 502, ensuring that no conveying block 5011 remains in the C-shaped inclined plate 501 during discharging.
[0030] As Figure 7 shown, closing electric telescopic rods 711 are respectively fixedly installed on the back surfaces of the two strip-shaped grooves 4. The output ends of the two closing electric telescopic rods 711 are respectively fixedly installed with closing strip-shaped blocks 712. The fronts of the two closing strip-shaped blocks 712 respectively extend into the two second installation grooves 3.
[0031] Start the closing electric telescopic rod 711 during discharging. The closing electric telescopic rod 711 drives the closing strip-shaped block 712 to move closer to the inside of the strip-shaped groove 4. At this time, the frontmost conveying block 5011 in the storage inclined rail 502 will leave the storage inclined rail 502 and roll onto the conveyor belt 507 under the inertia of the slope, improving the automation and production efficiency of the device.
[0032] As Figure 1 - Figure 8 shown, a method for the feeding and transfer structure of a display touch module is as follows: S1: Quick transfer of the module 602: Start the corresponding adjustable electric telescopic rod 701. The adjustable electric telescopic rod 701 drives the L-shaped tooth plate 702 to move away from the drive motor 505. The L-shaped tooth plate 702 drives the gear 704 to rotate. The gear 704 drives the rotating rod 703 to rotate. The rotating rod 703 drives the corresponding hollow adjustment plate 705 to rotate into the C-shaped frame 1. When the adjustable electric telescopic rod 701 stops operating, the top of the hollow adjustment plate 705 will contact the inner wall of the C-shaped frame 1. At this time, the T-shaped limit plate 708 in the hollow adjustment plate 705 will also pop out. During the movement of the conveying block 5011, the runner 607 will contact the corresponding hollow adjustment plate 705. Under the guiding action of the hollow adjustment plate 705 and the runner 607, the conveying block 5011 will change direction and break away from the conveyor belt 507 and move onto the C-shaped inclined plate 501. During the continuous movement of the strip-shaped block 508, the direction of the conveying block 5011 will be corrected, and the conveying block 5011 will be completely turned towards the C-shaped inclined plate 501. Since the C-shaped inclined plate 501 is connected to the storage inclined rail 502 at an obtuse angle, when the subsequent conveying block 5011 passes through the hollow adjustment plate 705, it will push against the previous conveying block 5011. At this time, the previous conveying block 5011 will enter the storage inclined rail 502; S2: Reduce transfer friction: Since the distance between the two runners 607 is greater than the diameter of the conveying block 5011, the runner 607 will first contact the inner wall of the C-shaped frame 1. When the runner 607 contacts the inner wall of the C-shaped frame 1, it will rotate, and there will be no problem that the conveying block 5011 contacts the inner wall of the C-shaped frame 1 and overturns due to friction, resulting in the dropping of the module 602. During the transfer of the conveying block 5011, due to the change in direction, the runner 607 will move appropriately according to the width of the C-shaped inclined plate 501. When the runner 607 contacts the inner wall of the track, it will slide into the installation groove 605. At this time, the adaptation spring 608 will undergo compressive deformation, thereby improving the flexibility of the runner 607 and avoiding jamming. The runner 607 can effectively ensure the stable transportation of the conveying block 5011 and improve the smoothness during transfer; S3: Embedded storage: The mounting block 604 on the subsequent conveying block 5011 will enter the L-shaped groove 603 on the previous conveying block 5011. At this time, the runner 607 will also slide in the installation groove 605, so as to ensure that the mounting block 604 enters the L-shaped groove 603. Such an inlaid stacking method can reduce the use of space and facilitate the storage of more modules 602. When stacking the modules 602, it is the mutual contact between the conveying blocks 5011, and there is no contact between the modules 602. This can reduce the damage rate of the modules 602 and improve the safety of the modules 602 during transfer; S4: Transfer storage completed: When the storage inclined rail 502 is fully stacked, the adjustment electric telescopic rod 701 is started again. The adjustment electric telescopic rod 701 drives the L-shaped tooth plate 702 to return. At this time, the T-shaped limit plate 708 will enter the first installation groove 2 again under the action of the inclined groove 710. The T-shaped limit plate 708 drives the second support rod 707 to move away from the drive motor 505. The second support rod 707 drives the first support rod 706 to move synchronously. At this time, a triangular shape will be formed at the connection of the second support rod 707 and the first support rod 706. The triangular shape abuts against the back of the conveying block 5011 and sends the conveying block 5011 in the U-shaped inclined plate 501 into the storage inclined rail 502, ensuring that there will be no conveying block 5011 left in the U-shaped inclined plate 501 during feeding.
[0033] The preferred embodiments of the present invention disclosed above are only used to help illustrate the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to the specific embodiments described. Obviously, according to the content of this specification, many modifications and changes can be made. These embodiments are selected and specifically described in this specification to better explain the principle and practical application of the present invention, so that those skilled in the art can understand and utilize the present invention well. The present invention is only limited by the claims and their full scope and equivalents.
Claims
1. A feeding transfer structure for a display touch module, comprising a shaped frame (1), wherein the shaped frame (1) is provided with two first mounting grooves (2), two second mounting grooves (3) and two strip grooves (4), wherein the two strip grooves (4) are respectively connected to the two second mounting grooves (3), and characterized in that: Also includes: A transfer mechanism (5), the transfer mechanism (5) comprising two conveying blocks (5011), a transmission assembly, the transmission assembly being used to drive the conveying blocks (5011) to move, and a loading assembly, the loading assembly being used to drive the conveying blocks (5011) to store; The loading assembly comprises a shaped inclined plate (501) respectively fixedly mounted on the left and right sides of the shaped frame (1); a storage inclined rail (502) is respectively fixedly mounted on the sides of the two shaped inclined plates (501) away from each other; the ends of the two storage inclined rails (502) close to each other are both fixedly connected to the shaped frame (1); a rotating shaft 1 (503) and a rotating shaft 2 (504) are rotatably mounted inside the shaped frame (1); a driving motor (505) is fixedly mounted on the left side of the shaped frame (1); the left end of the rotating shaft 2 (504) extends outside the shaped frame (1) and is fixedly connected to the output shaft of the driving motor (505); The transmission assembly comprises pulleys (506) respectively sleeved on the first rotating shaft (503) and the second rotating shaft (504); a conveyor belt (507) is sleeved on the two pulleys (506); a plurality of strip blocks (508) are fixedly mounted on the outer wall of the conveyor belt (507); and the two conveyor blocks (5011) are both arranged on the conveyor belt (507).
2. The feeding transfer structure of the display touch module according to claim 1, characterized in that: A conveying mechanism (6) is respectively arranged on the two conveying blocks (5011), and the conveying mechanism (6) comprises a module (602) arranged on the conveying block (5011); an L-shaped groove (603) is opened on the back of the conveying block (5011); a mounting block (604) is fixedly mounted on the front of the conveying block (5011); and the mounting block (604) is adapted to fit the L-shaped groove (603).
3. The feeding transfer structure of the display touch module according to claim 2, characterized in that: Two sliding components are arranged on the mounting block (604), and the sliding components include a mounting groove (605) opened on the mounting block (604), an L-shaped mounting plate (606) is arranged in the mounting groove (605), the top of the L-shaped mounting plate (606) is in contact with the top inner wall of the mounting groove (605), a rotating wheel (607) is rotatably mounted on the L-shaped mounting plate (606), an adaptable spring (608) is fixedly mounted on the left side of the L-shaped mounting plate (606), and the left end of the adaptable spring (608) is fixedly connected to the left inner wall of the mounting groove (605).
4. The feeding transfer structure of the display touch module according to claim 3, characterized in that: A strip-shaped limiting block (610) is fixedly mounted on the bottom of the L-shaped mounting plate (606), a quick strip-shaped limiting groove (609) is formed on the inner wall of the bottom of the mounting groove (605), and the bottom of the strip-shaped limiting block (610) extends into the strip-shaped limiting groove (609) and is slidably connected to the strip-shaped limiting groove (609).
5. The feeding transfer structure of the display touch module according to claim 4, characterized in that: Two adjusting mechanisms (7) are arranged at the top of the U-shaped frame (1). The adjusting mechanism (7) includes an adjusting electric telescopic rod (701) fixedly installed at the top of the U-shaped frame (1). The output end of the adjusting electric telescopic rod (701) is fixedly installed with an L-shaped toothed plate (702). A rotating rod (703) is rotatably installed in the first installation groove (2). The top end of the rotating rod (703) extends outside the U-shaped frame (1). A gear (704) is fixedly sleeved on the rotating rod (703). The gear (704) meshes with the L-shaped toothed plate (702). A hollow adjusting plate (705) is fixedly sleeved on the rotating rod (703).
6. The feeding transfer structure of the display touch module according to claim 5, characterized in that: The adjusting mechanism (7) further includes a first support rod (706) hinged and installed in the first installation groove (2). The end of the first support rod (706) is hinged and installed with a second support rod (707). The left end of the second support rod (707) is hinged and installed with a T-shaped limiting plate (708). The end of the T-shaped limiting plate (708) slides and extends outside the hollow adjusting plate (705) and contacts the inner wall of the back surface of the first installation groove (2). An adjusting spring (709) is fixedly installed on the T-shaped limiting plate (708). The end of the adjusting spring (709) is fixedly connected to the inner wall of the back surface of the hollow adjusting plate (705). An inclined groove (710) is formed on the T-shaped limiting plate (708).
7. The feeding transfer structure of the display touch module according to claim 6, characterized in that: Closing electric telescopic rods (711) are respectively fixedly installed on the back surfaces of the two strip-shaped grooves (4). The output ends of the two closing electric telescopic rods (711) are respectively fixedly installed with closing strip-shaped blocks (712). The fronts of the two closing strip-shaped blocks (712) respectively extend into the two second installation grooves (3).
8. A method for using a material transfer structure for a display touch module, using the material transfer structure for a display touch module as claimed in claim 7, characterized in that: The method steps are as follows: S1: Quick transfer in the module (602): Activate the corresponding adjustable electric telescopic rod (701). The adjustable electric telescopic rod (701) drives the L-shaped toothed plate (702) to move away from the drive motor (505). The L-shaped toothed plate (702) drives the gear (704) to rotate. The gear (704) drives the rotating rod (703) to rotate. The rotating rod (703) drives the corresponding hollow adjusting plate (705) to rotate into the C-shaped frame (1). When the adjustable electric telescopic rod (701) stops running, the top of the hollow adjusting plate (705) will contact the inner wall of the C-shaped frame (1). At this time, the T-shaped limiting plate (708) inside the hollow adjusting plate (705) will also pop out. During the movement of the conveying block (5011), the runner (607) will contact the corresponding hollow adjusting plate (705). Under the guiding action of the hollow adjusting plate (705) and the runner (607), the conveying block (5011) will change direction and break away from the conveyor belt (507) and move onto the C-shaped inclined plate (501). During the continuous movement of the strip block (508), the direction of the conveying block (5011) will be corrected, and the conveying block (5011) will be completely turned towards the C-shaped inclined plate (501). Since the C-shaped inclined plate (501) is connected to the storage inclined rail (502) at an obtuse angle, when the subsequent conveying block (5011) passes through the hollow adjusting plate (705), it will hit the previous conveying block (5011). At this time, the previous conveying block (5011) will enter the storage inclined rail (502); S2: Reduce transfer friction: Since the distance between the two runners (607) is greater than the diameter of the conveying block (5011), the runner (607) will first contact the inner wall of the C-shaped frame (1). When the runner (607) contacts the inner wall of the C-shaped frame (1), it will rotate, and there will be no problem that the conveying block (5011) contacts the inner wall of the C-shaped frame (1) and overturns due to friction, resulting in the dropping of the module (602). During the transfer of the conveying block (5011), due to the change in direction, the runner (607) will move appropriately according to the width of the C-shaped inclined plate (501). When the runner (607) contacts the inner wall of the track, it will slide into the installation groove (605). At this time, the adaptive spring (608) will undergo compressive deformation, thereby improving the flexibility of the runner (607) and avoiding jamming. The runner (607) can effectively ensure the stable transportation of the conveying block (5011) and improve the smoothness during transfer; S3: Embedded storage: The mounting block (604) on the rear conveying block (5011) will enter the L-shaped groove (603) on the front conveying block (5011). At this time, the rotating wheel (607) will also slide in the mounting groove (605), so as to ensure that the mounting block (604) enters the L-shaped groove (603). Such an inlaid stacking can reduce the use of space and facilitate the storage of more modules (602). When stacking the modules (602), it is the mutual contact between the conveying blocks (5011), and there is no contact between the modules (602). This can reduce the damage rate of the modules (602) and improve the safety of the modules (602) during transfer; S4: Completion of transfer storage: When the storage inclined rail (502) is full of stacking, start the adjusting electric telescopic rod (701) again. The adjusting electric telescopic rod (701) drives the L-shaped toothed plate (702) to return. At this time, the T-shaped limit plate (708) will enter the first mounting groove (2) again under the action of the inclined groove (710). The T-shaped limit plate (708) drives the second support rod (707) to move away from the driving motor (505). The second support rod (707) drives the first support rod (706) to move synchronously. At this time, a triangular shape will be generated at the connection of the second support rod (707) and the first support rod (706). The triangular shape abuts against the back of the conveying block (5011) and sends the conveying block (5011) in the U-shaped inclined plate (501) into the storage inclined rail (502), ensuring that there will be no conveying block (5011) left in the U-shaped inclined plate (501) during discharging.
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