Dispensing and curing apparatus for chip production
Patent Information
- Application Number
- CN202521903193.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-04
- Publication Date
- 2026-08-21
- Estimated Expiration
- 2035-09-04
AI Technical Summary
目前的点胶固化装置在固化过程中,大多冷却方式为自然冷却,冷却时间较长,部分冷却设备采用水冷方式进行强制冷却,大大增加其生产的成本,导致其实用性并不高
该用于芯片生产的点胶固化装置,在自动化生产线有限的空间内,通过在任意相邻两个导向支架的端部之间设置交错分布的导向组件,能够将多个传动带串联成一条完整传动带,使芯片能够在生产线上停留更长的时间,从而使风机对芯片进行吹风降温的时间相应增加,为胶水的固化提供了更为充足的时间条件,不仅能提高胶水的固化质量和芯片的整体性能,且成本低廉,提高了实用性。
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Figure CN224657267U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of dispensing and curing equipment technology, specifically to a dispensing and curing device for chip production. Background Technology
[0002] With the rapid development of semiconductor technology, chips are becoming increasingly widely used and indispensable in modern electronic devices. From smartphones and tablets to computer servers, and even in high-end fields such as aerospace and medical equipment, chips, as core components, directly affect the operation of the entire electronic system in terms of performance, quality, and reliability. As chip manufacturing processes continue to advance towards higher precision and miniaturization, the structure and manufacturing processes of chips are becoming increasingly complex. In key processes such as chip packaging, assembly, and testing, dispensing and curing technology is widely used as an important process for bonding and fixing chips to substrates, encapsulating and protecting internal chip components, and coating heat dissipation and insulating materials.
[0003] The curing quality of adhesives used in chip manufacturing plays a decisive role in the chip's performance and long-term stability. Currently, most dispensing and curing devices rely on natural cooling during the curing process, resulting in long cooling times. Some devices use water cooling for forced cooling, significantly increasing production costs and limiting their practicality. Utility Model Content
[0004] In view of this, the purpose of this utility model is to provide a dispensing and curing device for chip production, so as to solve the technical problems mentioned in the background art.
[0005] This utility model is achieved through the following technical solution: A dispensing and curing apparatus for chip production includes a worktable, a connecting frame on the worktable, a movable plate connected to the connecting frame, and multiple fans mounted on the movable plate; multiple transmission components for conveying chips are arranged on the worktable, each transmission component including a guide bracket, a transmission belt, and two guide wheels, the two guide wheels being connected to both ends of the guide bracket via hinge seats, the transmission belt being sleeved on the guide bracket and rubbing against the two guide wheels, the guide bracket being connected to the worktable via a support member, the multiple guide brackets extending along the length of the worktable and arranged in parallel, a guide component being arranged between any two adjacent guide brackets, and the multiple guide components being staggered at the ends of any two adjacent guide brackets; It also includes a drive assembly, which is used to drive multiple drive belts to move simultaneously, with any two adjacent drive belts moving in opposite directions.
[0006] Furthermore, the hinged seat includes a first ear plate and a rotating rod. The first ear plate is fixedly connected to the end of the guide bracket, the rotating rod is rotatably fitted onto the first ear plate, the guide wheel is fixedly connected to the rotating rod, and any two adjacent rotating rods are connected by a set of steering pulleys. The drive assembly includes a fixed base, a first motor, a drive roller, a driven roller, and a transmission belt. The fixed base is installed on the top surface of the worktable and located on one side of one of the guide supports. The first motor is installed on one side of the fixed base. The output shaft of the first motor is connected to a first movable rod. The drive roller is fixedly installed on the first movable rod. The driven roller is installed on one of the rotating rods. The drive roller and the driven roller are connected by a transmission belt.
[0007] Furthermore, the guide assembly includes a guide seat, a guide disc, and a second motor. The guide seat is installed between two guide brackets. The top surface of the guide seat has a groove. The second motor is installed at the bottom of the guide seat. The output shaft of the second motor is connected to a second movable rod. The end of the second movable rod away from the second motor extends upward and passes through the guide seat, which is located in the groove. The guide disc is installed in the groove and is fixedly connected to the second movable rod. The guide seat has connection ports on both sides, and guide blocks are provided on both sides of the two connection ports, with two guide blocks facing inward and the other two guide blocks facing outward.
[0008] Furthermore, it also includes a material collection assembly, which is connected to a transmission belt fitted on one of the guide supports. The material collection assembly is used to collect the chips after the adhesive has cured.
[0009] Furthermore, the material collection assembly includes a connecting plate, a fixing plate, a pushing component, a material collection pipe, two clamping plates, and two collecting plates. Two mounting plates are fixedly connected to the top plate of the workbench. One end of the fixing plate is fixedly installed between the two mounting plates, and the other end extends outward and is inclined. A placement groove is opened at the end of the fixing plate near the mounting plate. The connecting plate is located on the placement groove and has a through hole that extends horizontally through the connecting plate. The two clamping plates are respectively installed on the top surface of the connecting plate and are symmetrically distributed. One end of the connecting plate corresponds to the transmission belt, and the other end corresponds to one of the clamping plates. The material collection pipe is located between the two clamping plates. The opposite surfaces of the two clamping plates have a sliding groove for the material collection pipe to slide. The pushing component is installed on one side of the connecting plate, and the two collecting plates are installed on the other side of the connecting plate and correspond to the two clamping plates respectively.
[0010] Furthermore, the pushing component includes a fixed block, two first reciprocating pushing mechanisms and two push plates. The fixed block is fixedly installed in the middle of the connecting plate, the two first reciprocating pushing mechanisms are respectively installed on opposite sides of the fixed block, and the two push plates are respectively connected to the output ends of the two first reciprocating pushing mechanisms. The push plates are movably connected to the connecting plate.
[0011] Furthermore, a movable groove is provided at the bottom end of the side of the clamping plate near the collecting plate. The movable groove is connected to the sliding groove. A fixed rod is provided on the movable groove. The two ends of the fixed rod are respectively connected to the opposite sides of the movable groove. A movable block is rotatably connected to the fixed rod. A second reciprocating pushing mechanism is provided on the outside of the clamping plate. The output end of the second reciprocating pushing mechanism is connected to the movable block through a connecting seat. The connecting seat includes two second ear plates and a pin. The two second ear plates are mounted on the movable block, and the pin is fixedly mounted between the two second ear plates. The output end of the second reciprocating push mechanism is connected to a mounting block, which is sleeved on the pin.
[0012] The beneficial effects of this utility model are as follows: This dispensing and curing device for chip production, within the limited space of an automated production line, can connect multiple drive belts into a single complete drive belt by setting staggered guide components between the ends of any two adjacent guide supports. This allows the chip to stay on the production line for a longer time, thereby increasing the time for the fan to blow air and cool the chip. This provides more time for the adhesive to cure, improving not only the curing quality of the adhesive and the overall performance of the chip, but also its low cost and practicality.
[0013] Other advantages, objectives, and features of this invention will be set forth in part in the description which follows, and in part will be apparent to those skilled in the art from the following examination and study, or may be learned from practice of this invention. The objectives and other advantages of this invention can be realized and obtained through the following description. Attached Figure Description
[0014] Figure 1 This is a perspective view (first view) of the present invention. Figure 2 This is a perspective view (second view) of the present invention. Figure 3 For the present utility model Figure 2 A magnified view of part A in the image; Figure 4 This is a schematic diagram of the material collection component structure of this utility model; Figure 5 This is an exploded view of the material collection assembly of this utility model; Figure 6 This is a cross-sectional view of the connecting plate of this utility model; Figure 7 This is a schematic diagram of the guide component structure of this utility model.
[0015] In the diagram: 1. Workbench; 2. Connecting frame; 3. Movable plate; 4. Fan; 5. Transmission assembly; 51. Guide bracket; 52. Guide wheel; 53. Transmission belt; 54. Hinge seat; 55. First ear plate; 56. Rotating rod; 57. Steering pulley block; 6. Support component; 7. Drive assembly; 71. Fixed seat; 72. First motor; 73. Driving roller; 74. Driven roller; 75. Transmission belt; 8. Guide assembly; 81. Guide seat; 82. Guide disc; 83. Second... 84. Motor; 85. Groove; 86. Connection port; 9. Guide block; 9. Material collection assembly; 91. Connecting plate; 92. Fixing plate; 93. Pushing assembly; 94. Clamping plate; 95. Collection plate; 96. Mounting plate; 97. Placement groove; 98. Through hole; 99. Material collection pipe; 910. Slide groove; 911. Movable groove; 912. Movable block; 913. Second reciprocating pushing mechanism; 914. Second ear plate; 931. Fixing block; 932. First reciprocating pushing mechanism; 933. Push plate. Detailed Implementation
[0016] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. The components of the embodiments of this utility model described and shown in the accompanying drawings can generally be arranged and designed in various different configurations.
[0017] Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but merely to illustrate selected embodiments of the invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without inventive effort are within the scope of protection of the present invention.
[0018] It should be noted that similar labels and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.
[0019] In the above description of this utility model, it should be noted that the terms "one side," "the other side," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship commonly used when the utility model product is in use. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model. In addition, the terms "first," "second," etc., are only used to distinguish descriptions and should not be construed as indicating or implying relative importance.
[0020] Furthermore, terms such as "identical" do not imply that components must be absolutely identical; minor differences are permissible. The term "perpendicular" simply means that the positional relationship between components is more perpendicular than "parallel," not that the structure must be perfectly perpendicular; a slight tilt is acceptable.
[0021] Please see Figure 1-7 This utility model provides a technical solution: a dispensing and curing device for chip production, including a workbench 1, a connecting frame 2 on the workbench 1, a movable plate 3 connected to the connecting frame 2, and multiple fans 4 installed on the movable plate 3; multiple transmission components 5 for conveying chips are provided on the workbench 1, each transmission component 5 including a guide bracket 51, a transmission belt 53 and two guide wheels 52, the two guide wheels 52 are respectively connected to both ends of the guide bracket 51 through hinge seats 54, the transmission belt 53 is sleeved on the guide bracket 51 and is rubbed against the two guide wheels 52 respectively, the guide bracket 51 is connected to the workbench 1 through a support member 6, the multiple guide brackets 51 extend along the length direction of the workbench 1 and are arranged in parallel, and a guide component 8 is provided between any two adjacent guide brackets 51, the multiple guide components 8 are staggered at the ends of any two adjacent guide brackets 51; It also includes a drive assembly 7, which is used to drive multiple drive belts 53 to move simultaneously, and any two adjacent drive belts 53 move in opposite directions.
[0022] In this technical solution, the connecting frame 2 has baffles on both opposite sides and ventilation openings on the other opposite sides; the supporting component 6 includes a connecting block and an L-plate, one end of the connecting plate 91 is connected to the top surface of the workbench 1 and the other end extends upward, the horizontal plate of the L-plate is fixedly connected to the top surface of the connecting block, and the vertical plate of the L-plate is fixedly connected to one side of the guide bracket 51; the guide brackets 51 in the multiple transmission components 5 are arranged in parallel, and the multiple guide brackets 51 extend along the length direction of the workbench 1. The movement directions of any two adjacent transmission belts 53 are opposite. By setting staggered guide components 8 between the ends of any two adjacent guide brackets 51, the function of connecting multiple transmission belts 53 into a complete transmission belt 53 is realized.
[0023] In practical use, multiple fans 4, guide components 8, and drive components 7 are activated simultaneously. The guide components 8 connect multiple transmission belts 53 in series to form a complete transmission belt 53. After the chip is dispensed, it enters from one end of the transmission belt 53 located on the outside of the workbench 1, moves from the head end of the transmission belt 53 to the tail end of the transmission belt 53, and continues to move on the adjacent transmission belt 53 through the guide components 8 until it slides out from the last transmission belt 53. During the process of the chip moving sequentially on multiple transmission belts 53, the fans 4 blow air onto the chip on the transmission belt 53. The suction effect of the fans 4 creates a certain pressure gradient in the connecting frame 2. The air pressure below the fans 4 is lower than the air pressure at the ventilation openings on both sides. This pressure difference causes air to flow from the high-pressure area (ventilation opening) to the low-pressure area (below the fans 4). Driven by the pressure difference, air can flow rapidly within the connector 2, causing the heat of the chip and adhesive to be transferred and diffused over a larger area, reducing the existence of thermal gradients, and allowing the adhesive on the chip to cure in a more uniform temperature environment. This avoids incomplete or over-curing caused by excessively high or low local temperatures, thereby improving the curing quality of the adhesive and the overall performance of the chip.
[0024] Within the limited space of an automated production line, by setting staggered guide components 8 between the ends of any two adjacent guide supports 51, multiple transmission belts 53 can be connected in series to form a complete transmission belt 53, allowing the chip to stay on the production line for a longer time. This increases the time for the fan 4 to blow air and cool the chip, providing more time for the adhesive to cure. This not only improves the curing quality of the adhesive and the overall performance of the chip, but also reduces costs and increases practicality.
[0025] In this embodiment: the hinge seat 54 includes a first ear plate 55 and a rotating rod 56. The first ear plate 55 is fixedly connected to the end of the guide bracket 51, the rotating rod 56 is rotatably fitted on the first ear plate 55, the guide wheel 52 is fixedly connected to the rotating rod 56, and any two adjacent rotating rods 56 are connected by a steering pulley group 57. The drive assembly 7 includes a fixed base 71, a first motor 72, a drive roller 73, a driven roller 74, and a transmission belt 75. The fixed base 71 is mounted on the top surface of the worktable 1 and located on one side of one of the guide brackets 51. The first motor 72 is mounted on one side of the fixed base 71. The output shaft of the first motor 72 is connected to a first movable rod. The drive roller 73 is fixedly mounted on the first movable rod. The driven roller 74 is mounted on one of the rotating rods 56. The drive roller 73 and the driven roller 74 are connected by the transmission belt 75.
[0026] In this technical solution, the drive assembly 7 is provided in two sets, and the two sets of drive assemblies 7 are respectively installed at opposite ends on one side of the same guide bracket 51, and the active roller 73 is controlled to rotate in the same direction during use.
[0027] In practical use, the first motor 72 is started, which drives the first movable rod and the driving roller 73 to rotate. The rotation of the driving roller 73 drives the transmission belt 75 and the driven roller 74 to rotate. The rotation of the driven roller 74 drives the rotating rod 56 to rotate on the first ear plate 55. During the rotation of the rotating rod 56, it drives the two guide wheels 52 and the first transmission belt 53 to rotate. At the same time, when the rotating rod 56 rotates, it also drives the set of steering pulleys 57 to rotate. The set of steering pulleys 57 can make two adjacent transmission belts 53 move in opposite directions (the set of rotating pulleys is a mature technology in the prior art, so it will not be described in detail in this application), which makes it easy to connect multiple transmission belts 53 together.
[0028] In this embodiment: the guide assembly 8 includes a guide seat 81, a guide disk 82 and a second motor 83. The guide seat 81 is installed between two guide brackets 51. The top surface of the guide seat 81 is provided with a groove 84. The second motor 83 is installed at the bottom of the guide seat 81. The output shaft of the second motor 83 is connected to a second movable rod. The end of the second movable rod away from the second motor 83 extends upward and passes through the guide seat 81 and is located in the groove 84. The guide disk 82 is installed in the groove 84 and is fixedly connected to the second movable rod. The guide seat 81 has connection ports 85 on both sides. The two connection ports 85 correspond to the two adjacent transmission belts 53 respectively. The two connection ports 85 are provided with guide blocks 86 on both sides, with two guide blocks 86 facing inward and the other two guide blocks 86 facing outward.
[0029] In this technical solution, multiple guide components 8 are staggered at the ends of any two adjacent guide supports 51 on the same horizontal line; a limiting ring is fixedly connected to the rotating disk, and a ring is formed between the limiting ring and the outer diameter of the groove 84, and two guide blocks 86 are respectively provided on the two connection ports 85, one of which faces inward and abuts against the limiting ring, and the other faces outward and is located on the top surface of the transmission belt 53.
[0030] In practical use, the second motor 83 is started. The second motor 83 drives the guide disk 82 and the limiting ring to rotate within the groove 84 via the second movable rod. During chip transmission, as the chip moves closer to a specific area with the movement of the transmission belt 53, the chip first reaches one of the connection ports 85. A guide block 86 is provided on the top surface of this connection port 85. Guided by the guide block 86, the chip enters the inner space of the ring formed by the outer diameter of the limiting ring and the groove 84. At this time, the guide disk 82 continues to rotate, and its rotational action generates a pushing force on the chip, causing it to move along a specific path within this ring. As the guide disk 82 continues to rotate, the chip's position within the ring gradually changes, eventually exiting through another connection port 85 and entering the adjacent transmission belt 53, thus continuing to move forward along the transmission belt 53.
[0031] In this embodiment, a material collection component 9 is also included. The material collection component 9 is connected to a transmission belt 53 sleeved on one of the guide brackets 51. The material collection component 9 is used to collect the chip after the glue has cured.
[0032] In practical use, after the chip adhesive has cured, it can enter the material collection assembly 9 from the tail end of the conveyor belt 53, making it easier for the chip to enter the next processing procedure.
[0033] In this embodiment: the material collection assembly 9 includes a connecting plate 91, a fixing plate 92, a pushing assembly 93, a material collection pipe 99, two clamping plates 94, and two collecting plates 95. Two mounting plates 96 are fixedly connected to the top plate of the workbench 1. One end of the fixing plate 92 is fixedly installed between the two mounting plates 96, and the other end extends outward and is inclined. A placement groove 97 is provided at the end of the fixing plate 92 near the mounting plate 96. The connecting plate 91 is located on the placement groove 97. A through hole 98 is provided on the connecting plate 91, which transversely penetrates the connecting plate 91. The clamping plates 94 are respectively installed on the top surface of the connecting plate 91 and are symmetrically distributed. One end of the connecting plate 91 corresponds to the transmission belt 53, and the other end corresponds to one of the clamping plates 94. The collecting pipe 99 is located between the two clamping plates 94. The opposite surfaces of the two clamping plates 94 are provided with a sliding groove 910 for the collecting pipe 99 to slide. The sliding groove 910 is L-shaped, which makes it easy for the collecting pipe 99 to slide out from the bottom end of the sliding groove 910. The pushing component 93 is installed on one side of the connecting plate 91, and the two collecting plates 95 are installed on the other side of the connecting plate 91 and correspond to the two clamping plates 94 respectively.
[0034] In this technical solution, there are multiple collecting tubes 99. The multiple collecting tubes 99 are placed one by one between two clamping plates 94. The two ends of the collecting tubes 99 will form a sliding fit with the sliding grooves 910 opened on the inner side of the clamping plates 94, that is, the collecting tubes 99 can move smoothly along the sliding grooves 910. As the collecting tubes 99 are added one by one, they will be arranged along the sliding grooves 910 until the sliding grooves 910 are completely filled with collecting tubes 99. In addition, a discharge port is opened at the bottom of the clamping plate 94 near the connecting plate 91. The discharge port is used to allow the chip to slide smoothly from the sliding grooves 910 into the collecting tubes 99. The inlet of the sliding grooves 910 on the connecting plate 91 corresponds to the transmission belt 53, and the outlet corresponds to the collecting tubes 99.
[0035] In practical use, the chips on the transmission belt 53 slide directly into the groove 910 on the connecting plate 91, and then slide directly into the collection tube 99 through the groove 910. When the collection tube 99 is full of chips, the cleaning component is activated, which pushes out the collection tube 99 at the bottom, so that its two ends fall onto the two collection plates 95 respectively. The remaining collection tubes 99 will slide down in sequence due to the neutralization effect, so that the chips can continue to slide into the new collection tubes 99, thereby improving efficiency.
[0036] In this embodiment, the pushing component 93 includes a fixed block 931, two first reciprocating pushing mechanisms 932 and two push plates 933. The fixed block 931 is fixedly installed in the middle of the connecting plate 91. The two first reciprocating pushing mechanisms 932 are respectively installed on opposite sides of the fixed block 931. The two push plates 933 are movably connected to the output ends of the two first reciprocating pushing mechanisms 932 respectively. The push plates 933 are movably connected to the connecting plate 91.
[0037] In practical use, two first reciprocating push mechanisms 932 are activated simultaneously. The two first reciprocating push mechanisms 932 extend, thereby pushing the push plate 933 to move on the connecting plate 91. During the movement, the push plate 933 pushes the collecting pipe 99 out from the bottom of the chute 910. In this embodiment: a movable groove 911 is provided at the bottom end of the clamping plate 94 near the collecting plate 95. The movable groove 911 is connected to the sliding groove 910. A fixed rod is provided on the movable groove 911. The two ends of the fixed rod are respectively connected to the opposite sides of the movable groove 911. A movable block 912 is rotatably connected to the fixed rod. A second reciprocating pushing mechanism 913 is provided on the outside of the clamping plate 94. The output end of the second reciprocating pushing mechanism 913 is connected to the movable block 912 through a connecting seat 914. The connecting seat 914 includes two second ear plates 915 and a pin. The two second ear plates 915 are mounted on the movable block 912, and the pin is fixedly mounted between the two second ear plates 915. The output end of the second reciprocating push mechanism 913 is connected to a mounting block, and the mounting block is sleeved on the pin.
[0038] In this technical solution, the second reciprocating push mechanism 913 is initially in an extended state, and the movable block 912 blocks the bottom end of the L-shaped slide groove 910.
[0039] In practical use, when the collecting tube 99 is full of chips, the second reciprocating pushing mechanism 913 is activated. The second reciprocating pushing mechanism 913 retracts upward, and at the same time drives the movable block 912 to flip on the fixed rod, so that the movable block 912 exposes the bottom end of the L-shaped slide 910, which makes it easier for the push plate 933 to push the collecting tube 99 located on the bottom surface out of the slide 910 and onto the collecting plate 95.
[0040] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this utility model and are not intended to limit it. Although this utility model has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of this utility model without departing from the spirit and scope of the technical solutions of this utility model, and all such modifications or substitutions should be covered within the scope of the claims of this utility model.
Claims
1. A dispensing and curing apparatus for chip manufacturing, comprising a worktable (1), characterized in that: The workbench (1) is provided with a connecting frame (2), and a movable plate (3) is connected to the connecting frame (2). Multiple fans (4) are installed on the movable plate (3). The workbench (1) is provided with multiple transmission components (5) for conveying chips. The transmission component (5) includes a guide bracket (51), a transmission belt (53) and two guide wheels (52). The two guide wheels (52) are respectively connected to both ends of the guide bracket (51) through hinge seats (54). The transmission belt (53) is sleeved on the guide bracket (51) and is rubbed to the two guide wheels (52) respectively. The guide bracket (51) is connected to the workbench (1) through a support member (6). The multiple guide brackets (51) extend along the length direction of the workbench (1) and are arranged in parallel. A guide component (8) is provided between any two adjacent guide brackets (51). The multiple guide components (8) are staggered at the ends of any two adjacent guide brackets (51). It also includes a drive assembly (7) for driving multiple transmission belts (53) to move simultaneously, and any two adjacent transmission belts (53) move in opposite directions.
2. The dispensing and curing apparatus for chip production according to claim 1, characterized in that: The hinge seat (54) includes a first ear plate (55) and a rotating rod (56). The first ear plate (55) is fixedly connected to the end of the guide bracket (51). The rotating rod (56) is rotatably fitted on the first ear plate (55). The guide wheel (52) is fixedly connected to the rotating rod (56). Any two adjacent rotating rods (56) are connected by a set of steering pulleys (57). The drive assembly (7) includes a fixed base (71), a first motor (72), a drive roller (73), a driven roller (74), and a transmission belt (75). The fixed base (71) is installed on the top surface of the workbench (1) and located on one side of one of the guide brackets (51). The first motor (72) is installed on one side of the fixed base (71). The output shaft of the first motor (72) is connected to a first movable rod. The drive roller (73) is fixedly installed on the first movable rod. The driven roller (74) is installed on one of the rotating rods (56). The drive roller (73) and the driven roller (74) are connected by a transmission belt (75).
3. The dispensing and curing apparatus for chip production according to claim 1, characterized in that: The guide assembly (8) includes a guide seat (81), a guide disc (82), and a second motor (83). The guide seat (81) is installed between two guide brackets (51). The top surface of the guide seat (81) is provided with a groove (84). The second motor (83) is installed at the bottom of the guide seat (81). The output shaft of the second motor (83) is connected to a second movable rod. The end of the second movable rod away from the second motor (83) extends upward and passes through the guide seat (81) and is located in the groove (84). The guide disc (82) is installed in the groove (84) and is fixedly connected to the second movable rod. The guide seat (81) has connection ports (85) on both sides. Two guide blocks (86) are provided on both sides of the two connection ports (85), with two guide blocks (86) facing inward and the other two guide blocks (86) facing outward.
4. The dispensing and curing apparatus for chip production according to claim 1, characterized in that: It also includes a material collection component (9), which is connected to a transmission belt (53) fitted on one of the guide brackets (51), and the material collection component (9) is used to collect the chip after the glue has cured.
5. The dispensing and curing apparatus for chip production according to claim 4, characterized in that: The material collection assembly (9) includes a connecting plate (91), a fixing plate (92), a pushing assembly (93), a material collection pipe (99), two clamping plates (94), and two collecting plates (95). The top plate of the workbench (1) is fixedly connected to two mounting plates (96). One end of the fixing plate (92) is fixedly installed between the two mounting plates (96), and the other end extends outward and is inclined. The fixing plate (92) has a placement groove (97) at the end near the mounting plate (96). The connecting plate (91) is located on the placement groove (97). The connecting plate (91) has a through hole (98). The through hole (98) is horizontal. Two clamping plates (94) are respectively installed on the top surface of the connecting plate (91) and are symmetrically distributed. One end of the connecting plate (91) corresponds to the transmission belt (53), and the other end corresponds to one of the clamping plates (94). The collecting pipe (99) is located between the two clamping plates (94). The opposite surfaces of the two clamping plates (94) are provided with sliding grooves (910) for the collecting pipe (99) to slide. The pushing component (93) is installed on one side of the connecting plate (91), and the two collecting plates (95) are installed on the other side of the connecting plate (91) and correspond to the two clamping plates (94) respectively.
6. The dispensing and curing apparatus for chip production according to claim 5, characterized in that: The pushing component (93) includes a fixed block (931), two first reciprocating pushing mechanisms (932) and two push plates (933). The fixed block (931) is fixedly installed in the middle of the connecting plate (91). The two first reciprocating pushing mechanisms (932) are respectively installed on opposite sides of the fixed block (931). The two push plates (933) are respectively connected to the output ends of the two first reciprocating pushing mechanisms (932). The push plates (933) are movably connected to the connecting plate (91).
7. The dispensing and curing apparatus for chip production according to claim 5, characterized in that: The clamping plate (94) has a movable groove (911) at the bottom end of the side near the collecting plate (95). The movable groove (911) is connected to the sliding groove (910). A fixed rod is provided on the movable groove (911). The two ends of the fixed rod are respectively connected to the opposite sides of the movable groove (911). A movable block (912) is rotatably connected to the fixed rod. A second reciprocating pushing mechanism (913) is provided on the outside of the clamping plate (94). The output end of the second reciprocating pushing mechanism (913) is connected to the movable block (912) through a connecting seat (914). The connecting seat (914) includes two second ear plates (915) and a pin. The two second ear plates (915) are mounted on the movable block (912). The pin is fixedly mounted between the two second ear plates (915). The output end of the second reciprocating push mechanism (913) is connected to a mounting block, which is sleeved on the pin.