A cooling device for chip production and manufacturing with a pick-and-place structure

By designing a rotary engagement structure of the support tabletop and cooling device, the problems of low cooling efficiency and poor pick-and-place accuracy of traditional chip cooling equipment are solved, and efficient and accurate chip pick-and-place and cooling are achieved, improving the production efficiency and quality of chip manufacturing.

CN119965136BActive Publication Date: 2025-07-18NANTONG HUAXIN CENT AIR CONDITIONER
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Patent Information

Application Number
CN202510430530.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-08
Publication Date
2025-07-18
Estimated Expiration
2045-04-08

AI Technical Summary

Technical Problem

Traditional chip cooling equipment has low cooling efficiency and poor pick-up and placement accuracy, and insufficient synergy between cooling and pick-up and placement links, making it difficult to meet the heat dissipation needs and high-precision pick-up and placement requirements of high-performance chips, affecting chip manufacturing efficiency and quality.

Method used

A cooling device for chip production and manufacturing including supporting countertops, central support plates, pick-and-place strips and cooling devices is designed. Through the rotating engagement of pick-and-place devices and the air-cooling design of the cooling body, the chip can be efficient pick-and-place and cooling, and the cooling efficiency and accuracy are improved.

Benefits of technology

It realizes fast, precise pick-up and placement of chips and efficient cooling, improves the production efficiency and product quality of chip manufacturing, and reduces production costs.

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Abstract

The present invention relates to the technical field of semiconductor devices. The present invention discloses a cooling device for chip production and manufacturing with a picking and placing structure, including a support tabletop. Both the left and right sides of the top of the support tabletop are fixedly connected with central support plates. A displacement member is movably connected to the outside of the central support plate. A picking and placing strip block is slidably connected to the upper part of the displacement member. A picking and placing device is movably connected to the middle of the operation table. In this cooling device for chip production and manufacturing, through the rotation of the turntable body meshing with the teeth on the picking and placing strip block, the picking and placing strip block is gradually operated from bottom to top by the counterclockwise rotation of the turntable body, and the metal cover body runs synchronously. The picking and placing strip block shovels the left and right sides of the chip, and the extraction body at the bottom end of the picking and placing strip block moves upward, so that the gap at the bottom end of the chip can be maximally and harmlessly separated, achieving the purpose of quickly extracting the chip. Compared with the prior art, it can have a more micro-adjustment effect and greater accuracy.
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Description

Technical Field

[0001] The present invention relates to the technical field of semiconductor devices, and particularly to a cooling device for chip production and manufacturing with a picking and placing structure. Background Art

[0002] At present, with the booming development of the chip manufacturing industry, the performance, power consumption, and heat dissipation problems of chips have become key factors affecting their development. As the chip integration continues to increase, the number of transistors per unit area has increased sharply, and the heat generated by the chip during operation has also risen significantly. If the chip cannot be cooled in a timely and effective manner, it will not only lead to a decline in chip performance and unstable operation, but may also be damaged due to overheating, seriously affecting the quality and service life of the chip.

[0003] Traditional chip cooling technologies face many challenges. On the one hand, in terms of cooling efficiency, common air-cooling and liquid-cooling methods are difficult to meet the increasing heat dissipation requirements of high-performance chips. Air-cooling is limited by the heat dissipation capacity of air, and the heat dissipation effect is limited; although liquid-cooling has relatively high heat dissipation efficiency, there is a risk of liquid leakage, and the equipment is complex and costly. On the other hand, traditional cooling devices often neglect the coordination between the chip picking and placing process and the cooling process. During chip manufacturing, the picking and placing operations of chips are frequent, but traditional picking and placing methods have low precision and poor efficiency, and are prone to damage the chips. For example, manual picking and placing of chips is not only inefficient but may also damage the chips due to improper operation; some simple mechanical picking and placing devices cannot accurately control the picking and placing force and position, and are difficult to meet the high-precision requirements of chip manufacturing.

[0004] In addition, with the continuous innovation of chip manufacturing processes, the size of chips is getting smaller and the structure is getting more complex, and the requirements for cooling devices and picking and placing structures are also getting higher. Traditional devices are difficult to adapt to these changes and cannot achieve high-precision chip picking and placing while ensuring the cooling effect. This not only restricts the production efficiency of chip manufacturing but also limits the further improvement of chip performance.

[0005] In summary, it is urgent to develop a cooling device for chip production and manufacturing with a picking and placing structure. It can effectively solve the problems of low cooling efficiency, poor picking and placing precision, and insufficient coordination between the two in traditional technologies, improve the production efficiency and product quality of chip manufacturing, reduce production costs, and promote the development of the chip manufacturing industry to a higher level. Summary of the Invention

[0006] In view of the deficiencies of the prior art, the present invention provides a cooling device for chip production and manufacturing with a picking and placing structure, which solves the above problems.

[0007] To achieve the above purpose of improving the convenience of picking up and reducing energy waste by timely cooling, the present invention is realized through the following technical solutions:

[0008] A cooling device for chip production and manufacturing with a pick-and-place structure, including a support tabletop. On the left and right sides of the top of the support tabletop, center support plates are fixedly connected, and the center support plates are symmetrically arranged about the central axis of the support tabletop. A displacement member is movably connected to the outside of the center support plate, and the displacement member penetrates the inside of the center support plate. A pick-and-place strip is slidably connected to the upper part of the displacement member, and the pick-and-place strip penetrates the inside of the displacement member. The pick-and-place strip shovels the left and right sides of the chip, and the extraction body at the bottom end of the pick-and-place strip moves upward, ensuring that the extraction body on the pick-and-place strip drives the chip to move upward. The pick-and-place plane gap between the chip and the pick-and-place strip becomes larger and larger, and the pick-and-place strips are symmetrically arranged. A metal cover is fixedly connected to the top of the pick-and-place strip. The extraction body at the bottom end of the pick-and-place strip moves to the cooling body, and the cooling body and the extraction body form a closed trend to enclose the periphery of the chip. In the middle of the upper surface of the support tabletop, an operating table is fixedly connected. An operating device is movably connected to the middle of the operating table. Through the setting of the operating device, the chips inside can be picked and placed reasonably and effectively, improving the internal processing effect and achieving the purpose of rapid operation, ensuring the rationality and effectiveness during extraction. A cooling device is fixedly connected to the lower surface of the support tabletop. Through the setting of the cooling device, the internal air circulation is promoted, accelerating the internal cooling effect and achieving the purpose of rapid cooling. A chip is fixedly connected to the bottom end of the cooling device;

[0009] The pick-and-place device includes a traction rod. An adjusting device is rotatably connected to the back of the traction rod. A curved arc strip is fixedly connected to the front of the traction rod. When the curved arc strip moves backward, it drags the central shaft rod to move synchronously. The central shaft rod gradually withdraws from the inside of the metal cavity. The metal cavity drives the rope to run, and the rope drags the turntable body to run synchronously. Center shaft rods are fixedly connected to both the left and right sides of the curved arc strip. A metal cavity is arranged on the outer surface of the central shaft rod. A rope is fixedly connected to the end of the central shaft rod away from the traction rod. The main shaft of the turntable body is fixedly connected to the front of the rope.

[0010] Preferably, the displacement member and the center support plate are placed vertically. Through the setting of the center support plate, the internal stability performance is improved, and the center support plate is made of metal stainless steel. The height of the metal cover is higher than the height of the support tabletop, and the metal cover plays a role in facilitating support.

[0011] Preferably, the textures between the metal cavity and the central shaft match each other, the holes and grooves inside the metal cavity match the outer surface of the central shaft, there are two metal cavities in total, and the adjustment device also includes a main adjustment part, which drives the linkage part to operate, and the linkage part drives the central block to operate synchronously. The central block operates under the influence of the pulling force of the linkage part, and the central block drives the displacement part to operate, and the displacement part gradually moves along the notch inside the central support plate and the outer surface of the central shaft, and the concave body can mark and remind the number of rotations, and the displacement part drives the pick-up and placement of the strips to the middle The centerline direction of the main adjusting part is close to each other, and the displacement part is pulled by the center block to slide. A recessed body is opened on the top of the main adjusting part. Linkage parts are fixedly connected on the left and right sides of the main adjusting part, and the linkage parts are symmetrically arranged about the central axis of the recessed body. The front of the linkage part is fixedly connected with the center block, and the center block is designed in the shape of a rectangular parallelepiped. There are two linkage parts in total, and the linkage parts are made of metal stainless steel. The linkage part and the recessed body are vertically arranged, and the central axes of the center block and the linkage part are parallel to each other. The thickness of the linkage part is thinner than that of the center block.

[0012] Preferably, the cooling device includes a cooling body, a ventilation piece is provided inside the cooling body, the ventilation pieces are evenly distributed, a rotating shaft is fixedly connected to the inner surface of the cooling body, and a cooling vane is rotatably connected to the end of the rotating shaft away from the ventilation piece. The cooling body is continuously squeezed upward by the extraction body at the bottom end of the pick-up and placement bar block, the cooling body is deformed, and the cooling inside the cooling body is gradually blown out from the ventilation piece, the cooling vane swings, and the cooling vane rotates to accelerate the internal cooling environment, thereby improving the internal cooling effect and accelerating the flow rate of the internal air. The ventilation piece processes the chip, and the rotating shaft is symmetrically arranged with the central axis of the cooling body as the symmetry axis, and the rotating shaft is placed perpendicular to the inner surface of the cooling body. There are four cooling vanes in total, and the rotating shaft is symmetrical about the central axis of the cooling body. The cooling body is connected to the cooling vane through the rotating shaft, and the rotating shaft is cylindrical.

[0013] The present invention provides a cooling device for chip production and manufacturing with a pick-and-place structure. It has the following beneficial effects:

[0014] 1. The cooling device for chip production and manufacturing makes the chip located between the two extraction bodies at the bottom of the pick-and-place block, and the hand tube metal cover body is used to support it. When operation is required, the traction rod in the pick-and-place device is dragged to the rear end to operate, so that the equipment has the effect of automatic processing, realizes the basic conditions of rapid cooling and pick-and-place, and improves work efficiency.

[0015] 2. The cooling device for chip production and manufacturing meshes with the teeth on the pick-and-place strip through the rotation of the turntable body. The pick-and-place strip is gradually driven by the counterclockwise rotation of the turntable body to move upward from bottom to top, and the metal cover moves synchronously. As the pick-and-place strip moves upward, it shovels the left and right sides of the chip. The extraction body at the bottom of the pick-and-place strip moves upward, ensuring that the extraction body on the pick-and-place strip drives the chip to move upward. The difference in the pick-and-place plane between the chip and the pick-and-place strip becomes larger and larger, promoting the maximally harmless separation of the gap at the bottom of the chip, achieving the purpose of quickly extracting the chip. Compared with the prior art, it has a more micro-adjustable effect and greater accuracy.

[0016] 3. The cooling device for chip production and manufacturing drives the displacement part to operate through the central block. The displacement part slides under the pulling action of the central block and gradually displaces along the notch inside the central support plate and the outer surface of the central shaft rod. The recessed body can mark and remind the number of rotation cycles. The displacement part drives the pick-and-place strip to move closer to the midline of the central adjustment part in the middle. Finally, it stops when the displacement part contacts both ends of the curved strip, thus achieving the effect of quickly clamping and fixing, ensuring that the internal chip can have an automatic processing effect. Compared with the prior art, it has greater durability and flexibility, is more convenient to adjust, and reduces more operation steps.

[0017] 4. The cooling device for chip production and manufacturing extracts the chip upward through the extraction body at the bottom of the pick-and-place strip. The chip is squeezed inside the cooling body, and the cooling body is a bellows. The extraction body at the bottom of the pick-and-place strip displaces to the cooling body, and the cooling body and the extraction body form a closed trend to enclose the periphery of the chip, thereby protecting the internal energy and achieving the purpose of improving processing.

[0018] 5. The cooling device for chip production and manufacturing gradually blows out the cooling inside the cooling body from the ventilation part. The ventilation part processes the chip, thereby achieving a certain air-cooling effect on the chip and realizing the basic effect of rapid cooling. At the same time, the wind blows the cooling rotating blades, causing the cooling rotating blades to swing. The rotation of the cooling rotating blades accelerates the internal cooling environment, thereby improving the internal cooling effect, accelerating the flow rate of the internal air, and achieving a dual cooling effect. Compared with the cooling equipment in the prior art, it has the effects of simple operation and reasonable design. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 It is a schematic structural diagram of the whole of the present invention;

[0020] Figure 2 It is a schematic structural diagram of the metal cover of the present invention;

[0021] Figure 3 It is a schematic structural diagram of the central support plate of the present invention;

[0022] Figure 4 Schematic structural diagram of the pick-and-place device of the present invention;

[0023] Figure 5 For the present invention Figure 4 Partial enlarged schematic structural diagram of the turntable body at position A in the present invention;

[0024] Figure 6 Schematic structural diagram of the adjustment device of the present invention;

[0025] Figure 7 Schematic structural diagram of the cooling device of the present invention;

[0026] Figure 8 For the present invention Figure 7 Partial enlarged schematic structural diagram of the cooling rotating blade structure at position B in the present invention.

[0027] In the figure: 1, support tabletop; 2, central support plate; 3, displacement member; 4, pick-and-place strip; 5, metal cover; 6, operation table; 7, pick-and-place device; 8, cooling device; 9, chip; 71, traction rod; 72, adjustment device; 73, curved strip; 74, metal cavity; 75, central shaft rod; 76, rope; 77, turntable body; 721, main adjustment member; 722, recessed body; 723, linkage member; 724, central block; 81, cooling body; 82, ventilation member; 83, rotating shaft; 84, cooling rotating blade. Detailed description of the specific implementation

[0028] The present invention will be further described in detail below in conjunction with the accompanying drawings and specific implementation manners. The embodiments of the present invention are given for purposes of illustration and description, and are not exhaustive or limit the present invention to the disclosed form. Many modifications and variations will be apparent to those of ordinary skill in the art. The embodiments are selected and described to better illustrate the principles and practical applications of the present invention, and to enable those of ordinary skill in the art to understand the present invention and thus design various embodiments with various modifications suitable for specific purposes. Embodiment 1

[0029] Please refer to Figures 1 - 5, the present invention provides a technical solution: a cooling device for chip production and manufacturing with a picking and placing structure, including a support table 1. On the left and right sides of the top of the support table 1, center support plates 2 are fixedly connected, and the center support plates 2 are symmetrically arranged about the central axis of the support table 1. A displacement member 3 is movably connected to the outside of the center support plate 2, and the displacement member 3 penetrates the inside of the center support plate 2. A picking and placing strip 4 is slidably connected to the upper part of the displacement member 3. When the picking and placing strip 4 moves upward, the picking and placing strip 4 shovels the left and right sides of the chip 9. The extraction body at the bottom end of the picking and placing strip 4 moves upward, ensuring that the extraction body on the picking and placing strip 4 drives the chip 9 to move upward. And the picking and placing strip 4 penetrates the inside of the displacement member 3, and the picking and placing strips 4 are symmetrically arranged. A metal cover 5 is fixedly connected to the top of the picking and placing strip 4. In the middle of the upper surface of the support table 1, an operating table 6 is fixedly connected. A picking and placing device 7 is movably connected to the middle of the operating table 6. Through the setting of the picking and placing device 7, the chips 9 inside can be picked and placed reasonably and effectively, improving the internal processing effect and achieving the purpose of rapid operation, ensuring the rationality and effectiveness during extraction;

[0030] The picking and placing device 7 includes a traction rod 71. An adjusting device 72 is rotatably connected to the back of the traction rod 71. A curved arc strip 73 is fixedly connected to the front of the traction rod 71. When the curved arc strip 73 moves backward, it drags the central shaft 75 to move synchronously. The central shaft 75 gradually withdraws from the inside of the metal cavity 74. The metal cavity 74 drives the rope 76 to run. The rope 76 drags the turntable 77 to run synchronously. On the left and right sides of the curved arc strip 73, central shafts 75 are fixedly connected. A metal cavity 74 is arranged on the outer surface of the central shaft 75. One end of the central shaft 75 far from the traction rod 71 is fixedly connected to a rope 76. The front of the rope 76 is fixedly connected to the main shaft of the turntable 77.

[0031] The textures between the metal cavity 74 and the central shaft rod 75 match each other. The holes and grooves inside the metal cavity 74 match the outer surface of the central shaft rod 75. There are two metal cavities 74 in total. The adjusting device 72 further includes a main adjusting part 721. The main adjusting part 721 drives the linkage part 723 to operate. The linkage part 723 drives the central block 724 to operate synchronously. The central block 724 operates under the influence of the pulling force of the linkage part 723. The central block 724 drives the displacement part 3 to operate. The displacement part 3 slides under the pulling action of the central block 724. A recess 722 is provided at the top of the main adjusting part 721. Linkage parts 723 are fixedly connected to both the left and right sides of the main adjusting part 721, and the linkage parts 723 are symmetrically arranged about the central axis of the recess 722. A central block 724 is fixedly connected to the front of the linkage part 723, and the central block 724 is designed in the shape of a cuboid. There are two linkage parts 723 in total, and the linkage parts 723 are made of metal stainless steel. The linkage parts 723 are perpendicular to the recess 722. The central axes of the central block 724 and the linkage parts 723 are parallel to each other. The thickness of the linkage part 723 is thinner than the thickness of the central block 724.

[0032] During use, first check the installation, fixation and safety protection of the present invention, and then slowly place the device downward on the left and right sides of the processing chip 9, so that the chip 9 is located between the two extraction bodies at the bottom of the pick-and-place strip 4, and the hand-held pipe metal cover 5 is used to support it. When operation is required, drag the traction rod 71 in the pick-and-place device 7 backward to operate, so that the device has the effect of automatic processing, realizing the basic conditions for rapid cooling and pick-and-place, and improving the work efficiency.

[0033] When the volume of the chip 9 is small and the chip 9 needs to be clamped and adjusted, twist the main adjusting part 721 to rotate. The main adjusting part 721 drives the linkage part 723 to operate. The linkage part 723 drives the central block 724 to operate synchronously. The central block 724 operates under the influence of the pulling force of the linkage part 723. The central block 724 drives the displacement part 3 to operate. The displacement part 3 slides under the pulling action of the central block 724. The displacement part 3 gradually displaces along the notch inside the central support plate 2 and the outer surface of the central shaft rod 75. The recess 722 can mark and remind the number of rotation circles. The displacement part 3 drives the pick-and-place strip 4 to move closer to the midline of the central main adjusting part 721 in the middle. Finally, when the displacement part 3 contacts the two ends of the curved arc strip 73, it stops, thus realizing the effect of rapid clamping and fixation, ensuring that the internal chip can have the effect of automatic processing, being more persistent and flexible compared with the prior art, being more convenient during adjustment, reducing more operation steps;

[0034] When the chip 9 needs to be extracted, since the traction rod 71 is designed in an irregular "L" shape, the traction rod 71 hooks the curved arc strip 73, and the curved arc strip 73 moves backward to drive the central shaft rod 75 to undergo synchronous displacement. The central shaft rod 75 gradually withdraws from the inside of the metal cavity 74, and the metal cavity 74 drives the rope 76 to operate. The rope 76 drags the turntable body 77 to operate synchronously. The turntable body 77 rotates and meshes with the teeth on the pick-and-place strip 4. The pick-and-place strip 4 is gradually driven by the counterclockwise rotation of the turntable body 77 to move upward. The metal cover 5 moves synchronously. The pick-and-place strip 4 moves upward, and the pick-and-place strip 4 shovels the left and right sides of the chip 9. The extraction body at the bottom of the pick-and-place strip 4 moves upward, ensuring that the extraction body on the pick-and-place strip 4 drives the chip 9 to move upward. The pick-and-place plane gap between the chip 9 and the pick-and-place strip 4 becomes larger and larger, prompting the gap at the bottom of the chip 9 to be separated without damage to the maximum extent, achieving the purpose of quickly extracting the chip 9. Compared with the prior art, it can have a more micro-adjustment effect and greater accuracy. Embodiment 2

[0035] Please refer to Figures 1 - 8 , the present invention provides a technical solution: on the basis of Embodiment 1, a cooling device 8 is fixedly connected to the lower surface of the support table 1. Through the setting of the cooling device 8, the circulation of internal air is promoted, the internal cooling effect is accelerated, and the purpose of rapid cooling is achieved. The bottom end of the cooling device 8 is fixedly connected to the chip 9;

[0036] The displacement member 3 is placed perpendicular to the central support plate 2. The pick-and-place strip 4 moves upward, and the pick-and-place strip 4 shovels the left and right sides of the chip 9. The extraction body at the bottom of the pick-and-place strip 4 moves upward, ensuring that the extraction body on the pick-and-place strip 4 drives the chip 9 to move upward. Through the setting of the central support plate 2, the internal stability performance is improved, and the central support plate 2 is made of metal stainless steel. The height of the metal cover 5 is higher than the height of the support table 1.

[0037] The cooling device 8 includes a cooling body 81, and a ventilation piece 82 is provided inside the cooling body 81. The ventilation pieces 82 are evenly distributed. A rotating shaft 83 is fixedly connected to the inner surface of the cooling body 81. The end of the rotating shaft 83 away from the ventilation piece 82 is rotatably connected to a cooling rotor 84. The cooling body 81 is continuously squeezed upward by the extraction body at the bottom of the pick-up and placement bar 4, and the cooling body 81 is deformed. The cooling inside the cooling body 81 is gradually blown out from the ventilation piece 82. The ventilation piece 82 processes the chip 9. The cooling body 81 is continuously squeezed upward by the extraction body at the bottom of the pick-up and placement bar 4, and the cooling body 81 is deformed. The cooling inside the cooling body 81 is gradually blown out from the ventilation piece 82. The ventilation piece 82 processes the chip 9. The air gradually blows out from the ventilation piece 82, and the ventilation piece 82 processes the chip 9. The rotating shaft 83 is symmetrically arranged with the central axis of the cooling body 81 as the symmetry axis. The rotating shaft 83 and the inner surface of the cooling body 81 are placed vertically. There are four cooling blades 84, and the rotating shaft 83 is symmetrical about the central axis of the cooling body 81. The wind will blow on the cooling blades 84, and the cooling blades 84 will swing. The rotation of the cooling blades 84 accelerates the internal cooling environment, thereby improving the internal cooling effect and accelerating the flow rate of the internal air. The cooling body 81 is connected to the cooling blades 84 through the rotating shaft 83, and the rotating shaft 83 is cylindrical.

[0038] When in use, first check the installation and safety protection of the present invention, then slowly place the device down to the left and right sides of the processing chip 9, so that the chip 9 is located between the two extraction bodies at the bottom of the pick-up and placement block 4, and the hand takes over the metal cover 5 to support it. When operation is required, drag the traction rod 71 in the pick-up and placement device 7 to the rear end to operate, so that the equipment has the effect of automatic processing, realizes the basic conditions of rapid cooling and pick-up and placement, and improves work efficiency.

[0039] When the chip 9 needs to be extracted, since the traction rod 71 is designed in an irregular "L" shape, the traction rod 71 hooks the curved strip 73, and the curved strip 73 moves to the rear end and drags the central shaft 75 to move synchronously. The central shaft 75 is gradually withdrawn from the metal cavity 74, and the metal cavity 74 drives the rope 76 to run. The rope 76 drags the turntable body 77 to run synchronously. The turntable body 77 rotates and meshes with the teeth on the pick-up and placement strip 4. The pick-up and placement strip 4 is gradually rotated counterclockwise by the turntable body 77. When running from bottom to top, the metal cover 5 moves synchronously, the pick-and-place bar 4 moves upward, the pick-and-place bar 4 shovels the left and right sides of the chip 9, and the extraction body at the bottom of the pick-and-place bar 4 moves upward, ensuring that the extraction body on the pick-and-place bar 4 drives the chip 9 to move upward, and the pick-and-place plane gap between the chip 9 and the pick-and-place bar 4 becomes larger and larger, so that the gap at the bottom of the chip 9 can be separated without damage to the maximum extent, thereby achieving the purpose of quickly extracting the chip 9. Compared with the existing technology, it can have a better fine-tuning effect and is more accurate.

[0040] When it is necessary to prevent energy waste of the chip 9, the chip 9 is extracted upward by the extraction body at the bottom of the pick-and-place strip 4. The chip 9 is pressed inside the cooling body 81, and the cooling body 81 is a bellows. The extraction body at the bottom of the pick-and-place strip 4 is displaced to the cooling body 81, and the cooling body 81 and the extraction body form a closed trend to enclose the periphery of the chip 9, so that the internal energy has a protective effect and the purpose of processing is improved.

[0041] When it is necessary to cool the chip 9, the cooling body 81 is continuously squeezed upward by the extraction body at the bottom of the pick-and-place strip 4. The cooling body 81 deforms, and the cooling inside the cooling body 81 gradually blows out from the ventilation part 82. The ventilation part 82 processes the chip 9, thereby causing a certain air-cooling effect on the chip 9, achieving the basic effect of rapid cooling. At the same time, the wind will blow the cooling rotating blade 84, and the cooling rotating blade 84 swings. The cooling rotating blade 84 rotates to accelerate the internal cooling environment, thereby improving the internal cooling effect, accelerating the flow rate of the internal air, and achieving the effect of double cooling. Compared with the cooling equipment in the prior art, it has the effects of simple operation and reasonable design.

[0042] Obviously, the described embodiments are only part of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art and related fields without creative efforts shall fall within the protection scope of the present invention. The structures, devices, and operation methods not specifically described and explained in the present invention, unless otherwise specified and limited, are implemented according to the conventional means in the art.

Claims

1. A cooling device for chip production and manufacturing with a pick-and-place structure, including a support tabletop (1), characterized in that: On the left and right sides of the top of the support tabletop (1), center support plates (2) are fixedly connected, and the center support plates (2) are symmetrically arranged about the central axis of the support tabletop (1). A displacement member (3) is movably connected to the outside of the center support plate (2), and the displacement member (3) penetrates through the inside of the center support plate (2). A pick-and-place strip block (4) is slidably connected to the upper part of the displacement member (3), and the pick-and-place strip block (4) penetrates through the inside of the displacement member (3), and the pick-and-place strip blocks (4) are symmetrically arranged. A metal cover body (5) is fixedly connected to the top of the pick-and-place strip block (4). In the middle of the upper surface of the support tabletop (1), an operating table (6) is fixedly connected. A pick-and-place device (7) is movably connected to the middle of the operating table (6). A cooling device (8) is fixedly connected to the lower surface of the support tabletop (1). A chip (9) is fixedly connected to the bottom end of the cooling device (8). The pick-and-place device (7) includes a traction rod member (71). An adjusting device (72) is rotatably connected to the back of the traction rod member (71). A bent arc strip block (73) is fixedly connected to the front of the traction rod member (71). Center shaft rods (75) are fixedly connected to the left and right sides of the bent arc strip block (73). A metal cavity (74) is arranged on the outer surface of the center shaft rod (75). One end of the center shaft rod (75) far from the traction rod member (71) is fixedly connected to a rope (76). The front of the rope (76) is fixedly connected to the main shaft of a turntable body (77).

2. The cooling device for chip production and manufacturing with a picking and placing structure according to claim 1, characterized in that: The displacement member (3) is placed perpendicular to the center support plate (2), and the center support plate (2) is made of metal stainless steel. The height of the metal cover body (5) is higher than the height of the support tabletop (1).

3. The cooling device for chip production and manufacturing with a picking and placing structure according to claim 1, characterized in that: The textures between the metal cavity (74) and the center shaft rod (75) match each other. The holes in the metal cavity (74) match the outer surface of the center shaft rod (75). There are two metal cavities (74) in total.

4. The cooling device for chip production and manufacturing with a picking and placing structure according to claim 1, characterized in that: The adjusting device (72) further includes a main adjusting member (721). A recessed body (722) is opened at the top of the main adjusting member (721). Linking members (723) are fixedly connected to the left and right sides of the main adjusting member (721), and the linking members (723) are symmetrically arranged about the central axis of the recessed body (722). A center block (724) is fixedly connected to the front of the linking member (723), and the center block (724) is designed in the shape of a cuboid.

5. The cooling device for chip production and manufacturing with a picking and placing structure according to claim 4, characterized in that: There are two linking members (723) in total, and the linking members (723) are made of metal stainless steel. The linking members (723) are perpendicular to the recessed body (722).

6. The cooling device for chip production and manufacturing with a picking and placing structure according to claim 4, characterized in that: The central axes of the center block (724) and the linking member (723) are parallel to each other. The thickness of the linking member (723) is thinner than the thickness of the center block (724).

7. The cooling device for chip production and manufacturing with a picking and placing structure according to claim 1, wherein: The cooling device (8) includes a cooling body (81). A ventilation member (82) is opened inside the cooling body (81), and the ventilation members (82) are evenly distributed. A rotating shaft (83) is fixedly connected to the inner surface of the cooling body (81). A cooling rotating blade (84) is rotatably connected to one end of the rotating shaft (83) far from the ventilation member (82).

8. The cooling device for chip production and manufacturing with a picking and placing structure according to claim 7, characterized in that: The rotating shaft (83) is symmetrically arranged with respect to the central axis of the cooling body (81), the rotating shaft (83) is placed perpendicular to the inner surface of the cooling body (81), and there are four cooling rotating blades (84) in total.

9. The cooling device for chip production and manufacturing with a picking and placing structure according to claim 7, characterized in that: The rotating shaft (83) is symmetric about the central axis of the cooling body (81), the cooling body (81) is connected to the cooling rotating blade (84) through the rotating shaft (83), and the rotating shaft (83) is cylindrical in shape.

Citation Information

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