Chip board cutting device for chip production

By introducing a vacuum cleaner assembly into the chip board cutting device, using a negative pressure fan and connecting pipe to collect the debris and dust generated by the cutting, the problem of the inability to clean the debris and dust in the prior art is solved, and the protection of the electrical performance of the chip board and the cleaning of the working environment is achieved.

CN222819285UActive Publication Date: 2025-05-02HANGZHOU HANGDING ELECTRONIC PROD CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202420812989.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-04-18
Publication Date
2025-05-02
Estimated Expiration
2034-04-18

AI Technical Summary

Technical Problem

Existing chip cutting devices cannot effectively clean up debris and dust generated by cutting, resulting in failure of the chip electrical performance and affecting service life.

Method used

A chip plate cutting device is designed, including a vacuum cleaner assembly, which uses a negative pressure fan to attract and collect the debris and dust generated by the cutting, and transfers it to the collection barrel through a connecting tube.

Benefits of technology

Effectively clean up debris and dust generated by cutting, preventing them from affecting the electrical performance of the chip board, extending the service life of the chip board, while maintaining the working environment clean.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN222819285U_ABST
    Figure CN222819285U_ABST
Patent Text Reader

Abstract

The utility model belongs to the technical field of chip cutting, and particularly relates to a chip board cutting device for chip production. Comprising a bottom plate on which a cutter is arranged; the adjusting assembly is arranged on the bottom plate and used for adjusting the relative position of the cutting device and the chip board; the power assembly is used for providing power to drive the cutter to rotate; the dust collection assembly is arranged on the bottom plate, is matched with the cutting device and is used for collecting chippings and dust generated by cutting; the dust collection assembly comprises supporting plates arranged on the two sides of the adjusting assembly; the collecting barrel is arranged on the supporting plate; the negative-pressure fans are located on the two sides of the cutting device; one end of the connecting pipe is connected with the negative pressure fan, and the other end is connected with the collecting barrel; and the feeding hopper is arranged at the bottom of the negative pressure fan. The utility model provides a chip board cutting device for chip production, which can be used for cleaning scraps and dust generated by cutting.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model belongs to the technical field of chip cutting, and in particular relates to a chip plate cutting device for chip production. Background Art

[0002] Integrated circuits, also known as microcircuits, microchips, wafers or chips in electronics, are a way of miniaturizing circuits and are often manufactured on the surface of semiconductor wafers. When integrated circuit chips are produced, the chips produced at the same time need to be cut during the production process.

[0003] A cutting device for semiconductor chip production and processing with publication number CN213137354U includes a fixing device and a mounting device arranged on the top of the fixing device, the fixing device includes a fixing base plate and fixed sliding columns fixed at the four corners of the top of the fixing base plate, a lifting device is arranged between the mounting device and the fixing device, the lifting device includes a threaded column and a retaining ring fixedly connected to one end of the threaded column, a steering device and a cutting device are arranged in the middle of the mounting plate, the steering device includes a steering motor fixing frame fixed on the mounting plate, and a steering motor is arranged inside the steering motor fixing frame. Although this technology can change the position of the cutting knife to facilitate rapid cutting of the chip, this technology cannot clean up the debris or dust generated by cutting, resulting in the debris and dust adhering to the chip board, causing the electrical performance of the chip board to fail and affecting the service life of the chip board. Utility Model Content

[0004] The utility model aims to solve the above-mentioned technical problems and to provide a chip board cutting device for chip production, which can clean up the debris and dust generated by cutting.

[0005] In view of this, the utility model provides a chip board cutting device for chip production, comprising:

[0006] a bottom plate on which a cutter is provided;

[0007] An adjustment component, disposed on the bottom plate, for adjusting the relative position of the cutter and the chip board;

[0008] A power assembly, used for providing power to drive the cutter to rotate;

[0009] A dust collecting component is arranged on the bottom plate and cooperates with the cutter to absorb the debris and dust generated by cutting;

[0010] The dust collection assembly includes:

[0011] Support plates are arranged on both sides of the adjustment component;

[0012] A collection bucket is arranged on the support plate;

[0013] Negative pressure fans, located on both sides of the cutter;

[0014] A connecting pipe, one end of which is connected to the negative pressure fan, and the other end of which is connected to the collection bucket;

[0015] The feed hopper is arranged at the bottom of the negative pressure fan.

[0016] In the present technical scheme, the base plate is the basis of the device, on which a cutter is arranged, which is used to perform the actual chip board cutting operation, the function of the adjustment component is to adjust the position of the cutter relative to the chip board, through the adjustment component, the operator can control and adjust the position of the cutter to ensure the accuracy and precision of the cutting, the power component provides power to drive the rotational movement of the cutter, it may be electric or provided with driving force by other power sources, so that the cutter can perform the rotational cutting operation, the function of the dust collection component is to collect the debris and dust generated during the cutting process, keep the working environment clean, and prevent these debris and dust from entering the surrounding environment, the support plates are placed on both sides of the adjustment component to provide support and stability for the dust collection component, the collection barrel is arranged above the support plate, and is used to collect and store the debris and dust absorbed from the cutting process, the negative pressure fan is located on both sides of the cutter, and generates negative pressure to absorb the debris and dust in the air, one end of the connecting pipe is connected to the negative pressure fan, and the other end is connected to the collection barrel, which is used to transfer the sucked debris and dust into the collection barrel, and the feed hopper is arranged at the bottom of the negative pressure fan, which is used to guide air and debris into the negative pressure fan.

[0017] During operation, the adjustment component is used to adjust the position of the cutter so that it is properly aligned with the chip board. Once the adjustment is completed, the power component provides power to rotate the cutter to perform the chip board cutting operation. At the same time, the negative pressure fan generates negative pressure to attract air and debris and dust generated by cutting into the feed hopper. The debris and dust are transmitted to the collection bucket through the connecting pipe, thereby collecting the debris and dust generated by cutting to prevent the debris and dust from affecting the chip board and causing the electrical performance of the chip board to fail, keeping the working environment clean and avoiding pollution to the surrounding environment.

[0018] In the above technical solution, further, the adjustment component includes:

[0019] The frame is arranged on the base plate by bolt connection;

[0020] A first motor is arranged on the frame;

[0021] A ball screw is arranged on the output shaft of the first motor;

[0022] A guide frame is arranged on the top of the base plate;

[0023] A fixing plate, arranged on the guide frame;

[0024] The slide plate is slidably arranged on the fixed plate, and the slide plate is threadedly connected to the ball screw.

[0025] In the present technical solution, the frame is set on the base plate by bolt connection, which ensures the stability and fixity of the frame, making it a supporting structure of the adjustment component. The first motor is installed on the frame. The first motor is the power source of this device, and its output shaft is connected to the subsequent ball screw. The ball screw is set on the output shaft of the first motor. When the first motor is running, the ball screw will generate rotational motion. The guide frame is set on the top of the base plate, and the fixed plate is set on the guide frame and is slidably connected to the skateboard. The sliding connection between the skateboard and the fixed plate allows the adjustment component to move in the vertical direction.

[0026] When working, during the operation, the first motor generates rotational motion through the ball screw, and the fixed plate allows the slide plate to slide and adjust in the vertical direction. Therefore, through the rotational motion of the first motor, the slide plate moves along the fixed plate, and the slide plate drives the cutter to adjust its relative position with the chip board to ensure the accuracy and precision of cutting. When adjusting the cutter to align with the chip board, turn off the first motor, so as to adjust the position of the cutter to align with the chip board according to the position of the chip board, thereby facilitating the cutting of the chip board and improving the accuracy and precision of cutting to meet the cutting requirements of different chip boards.

[0027] In any of the above technical solutions, further, the power assembly includes:

[0028] An electric slide rail is arranged on the slide plate;

[0029] The electric slider is slidably arranged on the electric slide rail, and the support plate is fixedly connected to the electric slider;

[0030] A power source is disposed on the electric slider and is used to provide power to drive the cutter to rotate;

[0031] A mounting frame, arranged on the power source;

[0032] A second motor is arranged on the mounting frame, and an output shaft of the second motor is connected to the cutter;

[0033] Among them, the power source can be an electric motor, a gas engine, or a wind power device to achieve the rotation of the cutter.

[0034] In the present technical solution, an electric slide rail is arranged on the slide plate, and this slide rail may be electrically controlled so that it can slide horizontally on the support plate. The electric slider is connected to the support plate, and the electric slider is slidably arranged on the electric slide rail and fixedly connected to the support plate. This design allows the support plate to slide and adjust in the horizontal direction. The power source is arranged on the electric slider to provide power to drive the cutter to rotate. The power source can be various forms of energy, such as electric motors, gas engines, wind power devices, etc. The purpose of this power source is to convert energy and transmit it to the cutter so that it can perform a rotary cutting operation.

[0035] During operation, the electric slide rail and the electric slider work together, so that the electric slider drives the support plate to adjust its position in the horizontal direction. The second motor provides the required power and transmits it to the cutter, causing it to rotate and perform the cutting operation, so that the cutter cuts the chip board. After one side of the chip is cut, the power source is used to drive the cutter to rotate ninety degrees so that the cutter is aligned with the other side of the chip board. The second motor drives the cutter to rotate and cut the other side of the chip board until all four sides of the chip board are cut. The chip is cut off the chip board. In this way, the position of the cutter can be adjusted as needed to meet the requirements of cutting different chip boards.

[0036] In any of the above technical solutions, further, a right workbench is provided at the top of the guide frame, a guide groove is opened on the left side of the top of the guide frame, and a left workbench is slidably provided on the guide groove.

[0037] In the present technical solution, during operation, the position of the left workbench is adjusted according to the length of the chip board. After the left workbench is adjusted to a suitable position along the guide groove, the chip board is placed between the top of the left workbench and the top of the right workbench. Then, driven by the first motor, the slide drives the cutter and the dust collection assembly to move down to contact the chip board. Then the first motor drives the cutter to rotate to cut the chip board. The power source provides power to enable the cutter to adjust the position of the chip board for cutting, thereby smoothly cutting the chip. In this way, the position of the workbench can be adjusted according to the length of the chip board to adapt to chip boards of different lengths.

[0038] In any of the above technical solutions, further, a collecting frame for collecting the cut chips is provided on the top of the bottom plate, the collecting frame is slidably connected to the guide frame, and a handle is provided on the collecting frame.

[0039] In the present technical solution, after the cutter has cut the chip board, the chip detaches from the chip board and falls into the collection frame, which can collect the cut chips. When an appropriate amount of chips are collected in the collection frame, the handle is pulled to drive the collection frame to move to the left along the guide frame. The guide frame can guide the collection frame, making the movement of the collection frame more stable. When the collection frame is moved out, people can collect and process the chips in the collection frame, then put the collection frame back in place, and continue to collect the chips that are subsequently cut. In this way, the cut chips can be collected.

[0040] In any of the above technical solutions, further, a clamping assembly is included, and the clamping assembly includes:

[0041] The cylinder is arranged on the front and rear sides of the top of the bottom plate;

[0042] A push plate, arranged on the piston rod of the cylinder;

[0043] A lifting plate, arranged on the push plate;

[0044] A right positioning plate, arranged between the right sides of the two lifting plates;

[0045] A chute is provided on the lifting plate;

[0046] The left positioning plate is slidably arranged between the slide grooves.

[0047] In the present technical scheme, initially, the cylinder piston rod is in an extended state. When the chip board needs to be cut, the position of the left workbench is adjusted. At the same time, people move the position of the left positioning plate. The slide groove allows the left positioning plate to move on the lifting plate, thereby moving the left positioning plate to a position suitable for the chip board. The chip board is then placed between the top of the left workbench and the top of the right workbench. Then the cylinder is started, the cylinder piston rod is shortened, driving the push plate to move downward, the push plate drives the lifting plate to move downward, and the lifting plate drives the left positioning plate and the right positioning plate to move downward until the positioning plate moves to contact the chip board. The cylinder is closed at the same time, and the chip board is fixed by the left positioning plate and the right positioning plate, so that the chip board is more stable during the cutting process, and the chip board is displaced. When the chip board is cut, the cylinder is started, and the cylinder piston rod extends to drive the push plate to move upward, and the push plate drives the lifting plate to move upward, and the lifting plate drives the left positioning plate and the right positioning plate to move upward. After the left positioning plate and the right positioning plate rise to a suitable position, the cylinder is closed, so that the chip board to be cut can be fixed, the chip board can be prevented from being displaced during the cutting process, and the cutting accuracy of the chip board can be improved.

[0048] In any of the above technical solutions, further, the cutter is a cutting knife, a cutting tool, or a circular blade.

[0049] In the present technical solution, the cutter can be a cutting knife, a cutting tool or a circular blade, and the selection of the cutter depends on the specific cutting needs and design requirements.

[0050] The beneficial effects of the utility model are:

[0051] 1. The negative pressure fan generates negative pressure to draw air and the debris and dust generated by cutting into the feed hopper. The debris and dust are transmitted to the collection bucket through the connecting pipe, so as to collect the debris and dust generated by cutting, prevent the debris and dust from affecting the chip board and causing the electrical performance of the chip board to fail, keep the working environment clean, and avoid pollution to the surrounding environment;

[0052] 2. Through the rotation of the first motor, the slide moves along the fixed plate, and the slide drives the cutter to adjust the relative position with the chip board to ensure the accuracy and precision of cutting. In this way, the position of the cutter to align with the chip board can be adjusted according to the position of the chip board, which is convenient for cutting the chip board and improves the accuracy and precision of cutting to meet the cutting requirements of different chip boards;

[0053] 3. The electric slide rail and the electric slider work together, so that the electric slider drives the support plate to adjust its position in the horizontal direction. The second motor provides the required power to the cutter, so that it rotates to perform the cutting operation, so that the cutter cuts the chip board. The cutter is driven to rotate by the power source to adjust the position of the cutter on the chip board. In this way, the position of the cutter can be adjusted as needed to meet the requirements of cutting different chip boards.

[0054] 4. After the cutter has cut the chip board, the chip is separated from the chip board and falls into the collection frame, which can collect the cut chips. In this way, the cut chips can be collected;

[0055] 5. The cylinder drives the push plate to move downward, the push plate drives the lifting plate to move downward, and the lifting plate drives the left positioning plate and the right positioning plate to move downward until the positioning plate moves to contact the chip board, so that the chip board to be cut can be fixed to prevent the chip board from shifting during the cutting process, thereby improving the cutting accuracy of the chip board;

[0056] 6. The guide groove allows the left workbench to move on the guide frame, thereby adjusting the relative position of the left workbench and the right workbench, and moving the position of the left positioning plate at the same time. The slide groove allows the left positioning plate to move on the lifting plate, thereby moving the left positioning plate to a position that adapts to the chip board, and then placing the chip board between the top of the left and right workbenches. In this way, the position of the workbench and the positioning plate can be adjusted according to the length of the chip board, which is convenient for positioning and supporting chip boards of different lengths. BRIEF DESCRIPTION OF THE DRAWINGS

[0057] Figure 1 It is a three-dimensional structural schematic diagram of the utility model;

[0058] Figure 2 It is a three-dimensional structural schematic diagram of the dust collection component of the utility model;

[0059] The reference numerals in the figure are: 1. bottom plate; 2. cutter; 3. dust suction assembly; 31. support plate; 32. collection bucket; 33. negative pressure fan; 34. connecting pipe; 35. feed hopper; 4. adjustment assembly; 41. frame; 42. first motor; 43. ball screw; 44. guide frame; 45. fixing plate; 46. slide plate; 5. power assembly; 51. electric slide rail; 52. electric slider; 53. power source; 54. mounting frame; 56. second motor; 61. right workbench; 62. guide groove; 63. left workbench; 7. collection frame; 71. handle; 8. clamping assembly; 81. cylinder; 82. push plate; 83. lifting plate; 84. right positioning plate; 85. slide groove; 86. left positioning plate. DETAILED DESCRIPTION

[0060] The following will be combined with the drawings in the embodiments of the present application to clearly describe the technical solutions in the embodiments of the present application. Obviously, the described embodiments are part of the embodiments of the present application, rather than all the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments in the present application belong to the scope of protection of this application.

[0061] In the description of the present application, it should be noted that the terms used here are only for describing specific embodiments, and are not intended to limit the exemplary embodiments according to the present application. For ease of description, the sizes of the various parts shown in the drawings are not drawn according to the actual proportional relationship. The technology, methods and equipment known to ordinary technicians in the relevant field may not be discussed in detail, but in appropriate cases, the technology, methods and equipment should be regarded as part of the authorization specification. In all examples shown and discussed here, any specific value should be interpreted as merely exemplary, rather than as a limitation. Therefore, other examples of the exemplary embodiments may have different values. It should be noted that similar numbers and letters represent similar items in the following drawings, so once an item is defined in one drawing, it does not need to be further discussed in subsequent drawings.

[0062] Embodiment 1:

[0063] like Figure 1 and Figure 2 As shown, this embodiment provides a chip board cutting device for chip production, comprising:

[0064] A bottom plate 1, on which a cutter 2 is provided;

[0065] An adjustment component 4, disposed on the bottom plate 1, for adjusting the relative position of the cutter 2 and the chip board;

[0066] A power assembly 5, used for providing power to drive the cutter 2 to rotate;

[0067] The dust collecting component 3 is arranged on the bottom plate 1 and cooperates with the cutter 2 to absorb the debris and dust generated by cutting;

[0068] The dust collection assembly 3 comprises:

[0069] Support plates 31 are arranged on both sides of the adjustment assembly 4;

[0070] The collecting barrel 32 is disposed on the supporting plate 31;

[0071] Negative pressure fans 33, located on both sides of the cutter 2;

[0072] A connecting pipe 34, one end of which is connected to the negative pressure fan 33, and the other end of which is connected to the collecting barrel 32;

[0073] The feed hopper 35 is disposed at the bottom of the negative pressure fan 33 .

[0074] In the present technical solution, the base plate 1 is the basis of the device, on which a cutter 2 is arranged, and the cutter 2 is used to perform the actual chip board cutting operation. The function of the adjustment component 4 is to adjust the position of the cutter 2 relative to the chip board. Through the adjustment component 4, the operator can control and adjust the position of the cutter 2 to ensure the accuracy and precision of the cutting. The power component 5 provides power to drive the rotation of the cutter 2, which may be electric or provided by other power sources 53, so that the cutter 2 can perform the rotational cutting operation. The function of the dust collection component 3 is to collect the debris and dust generated during the cutting process to maintain the working environment. Clean and prevent these debris and dust from entering the surrounding environment, support plates 31 are placed on both sides of the adjustment component 4 to provide support and stability for the dust collection component 3, and a collecting bucket 32 ​​is arranged above the support plate 31 for collecting and storing debris and dust absorbed from the cutting process. A negative pressure fan 33 is located on both sides of the cutter 2 to generate negative pressure to absorb debris and dust in the air. One end of the connecting pipe 34 is connected to the negative pressure fan 33, and the other end is connected to the collecting bucket 32 ​​for transferring the sucked debris and dust into the collecting bucket 32. A feed hopper 35 is arranged at the bottom of the negative pressure fan 33 for guiding air and debris into the negative pressure fan 33.

[0075] During operation, the adjustment component 4 is used to adjust the position of the cutter 2 so that it is correctly aligned with the chip board. Once the adjustment is completed, the power component 5 provides power to rotate the cutter 2 to perform the chip board cutting operation. At the same time, the negative pressure fan 33 generates negative pressure to attract air and debris and dust generated by cutting into the feed hopper 35. The debris and dust are transmitted to the collection barrel 32 through the connecting pipe 34, thereby collecting the debris and dust generated by cutting to prevent the debris and dust from affecting the chip board and causing the electrical performance of the chip board to fail, keeping the working environment clean and avoiding pollution to the surrounding environment.

[0076] Embodiment 2:

[0077] This embodiment provides a chip plate cutting device for chip production, which, in addition to the technical solutions of the above embodiments, also has the following technical features.

[0078] like Figure 1 As shown, in this embodiment, the adjustment component 4 is optimized to include:

[0079] The frame 41 is arranged on the bottom plate 1 by bolt connection;

[0080] A first motor 42 is disposed on the frame 41;

[0081] The ball screw 43 is arranged on the output shaft of the first motor 42;

[0082] A guide frame 44 is disposed on the top of the base plate 1;

[0083] A fixing plate 45 is disposed on the guide frame 44;

[0084] The slide plate 46 is slidably disposed on the fixed plate 45 , and the slide plate 46 is threadedly connected to the ball screw 43 .

[0085] In the present technical solution, the frame 41 is arranged on the base plate 1 by bolt connection, which ensures the stability and fixity of the frame 41, making it a supporting structure of the adjustment component 4. The first motor 42 is installed on the frame 41. The first motor 42 is the power source 53 of this device, and its output shaft is connected to the subsequent ball screw 43. The ball screw 43 is arranged on the output shaft of the first motor 42. When the first motor 42 is running, the ball screw 43 will generate rotational motion. The guide frame 44 is arranged on the top of the base plate 1, and the fixed plate 45 is arranged on the guide frame 44 and is slidably connected to the slide plate 46. The sliding connection between the slide plate 46 and the fixed plate 45 allows the adjustment component 4 to move in the vertical direction.

[0086] When working, during the operation, the first motor 42 generates a rotational motion through the ball screw 43, and the fixed plate 45 allows the slide plate 46 to slide and adjust in the vertical direction. Therefore, through the rotational motion of the first motor 42, the slide plate 46 moves along the fixed plate 45, and the slide plate 46 drives the cutter 2 to adjust the relative position with the chip board to ensure the accuracy and precision of the cutting. When adjusting the cutter 2 to align with the chip board, turn off the first motor 42, so that the position of the cutter 2 to align with the chip board can be adjusted according to the position of the chip board, which is convenient for cutting the chip board and improves the accuracy and precision of the cutting to meet the cutting requirements of different chip boards.

[0087] like Figure 1 and Figure 2 As shown, in this embodiment, the power assembly 5 is optimized to include:

[0088] An electric slide rail 51 is disposed on the slide plate 46;

[0089] The electric slider 52 is slidably disposed on the electric slide rail 51, and the support plate 31 is fixedly connected to the electric slider 52;

[0090] A power source 53 is disposed on the electric slider 52 and is used to provide power to drive the cutter 2 to rotate;

[0091] A mounting frame 54, disposed on the power source 53;

[0092] A second motor 56 is disposed on the mounting frame 54, and an output shaft of the second motor 56 is connected to the cutter 2;

[0093] The power source 53 may be an electric motor, a gas engine, or a wind power device to realize the rotation of the cutter 2 .

[0094] In the present technical solution, an electric slide rail 51 is arranged on the slide plate 46. This slide rail may be electrically controlled so that it can slide horizontally on the support plate 31. An electric slider 52 is connected to the support plate 31. The electric slider 52 is slidably arranged on the electric slide rail 51 and fixedly connected to the support plate 31. This design allows the support plate 31 to slide and adjust in the horizontal direction. A power source 53 is arranged on the electric slider 52 to provide power to drive the cutter 2 to rotate. The power source 53 can be various forms of energy, such as an electric motor, a gas engine, a wind power device, etc. The purpose of this power source 53 is to convert energy and transmit it to the cutter 2 so that it can perform a rotary cutting operation.

[0095] During operation, the electric slide rail 51 and the electric slider 52 work together, so that the electric slider 52 drives the support plate 31 to adjust its position in the horizontal direction, and the second motor 56 provides the required power and transmits it to the cutter 2, so that it rotates to perform the cutting operation, so that the cutter 2 cuts the chip board. After one side of the chip is cut, the power source 53 is used to drive the cutter 2 to rotate ninety degrees so that the cutter 2 is aligned with the other side of the chip board. The second motor 56 drives the cutter 2 to rotate and cut the other side of the chip board until all four sides of the chip board are cut. The chip is cut off from the chip board. In this way, the position of the cutter 2 can be adjusted as needed to meet the requirements of cutting different chip boards.

[0096] like Figure 1 As shown, in this embodiment, it is optimized that a right workbench 61 is provided on the top of the guide frame 44, a guide groove 62 is opened on the left side of the top of the guide frame 44, and a left workbench 63 is slidably provided on the guide groove 62.

[0097] In the present technical solution, during operation, the position of the left workbench 63 is adjusted according to the length of the chip board. After the left workbench 63 is adjusted to a suitable position along the guide groove 62, the chip board is placed between the left workbench 63 and the top of the right workbench 61. Then, driven by the first motor 42, the slide plate 46 drives the cutter 2 and the dust suction assembly 3 to move down to contact the chip board. Then, the first motor 42 drives the cutter 2 to rotate to cut the chip board. The power source 53 provides power to enable the cutter 2 to adjust the position of the chip board for cutting, thereby smoothly cutting the chip. In this way, the position of the workbench can be adjusted according to the length of the chip board to adapt to chip boards of different lengths.

[0098] like Figure 1 As shown, in this embodiment, it is optimized that a collecting frame 7 for collecting the cut chips is provided on the top of the bottom plate 1 , the collecting frame 7 is slidably connected to the guide frame 44 , and a handle 71 is provided on the collecting frame 7 .

[0099] In the present technical solution, after the cutter 2 has cut the chip board, the chip detaches from the chip board and falls into the collection frame 7. The collection frame 7 can collect the cut chips. When an appropriate amount of chips are collected in the collection frame 7, the handle 71 is pulled to drive the collection frame 7 to move to the left along the guide frame 44. The guide frame 44 can guide the collection frame 7, making the movement of the collection frame 7 more stable. When the collection frame 7 is moved out, people can collect and process the chips in the collection frame 7, and then put the collection frame 7 back to its original position and continue to collect the chips cut subsequently. In this way, the cut chips can be collected.

[0100] like Figure 1 As shown, in this embodiment, the optimization further includes a clamping assembly 8, and the clamping assembly 8 includes:

[0101] The cylinder 81 is arranged on the front and rear sides of the top of the bottom plate 1;

[0102] A push plate 82 is provided on the piston rod of the cylinder 81;

[0103] A lifting plate 83 is disposed on the push plate 82;

[0104] The right positioning plate 84 is arranged between the right sides of the two lifting plates 83;

[0105] A chute 85 is provided on the lifting plate 83;

[0106] The left positioning plate 86 is slidably disposed between the sliding grooves 85 .

[0107] In the present technical solution, initially, the piston rod of the cylinder 81 is in an extended state. When the chip board needs to be cut, the position of the left workbench 63 is adjusted. At the same time, people move the position of the left positioning plate 86. The slide groove 85 allows the left positioning plate 86 to move on the lifting plate 83, thereby moving the left positioning plate 86 to a position suitable for the chip board. Then, the chip board is placed between the left workbench 63 and the top of the right workbench 61. Then, the cylinder 81 is started, and the piston rod of the cylinder 81 is shortened, driving the push plate 82 to move downward, and the push plate 82 drives the lifting plate 83 to move downward, and the lifting plate 83 drives the left positioning plate 86 and the right positioning plate 84 to move downward until the positioning plates move to contact with the chip board. When the chip board is cut, the cylinder 81 is closed and the chip board is fixed by the left positioning plate 86 and the right positioning plate 84, so that the chip board is more stable during the cutting process, and the chip board is displaced. When the chip board is cut, the cylinder 81 is started, and the piston rod of the cylinder 81 is extended to drive the push plate 82 to move upward, and the push plate 82 drives the lifting plate 83 to move upward, and the lifting plate 83 drives the left positioning plate 86 and the right positioning plate 84 to move upward. After the left positioning plate 86 and the right positioning plate 84 rise to a suitable position, the cylinder 81 is closed. In this way, the chip board to be cut can be fixed, the chip board can be prevented from being displaced during the cutting process, and the cutting accuracy of the chip board can be improved.

[0108] like Figure 1 and Figure 2 As shown, in this embodiment, the cutter 2 is optimized to be a cutting knife, a cutting tool, or a circular blade.

[0109] In the present technical solution, the cutter 2 can be a cutting knife, a cutting tool or a circular blade, and the selection of the cutter 2 depends on the specific cutting needs and design requirements.

[0110] The embodiments of the present application are described above in conjunction with the accompanying drawings. In the absence of conflict, the embodiments in the present application and the features in the embodiments can be combined with each other. The present application is not limited to the above-mentioned specific implementation methods. The above-mentioned specific implementation methods are merely illustrative and not restrictive. Under the guidance of the present application, ordinary technicians in this field can also make many forms without departing from the purpose of the present application and the scope of protection of the claims, all of which are within the protection of the present application.

Claims

1. A chip sheet cutting device for chip production, characterized in that: include: A bottom plate (1) on which a cutter (2) is provided; An adjustment component (4) is arranged on the bottom plate (1) and is used to adjust the relative position of the cutter (2) and the chip board; A power assembly (5) for providing power to drive the cutter (2) to rotate; A dust collecting assembly (3) is arranged on the bottom plate (1) and cooperates with the cutter (2) to absorb debris and dust generated by cutting; The dust collection component (3) comprises: Support plates (31) are arranged on both sides of the adjustment assembly (4); A collecting bucket (32) is arranged on the supporting plate (31); Negative pressure fans (33) are located on both sides of the cutter (2); A connecting pipe (34), one end of which is connected to the negative pressure fan (33), and the other end of which is connected to the collecting bucket (32); The feed hopper (35) is arranged at the bottom of the negative pressure fan (33).

2. A chip sheet cutting device for chip production according to claim 1, characterized in that: The regulating component (4) comprises: A frame (41) is arranged on the base plate (1) by means of bolt connection; A first motor (42) is arranged on the frame (41); A ball screw (43) is arranged on the output shaft of the first motor (42); A guide frame (44) is arranged on the top of the base plate (1); A fixing plate (45) is arranged on the guide frame (44); A slide plate (46) is slidably disposed on the fixed plate (45), and the slide plate (46) is threadedly connected to the ball screw (43).

3. A chip sheet cutting device for chip production according to claim 2, characterized in that: The power assembly (5) comprises: An electric slide rail (51) is arranged on the slide plate (46); An electric slider (52) is slidably arranged on the electric slide rail (51), and the support plate (31) is fixedly connected to the electric slider (52); A power source (53) is arranged on the electric slider (52) and is used to provide power to drive the cutter (2) to rotate; A mounting frame (54) is arranged on the power source (53); A second motor (56) is disposed on the mounting frame (54), and an output shaft of the second motor (56) is connected to the cutter (2); The power source (53) may be an electric motor, a gas engine, or a wind power device to achieve the rotation of the cutter (2).

4. A chip sheet cutting device for chip production according to claim 2, characterized in that: A right working platform (61) is provided on the top of the guide frame (44), a guide groove (62) is provided on the left side of the top of the guide frame (44), and a left working platform (63) is slidably provided on the guide groove (62).

5. A chip sheet cutting device for chip production according to claim 2, characterized in that: A collection frame (7) for collecting the cut chips is provided on the top of the bottom plate (1); the collection frame (7) is slidably connected to the guide frame (44); and a handle (71) is provided on the collection frame (7).

6. A chip sheet cutting device for chip production according to claim 1, characterized in that: Also included is a clamping assembly (8), the clamping assembly (8) comprising: The cylinder (81) is arranged on the front and rear sides of the top of the bottom plate (1); A push plate (82) is arranged on the piston rod of the cylinder (81); A lifting plate (83) is disposed on the push plate (82); A right positioning plate (84), arranged between the right sides of the two lifting plates (83); A slide groove (85) is provided on the lifting plate (83); The left positioning plate (86) is slidably arranged between the sliding grooves (85).

7. A chip sheet cutting device for chip production according to claim 1, characterized in that: The cutter (2) is a cutting knife, a cutting tool, or a circular blade.

Citation Information

Patent Citations

  • Cutting device for semiconductor chip production and processing

    CN213137354U