Centralized intelligent control system for Czochralski silicon single crystal furnace

The integrated intelligent control system of the Czochralski silicon single crystal furnace solves the problems of material surface defects and dimensional accuracy during the trimming process, realizes integrated feeding, counting and diversion of materials, and improves the trimming efficiency and accuracy of single crystal silicon rods.

CN117161924BActive Publication Date: 2025-10-28乌海市京运通新材料科技有限公司
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Patent Information

Application Number
CN202311060729.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-08-22
Publication Date
2025-10-28
Estimated Expiration
2043-08-22

AI Technical Summary

Technical Problem

Existing Czochralski single-crystal silicon rods suffer from surface defects and dimensional accuracy issues during the trimming process, and the trimming parameters are not accurately controlled, affecting the quality and dimensional accuracy of the single-crystal silicon rods.

Method used

A centralized intelligent control system for a Czochralski silicon single crystal furnace was designed, including a combing mechanism and a processing rack. Through the coordinated work of components such as a guide frame, limit plate, cylinder, belt, counter, and grinding disc, the system realizes integrated feeding, counting, combing, and trimming of materials, automatically allocates workload, and performs precise cutting and grinding operations.

Benefits of technology

It enables the individual transfer and counting of materials, automatically allocates appropriate workload, ensures the surface quality and dimensional accuracy of single crystal silicon rods, and improves trimming efficiency and accuracy.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention discloses a centralized intelligent control system for a Czochralski silicon single crystal furnace, specifically relating to the field of single crystal silicon production technology. The system includes a main unit equipped with a combing mechanism, which includes a material guide frame positioned on the top side of the main unit and a supporting mounting box. This invention enables integrated material feeding by transferring materials one by one to a first reinforcing frame. Simultaneously, a counter counts the material flow during transport, automatically allocating appropriate workloads based on worker skill levels. This reduces labor intensity and prevents vicious cycles that could negatively impact regional production capacity. The system also allows for diverse material diversion during operation, offering both convenience and practicality.
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Description

Technical Field

[0001] This invention relates to the field of monocrystalline silicon production technology, and more specifically, to a centralized intelligent control system for Czochralski silicon monocrystalline furnaces. Background Technology

[0002] The Czochralski (CZ) process for growing monocrystalline silicon includes steps such as monocrystalline silicon preparation, crucible loading, forming, heating, crystal pulling, and finishing. The entire production process can be roughly divided into the following steps: Preparation of monocrystalline silicon raw materials: Due to the high cost of monocrystalline silicon, the process generally uses recycled silicon as raw material. First, the silicon material is cleaned, crushed, and sieved to obtain the powder needed for preparing monocrystalline silicon. Crucible loading: The monocrystalline silicon raw material is loaded into the crucible, and vibration is used to remove air and impurities. Forming: The crucible is placed in a forming machine, where vibration and pressure compress the monocrystalline silicon raw material into a "monocrystalline rod" resembling a matchstick. Heating: The formed monocrystalline silicon rod is placed in a heating furnace for high-temperature treatment. At high temperatures, the monocrystalline silicon rod gradually melts, forming liquid silicon. Crystal pulling: The molten monocrystalline silicon rod is removed and pulled using a crystal pulling machine. Under the action of the crystal pulling machine, the monocrystalline silicon rod is gradually stretched into a monocrystalline silicon cylinder. Trimming: Cut the monocrystalline silicon cylinders pulled out by the crystal pulling machine into the required length and trim their surface and dimensions;

[0003] For example, there are issues with surface quality and dimensional accuracy in the current finishing process. During the crystal pulling process, some defects and flaws may appear on the surface of the Czochralski single crystal silicon rod, which need to be treated in the subsequent finishing process. At the same time, it is also necessary to accurately control the parameters of the finishing machine to ensure that the dimensional accuracy of the single crystal silicon rod meets the requirements. Summary of the Invention

[0004] In order to overcome the above-mentioned defects of the prior art, the present invention provides a centralized intelligent control system for Czochralski silicon single crystal furnace, which aims to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a centralized control intelligent system for a Czochralski silicon single crystal furnace, including a host computer, wherein a combing mechanism is provided on the host computer;

[0006] The combing mechanism includes:

[0007] A guide frame for guiding materials, the guide frame being disposed on one side of the top of the main unit;

[0008] A support mounting box is provided on one side of the main unit and is connected to the guide frame.

[0009] An upper support block that can move up and down is disposed inside a mounting box;

[0010] Several top plates arranged in a stepped manner for guiding materials, and each of the top plates is located on one side of the upper support block;

[0011] Several limiting plates arranged in a stepped manner for guiding materials, and each of the limiting plates is located between two adjacent top plates;

[0012] A support pin is provided at the top of the inner cavity of the mounting box;

[0013] A pressure bar for pressing material, the pressure bar being mounted on a shaft pin and movably connected to the shaft pin via the shaft pin;

[0014] A cylinder for driving is disposed at the bottom of the inner cavity of the mounting box, and the output end of the cylinder extends to the bottom of the upper support block and is detachably connected to the upper support block by bolts.

[0015] One end of the pivot pin extends to the top side of the first reinforcing frame;

[0016] As can be seen, in the above technical solution, the material is introduced into the guide frame and rolls down the inclined surface of the guide frame into the installation box. The material first falls between the bottom limit plate and the top plate after being blocked by the bottom limit plate. Then, the upper support block is driven to move upward by the cylinder. When the upper support block moves upward, it will drive multiple top plates to move upward at the same time. Through the various limit plates and top plates that are set in a stepped manner, the material can be transferred to the first reinforcing frame one by one, which is convenient for integrated feeding of the material.

[0017] A first reinforcing frame for conveying materials is disposed on one side of the top of the mounting box;

[0018] A second reinforcing frame for conveying materials is disposed on one side of the first reinforcing frame;

[0019] Two mounting brackets for misalignment, and each of the mounting brackets is located on the side of the first reinforcing frame facing the second reinforcing frame;

[0020] Two support blocks that can move up and down are provided, and each support block is respectively set in a corresponding mounting frame and slidably connected to the mounting frame;

[0021] A baffle that can move up and down is disposed on the top of the support block;

[0022] Two toothed grooves for linkage, and each toothed groove is respectively opened on the corresponding support block;

[0023] Two gears for linkage, and each gear is respectively installed in a corresponding mounting bracket;

[0024] Each gear meshes with a corresponding tooth groove, and both gears are on the same axis and are movably connected to the first reinforcing frame. A motor for driving the gears to rotate is provided at one end of the first reinforcing frame.

[0025] Two belts for guiding materials, and each belt is respectively disposed in a first reinforcing frame and a second reinforcing frame;

[0026] An arc-shaped groove for misalignment, the arc-shaped groove being formed on the belt to which the second reinforcing frame belongs;

[0027] Several guide plates for separating materials, and each pair of guide plates is set at one end of the corresponding pallet;

[0028] Two counters for counting sensing, and each of the second reinforcing frames is respectively disposed on one side of the top of the corresponding first and second reinforcing frames;

[0029] As can be seen, in the above technical solution, when the material is on the first reinforcing frame, it will first fall into the belt of the first reinforcing frame through the baffle. The material is then conveyed by the rotation of the belt in the first reinforcing frame. At the same time, the material is counted by a counter. When the amount of material is too large, the motor at one end of the first reinforcing frame starts to drive two gears to rotate. The gears mesh with the tooth grooves, so that the tooth grooves can be displaced downward due to the traction force of the gear rotation. This allows the baffle to be stored in the first reinforcing frame. Then, the material pushed out by the top plate rolls down onto the belt of the second reinforcing frame because it loses the baffle limit. It is then limited by the arc groove. The belt in the second reinforcing frame rotates to realize the safe conveying of material in the opposite direction to the material conveyed in the first reinforcing frame, realizing the function of sorting the material and automatically allocating an appropriate amount of work according to the skill level of the workers.

[0030] Two pallets for cutting and grinding materials, each pallet being disposed at the end of a first reinforcing frame and a second reinforcing frame, and the two pallets being disposed opposite to each other;

[0031] Two processing racks for support, each of which is respectively mounted on top of a corresponding tray;

[0032] Two rotatable shafts, each of which is respectively located at the top of the inner cavity of the corresponding processing rack;

[0033] Several elastic clamping blocks for clamping materials, and each pair of elastic clamping blocks is respectively arranged on the outside of the corresponding rotating shaft;

[0034] Two grinding discs for cutting and grinding materials, and each grinding disc is respectively set on a corresponding processing rack;

[0035] Each of the grinding discs is located on the same axis and is coaxially connected to the corresponding rotating shaft.

[0036] Several unloading ramps are provided, and each of the unloading ramps is respectively arranged on both sides of the corresponding support plate;

[0037] A plurality of electric push rods for driving, and each of the electric push rods is respectively disposed on one side of the top of the corresponding feeding ramp, and the electric push rods are mounted on the processing frame;

[0038] Several feeding inclined blocks for feeding materials, with a vertical cross-sectional shape of triangular, and each feeding inclined block is respectively set on one side of the top of the corresponding feeding inclined plate;

[0039] The output end of each electric push rod passes through the processing frame and extends to the corresponding unloading inclined block, and is detachably connected to the unloading inclined block.

[0040] Two motors are respectively installed on the side of the two processing racks away from the electric push rod, and the output end of each motor passes through the two processing racks and the grinding disc and extends to the rotating shaft and is detachably connected to the rotating shaft. The output end of the motor is movably connected to the grinding disc.

[0041] Sensors for sensing are respectively provided at the bottom of the two trays and in the middle of the first and second reinforcing frames;

[0042] As can be seen, in the above technical solution, when the material is conveyed into the processing rack, it first gets stuck in the elastic clamping block. The rotating shaft driven by the motor moves the material along the axis of the rotating shaft, so that one end of the material can contact the grinding disc to trim the end of the material. At the same time, the electric push rods on both sides of the processing rack are activated, driving each feeding inclined block to move and extend to one end of the material inside the elastic clamping block. The material is pulled by the force of the feeding inclined block and falls out of the elastic clamping block through the triangular inclined surface of the feeding inclined block and falls into each feeding inclined plate, which facilitates the diversion of the material again.

[0043] The technical effects and advantages of this invention are as follows:

[0044] 1. In this invention, the material is introduced into the guide frame, and the material rolls down the inclined surface of the guide frame into the mounting box. The material first falls between the bottom limit plate and the top plate through the bottom limit plate and the top plate. Through the various limit plates and top plates arranged in a stepped manner, the material can be transferred one by one to the first reinforcing frame, which facilitates the integrated feeding of the material.

[0045] 2. When the material is on the first reinforcing frame, it will first fall into the belt of the first reinforcing frame through the baffle, so as to avoid confusion when the material is diverted. The material is conveyed by the rotation of the belt in the first reinforcing frame, and the material is counted by a counter.

[0046] 3. When the quantity of materials is excessive, the motor at one end of the first reinforcing frame drives two gears to rotate. The gears mesh with the tooth grooves so that the baffle can be stored inside the first reinforcing frame. Then, the materials pushed out by the top plate roll down onto the belt of the second reinforcing frame because they are no longer limited by the baffle. The belt inside the second reinforcing frame rotates to realize the safe conveying of materials in the opposite direction to the conveying of materials inside the first reinforcing frame, thereby realizing the function of sorting materials and automatically allocating an appropriate amount of work according to the skill level of the workers.

[0047] 4. When the material is conveyed into the processing rack, it is first inserted into the elastic clamping block. The rotating shaft driven by the motor rotates, causing the material to move along the axis of the rotating shaft. At the same time, one end of the material can contact the grinding disc to trim the end of the material.

[0048] 5. When the material is being processed in the processing rack, the electric push rods on both sides of the processing rack are activated to drive each feeding inclined block to move and extend to one end of the material inside the elastic clamping block. This allows the material to fall out of the elastic clamping block and into each feeding inclined plate through the traction force of the feeding inclined block's displacement and the triangular inclined surface of the feeding inclined block, facilitating the further diversion of the material.

[0049] In summary, the overall design is simple and the structure is reasonable. Through the corresponding cooperation of various structures, materials can be transferred one by one to the first reinforcing frame to achieve integrated material feeding. At the same time, a counter counts the material conveying process and automatically allocates an appropriate amount of workload according to the skill level of the workers. Furthermore, the material is pulled by the displacement of the feeding inclined block and falls from the elastic clamping block through the triangular inclined surface of the feeding inclined block and falls into the various feeding inclined plates, which facilitates the further diversion of the material. This allows the device to achieve diverse material diversion during use, making it convenient and practical at the same time. Attached Figure Description

[0050] To more clearly illustrate the technical solutions in this disclosure, the accompanying drawings used in some embodiments of this disclosure will be briefly described below. Obviously, the drawings described below are only drawings of some embodiments of this disclosure, and those skilled in the art can obtain other drawings based on these drawings. In addition, the drawings described below can be regarded as schematic diagrams and are not intended to limit the actual size of the product, the actual flow of the method, the actual timing of the signals, etc. involved in the embodiments of this disclosure.

[0051] Figure 1 This is a schematic diagram of the overall structure of the present invention.

[0052] Figure 2 This is a side view of the overall structure of the present invention.

[0053] Figure 3 This is a cross-sectional view of the overall structure of the present invention.

[0054] Figure 4 This is a front view of the combing mechanism of the present invention.

[0055] Figure 5 This is a front view of a partial structure of the first reinforcing frame of the present invention.

[0056] Figure 6 This is a front view of the processing frame structure of the present invention.

[0057] Figure 7 This is a side view of the processing frame structure of the present invention.

[0058] The attached figures are labeled as follows: 1. Main unit; 101. Guide frame; 102. Mounting box; 103. Upper support block; 104. Top plate; 105. Limiting plate; 106. Shaft pin; 107. Pressure rod; 108. Cylinder;

[0059] 201. First reinforcing frame; 202. Second reinforcing frame; 203. Mounting frame; 204. Support block; 205. Baffle; 206. Tooth groove; 207. Gear; 208. Belt; 209. Arc groove; 210. Guide plate; 211. Counter;

[0060] 3. Pallet; 301. Processing rack; 302. Rotating shaft; 303. Elastic clamping block; 304. Grinding and cutting disc; 305. Feeding slant plate; 306. Electric push rod; 307. Feeding slant block; 308. Motor; 309. Sensor. Detailed Implementation

[0061] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0062] The terms "first," "second," and "third" used in the embodiments of this application are for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, a feature defined as "first," "second," or "third" may explicitly or implicitly include at least one of that feature. In the description of this application, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, system, product, or device that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or devices.

[0063] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a mutually exclusive, independent, or alternative embodiment. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.

[0064] As attached Figure 1-7 The integrated intelligent system of the Czochralski silicon single crystal furnace shown can transfer materials one by one to the first reinforcing frame 2 through the combing mechanism set on the host 1, realize integrated material feeding, and count the material conveying through the counter 210. The system can automatically allocate an appropriate amount of workload according to the skill level of the staff. The specific structural settings of the components are as follows.

[0065] The combing mechanism includes:

[0066] A guide frame 101 for guiding materials is provided on one side of the top of the host machine 1.

[0067] The mounting box 102 for support is located on one side of the main unit 1 and is connected to the guide frame 101.

[0068] An upper support block 103 that can move up and down is installed inside the mounting box 102;

[0069] Several top plates 104 are arranged in a stepped manner for guiding materials, and each top plate 104 is located on one side of the upper support block 103.

[0070] Several limiting plates 105 are arranged in a stepped manner for guiding materials, and each limiting plate 105 is located between two adjacent top plates 104.

[0071] A support pin 106 is provided at the top of the inner cavity of the mounting box 102.

[0072] The pressure bar 107 is used for pressing the material. The pressure bar 107 is mounted on the shaft pin 106 and is movably connected to the shaft pin 106 via the shaft pin.

[0073] A cylinder 108 for driving is disposed at the bottom of the inner cavity of the mounting box 102, and the output end of the cylinder 108 extends to the bottom of the upper support block 103 and is detachably connected to the upper support block 103 by bolts.

[0074] One end of the pivot pin 106 extends to the top side of the first reinforcing frame 2;

[0075] The first reinforcing frame 2 is used for conveying materials and is disposed on one side of the top of the mounting box 102;

[0076] A second reinforcing frame 201 for conveying materials is disposed on one side of the first reinforcing frame 2;

[0077] Two mounting brackets 202 for misalignment, and each mounting bracket 202 is located on the side of the first reinforcing frame 2 facing the second reinforcing frame 201;

[0078] Two support blocks 203 that can move up and down are provided, and each support block 203 is respectively set in the corresponding mounting frame 202 and slidably connected to the mounting frame 202;

[0079] A baffle 204 that can move up and down is provided on the top of the support block 203;

[0080] Two tooth grooves 205 for linkage, and each tooth groove 205 is respectively opened on the corresponding support block 203;

[0081] Two gears 206 for linkage, and each gear 206 is respectively installed in a corresponding mounting bracket 202;

[0082] Each gear 206 meshes with a corresponding tooth groove 205, and both gears 206 are on the same axis and are movably connected to the first reinforcing frame 2. A motor for driving the gears 206 to rotate is provided at one end of the first reinforcing frame 2.

[0083] Two belts 207 for guiding materials, and each belt 207 is respectively installed in the first reinforcing frame 2 and the second reinforcing frame 201;

[0084] The arc-shaped groove 208 for misalignment is formed on the belt 207 to which the second reinforcing frame 201 belongs;

[0085] Several guide plates 209 are used to separate materials, and each pair of guide plates 209 is set at one end of the corresponding tray 3.

[0086] Two counters 210 for counting sensing, and each second reinforcing frame 201 is respectively disposed on one side of the top of the corresponding first reinforcing frame 2 and second reinforcing frame 201;

[0087] Two pallets 3 are used for cutting and grinding materials, and each pallet 3 is respectively located at the end of the first reinforcing frame 2 and the second reinforcing frame 201, with the two pallets 3 arranged opposite each other;

[0088] Two processing racks 301 are used for support, and each processing rack 301 is respectively set on the top of the corresponding tray 3;

[0089] Two rotatable shafts 302 are provided, and each shaft 302 is respectively located at the top of the inner cavity of the corresponding processing rack 301;

[0090] Several elastic clamping blocks 303 are used to clamp materials, and each pair of elastic clamping blocks 303 is respectively arranged on the outside of the corresponding rotating shaft 302.

[0091] Two grinding discs 304 are used to cut and grind materials, and each grinding disc 304 is respectively set on a corresponding processing rack 301;

[0092] Each grinding disc 304 is located on the same axis and is coaxially connected to the corresponding rotating shaft 302.

[0093] Several unloading ramps 305 are provided for unloading, and each unloading ramp 305 is respectively set on both sides of the corresponding support plate 3;

[0094] Several electric push rods 306 are used for driving, and each electric push rod 306 is respectively set on one side of the top of the corresponding feeding inclined plate 305. The electric push rods 306 are mounted on the processing frame 301.

[0095] Several material feeding inclined blocks 307 are used for material feeding and have a vertical cross-sectional shape of triangular, and each material feeding inclined block 307 is respectively set on one side of the top of the corresponding material feeding inclined plate 305;

[0096] Among them, the output end of each electric push rod 306 passes through the processing frame 301 and extends to the corresponding unloading inclined block 307 and is detachably connected to the unloading inclined block 307.

[0097] Two processing racks 301 are respectively provided with motors 308 on the side away from the electric push rod 306, and the output end of each motor 308 passes through the two processing racks 301 and the grinding disc 304 and extends to the rotating shaft 302 and is detachably connected to the rotating shaft 302. The output end of the motor 308 is movably connected to the grinding disc 304.

[0098] Sensors 309 for sensing are respectively provided at the bottom of the two trays 3 and in the middle of the first reinforcing frame 2 and the second reinforcing frame 201.

[0099] According to the above structure, when in use, the staff installs the device in the factory where Czochralski single crystal silicon is produced. When trimming the formed "single crystal silicon cylinder", the staff guides the material into the guide frame 101. The material rolls down the inclined surface of the guide frame 101 onto the mounting box 102. The material first falls between the bottom limit plate 105 and the top plate 104 through the bottom limit plate 105. Then, the upper support block 103 is driven to move upward by the cylinder 108.

[0100] When the upper support block 103 moves upward, it will drive multiple top plates 104 to move upward simultaneously. Through the step-like limit plates 105 and top plates 104, the materials can be transferred one by one to the first reinforcing frame 2, which facilitates integrated feeding of materials.

[0101] When materials are on the first reinforcing frame 2, they first fall through the baffle 204 into the belt 207 of the first reinforcing frame 2. The belt 207 in the first reinforcing frame 2 rotates to transport the materials. At the same time, the counter 210 counts the amount of materials being transported. When there are too many materials, the motor at one end of the first reinforcing frame 2 starts to drive two gears 206 to rotate. The gears 206 mesh with the tooth grooves 205, so that the tooth grooves 205 can be displaced downward due to the traction force of the rotating gears 206. This allows the baffle 204 to be stored in the first reinforcing frame 2. Then, the materials pushed out by the top plate 104 roll down onto the belt 207 of the second reinforcing frame 201 because they are no longer limited by the baffle 204. The arc groove 208 limits them. Then, the belt 207 in the second reinforcing frame 201 rotates to transport materials in the opposite direction to the materials being transported in the first reinforcing frame 2. This realizes the function of sorting materials and automatically allocates an appropriate amount of work according to the skill level of the workers.

[0102] When the material is conveyed into the processing rack 301, it first gets stuck in the elastic clamp 303. The motor 308 drives the rotating shaft 302 to rotate, causing the material to move along the axis of the rotating shaft 302. At the same time, one end of the material can contact the grinding disc 304 to trim the end of the material.

[0103] Simultaneously, the electric push rods 306 on both sides of the processing frame 301 are activated, driving each feeding inclined block 307 to move and extend to one end of the material inside the elastic clamping block 303. This allows the material to fall out of the elastic clamping block 303 and into each feeding inclined plate 305 through the traction force of the feeding inclined block 307's displacement and the triangular inclined surface of the feeding inclined block 307, facilitating the further diversion of the material.

[0104] Unlike existing technologies, this application discloses a centralized intelligent control system for a Czochralski silicon single crystal furnace. Through the coordinated use of various structures, materials can be transferred one by one to the first reinforcing frame 2, realizing integrated material feeding. At the same time, the counter 210 counts the material conveying process and automatically allocates an appropriate workload according to the skill level of the workers. Furthermore, the material is pulled by the displacement of the feeding inclined block 307 and falls from the elastic clamp 303 through the triangular inclined surface of the feeding inclined block 307 and falls into each feeding inclined plate 305, which facilitates the redistribution of the material. This allows for diverse material diversion during use, providing convenience and good practicality.

[0105] The above are merely preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A centralized control intelligent system for a Czochralski silicon single crystal furnace, comprising a host (1), characterized in that: The host (1) is equipped with a combing mechanism; The combing mechanism includes: A guide frame (101) for guiding materials is provided on one side of the top of the host (1); A mounting box (102) for support is provided on one side of the main unit (1), and the mounting box (102) is connected to the guide frame (101); An upper support block (103) that can move up and down is disposed inside the mounting box (102); Several top plates (104) are arranged in a stepped manner for guiding materials, and each of the top plates (104) is located on one side of the upper support block (103); Several limiting plates (105) are arranged in a stepped manner for guiding materials, and each of the limiting plates (105) is located between two adjacent top plates (104); A first reinforcing frame (2) for conveying materials is provided on one side of the top of the mounting box (102); A second reinforcing frame (201) for conveying materials is disposed on one side of the first reinforcing frame (2); Two mounting brackets (202) for misalignment, and each of the mounting brackets (202) is located on the side of the first reinforcing frame (2) facing the second reinforcing frame (201); Two support blocks (203) that can move up and down are provided, and each support block (203) is respectively set in a corresponding mounting frame (202) and slidably connected to the mounting frame (202); A baffle (204) that can move up and down is provided on the top of the support block (203); Two pallets (3) for cutting and grinding materials, and each of the pallets (3) is respectively disposed at the ends of the first reinforcing frame (2) and the second reinforcing frame (201), and the two pallets (3) are disposed opposite to each other; Two processing racks (301) for support, and each processing rack (301) is respectively disposed on the top of the corresponding tray (3); Two rotatable shafts (302) are provided, and each of the shafts (302) is respectively located at the top of the inner cavity of the corresponding processing rack (301); Several elastic clamping blocks (303) for clamping materials, and each pair of elastic clamping blocks (303) is respectively arranged on the outside of the corresponding rotating shaft (302).

2. The centralized control intelligent system for the Czochralski silicon single crystal furnace according to claim 1, characterized in that: The combing mechanism also includes; A support pin (106) is provided at the top of the inner cavity of the mounting box (102); A pressure bar (107) for pressing material is provided on a shaft pin (106) and is movably connected to the shaft pin (106) via a shaft pin; A cylinder (108) for driving is disposed at the bottom of the inner cavity of the mounting box (102), and the output end of the cylinder (108) extends to the bottom of the upper support block (103) and is detachably connected to the upper support block (103) by bolts. One end of the pivot pin (106) extends to the top side of the first reinforcing frame (2).

3. The centralized control intelligent system for the Czochralski silicon single crystal furnace according to claim 1, characterized in that: The combing mechanism also includes; Two tooth grooves (205) for linkage, and each tooth groove (205) is respectively opened on the corresponding support block (203); Two gears (206) for linkage, and each gear (206) is respectively disposed in a corresponding mounting bracket (202); Each gear (206) meshes with a corresponding tooth groove (205), and both gears (206) are on the same axis and are movably connected to the first reinforcing frame (2). One end of the first reinforcing frame (2) is provided with a motor for driving the gears (206) to rotate.

4. The intelligent control system for the Czochralski silicon single crystal furnace according to claim 1, characterized in that: The combing mechanism also includes; Two belts (207) for guiding materials, and each belt (207) is respectively disposed in the first reinforcing frame (2) and the second reinforcing frame (201); An arc-shaped groove (208) for misalignment is provided on the belt (207) to which the second reinforcing frame (201) belongs; Several guide plates (209) for separating materials, and each guide plate (209) is set in pairs at one end of the corresponding tray (3); Two counters (210) for counting sensing, and each of the second reinforcing frames (201) is respectively disposed on one side of the top of the corresponding first reinforcing frame (2) and second reinforcing frame (201).

5. The centralized control intelligent system for the Czochralski silicon single crystal furnace according to claim 1, characterized in that: The combing mechanism also includes; Two grinding discs (304) for cutting and grinding materials, and each of the grinding discs (304) is respectively mounted on a corresponding processing rack (301); Each of the grinding discs (304) is located on the same axis and is coaxially connected to the corresponding rotating shaft (302); Several unloading ramps (305) are provided for unloading, and each of the unloading ramps (305) is respectively arranged on both sides of the corresponding pallet (3).

6. The centralized control intelligent system for the Czochralski silicon single crystal furnace according to claim 5, characterized in that: The combing mechanism also includes; A plurality of electric push rods (306) for driving, and each of the electric push rods (306) is respectively disposed on one side of the top of the corresponding unloading ramp (305), and the electric push rods (306) are mounted on the processing frame (301); Several feeding inclined blocks (307) for feeding materials and with a vertical cross-sectional shape of triangular, and each feeding inclined block (307) is respectively set on one side of the top of the corresponding feeding inclined plate (305); The output end of each of the electric push rods (306) passes through the processing frame (301) and extends to the corresponding unloading sloping block (307), and is detachably connected to the unloading sloping block (307).

7. The centralized control intelligent system for the Czochralski silicon single crystal furnace according to claim 6, characterized in that: Two processing racks (301) are respectively provided with motors (308) on the side away from the electric push rod (306), and the output end of each motor (308) passes through the two processing racks (301) and the grinding disc (304) and extends to the rotating shaft (302) and is detachably connected to the rotating shaft (302). The output end of the motor (308) is movably connected to the grinding disc (304).

8. The intelligent control system for the Czochralski silicon single crystal furnace according to claim 1, characterized in that: Sensors (309) for sensing are respectively provided at the bottom of the two trays (3) and in the middle of the first reinforcing frame (2) and the second reinforcing frame (201).

Citation Information

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