A seed rod centering structure

CN224768921UActive Publication Date: 2026-09-18CHINA ELECTRONICS TECH GRP NO 26 RES INST
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Patent Information

Application Number
CN202522045956.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-23
Publication Date
2026-09-18
Estimated Expiration
2035-09-23

AI Technical Summary

Technical Problem

这类结构存在调中精度低、稳定性差、承载能力有限、操作繁琐和效率低下等问题

Benefits of technology

1、本实用新型通过调节螺钉、调节块和导槽等部件,结合钢珠的定位与导向作用,实现了对籽晶杆径向位置的精确控制,可将偏摆幅度稳定控制在0.1mm以内。能力有效避免因偏心生长导致的晶体缺陷。同时,采用“锁紧螺母+筒夹”的抱夹设计和弹簧预紧结构,能确保连接在高速旋转及长周期生长过程中的极度可靠性与防松动性,能从根本上保障晶体生长过程的稳定性和一致性。

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Abstract

The utility model discloses a single crystal growth technical field, specifically discloses a seed crystal rod centering structure, this centering structure includes motor, upper connecting mechanism, adjusting mechanism, lower connecting mechanism and seed crystal rod, motor shaft vertical setting, upper connecting mechanism sets up below motor shaft and is connected with motor shaft, adjusting mechanism sets up below upper connecting mechanism and is connected with upper connecting mechanism, lower connecting mechanism sets up below adjusting mechanism and is connected with adjusting mechanism, seed crystal rod vertical setting below lower connecting mechanism and is connected with lower connecting mechanism, adjusting mechanism is used for adjusting the position of seed crystal rod, makes seed crystal rod and motor shaft concentricity setting. The utility model discloses the centering precision is high, and stability is good, and the bearing capacity is strong, and the operation is convenient, can effectively improve the efficiency of single crystal growth.
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Description

Technical Field

[0001] This invention belongs to the field of single crystal growth technology, specifically relating to a seed crystal rod centering structure. Background Technology

[0002] Single crystal growth is a fundamental material preparation process in high-end technology fields such as semiconductors, optics, and lasers, and its quality directly affects the performance and reliability of devices. In single crystal growth equipment, the seed crystal rod, as a key component guiding the directional growth of the crystal, has a decisive influence on the crystallization rate, lattice integrity, and defect density due to its concentricity with the rotation axis (i.e., "centering").

[0003] In traditional single crystal growth equipment, the seed crystal rod is usually connected to the motor rotation shaft via a simple mechanical connection. Centering often relies on manual experience, with rough adjustments made using simple structures such as shims and screws. This type of structure suffers from problems such as low centering accuracy, poor stability, limited load-bearing capacity, cumbersome operation, and low efficiency. Utility Model Content

[0004] In view of the above-mentioned shortcomings of the existing technology, the purpose of this utility model is to provide a seed crystal rod centering structure. This utility model has high centering accuracy, good stability, strong load-bearing capacity, and is easy to operate, which can effectively improve the efficiency of single crystal growth.

[0005] The technical solution of this utility model is implemented as follows: A seed crystal rod centering structure includes a motor, an upper connecting mechanism, an adjusting mechanism, a lower connecting mechanism, and a seed crystal rod. The motor shaft is vertically arranged. The upper connecting mechanism is located below the motor shaft and connected to it. The adjusting mechanism is located below the upper connecting mechanism and connected to it. The lower connecting mechanism is located below the adjusting mechanism and connected to it. The seed crystal rod is vertically arranged below the lower connecting mechanism and connected to it. The adjusting mechanism is used to adjust the position of the seed crystal rod so that the seed crystal rod is concentrically aligned with the motor shaft.

[0006] The upper connecting mechanism includes a horizontally arranged connecting plate and an upper connecting rod vertically arranged above the connecting plate. The lower end of the upper connecting rod is fixedly connected to the center of the connecting plate, and the upper end of the upper connecting rod is connected to the lower end of the motor shaft. A plurality of first connecting holes are evenly distributed on the connecting plate.

[0007] The lower connecting mechanism includes a horizontally arranged circular moving plate and a vertically arranged lower connecting rod below the moving plate. The upper end of the lower connecting rod is fixedly connected to the center of the moving plate, and the lower end of the lower connecting rod is connected to the upper end of the seed crystal rod. Several springs are provided between the moving plate and the connecting disk, and all springs are evenly distributed along the circumference. The lower surface of the moving plate is an inclined plane that slopes outward and upward from the center of the moving plate, and several guide grooves are provided on the lower surface of the moving plate. All guide grooves are evenly distributed and arranged radially along the moving plate.

[0008] The adjustment mechanism includes a horizontally arranged circular support plate and a vertically arranged connecting cylinder above the support plate. The lower end of the connecting cylinder is fixedly connected to the support plate. A second connecting hole corresponding to the first connecting hole of the connecting plate is provided above the connecting cylinder to facilitate fixing the connecting plate and the connecting cylinder with fixing screws. The support plate has a through hole in the center for the lower connecting rod to pass through. The through hole is larger than the lower connecting rod. The support plate has an adjustment block corresponding to the guide groove. The adjustment block is wedge-shaped to cooperate with the guide groove. The connecting cylinder has a threaded hole corresponding to the adjustment block. One end of the adjustment screw passes through the threaded hole and is fixed to the adjustment block to move the adjustment block.

[0009] Meanwhile, steel balls are provided between the connecting plate and the moving plate, and arc-shaped grooves corresponding to the steel balls are provided at the center of the lower surface of the connecting plate and the upper surface of the moving plate to position the steel balls.

[0010] Furthermore, there are four guide grooves; at the same time, the support plate is provided with sliding grooves that correspond one-to-one with the adjusting blocks.

[0011] Furthermore, the upper surface of the movable plate and the lower surface of the connecting plate are respectively provided with slots corresponding to the springs, and the two ends of the springs are respectively locked in the slots of the movable plate and the connecting plate.

[0012] Furthermore, the upper connecting mechanism is connected to the motor shaft via an upper clamping mechanism. The upper clamping mechanism includes a first collet and a first locking nut. The first collet and the first locking nut are sleeved on the motor shaft and located at the lower end of the motor shaft. The upper end of the upper connecting rod has a first conical cavity at its center to accommodate the motor shaft and the first collet. The upper outer wall of the upper connecting rod has an external thread that mates with the first locking nut. The motor shaft and the first collet are inserted into the first conical cavity, and the first locking nut is threadedly fixed to the upper connecting rod, thereby fixing the upper connecting structure to the lower end of the motor shaft.

[0013] Furthermore, the lower connecting mechanism is connected to the seed crystal rod via a lower clamping mechanism. The lower clamping mechanism includes a second collet and a second locking nut. The second collet and the second locking nut are sleeved on the seed crystal rod and located at the upper end of the seed crystal rod. The lower end of the lower connecting rod has a second conical cavity at its center to accommodate the seed crystal rod and the second collet. The lower end of the lower connecting rod has an external thread that mates with the second locking nut. The seed crystal rod and the second collet are inserted into the second conical cavity, and the second locking nut is threadedly fixed to the lower connecting rod, thereby fixing the seed crystal rod at the lower end of the lower connecting rod.

[0014] Compared with the prior art, the present invention has the following beneficial effects: 1. This utility model achieves precise control of the radial position of the seed crystal rod by adjusting screws, adjusting blocks, and guide grooves, combined with the positioning and guiding function of steel balls, and can stably control the sway amplitude within 0.1mm. This effectively avoids crystal defects caused by eccentric growth. Simultaneously, the "locking nut + collet" clamping design and spring pre-tensioning structure ensure extreme reliability and anti-loosening properties of the connection during high-speed rotation and long-cycle growth, fundamentally guaranteeing the stability and consistency of the crystal growth process.

[0015] 2. The upper connecting mechanism and the motor shaft of this utility model are connected and fixed by an upper clamping mechanism, which has a load-bearing capacity of up to 70kg, meeting the needs of industrial growth of large-size, high-quality crystals. Furthermore, the lower connecting mechanism, through the close cooperation between the evenly distributed guide grooves at the lower circumference and the wedge-shaped adjusting block, effectively resists the influence of centrifugal force during high-speed rotation, enabling the entire system to operate stably at a maximum speed of 500r / min, significantly broadening the process applicability of this centering mechanism.

[0016] 3. This utility model, through a process of low-speed rotation, observation of deviation, and reverse fine-tuning, can significantly reduce reliance on operator experience, reduce human error, and effectively improve the efficiency of single crystal growth. Attached Figure Description

[0017] Figure 1 - A schematic diagram of the structure of this utility model.

[0018] Figure 2 - A schematic diagram of the adjusting mechanism.

[0019] Figure 3 -Structural diagram of the lower connecting mechanism Wherein: 1-seed crystal rod; 2-second collet; 3-second locking nut; 4-lower connecting rod; 5-support plate; 6-moving plate; 7-adjusting block; 8-adjusting screw; 9-spring; 10-steel ball; 11-connecting cylinder; 12-fixing screw; 13-upper connecting rod; 14-connecting disc; 15-first locking nut; 16-first collet; 17-motor shaft; 18-guide groove. Detailed Implementation

[0020] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.

[0021] In traditional single-crystal growth equipment, the seed crystal rod is typically connected to the motor shaft via a simple mechanical connection. Centering relies heavily on manual experience, using simple structures like shims and screws for rough adjustments. This type of structure lacks a fine-tuning mechanism, making high-precision centering difficult and prone to seed crystal rod eccentricity during crystal growth, leading to crystal growth defects or even failure. Furthermore, under prolonged high-temperature, high-speed rotation, traditional clamping mechanisms are prone to loosening, causing center deviation and affecting the continuity and consistency of crystal growth. Additionally, with the increasing demand for large-size, high-quality single crystals, the seed crystal rod and its connecting mechanism must withstand greater weight and higher rotational speeds. Traditional structures struggle to meet the requirements of loads exceeding 70kg and high-speed rotations exceeding 500r / min. Moreover, existing centering mechanisms often require manual adjustment after machine shutdown, which is cumbersome, inefficient, and lacks dynamic fine-tuning capabilities, impacting production efficiency and crystal quality.

[0022] Based on this, the present invention provides a seed crystal rod centering structure, see details below. Figure 1 , Figure 2 and Figure 3 The device includes a motor shaft 17, an upper connecting mechanism, an adjusting mechanism, a lower connecting mechanism, and a seed crystal rod 1. The motor shaft 17 is vertically arranged. The upper connecting mechanism is located below the motor shaft 17 and connected to the motor shaft 17. The adjusting mechanism is located below the upper connecting mechanism and connected to the upper connecting mechanism. The lower connecting mechanism is located below the adjusting mechanism and connected to the adjusting mechanism. The seed crystal rod 1 is vertically arranged below the lower connecting mechanism and connected to the lower connecting mechanism. The adjusting mechanism is used to adjust the position of the seed crystal rod 1 so that the seed crystal rod 1 is concentrically arranged with the motor shaft 17.

[0023] In specific implementation, the upper connecting mechanism includes a horizontally arranged connecting plate 14 and an upper connecting rod 13 vertically arranged above the connecting plate 14. The lower end of the upper connecting rod 13 is fixedly connected to the center of the connecting plate 14, and the upper end of the upper connecting rod 13 is connected to the lower end of the motor shaft 17. A plurality of first connecting holes are evenly distributed on the connecting plate 14.

[0024] The lower connecting mechanism includes a horizontally arranged circular movable plate 6 and a vertically arranged lower connecting rod 4 below the movable plate 6. The upper end of the lower connecting rod 4 is fixedly connected to the center of the movable plate 6, and the lower end of the lower connecting rod 4 is connected to the upper end of the seed crystal rod 1. Several springs 9 are provided between the movable plate 6 and the connecting disk 14, and all springs 9 are evenly distributed along the circumference. The lower surface of the movable plate 6 is an inclined surface that slopes outward and upward from the center of the movable plate 6, and four guide grooves 18 are provided on the lower surface of the movable plate 6. All guide grooves 18 are evenly distributed and arranged radially along the movable plate 6.

[0025] The adjustment mechanism includes a horizontally arranged circular support plate 5 and a vertically arranged connecting cylinder 11 above the support plate 5. The lower end of the connecting cylinder 11 is fixedly connected to the support plate 5. A second connecting hole corresponding to the first connecting hole of the connecting plate 14 is provided above the connecting cylinder 11 to facilitate fixing the connecting plate 14 and the connecting cylinder 11 with the fixing screw 12. The support plate 5 has a through hole in the center for the lower connecting rod 4 to pass through. The through hole is larger than the lower connecting rod 4. The support plate 5 has an adjustment block 7 corresponding to the guide groove 18. The adjustment block 7 is wedge-shaped to cooperate with the guide groove 18. At the same time, the support plate 5 has a sliding groove corresponding to the adjustment block 7. The connecting cylinder 11 has a threaded hole corresponding to the adjustment block 7. One end of the adjustment screw 8 passes through the threaded hole and is fixed to the adjustment block 7 to move the adjustment block 7 by adjusting the screw 8.

[0026] Meanwhile, a steel ball 10 is provided between the connecting plate 14 and the moving plate 6. The lower surface of the connecting plate 14 and the upper surface of the moving plate 6 are provided with arc-shaped grooves corresponding to the steel ball 10 to position the steel ball 10. The upper surface of the moving plate 6 and the lower surface of the connecting plate 14 are respectively provided with slots corresponding to the springs 9. The two ends of the springs 9 are respectively locked in the slots of the moving plate 6 and the connecting plate 14.

[0027] In specific implementation, the upper connecting mechanism is connected to the motor shaft 17 through an upper clamping mechanism. The upper clamping mechanism includes a first collet 16 and a first locking nut 15. The first collet 16 and the first locking nut 15 are sleeved on the motor shaft 17 and located at the lower end of the motor shaft 17. The upper end center of the upper connecting rod 13 is provided with a first conical cavity to accommodate the motor shaft 17 and the first collet 16. The upper outer wall of the upper connecting rod 13 is provided with an external thread that mates with the first locking nut 15. The motor shaft 17 and the first collet 16 are inserted into the first conical cavity, and the first locking nut 15 is threadedly fixed to the upper connecting rod 13, thereby realizing the fixed connection between the upper connecting rod 13 and the motor shaft 17.

[0028] In specific implementation, the lower connecting mechanism is connected to the seed crystal rod 1 through the lower clamping mechanism. The lower clamping mechanism includes a second collet 2 and a second locking nut 3. The second collet 2 and the second locking nut 3 are sleeved on the seed crystal rod 1 and located at the upper end of the seed crystal rod 1. The lower end center of the lower connecting rod 4 is provided with a second conical cavity to accommodate the seed crystal rod 1 and the second collet 2. The lower end outer wall of the lower connecting rod 4 is provided with an external thread that mates with the second locking nut 3. The seed crystal rod 1 and the second collet 2 are inserted into the second conical cavity, and the second locking nut 3 is threadedly fixed to the lower connecting rod 4, thereby fixing the seed crystal rod 1 to the lower end of the lower connecting rod 4.

[0029] During production, the adjusting block is installed in the groove on the support plate, and then the adjusting screw is installed and connected to the adjusting block. The lower connecting rod of the lower connecting mechanism is then passed through the through hole on the support plate from top to bottom, simultaneously assembling the adjusting block in the guide groove below the moving plate. Next, steel balls and springs are installed into the arc-shaped groove and slot on the moving plate, respectively. The upper connecting mechanism is then installed on the adjusting mechanism, so that the steel balls and springs are located in the arc-shaped groove and slot of the connecting plate, respectively. These are then fixed with fixing screws to secure the connecting plate and connecting cylinder. Finally, the motor shaft and the upper connecting rod are connected via the upper clamping mechanism, and the lower connecting rod and the seed crystal rod are connected via the lower clamping mechanism.

[0030] The adjustment is performed using the seed crystal rod centering structure described above, specifically including the following steps: (1) A reference piece is placed below the seed crystal rod; the reference piece is in the shape of a disk and is placed horizontally at the center hole of the furnace, the center of the reference piece corresponds to the center of the furnace, and the upper surface of the reference piece has two radially arranged and mutually perpendicular scale lines. (2) Start the motor and make it rotate at a speed of less than 10 r / min; (3) Observe the deviation between the rotation trajectory of the seed crystal rod and the reference piece, and turn off the motor at the point where the deviation is the largest; (4) Tighten the adjusting screws in the opposite direction to bring the adjusting block closer to the center, and then repeat steps (2) and (3); (5) Repeat steps (2)-(4) until the deflection amplitude at the end of the seed crystal rod is ≤0.1mm.

[0031] Finally, it should be noted that the above embodiments of this utility model are merely examples for illustrating the present utility model, and are not intended to limit the implementation of the present utility model. Those skilled in the art can make other variations and modifications based on the above description. It is impossible to exhaustively list all possible implementations here. All obvious variations or modifications derived from the technical solutions of this utility model are still within the protection scope of this utility model.

Claims

1. A seed rod centering structure, comprising: The device includes a motor, an upper connecting mechanism, an adjusting mechanism, a lower connecting mechanism, and a seed crystal rod. The motor shaft is vertically arranged. The upper connecting mechanism is located below the motor shaft and connected to it. The adjusting mechanism is located below the upper connecting mechanism and connected to it. The lower connecting mechanism is located below the adjusting mechanism and connected to it. The seed crystal rod is vertically arranged below the lower connecting mechanism and connected to it. The adjusting mechanism is used to adjust the position of the seed crystal rod so that it is concentric with the motor shaft.

2. The seed rod centering structure of claim 1, wherein The upper connecting mechanism includes a horizontally arranged connecting plate and a vertically arranged upper connecting rod above the connecting plate. The lower end of the upper connecting rod is fixedly connected to the center of the connecting plate, and the upper end of the upper connecting rod is connected to the lower end of the motor shaft. A plurality of first connecting holes are evenly distributed on the connecting plate. The lower connecting mechanism includes a horizontally arranged circular moving plate and a vertically arranged lower connecting rod below the moving plate. The upper end of the lower connecting rod is fixedly connected to the center of the moving plate, and the lower end of the lower connecting rod is connected to the upper end of the seed crystal rod. Several springs are provided between the moving plate and the connecting plate, and all springs are evenly distributed along the circumference. The lower surface of the moving plate is an inclined plane that slopes outward and upward from the center of the moving plate, and several guide grooves are provided on the lower surface of the moving plate. All guide grooves are evenly distributed and arranged radially along the moving plate. The adjustment mechanism includes a horizontally arranged circular support plate and a vertically arranged connecting cylinder above the support plate. The lower end of the connecting cylinder is fixedly connected to the support plate. A second connecting hole corresponding to the first connecting hole of the connecting plate is provided above the connecting cylinder to facilitate fixing the connecting plate and the connecting cylinder with fixing screws. The support plate has a through hole in the center for the lower connecting rod to pass through. The through hole is larger than the lower connecting rod. The support plate has an adjustment block corresponding to the guide groove. The adjustment block is wedge-shaped to cooperate with the guide groove. The connecting cylinder has a threaded hole corresponding to the adjustment block. One end of the adjustment screw passes through the threaded hole and is fixed to the adjustment block to move the adjustment block. Meanwhile, steel balls are provided between the connecting plate and the moving plate, and arc-shaped grooves corresponding to the steel balls are provided at the center of the lower surface of the connecting plate and the upper surface of the moving plate to position the steel balls.

3. The seed rod centering structure of claim 2, wherein There are four guide grooves; at the same time, the support plate is provided with sliding grooves that correspond one-to-one with the adjusting blocks.

4. The seed rod centering structure of claim 2, wherein The upper surface of the moving plate and the lower surface of the connecting plate are respectively provided with slots corresponding to the springs, and the two ends of the springs are respectively locked in the slots of the moving plate and the connecting plate.

5. A seed rod centering structure according to claim 2 or 3, wherein The upper connecting mechanism is connected to the motor shaft via an upper clamping mechanism. The upper clamping mechanism includes a first collet and a first locking nut. The first collet and the first locking nut are sleeved on the motor shaft and located at the lower end of the motor shaft. The upper end of the upper connecting rod has a first conical cavity at its center to accommodate the motor shaft and the first collet. The upper end of the upper connecting rod has an external thread that mates with the first locking nut. The motor shaft and the first collet are inserted into the first conical cavity, and the first locking nut is threadedly fixed to the upper connecting rod, thereby fixing the upper connecting structure to the lower end of the motor shaft.

6. A seed rod centering structure according to claim 2 or 3, wherein The lower connecting mechanism is connected to the seed crystal rod via a lower clamping mechanism. The lower clamping mechanism includes a second collet and a second locking nut. The second collet and the second locking nut are sleeved on the seed crystal rod and located at the upper end of the seed crystal rod. The lower end of the lower connecting rod has a second conical cavity at its center to accommodate the seed crystal rod and the second collet. The lower end of the lower connecting rod has an external thread that mates with the second locking nut. The seed crystal rod and the second collet are inserted into the second conical cavity. The second locking nut is threadedly fixed to the lower connecting rod, thereby fixing the seed crystal rod at the lower end of the lower connecting rod.