A multi-station automatic flow transfer device for optical module integrated package

CN224653962UActive Publication Date: 2026-08-18SUZHOU XINCHUANGLIAN OPTOELECTRONIC TECH CO LTD
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Patent Information

Application Number
CN202521801532.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-22
Publication Date
2026-08-18
Estimated Expiration
2035-08-22

AI Technical Summary

Technical Problem

[0003]现有的封装设备在使用时,利用单个工位使用吸嘴将物料,即基座、硅片和封盖依次热压固定,单工位在封装时需要依次拿取不同的物件,且在封装时需要旋转光模块的方向进行加工,从而导致封装效率较低

Benefits of technology

[0014] 1. This integrated packaging of optical modules is a multi-station automatic transfer device. The starting motor drives the limit plate and the transmission rod to rotate simultaneously. When the moving shaft enters the transmission groove, it can drive the transmission frame to rotate. By utilizing the cooperation between the transmission frame, the connecting rod and the drive wheel, the gear ring and the transmission sleeve are driven to rotate on the surface of the base plate. The transmission plate drives the working plate to rotate around the support rod, which can process multiple optical modules in sequence at the same time.

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Abstract

The utility model provides a kind of multi-station automatic flow transfer equipment of optical module integrated packaging, it is related to optical module packaging technical field, including bottom plate, the top of bottom plate is provided with transmission plate, power assembly is arranged between bottom plate and transmission plate, drives transmission plate rotation. This multi-station automatic flow transfer equipment of optical module integrated packaging, limit plate and transmission rod are rotated simultaneously by starting motor, when moving shaft enters transmission groove inside, transmission frame can be driven to rotate, the cooperation between transmission frame, connecting rod and driving wheel is utilized, drive gear ring and transmission sleeve rotate on the surface of bottom plate, and workboard is rotated by transmission plate with support rod as center, multiple optical modules can be processed in turn simultaneously, since the meshing relationship of positioning gear and connecting gear, it can self-rotate while workboard rotates, it is convenient to process different angles of optical module, improve optical module processing efficiency.
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Description

Technical Field

[0001] This utility model relates to a multi-station automatic transfer device, specifically a multi-station automatic transfer device for optical module integrated packaging, belonging to the field of optical module packaging technology. Background Technology

[0002] Optical access networks with optical modules as the core components promote lower development costs for backbone transmission systems, resulting in more complete and rational optical network configurations. The main chip of an optical module consists of a base, a photolithographically etched silicon wafer, and a cover. The silicon wafer is placed directly on the surface of the base and heat-treated until it is firmly fixed to the base, establishing a direct electrical connection between the silicon wafer and the bottom of the base. Then, the cover is heat-fused and pressed onto the base to improve the mechanical properties of the silicon wafer.

[0003] Existing packaging equipment uses a single station to heat-press materials, namely the base, silicon wafer and cap, sequentially using a suction nozzle. Each station needs to pick up different items in sequence during packaging, and the optical module needs to be rotated for processing, resulting in low packaging efficiency.

[0004] Therefore, a multi-station automated transfer device for integrated packaging of optical modules is proposed here. Utility Model Content

[0005] This utility model proposes a multi-station automatic transfer device for integrated packaging of optical modules. It uses a transmission plate to drive the working plate to rotate, which can process multiple optical modules in sequence at the same time. The working plate can rotate on its own axis while rotating around the support rod, which facilitates processing of optical modules in different directions and improves the processing efficiency of optical modules.

[0006] This utility model is achieved through the following technical solution: a multi-station automatic transfer device for integrated packaging of optical modules, including a base plate, a transmission plate arranged above the base plate, a power component for driving the transmission plate to rotate between the base plate and the transmission plate, the power component including a connecting rod rotatably sleeved inside the base plate, a transmission frame fixedly sleeved at the bottom end of the connecting rod, a set of transmission grooves evenly opened on the periphery of the transmission frame, a drive wheel rotatably passing through the base plate and fixedly sleeved at the top end of the connecting rod, a toothed ring meshing on the periphery of the drive wheel, a transmission sleeve sliding inside the base plate fixedly sleeved inside the toothed ring, and the transmission sleeve fixed to the bottom surface of the transmission plate.

[0007] Furthermore, the power assembly also includes a motor fixed to the bottom surface of the base plate, the output end of the motor is fixed with a limit plate, and a set of arc-shaped grooves that slide on the outer surface of the limit plate are evenly provided on the surface of the transmission frame.

[0008] Furthermore, a transmission rod is fixedly sleeved at the output end of the motor, and a movable shaft is fixedly sleeved at the end of the transmission rod away from the motor.

[0009] A support rod is fixed to the upper surface of the base plate, and a support plate is fixed to the top surface of the support rod. A set of working plates is provided on the outside of the support plate. Multiple transmission components that drive the working plates to rotate are provided between the transmission plate and the support plate. The transmission components include two connecting collars fixedly sleeved inside the transmission plate. A rotating rod is rotatably sleeved inside the connecting collars. A transmission wheel is fixedly sleeved on the outside of the rotating rod. A transmission belt is connected between the two transmission wheels. The rotating rod located outside the support plate is fixed to the bottom surface of the working plate.

[0010] Furthermore, a positioning gear is fixedly sleeved around the periphery of the support rod, and a connecting gear meshes around the periphery of the positioning gear, with the connecting gear fixedly sleeved around the periphery of the inner rotating rod.

[0011] Furthermore, the transmission plate has a connecting hole inside, and the diameter inside the connecting hole is larger than the diameter outside the support rod.

[0012] Furthermore, a set of positioning blocks is fixed on the upper surface of each of the aforementioned work plates, and the position of the positioning blocks can be adjusted using bolts according to the size of the optical module.

[0013] This utility model provides a multi-station automated transfer device for integrated packaging of optical modules, which has the following beneficial effects:

[0014] 1. This integrated packaging of optical modules is a multi-station automatic transfer device. The starting motor drives the limit plate and the transmission rod to rotate simultaneously. When the moving shaft enters the transmission groove, it can drive the transmission frame to rotate. By utilizing the cooperation between the transmission frame, the connecting rod and the drive wheel, the gear ring and the transmission sleeve are driven to rotate on the surface of the base plate. The transmission plate drives the working plate to rotate around the support rod, which can process multiple optical modules in sequence at the same time.

[0015] 2. This multi-station automatic transfer equipment for integrated optical modules, when the transmission plate rotates, utilizes the cooperation between the connecting collar and the rotating rod to drive the connecting gear to rotate on the surface of the positioning gear. Since the positioning gear and the connecting gear are meshed, they can drive the rotating rod to rotate, so that the working plate rotates around the support rod while also rotating on its own axis, which facilitates the processing of optical modules in different directions and improves the processing efficiency of optical modules. Attached Figure Description

[0016] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0017] Figure 2 This is a three-dimensional structural diagram of the support rod in this utility model;

[0018] Figure 3 This is a three-dimensional structural diagram of the power component in this utility model;

[0019] Figure 4 This is a three-dimensional structural diagram of the transmission component in this utility model.

[0020] Explanation of reference numerals in the attached figures

[0021] 1. Base plate; 2. Transmission plate; 21. Connecting holes;

[0022] 3. Power assembly; 31. Connecting rod; 32. Transmission frame; 321. Transmission groove; 33. Drive wheel; 34. Gear ring; 35. Transmission sleeve; 36. Motor; 37. Limiting plate; 38. Transmission rod; 39. Moving shaft;

[0023] 4. Support rod; 41. Positioning gear; 5. Support plate;

[0024] 6. Work board; 61. Positioning block;

[0025] 7. Transmission assembly; 71. Connecting collar; 72. Rotating rod; 73. Transmission wheel; 74. Transmission belt; 75. Connecting gear. Detailed Implementation

[0026] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of this application.

[0027] Please see Figures 1-4 The present invention proposes the following implementation scheme: a multi-station automatic transfer device for integrated packaging of optical modules, including a base plate 1, a transmission plate 2 disposed above the base plate 1, a power component 3 for driving the transmission plate 2 to rotate between the base plate 1 and the transmission plate 2, the power component 3 including a connecting rod 31 rotatably sleeved inside the base plate 1, a transmission frame 32 fixedly sleeved at the bottom end of the connecting rod 31, a set of transmission grooves 321 evenly opened on the periphery of the transmission frame 32, the top end of the connecting rod 31 rotatably passes through the base plate 1 and is fixedly sleeved with a drive wheel 33, a toothed ring 34 meshing on the periphery of the drive wheel 33, a transmission sleeve 35 sliding inside the base plate 1 fixedly sleeved inside the toothed ring 34, and the transmission sleeve 35 fixed to the bottom surface of the transmission plate 2.

[0028] Please refer to this carefully. Figure 3The power assembly 3 also includes a motor 36 fixed to the bottom surface of the base plate 1. The output end of the motor 36 is fixed to a limiting plate 37, and a set of arc-shaped grooves that slide on the outer surface of the limiting plate 37 are evenly opened on the surface of the transmission frame 32.

[0029] A transmission rod 38 is fixedly sleeved at the output end of the motor 36, and a movable shaft 39 is fixedly sleeved at the end of the transmission rod 38 away from the motor 36.

[0030] In the above scheme, the starting motor 36 drives the limiting plate 37 and the transmission rod 38 to rotate simultaneously. When the moving shaft 39 enters the transmission groove 321, it can drive the transmission frame 32 to rotate. By utilizing the cooperation between the transmission frame 32, the connecting rod 31 and the driving wheel 33, the gear ring 34 and the transmission sleeve 35 are driven to rotate on the surface of the base plate 1. Through the transmission plate 2, the working plate 6 is driven to rotate intermittently at a right angle, which can drive the working plate 6 to rotate around the support rod 4.

[0031] Please refer to this carefully. Figure 2 and Figure 4 A support rod 4 is fixed on the upper surface of the base plate 1, and a support plate 5 is fixed on the top surface of the support rod 4. A set of working plates 6 is provided on the outside of the support plate 5. Multiple transmission components 7 are provided between the transmission plate 2 and the support plate 5 to drive the working plates 6 to rotate. The transmission components 7 include two connecting collars 71 fixedly sleeved inside the transmission plate 2. A rotating rod 72 is rotatably sleeved inside the connecting collars 71. A transmission wheel 73 is fixedly sleeved on the outside of the rotating rod 72. A transmission belt 74 is connected between the two transmission wheels 73. The rotating rod 72 located outside the support plate 5 is fixed on the bottom surface of the working plate 6.

[0032] Please refer to this carefully. Figure 4 A positioning gear 41 is fixedly sleeved on the outer periphery of the support rod 4, and a connecting gear 75 meshes with the outer periphery of the positioning gear 41. The connecting gear 75 is fixedly sleeved on the outer periphery of the inner rotating rod 72.

[0033] In the above scheme, when the transmission plate 2 rotates, the connecting sleeve 71 and the rotating rod 72 are used to drive the connecting gear 75 to rotate on the surface of the positioning gear 41. Since the positioning gear 41 and the connecting gear 75 are meshed, they can drive the rotating rod 72 to rotate, so that the working plate 6 rotates around the support rod 4 and rotates on its own axis.

[0034] The transmission plate 2 has a connecting hole 21 inside, and the diameter inside the connecting hole 21 is larger than the diameter outside the support rod 4.

[0035] Each working plate 6 has a set of positioning blocks 61 fixed on its upper surface, and the position of the positioning blocks 61 can be adjusted by bolts according to the size of the optical module.

[0036] In use, the optical module is placed on the surface of the work plate 6, and then processed by an external robotic arm. The motor 36 is started, causing the limiting plate 37 and the transmission rod 38 to rotate simultaneously. When the moving shaft 39 enters the transmission groove 321, it drives the transmission frame 32 to rotate. When the moving shaft 39 moves away from the transmission groove 321, the limiting plate 37 slides on the arc-shaped concave surface of the transmission frame 32, keeping the transmission frame 32 stationary. Utilizing the cooperation between the transmission frame 32, the connecting rod 31, and the drive wheel 33, the gear ring 34 and the transmission sleeve 35 are driven to rotate at the bottom. The surface of plate 1 rotates, and through the transmission plate 2, the working plate 6 rotates around the support rod 4, enabling the simultaneous processing of multiple optical modules. At the same time, when the transmission plate 2 rotates, the connecting collar 71 and the rotating rod 72 cooperate to drive the connecting gear 75 to rotate on the surface of the positioning gear 41. Since the positioning gear 41 and the connecting gear 75 are meshed, the rotating rod 72 can be driven to rotate, so that the working plate 6 rotates around the support rod 4 and rotates on its own axis at the same time, which facilitates the processing of optical modules at different angles and improves the processing efficiency of optical modules.

[0037] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claims. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. A multi-station automated transfer device for integrated packaging of optical modules, comprising a base plate (1), characterized in that: A transmission plate (2) is provided above the base plate (1). A power assembly (3) for driving the transmission plate (2) to rotate is provided between the base plate (1) and the transmission plate (2). The power assembly (3) includes a connecting rod (31) rotatably sleeved inside the base plate (1). A transmission frame (32) is fixedly sleeved at the bottom end of the connecting rod (31). A set of transmission grooves (321) are evenly opened on the periphery of the transmission frame (32). The top end of the connecting rod (31) rotatably passes through the base plate (1) and is fixedly sleeved with a drive wheel (33). A toothed ring (34) meshes with the periphery of the drive wheel (33). A transmission sleeve (35) that slides inside the base plate (1) is fixedly sleeved inside the toothed ring (34), and the transmission sleeve (35) is fixed on the bottom surface of the transmission plate (2). A support rod (4) is fixed on the upper surface of the base plate (1), and a support plate (5) is fixed on the top surface of the support rod (4). A set of working plates (6) is provided on the outside of the support plate (5). Multiple transmission components (7) that drive the working plate (6) to rotate are provided between the transmission plate (2) and the support plate (5). The transmission component (7) includes two connecting collars (71) fixedly sleeved inside the transmission plate (2). A rotating rod (72) is rotatably sleeved inside the connecting collar (71). A transmission wheel (73) is fixedly sleeved on the outside of the rotating rod (72). A transmission belt (74) is connected between the two transmission wheels (73). The rotating rod (72) located outside the support plate (5) is fixed on the bottom surface of the working plate (6).

2. The multi-station automated transfer device for optical module integration and packaging according to claim 1, characterized in that: The power assembly (3) also includes a motor (36) fixed to the bottom surface of the base plate (1). The output end of the motor (36) is fixed with a limiting plate (37), and a set of arc-shaped grooves that slide on the outer surface of the limiting plate (37) are evenly provided on the surface of the transmission frame (32).

3. The multi-station automated transfer device for optical module integration and packaging according to claim 2, characterized in that: The output end of the motor (36) is fixedly sleeved with a transmission rod (38), and the end of the transmission rod (38) away from the motor (36) is fixedly sleeved with a moving shaft (39).

4. The multi-station automated transfer device for optical module integration and packaging according to claim 1, characterized in that: The transmission plate (2) has a connecting hole (21) inside, and the diameter inside the connecting hole (21) is larger than the diameter outside the support rod (4).

5. The multi-station automated transfer device for optical module integration and packaging according to claim 1, characterized in that: A positioning gear (41) is fixedly sleeved around the support rod (4), and a connecting gear (75) meshes around the positioning gear (41), and the connecting gear (75) is fixedly sleeved around the inner rotating rod (72).

6. The multi-station automated transfer device for optical module integration and packaging according to claim 1, characterized in that: Each of the work plates (6) has a set of positioning blocks (61) fixed on its upper surface, and the position of the positioning blocks (61) can be adjusted by bolts according to the size of the optical module.