A photoelectric module tray with a positioning structure

CN224618308UActive Publication Date: 2026-08-11HUIZHOU GAOSHENGDA OPTOELECTRONIC TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-20
Publication Date
2026-08-11

AI Technical Summary

Technical Problem

当前光电模块放置于托盘内时,光电模块限位于托盘内的容置槽内,而容置槽的大小大于光电模块的大小,光电模块位于容置槽内时会出现晃动,而造成光电模块的磨损

Benefits of technology

1、本实用新型的一种具有定位结构的光电模块托盘通过在放置光电模块的容置槽两侧内壁设置定位结构,以将光电模块定位于容置槽内,在运输过程中不易发生晃动而损伤光电模块,且容置槽相对于光电模块的两端设有缓冲部,以对光电模块进行缓冲和进一步定位,避免光电模块与容置槽内壁直接接触而造成磨损;

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Abstract

This utility model discloses a photoelectric module tray with a positioning structure, comprising: a tray body, a placement area for placing photoelectric modules on the tray body, a plurality of accommodating slots arranged side by side in the placement area, the accommodating slots being opened along the length direction of the placement area, the accommodating slots being used to accommodate photoelectric modules, a partition for separating two adjacent accommodating slots, and a positioning structure for positioning the photoelectric modules within the accommodating slots, the positioning structure being disposed on the partition. This utility model, by providing positioning structures on the inner walls of both sides of the accommodating slots for placing photoelectric modules, positions the photoelectric modules within the accommodating slots, preventing them from shaking and being damaged during transportation.
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Description

Technical Field

[0001] This utility model relates to the field of packaging pallet technology, and in particular to a photoelectric module pallet with a positioning structure. Background Technology

[0002] Optoelectronic modules are a key component of optical transmission equipment. Their function is to perform photoelectric conversion, that is, to convert electrical signals into optical signals, which are then transmitted through optical fibers. The optical module then converts the transmitted optical signals back into electrical signals. To ensure their safety during transportation, optoelectronic modules are typically transported on pallets. With the increasing number of optoelectronic module products, the pallets used for transporting these products need to be upgraded. Currently, when optoelectronic modules are placed on pallets, they are confined to a receiving slot within the pallet. However, the size of this receiving slot is larger than the size of the optoelectronic module, causing it to wobble and resulting in wear and tear. Utility Model Content

[0003] The purpose of this invention is to overcome the shortcomings of the prior art and provide a photoelectric module tray with a positioning structure.

[0004] The objective of this utility model is achieved through the following technical solution: A photoelectric module tray with a positioning structure includes: a tray body, a placement area for placing photoelectric modules on the tray body, a plurality of accommodating slots arranged side by side in the placement area, the accommodating slots being opened along the length direction of the placement area, the accommodating slots being used to accommodate photoelectric modules, a partition for separating two adjacent accommodating slots, and a positioning structure for positioning the photoelectric modules in the accommodating slots, the positioning structure being disposed on the partition.

[0005] In one embodiment, the positioning structure is located on the side of the partition facing the receiving groove. The positioning structure includes a first protrusion and a second protrusion respectively disposed on the partition on both sides of the receiving groove. The first protrusion is located on the partition on one side of the receiving groove, and the second protrusion is located on the partition on the other side of the receiving groove. The first protrusion and the second protrusion are arranged opposite to each other and are staggered. Both the first protrusion and the second protrusion are convex in the direction close to the receiving groove. The first protrusion and the second protrusion respectively abut against the two outer side walls of the optoelectronic module.

[0006] In one embodiment, two dividing grooves are provided in the placement area. The dividing grooves are arranged along the width direction of the placement area, and the length of the dividing grooves is longer than the width of the placement area. The dividing grooves make the plurality of receiving grooves and the partitions segmented. The dividing grooves divide each partition into a first segment, a second segment and a third segment. The first segment and the third segment of the partition are provided with the positioning structure.

[0007] In one embodiment, each partition is located between two adjacent receiving slots, and each partition has a first convex hull and a second convex hull respectively at the position of the receiving slots on both sides. The first convex hull of each partition and the second convex hull of the adjacent partition combine to form the positioning structure.

[0008] In one embodiment, the first convex bulge and the second convex bulge are integrally formed with the partition, and the surfaces of the first convex bulge and the second convex bulge are arc-shaped.

[0009] In one embodiment, both the first convex bulge and the second convex bulge have an anti-collision layer on their surfaces, the anti-collision layer being made of rubber or foam.

[0010] In one embodiment, buffer portions are provided at both ends of the receiving groove. The two buffer portions are located on two opposite inner walls of the receiving groove and extend towards each other. The buffer portions are used to buffer and position the end position of the optoelectronic module.

[0011] In one embodiment, the outer edge of the pallet body is provided with a plurality of reinforcing structures. The reinforcing structure includes a reinforcing part recessed from the outer side of the pallet body and a support platform provided on the bottom side of the reinforcing part. The upper surface of the reinforcing part is flush with the upper surface of the pallet body. The upper surface of the support platform is lower than the height of the upper surface of the pallet body, and the bottom height of the support platform is higher than the bottom side of the pallet body. The support platform and the upper surface of the pallet body are arranged in a stepped manner.

[0012] In one embodiment, the tray body is provided with limiting structures on both outer sides of the placement area. The limiting structures include a first limiting groove and a second limiting groove. Both the first limiting groove and the second limiting groove are recessed downward from the surface of the tray body. The height of the first limiting groove is lower than the upper surface of the tray body, and the height of the second limiting groove is lower than the height of the first limiting groove.

[0013] In one embodiment, the four corners of the tray body are all arc-shaped, and a foolproof part is provided at one corner of the tray body. The tray body has a chamfered corner relative to the foolproof part.

[0014] Compared with the prior art, the present invention has at least the following advantages: 1. The photoelectric module tray with positioning structure of this utility model is provided with positioning structure on both sides of the receiving groove for placing photoelectric modules, so as to position the photoelectric modules in the receiving groove. During transportation, it is not easy to shake and damage the photoelectric modules. In addition, the receiving groove is provided with buffer parts at both ends relative to the photoelectric modules to buffer and further position the photoelectric modules, and avoid the photoelectric modules from directly contacting the inner wall of the receiving groove and causing wear. 2. The photoelectric module tray with positioning structure of this utility model improves the overall strength of the tray body by setting a reinforcing structure on the outer edge of the tray body. When two tray bodies are stacked, the surface of the lower tray body abuts against the bottom side of the upper tray body. The reinforcing structure can improve the bearing capacity of the tray body and facilitate the handling of the tray body. Attached Figure Description

[0015] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the embodiments will be briefly described below.

[0016] Figure 1 A schematic diagram of the structure of a photoelectric module tray with a positioning structure provided by this utility model; Figure 2 This utility model provides a schematic diagram of a stacked photoelectric module tray with a positioning structure.

[0017] Figure descriptions: 10. Pallet body; 20. Placement area; 21. Receiving groove; 22. Dividing groove; 30. Partition; 31. First section; 32. Second section; 33. Third section; 40. Positioning structure; 41. First convex bulge; 42. Second convex bulge; 50. Buffer section; 60. Reinforcing structure; 61. Reinforcing section; 62. Support platform; 70. Limiting structure; 71. First limiting groove; 72. Second limiting groove; 80. Foolproof part. Detailed Implementation

[0018] To facilitate understanding of this utility model, a more comprehensive description of this utility model will be given below with reference to the accompanying drawings.

[0019] A photoelectric module tray with a positioning structure, as shown in the reference Figure 1The system includes a tray body 10, on which a placement area 20 for placing photoelectric modules is provided. Multiple accommodating slots 21 are arranged side-by-side within the placement area 20, extending along its length and recessed downwards from the surface of the placement area 20. Each slot 21 is used to accommodate a photoelectric module. A partition 30 separates adjacent slots 21, allowing for the placement of multiple photoelectric modules. A positioning structure 40, located on the partition 30, is provided within each slot 21 to position the photoelectric module. It should be noted that in this embodiment, the photoelectric module is a PCBA board, and both the placement area 20 and the partition 30 are flush with the upper surface of the placement area 20.

[0020] Furthermore, referring to Figure 1 The positioning structure 40 is located on the side of the partition 30 facing the receiving groove 21. The positioning structure 40 includes a first protrusion 41 and a second protrusion 42 respectively disposed on the partitions 30 on both sides of the receiving groove 21. The first protrusion 41 is located on the partition 30 on one side of the receiving groove 21, and the second protrusion 42 is located on the partition 30 on the other side of the receiving groove 21. The first protrusion 41 and the second protrusion 42 are arranged opposite to each other and are staggered. Both the first protrusion 41 and the second protrusion 42 are convex in the direction close to the inside of the receiving groove 21. When the photoelectric module is placed in the receiving groove 21, the first protrusion 41 and the second protrusion 42 respectively abut against the two outer side walls of the photoelectric module to position the photoelectric module and prevent the photoelectric module from shaking during transportation.

[0021] Furthermore, referring to Figure 1 The placement area 20 has two dividing slots 22, which are arranged along the width of the placement area 20 and are longer than the width of the placement area 20. The ends of the dividing slots 22 extend beyond the sides of the placement area 20. The dividing slots 22 segment the multiple receiving slots 21 and partitions 30, dividing each partition 30 into a first segment 31, a second segment 32, and a third segment 33. Each partition 30's first segment 31 and third segment 33 are equipped with positioning structures 40 to position the photoelectric module near its ends. It should be noted that the position of the dividing slots 22 allows the sides of the photoelectric module within the receiving slot 21 to protrude, facilitating the removal of the photoelectric module. The depth of the dividing slots 22 is the same as the depth of the receiving slots 21, preventing the photoelectric module from being suspended at the bottom in the dividing slots 22.

[0022] Furthermore, referring to Figure 1Each partition 30 is located between two adjacent receiving slots 21. Each partition 30 has a first protrusion 41 and a second protrusion 42 at the positions of the receiving slots 21 on both sides. The first protrusion 41 of each partition 30 and the second protrusion 42 of the adjacent partition 30 are combined to form a positioning structure 40 for positioning the photoelectric module in the receiving slot 21.

[0023] Furthermore, referring to Figure 1 The first convex 41 and the second convex 42 are integrally formed with the partition 30. The surfaces of the first convex 41 and the second convex 42 are arc-shaped to avoid contact with the photoelectric module and thus avoid wear on the photoelectric module.

[0024] Furthermore, referring to Figure 1 The surfaces of the first protrusion 41 and the second protrusion 42 are provided with anti-collision layers, which are made of rubber or foam. By providing anti-collision layers on the surfaces of the first protrusion 41 and the second protrusion 42, the anti-collision layers can play a positioning and anti-collision role when the photoelectric module is limited between the first protrusion 41 and the second protrusion 42, so as to prevent the photoelectric module from shaking in the receiving groove 21 and impacting the inner wall of the receiving groove 21 during transportation.

[0025] Furthermore, referring to Figure 1 The receiving groove 21 has buffer portions 50 at both ends. The two buffer portions 50 are located on two opposite inner walls of the receiving groove 21 and extend towards each other. When the photoelectric module is placed in the receiving groove 21, the two buffer portions 50 are located at both ends of the photoelectric module.

[0026] Furthermore, referring to Figure 1 The buffer part 50 is made of rubber or foam. The buffer part 50 can buffer and position the end position of the photoelectric module so that the photoelectric module is confined within the receiving groove 21.

[0027] Furthermore, referring to Figure 1 The upper surface of the buffer section 50 is lower than the upper surface of the placement area 20, so as to not only buffer and position the photoelectric module, but also avoid affecting the operation of picking up the photoelectric module.

[0028] Furthermore, referring to Figure 1The outer edge of the pallet body 10 is provided with multiple reinforcing structures 60. Each reinforcing structure 60 includes a reinforcing portion 61 recessed inwards from the outer side of the pallet body 10 and a support platform 62 located at the bottom of the reinforcing portion 61. The upper surface of the reinforcing portion 61 is flush with the upper surface of the pallet body 10, while the upper surface of the support platform 62 is lower than the upper surface of the pallet body 10, and the bottom of the support platform 62 is higher than the bottom of the pallet body 10. The support platform 62 and the upper surface of the pallet body 10 are arranged in a stepped manner. The reinforcing structures 60 enhance the structural strength of the pallet body 10, making it easier to lift and less prone to deformation when the pallet body 10 is being supported.

[0029] Furthermore, referring to Figure 1 Multiple reinforcing structures 60 are spaced apart on the outer side of the pallet body 10, and multiple reinforcing structures 60 are provided on multiple outer edges of the pallet body 10 to enhance the overall strength of the pallet body 10. When two pallet bodies 10 are stacked, the surface of the lower pallet body 10 abuts against the bottom side of the upper pallet body 10. The reinforcing structures 60 can improve the load-bearing capacity of the pallet body 10 and facilitate the handling of the pallet body 10.

[0030] Reference Figure 1 The bottom edge of the pallet body 10 extends outward, thereby increasing the contact area between the pallet body 10 and the placement location when the pallet body 10 is placed, making the pallet body 10 more stable.

[0031] Furthermore, referring to Figure 1 and Figure 2 The pallet body 10 is provided with limiting structures 70 on both outer sides of the placement area 20. The limiting structures 70 include a first limiting groove 71 and a second limiting groove 72. Both the first limiting groove 71 and the second limiting groove 72 are recessed downwards from the surface of the pallet body 10. The height of the first limiting groove 71 is lower than the upper surface of the pallet body 10, and the height of the second limiting groove 72 is lower than the height of the first limiting groove 71. The first limiting groove 71 and the second limiting groove 72 are distributed in a stepped manner, with the second limiting groove 72 located at the center of the first limiting groove 71. When two pallet bodies 10 are stacked, the second limiting groove 72 of the upper pallet body 10 extends into the first limiting groove 71 of the lower pallet body 10 to provide limiting and support functions.

[0032] Furthermore, referring to Figure 1 The pallet body 10 is rectangular in shape, with rounded corners at all four corners. A foolproof part 80 is provided at one corner of the pallet body 10, and a chamfer is provided at the position of the foolproof part 80 relative to the position of the foolproof part 80. The foolproof part 80 is used to prevent mistakes.

[0033] This utility model provides positioning structures 40 on both sides of the inner wall of the receiving groove 21 where the photoelectric module is placed, so as to position the photoelectric module in the receiving groove 21. During transportation, the photoelectric module is less likely to shake and be damaged. Furthermore, the receiving groove 21 is provided with buffer parts 50 at both ends relative to the photoelectric module to buffer and further position the photoelectric module, so as to avoid the photoelectric module directly contacting the inner wall of the receiving groove 21 and causing wear.

[0034] The embodiments described above are merely illustrative of several implementations of this utility model, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.

Claims

1. An optoelectronic module tray having a positioning structure, characterized by, include: The tray body (10) has a placement area (20) for placing photoelectric modules. The placement area (20) has multiple accommodating slots (21) arranged side by side. The accommodating slots (21) are opened along the length of the placement area (20). The accommodating slots (21) are used to accommodate photoelectric modules. A partition (30) is provided between two adjacent accommodating slots (21). A positioning structure (40) for positioning the photoelectric modules is provided in the accommodating slots (21). The positioning structure (40) is located on the partition (30).

2. An optoelectronic module tray having a positioning structure according to claim 1, wherein, The positioning structure (40) is located on the side of the partition (30) facing the receiving groove (21). The positioning structure (40) includes a first protrusion (41) and a second protrusion (42) respectively disposed on the partition (30) on both sides of the receiving groove (21). The first protrusion (41) is located on the partition (30) on one side of the receiving groove (21), and the second protrusion (42) is located on the partition (30) on the other side of the receiving groove (21). The first protrusion (41) and the second protrusion (42) are arranged opposite to each other and are staggered. The first protrusion (41) and the second protrusion (42) are both convex in the direction close to the inside of the receiving groove (21). The first protrusion (41) and the second protrusion (42) respectively abut against the two outer walls of the photoelectric module.

3. An optoelectronic module tray having a positioning structure according to claim 2, wherein, Two partition grooves (22) are provided in the placement area (20). The partition grooves (22) are arranged along the width direction of the placement area (20), and the length of the partition grooves (22) is longer than the width of the placement area (20). The partition grooves (22) make the multiple receiving grooves (21) and the partitions (30) segmented. The partition grooves (22) divide each partition (30) into a first segment (31), a second segment (32), and a third segment (33). The first segment (31) and the third segment (33) of the partition (30) are both provided with the positioning structure (40).

4. An optoelectronic module tray having a positioning structure according to claim 3, wherein, Each partition (30) is located between two adjacent receiving slots (21). Each partition (30) has a first protrusion (41) and a second protrusion (42) respectively facing the receiving slots (21) on both sides. The first protrusion (41) of each partition (30) and the second protrusion (42) of the adjacent partition (30) combine to form the positioning structure (40).

5. An optoelectronic module tray having a positioning structure according to claim 4, wherein, The first convex bulge (41) and the second convex bulge (42) are integrally formed with the partition (30), and the surfaces of the first convex bulge (41) and the second convex bulge (42) are arc-shaped.

6. An optoelectronic module tray having a positioning structure according to claim 5, wherein, The surfaces of the first convex bulge (41) and the second convex bulge (42) are provided with anti-collision layers, which are made of rubber or foam.

7. An optoelectronic module tray having a positioning structure according to claim 1, wherein, The receiving groove (21) is provided with buffer parts (50) at both ends. The two buffer parts (50) are located on two opposite inner walls of the receiving groove (21) and extend towards each other. The buffer parts (50) are used to buffer and position the end position of the photoelectric module.

8. A photoelectric module tray with a positioning structure according to claim 1, characterized in that, The outer edge of the pallet body (10) is provided with a plurality of reinforcing structures (60). Each reinforcing structure (60) includes a reinforcing part (61) recessed from the outer side of the pallet body (10) and a support (62) provided on the bottom side of the reinforcing part (61). The upper surface of the reinforcing part (61) is flush with the upper surface of the pallet body (10). The upper surface of the support (62) is lower than the height of the upper surface of the pallet body (10), and the bottom height of the support (62) is higher than the bottom side of the pallet body (10). The support (62) and the upper surface of the pallet body (10) are arranged in a stepped manner.

9. A photoelectric module tray with a positioning structure according to claim 1, characterized in that, The tray body (10) is provided with limiting structures (70) on both outer sides of the placement area (20). The limiting structures (70) include a first limiting groove (71) and a second limiting groove (72). Both the first limiting groove (71) and the second limiting groove (72) are recessed downward from the surface of the tray body (10). The height of the first limiting groove (71) is lower than the upper surface of the tray body (10), and the height of the second limiting groove (72) is lower than the height of the first limiting groove (71).

10. A photoelectric module tray with a positioning structure according to claim 1, characterized in that, The four corners of the tray body (10) are all arc-shaped, and a foolproof part (80) is provided at one corner of the tray body (10). The tray body (10) has a chamfered corner relative to the foolproof part (80).