Cable shaping module and 800G / 1600G high-speed optical module
By using C-shaped shaping clamps and tooling clamping technology, the problem of controlling the order and direction of cable stacking in high-speed optical modules has been solved, enabling easy cable placement and improving operational efficiency.
Patent Information
- Application Number
- CN202520516287.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-21
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2035-03-21
AI Technical Summary
In existing 800G/1600G high-speed optical modules, the order and direction of the sixteen high-speed cables stacked cannot be controlled, making it difficult and time-consuming to place them into the structural components.
The first and second shaping clamps adopt a C-shaped structure. The first shaping clamp contains high-speed cables, and the second shaping clamp seals the opening of the first shaping clamp. The modules are formed by plugging them in and clamping them with tooling to ensure that the cables can be smoothly inserted into the structural components.
The process of inserting high-speed cables has been simplified, allowing sixteen cables to enter the structural components in an orderly and convenient manner, avoiding issues related to stacking order and direction control.
Smart Images

Figure CN223784541U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to optical module technical field, concretely relates to a cable shaping module and 800G / 1600G high speed optical module. BACKGROUND
[0002] For 800G / 1600G high speed optical module, it has sixteen high speed cables, sixteen high speed cables are put into the structural member of product, because the order and direction of sixteen high speed cables are stacked cannot be controlled, lead to put into the structural member is difficult, and the time is long. INVENTION CONTENTS
[0003] The utility model relates to a cable shaping module and 800G / 1600G high speed optical module to overcome the deficiencies in the prior art.
[0004] The utility model solves the technical scheme as follows to the above-mentioned technical problem.
[0005] A cable shaping module, comprising: first shaping clamp and second shaping clamp, first shaping clamp is C type structure, first shaping clamp interior space is used to accommodate the high speed cable that optical module has, second shaping clamp is arranged at the opening side of first shaping clamp, second shaping clamp is connected with first shaping clamp and blocks the opening of first shaping clamp, to block high speed cable from the opening of first shaping clamp and separate from first shaping clamp.
[0006] On the basis of the above technical scheme, the utility model can also be improved as follows.
[0007] Further, second shaping clamp is C type structure, first shaping clamp and second shaping clamp are inserted with the opening opposite mode.
[0008] Further, first shaping clamp includes: first main plate distributed along the vertical direction, and the upper and lower ends of the first main plate are respectively provided with upper and lower baffle plates distributed along the horizontal direction, second shaping clamp includes: second main plate distributed along the vertical direction, and the upper and lower ends of the second main plate are respectively provided with upper and lower pressing plates distributed along the horizontal direction, the upper pressing plate is above the upper baffle plate, and the lower surface of the upper pressing plate presses the upper surface of the upper baffle plate, the lower pressing plate is below the lower baffle plate, and the upper surface of the lower pressing plate presses the lower surface of the lower baffle plate.
[0009] Further, the middle region of the upper baffle plate is flat, and the two ends thereof are bent downward, the middle region of the lower baffle plate is flat, and the two ends thereof are bent upward, the middle region of the upper pressing plate is flat, and the two ends thereof are bent downward, and the middle region of the lower pressing plate is flat, and the two ends thereof are bent upward.
[0010] Further, the upper baffle is provided with an upper through groove in the middle region, the upper through groove extends into the region where the upper baffle is bent downward at both ends, the lower baffle is provided with a lower through groove in the middle region, the lower through groove extends into the region where the lower baffle is bent upward at both ends; the end of the upper pressing plate enters the upper through groove from above the upper baffle and passes through the upper through groove, and the lower surface of the upper pressing plate is close to the upper surface of the upper baffle near the first main plate; the end of the lower pressing plate enters the lower through groove from below the lower baffle and passes through the lower through groove, and the upper surface of the lower pressing plate is close to the lower surface of the lower baffle near the first main plate.
[0011] Further, the upper surface of the upper pressing plate is lower than or flush with the upper surface of the middle region of the upper baffle, and the lower surface of the lower pressing plate is higher than or flush with the lower surface of the middle region of the lower baffle.
[0012] Further, the connection between the upper baffle and the first main plate is arc-shaped, and the connection between the lower baffle and the first main plate is arc-shaped; the connection between the upper pressing plate and the second main plate is arc-shaped, and the connection between the lower pressing plate and the second main plate is arc-shaped.
[0013] Further, the upper baffle, the first main plate and the lower baffle are integrally formed; the upper pressing plate, the second main plate and the lower pressing plate are integrally formed.
[0014] Further, one end of the first main plate is provided with a first rib plate, the two ends of the first rib plate extend to the upper baffle and the lower baffle respectively, and the second main plate is provided with a second rib plate at the end on the same side as the first rib plate.
[0015] The beneficial effects of the utility model are that the first shaping clamp and the second shaping clamp are used to shape sixteen high-speed cables to form a module, and the module is placed into the structural member in the 800G / 1600G high-speed optical module, so that the order and direction of the sixteen high-speed cables can be controlled when the sixteen high-speed cables are placed into the structural member.
[0016] Based on the above technical scheme, the utility model further provides a 800G / 1600G high-speed optical module, which comprises a structural member and a cable shaping module, the cable shaping module is placed in the structural member, and sixteen high-speed cables are arranged in the internal space of the first shaping clamp in the cable shaping module.
[0017] The beneficial effects of the above scheme are that the cable shaping module is placed into the structural member in the 800G / 1600G high-speed optical module, so that the order and direction of the sixteen high-speed cables can be controlled when the sixteen high-speed cables are placed into the structural member. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 It is a structural diagram of the cable shaping module in the utility model;
[0019] Figure 2The explosion map of the cable shaping module in the utility model;
[0020] Figure 3 The shaping structure diagram of the cable shaping module in the utility model to high-speed cable;
[0021] Figure 4 The structure diagram of the tooling in the utility model.
[0022] In the drawings, the component list represented by each sign is as follows:
[0023] 1, first shaping clamp, 110, first main plate, 120, upper baffle, 121, upper through slot, 130, lower baffle, 131, lower through slot, 140, first rib plate, 2, second shaping clamp, 210, second main plate, 220, upper pressing plate, 230, lower pressing plate, 240, second rib plate, 3, high-speed cable, 4, base, 410, shaping groove, 411, positioning groove, 5, first pressing block, 6, second pressing block, 610, avoiding opening. DETAILED DESCRIPTION
[0024] The principles and characteristics of the utility model are described below in combination with the drawings, and the examples are only used to explain the utility model and are not used to limit the scope of the utility model.
[0025] Example 1
[0026] As shown in Figure 1 , Figure 2 , Figure 3 A cable shaping module, comprising: a first shaping clamp 1 and a second shaping clamp 2, the first shaping clamp 1 is a C-shaped structure, and the internal space of the first shaping clamp 1 is used to accommodate the high-speed cable 3 possessed by the optical module, that is, the size of the internal space of the first shaping clamp 1 can accommodate all high-speed cables 3 possessed by the optical module, for example, the optical module has sixteen high-speed cables 3, then the internal space of the first shaping clamp 1 can accommodate the following sixteen high-speed cables 3.
[0027] The second shaping clamp 2 is arranged at the opening side of the first shaping clamp 1, the second shaping clamp 2 is connected with the first shaping clamp 1 and blocks the opening of the first shaping clamp 1, because the opening of the first shaping clamp 1 is blocked by the second shaping clamp 2, therefore the high-speed cable 3 can be prevented from separating from the first shaping clamp 1 through the opening of the first shaping clamp 1.
[0028] Example 2
[0029] As shown in Figure 1 , Figure 2 , Figure 3 The embodiment is further improved on the basis of example 1, and the specific improvements are as follows:
[0030] The second shaping clip 2 is also preferably a C-shaped structure, with the first shaping clip 1 and the second shaping clip 2 being inserted together with their openings facing each other.
[0031] Furthermore, the first shaping clamp 1 includes: a first main board 110 distributed vertically, an upper baffle 120 distributed horizontally at the upper end of the first main board 110, and a lower baffle 130 distributed horizontally at the lower end of the first main board 110. The upper baffle 120, the first main board 110, and the lower baffle 130 form a C-shaped structure.
[0032] The second shaping clamp 2 includes: a second main board 210 distributed vertically, an upper pressure plate 220 distributed horizontally at the upper end of the second main board 210, and a lower pressure plate 230 distributed horizontally at the lower end of the second main board 210. The upper pressure plate 220, the second main board 210 and the lower pressure plate 230 form a C-shaped structure.
[0033] Since the first shaping clamp 1 and the second shaping clamp 2 are inserted into each other with their openings facing each other, the upper pressure plate 220 is above the upper baffle 120, and the lower surface of the upper pressure plate 220 presses against the upper surface of the upper baffle 120. The lower pressure plate 230 is below the lower baffle 130, and the upper surface of the lower pressure plate 230 presses against the lower surface of the lower baffle 130.
[0034] Example 3
[0035] like Figure 2 As shown, this embodiment is a further improvement on embodiment 2, as detailed below:
[0036] The upper baffle 120 has a flat middle section with both ends bent downwards, and the lower baffle 130 has a flat middle section with both ends bent upwards; while the upper pressure plate 220 has a flat middle section with both ends bent downwards, and the lower pressure plate 230 has a flat middle section with both ends bent upwards. After the first shaping clamp 1 and the second shaping clamp 2 are inserted together with their openings facing each other, at this time, it can be that the lower end of the upper pressure plate 220... The upper surface of the upper baffle 120 is close to the upper surface of the first main board 110, and the upper surface of the lower pressure plate 230 is close to the lower surface of the lower baffle 130. Alternatively, the lower surface of the middle area of the upper pressure plate 220 is close to the upper surface of the middle area of the upper baffle 120, and the upper surface of the middle area of the lower pressure plate 230 is close to the lower surface of the middle area of the lower baffle 130. Or, both of the above situations exist simultaneously, so that the first shaping clamp 1 and the second shaping clamp 2 will not easily separate.
[0037] Further, the upper baffle 120 is provided with an upper through slot 121 in the middle region, which extends into the region where the upper baffle 120 is bent downward at both ends, and similarly, the lower baffle 130 is provided with a lower through slot 131 in the middle region, which extends into the region where the lower baffle 130 is bent upward at both ends; the end of the upper pressing plate 220 enters the upper through slot 121 above the upper baffle 120 and passes through it, and the lower surface of the end of the upper pressing plate 220 is in close contact with the upper surface of the upper baffle 120 near the first main plate 110; the end of the lower pressing plate 230 enters the lower through slot 131 below the lower baffle 130 and passes through it, and the upper surface of the end of the lower pressing plate 230 is in close contact with the lower surface of the lower baffle 130 near the first main plate 110.
[0038] As a further optimization of the above scheme, the upper surface of the upper pressing plate 220 is lower than or flush with the upper surface of the middle region of the upper baffle 120, and the lower surface of the lower pressing plate 230 is higher than or flush with the lower surface of the middle region of the lower baffle 130.
[0039] Embodiment 4
[0040] As shown in the drawings, this embodiment is a further improvement based on Embodiment 2 or 3, and the specific improvements are as follows: Figure 2 The connection between the upper baffle 120 and the first main plate 110 is arc-shaped, and the connection between the lower baffle 130 and the first main plate 110 is arc-shaped; the connection between the upper pressing plate 220 and the second main plate 210 is arc-shaped, and the connection between the lower pressing plate 230 and the second main plate 210 is arc-shaped.
[0041] Further, the upper baffle 120, the first main plate 110, and the lower baffle 130 are integrally formed; the upper pressing plate 220, the second main plate 210, and the lower pressing plate 230 are integrally formed.
[0042] Embodiment 5
[0043] As shown in the drawings, this embodiment is a further improvement based on Embodiment 2 or 3 or 4, and the specific improvements are as follows:
[0044] Figure 2 One end of the first main plate 110 is provided with a first rib plate 140, and the two ends of the first rib plate 140 extend to the upper baffle 120 and the lower baffle 130 respectively, and the second main plate 210 is provided with a second rib plate 240 at the end on the same side as the first rib plate 140.
[0045] For any one of Embodiments 1-5, the first shaping clamp 1 is an upper-lower symmetric structure, and the second shaping clamp 2 is also an upper-lower symmetric structure.
[0046] For any one of Embodiments 1-5, the first shaping clamp 1 is an upper-lower symmetric structure, and the second shaping clamp 2 is also an upper-lower symmetric structure.
[0047] When the first shaping clamp 1 is inserted with the sixteen high-speed cables 3, the first shaping clamp 1 and the second shaping clamp 2 are inserted in the open opposite manner, at this time, there may be a situation that the first shaping clamp 1 and the second shaping clamp 2 are not closely fitted, then the whole can be put into a tool containing a base 4, a first pressing block 5 and a second pressing block 6, as shown in Figure 4 The positioning groove 411 is provided in the shaping groove 410 on the base 4, the lower end of the second pressing block 6 is provided with an avoiding port 610, the width of the avoiding port 610 is larger than the width of the upper pressing plate 220, when the shaping module is put into the shaping groove 410 on the base 4, the first rib plate 140 on the first shaping clamp 1 is in the positioning groove 411, the second rib plate 240 on the second shaping clamp 2 is in the positioning groove 411, the first pressing block 5 is used to press the end of the upper pressing plate 220 downward, the second pressing block 6 is used to press the end of the upper pressing plate 120 downward, so that the end of the first shaping clamp 1 and the second shaping clamp 2 is deformed, thereby being more closely fitted, and the cable is also better pressed.
[0048] Embodiment 6
[0049] An 800G / 1600G high-speed optical module, comprising: a structural member and the cable shaping module as claimed in any one of embodiments 1-5, the cable shaping module is placed in the structural member, and the internal space of the first shaping clamp 1 is provided with sixteen high-speed cables 3.
[0050] Although the embodiments of the utility model have been shown and described above, it can be understood that the above-mentioned embodiments are exemplary, and cannot be understood as the block of the utility model, the ordinary skilled in the art can change, modify, replace and change the above-mentioned embodiments within the scope of the utility model.
Claims
1. A cable shaping module, characterized in that, include: The first shaping clip (1) and the second shaping clip (2) are provided. The first shaping clip (1) has a C-shaped structure. The internal space of the first shaping clip (1) is used to accommodate the high-speed cable (3) of the optical module. The second shaping clip (2) is arranged on the opening side of the first shaping clip (1). The second shaping clip (2) is connected to the first shaping clip (1) and blocks the opening of the first shaping clip (1) to prevent the high-speed cable (3) from leaving the first shaping clip (1) through the opening.
2. The cable shaping module according to claim 1, characterized in that, The second shaping clip (2) has a C-shaped structure, and the first shaping clip (1) and the second shaping clip (2) are inserted into each other with their openings facing each other.
3. The cable shaping module according to claim 2, characterized in that, The first shaping clamp (1) includes: a first main board (110) distributed vertically, with an upper baffle (120) and a lower baffle (130) distributed horizontally at the upper and lower ends of the first main board (110); the second shaping clamp (2) includes: a second main board (210) distributed vertically, with an upper pressure plate (220) and a lower pressure plate (230) distributed horizontally at the upper and lower ends of the second main board (210); the upper pressure plate (220) is located above the upper baffle (120) and its lower surface presses against the upper surface of the upper baffle (120), and the lower pressure plate (230) is located below the lower baffle (130) and its upper surface presses against the lower surface of the lower baffle (130).
4. A cable shaping module according to claim 3, characterized in that, The upper baffle (120) has a flat middle area and its two ends bend downwards, the lower baffle (130) has a flat middle area and its two ends bend upwards; the upper pressure plate (220) has a flat middle area and its two ends bend downwards, the lower pressure plate (230) has a flat middle area and its two ends bend upwards.
5. A cable shaping module according to claim 4, characterized in that, The upper baffle (120) has an upper through groove (121) through the middle area, and the upper through groove (121) extends into the area where the two ends of the upper baffle (120) bend downwards. The lower baffle (130) has a lower through groove (131) through the middle area, and the lower through groove (131) extends into the area where the two ends of the lower baffle (130) bend upwards. The end of the upper pressure plate (220) enters the upper through groove (121) above the upper baffle (120) and passes through it. Its lower surface is in close contact with the upper surface of the upper baffle (120) near the upper surface of the first main board (110). The end of the lower pressure plate (230) enters the lower through groove (131) below the lower baffle (130) and passes through it. Its upper surface is in close contact with the lower surface of the lower baffle (130) near the lower surface of the first main board (110).
6. A cable shaping module according to claim 5, characterized in that, The upper surface of the upper pressure plate (220) is lower than or flush with the upper surface of the middle area of the upper baffle (120), and the lower surface of the lower pressure plate (230) is higher than or flush with the lower surface of the middle area of the lower baffle (130).
7. A cable shaping module according to any one of claims 3 to 6, characterized in that, The connection between the upper baffle (120) and the first main board (110) is arc-shaped, and the connection between the lower baffle (130) and the first main board (110) is arc-shaped; the connection between the upper pressure plate (220) and the second main board (210) is arc-shaped, and the connection between the lower pressure plate (230) and the second main board (210) is arc-shaped.
8. A cable shaping module according to any one of claims 3 to 6, characterized in that, The upper baffle (120), the first main board (110) and the lower baffle (130) are integrally formed; the upper pressure plate (220), the second main board (210) and the lower pressure plate (230) are integrally formed.
9. A cable shaping module according to any one of claims 3 to 6, characterized in that, The first main board (110) has a first rib (140) at one end, and the two ends of the first rib (140) extend to the upper baffle (120) and the lower baffle (130) respectively. The second main board (210) has a second rib (240) at the end on the same side as the first rib (140).
10. An 800G / 1600G high-speed optical module, characterized in that, include: The structural component and the cable shaping module as described in any one of claims 1 to 9, wherein the cable shaping module is placed inside the structural component, and sixteen high-speed cables (3) are inserted into the internal space of the first shaping clip (1) in the cable shaping module.