Optical-electrical combined distribution box
By using mounting plates to divide the internal cavity and arranging components side by side in the optoelectronic integrated wiring box, the problem of low space utilization is solved, the equipment is miniaturized and installed at low cost, the application range is expanded and maintenance efficiency is improved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- WUHAN NEW ENERGY TECH DEV
- Filing Date
- 2025-07-15
- Publication Date
- 2026-06-02
AI Technical Summary
Existing integrated optoelectronic wiring boxes have low space utilization, resulting in large equipment size, high transportation and installation costs, and difficulty in adapting to installation scenarios with limited space.
The mounting plate divides the interior of the enclosure into a first inner cavity and a second inner cavity. The fusion splicing assembly extends along the length of the enclosure. The communication transmission equipment and the jumper storage box are arranged side by side on both sides of the second inner cavity. The stability and reliability of the mounting plate are improved by combining guide components and locking components.
It improves space utilization, reduces equipment height and volume, lowers transportation and installation costs, expands the scope of application, and enhances maintenance efficiency and equipment usability.
Smart Images

Figure CN224317827U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of optical fiber power distribution network communication technology, and in particular to an optoelectronic integrated distribution box. Background Technology
[0002] With the rapid development of information technology, the complexity of communication networks and the demand for bandwidth are constantly increasing. In modern communication systems, fiber optic communication and electrical communication often need to be managed and distributed in the same space to meet the connection needs of different devices.
[0003] For example, patent CN209992714U discloses an optoelectronic integrated distribution box with a housing-type fiber storage unit. The box includes a housing, an industrial communication transmission device and a power supply at the bottom, and several housing-type fiber storage units arranged horizontally along the width of the housing on the inner wall above the industrial communication transmission device. Several backbone fiber distribution boxes are located at the top of the housing. However, both the fiber distribution boxes and the housing-type fiber storage units are stacked vertically, significantly increasing the overall volume of the box. This not only occupies more installation space but also increases the transportation and installation costs of the equipment, making it unsuitable for installation scenarios with limited space and restricting its application scope. Utility Model Content
[0004] In view of this, this utility model proposes an integrated optoelectronic wiring box, which can solve the problem of low space utilization in existing wiring boxes.
[0005] The technical solution of this utility model is implemented as follows:
[0006] This utility model provides an integrated optoelectronic wiring box, comprising:
[0007] The housing has an installation plate inside, which divides the housing into a first inner cavity and a second inner cavity.
[0008] An integrated melting and dispensing assembly is disposed on the mounting plate and located within the first inner cavity. The integrated melting and dispensing assembly includes an electrically connected integrated tray and a direct melting tray. The integrated tray is disposed above the direct melting tray and extends along the length of the housing.
[0009] Multiple jumper clip storage boxes are disposed in the second inner cavity and connected to the integrated fusion splicing assembly, with each jumper clip storage box arranged vertically along the length of the housing; and
[0010] A communication transmission device, wherein the communication transmission device and the jumper storage box are respectively disposed on both sides of the second inner cavity and connected to the jumper storage box.
[0011] Based on the above technical solutions, preferably, the mounting plate is slidably disposed in the housing by a guide component, the guide component including a groove and a rail that are embedded and cooperate, one of the groove and the rail being disposed on the mounting plate and the other being disposed on the housing.
[0012] More preferably, the guide component is provided in two sets, and the two sets of guide components are respectively provided on both sides of the box body along its length.
[0013] Based on the above technical solutions, preferably, the end of the mounting plate is provided with a folded edge, and the folded edge is detachably connected to the housing through a locking component.
[0014] More preferably, the locking element includes a non-removable bolt.
[0015] Based on the above technical solution, preferably, two splitter brackets are also provided inside the box, and the two splitter brackets are respectively provided on both sides of the length direction of the box, and optical splitters are provided on the splitter brackets.
[0016] More preferably, the splitter bracket includes a first frame and a second frame connected at an angle. The first frame is disposed on the housing, and the second frame is disposed opposite to the inner wall of the housing. An installation area is enclosed between the first frame, the second frame, and the inner wall of the housing. The optical splitter is disposed in the installation area. A fixing member is movably disposed on the second frame for clamping and fixing the optical splitter.
[0017] Based on the above technical solutions, preferably, it also includes a mounting bracket disposed in the second inner cavity. The mounting bracket is provided with mounting holes and disassembly holes at intervals. The communication transmission device is disposed on the mounting bracket through the mounting holes, and the disassembly holes are detachably disposed on the housing through fittings.
[0018] Based on the above technical solutions, preferably, the housing includes a bottom plate, side plates are provided on opposite sides of the bottom plate, a top plate is provided at the end of the side plate away from the bottom plate, a cover plate and a back plate are provided at both ends of the bottom plate respectively, and the cover plate is movably disposed on the bottom plate; multiple cable inlet holes are provided through the side plates and the back plate.
[0019] Based on the above technical solutions, preferably, the side panel is provided with a hanging ear, the hanging ear includes a first hanging plate and a second hanging plate connected at an angle, and both the first hanging plate and the second hanging plate are provided with a mounting part for detachable connection with the side panel; the first hanging plate and the second hanging plate have different dimensions in the length direction of the box.
[0020] The optoelectronic integrated wiring box of this invention has the following advantages over the prior art:
[0021] (1) The cabinet is divided into a first inner cavity and a second inner cavity by the mounting plate, and the internal area of the cabinet is divided. The integrated fusion assembly is set on the mounting plate, and the integrated tray and the direct fusion plate are electrically connected and extended along the length of the cabinet. This can make full use of the internal space of the cabinet and avoid the space waste caused by the length direction in the traditional stacking method. In addition, by setting the communication transmission equipment and the jumper storage box side by side on both sides of the second inner cavity, the height of the cabinet can be greatly reduced compared with the traditional top and bottom setting, which can effectively improve the space utilization, reduce the overall volume of the cabinet, reduce the transportation and installation costs of the equipment, and make it better adaptable to the installation scenario with limited space, thus expanding its application range.
[0022] (2) The mounting plate is slidably installed inside the box. When maintenance or replacement of the fusion splicing assembly or other components mounted on the mounting plate is required, the operator can slide the mounting plate out of the box, complete the relevant operations, and then slide it back to its original position, which greatly improves the maintenance efficiency of the equipment and further enhances the practicality and convenience of the optoelectronic integrated wiring box. The stability and reliability of the sliding of the mounting plate are improved by the setting of the guide component. Attached Figure Description
[0023] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0024] Figure 1 This is a schematic diagram of the overall structure of the optoelectronic integrated wiring box of this utility model;
[0025] Figure 2 for Figure 1 The main view;
[0026] Figure 3 for Figure 1 The right view;
[0027] Figure 4 for Figure 1 The left view;
[0028] Figure 5 for Figure 1 Rear view;
[0029] Figure 6 This is a perspective view of the housing of the optoelectronic integrated wiring box of this utility model;
[0030] Figure 7 This is a perspective view of the optoelectronic integrated wiring box of this utility model from another direction;
[0031] Figure 8 for Figure 7 Enlarged view of section A in the middle;
[0032] Figure 9 This is a perspective view of the mounting bracket in the optoelectronic integrated wiring box of this utility model;
[0033] Figure 10 This is a perspective view of the mounting plate in the optoelectronic integrated wiring box of this utility model;
[0034] Figure 11 This is a perspective view of the jumper storage box in the optoelectronic integrated wiring box of this utility model;
[0035] Figure 12 This is a perspective view of the mounting ears in the optoelectronic integrated wiring box of this utility model;
[0036] Figure 13 This is a schematic diagram of the connection between the first hanging plate and the side plate in the optoelectronic integrated wiring box of this utility model.
[0037] Figure 14 This is a schematic diagram of the connection between the second mounting plate and the side plate in the optoelectronic integrated wiring box of this utility model.
[0038] Figure label:
[0039] 1. Enclosure; 101. First inner cavity; 102. Second inner cavity; 103. Bottom plate; 104. Side plate; 105. Top plate; 106. Cover plate; 107. Back plate; 108. Cable entry hole; 2. Mounting plate; 21. Folded edge; 22. Locking component; 3. Integrated fusion splicing assembly; 31. Integrated tray; 32. Direct fusion tray; 4. Fiber patch storage box; 5. Communication transmission equipment; 6. Guide component; 61. Slide groove; 62. Slide rail; 7. Splitter bracket; 71. First frame; 72. Second frame; 8. Optical splitter; 9. Installation area; 10. Fixing component; 11. Mounting bracket; 111. Mounting hole; 112. Disassembly hole; 113. Assembly component; 12. Hanging ear; 121. First hanging plate; 122. Second hanging plate; 123. Mounting part; 13. Optical cable fixing seat; 14. Grounding bar. Detailed Implementation
[0040] The technical solutions of this utility model will be clearly and completely described below with reference to the embodiments of this utility model. Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. Based on the embodiments of this utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of this utility model.
[0041] like Figures 1 to 14 As shown, this utility model provides an integrated optoelectronic distribution box, which includes a box body 1, an integrated fusion splicing assembly 3, multiple jumper storage boxes 4, and a communication transmission device 5. A mounting plate 2 is disposed inside the box body 1. The integrated fusion splicing assembly 3 is mounted on the mounting plate 2 and located within a first inner cavity 101. The integrated fusion splicing assembly 3 includes an electrically connected integrated tray 31 and a direct fusion plate 32. The integrated tray 31 is positioned above the direct fusion plate 32 and extends along the length of the box body 1. Multiple jumper storage boxes 4 are disposed in a second inner cavity 102 and connected to the integrated fusion splicing assembly 3. Each jumper storage box 4 is arranged vertically along the length of the box body 1. The communication transmission device 5 is disposed on both sides of the second inner cavity 102 and connected to the jumper storage boxes 4. The communication transmission device can be a switch or an ONU, etc. There are many jumpers inside the box, most of which are coiled and disorderly. The jumper storage boxes 4 are used to store redundant jumpers, making the fiber optic route neat and aesthetically pleasing, and facilitating later maintenance.
[0042] The mounting plate 2 divides the interior of the housing 1 into a first inner cavity 101 and a second inner cavity 102, thus dividing the interior of the housing 1 into regions. The integrated fusion assembly 3 is placed on the mounting plate 2, and the integrated tray 31 and the direct fusion plate 32 are electrically connected and extend along the length of the housing 1. This fully utilizes the internal space of the housing 1 and avoids the space waste on both sides of the length direction caused by traditional stacking methods. In addition, by placing the communication transmission device 5 and the jumper storage box 4 side by side on both sides of the second inner cavity 102, the height of the housing 1 can be significantly reduced compared to the traditional top-bottom arrangement, effectively improving space utilization, reducing the overall volume of the housing 1, and lowering the transportation and installation costs of the equipment. This allows it to better adapt to installation scenarios with limited space and expands its application range.
[0043] The integrated tray 31 and the direct fusion tray 32 can be adapted to the usage requirements of the optoelectronic integrated wiring box in different scenarios. In this embodiment, the integrated tray 31 adopts a 12-core integrated tray and the direct fusion tray 32 adopts a 12-core direct fusion tray as an example for demonstration.
[0044] In some embodiments, the mounting plate 2 is slidably disposed within the housing 1 via a guide component 6. The guide component 6 includes a fitted groove 61 and a slide rail 62, one of which is disposed on the mounting plate 2, and the other on the housing 1. By sliding the mounting plate 2, it can be placed within or removed from the housing 1, reducing the difficulty and cost of equipment maintenance. In actual operation, when maintenance or replacement of the fusion splicing assembly 3 or other components mounted on the mounting plate 2 is required, the operator can slide the mounting plate 2 out of the housing 1, complete the relevant operations, and then slide it back into its original position, greatly improving the maintenance efficiency of the equipment and further enhancing the practicality and convenience of the optoelectronic integrated wiring box.
[0045] Optionally, two sets of guide components 6 are provided, with the two sets of guide components 6 respectively located on both sides of the length direction of the housing 1. The arrangement of two sets of guide components 6 improves the stability and reliability of the sliding of the mounting plate 2, effectively avoiding the problems of tilting or jamming of the mounting plate 2 that may be caused by unilateral guidance.
[0046] In this embodiment, the slide groove 61 is formed on the housing 1, and the slide rail 62 is set on the mounting plate 2. By embedding the slide rail 62 on the mounting plate 2 into the slide groove 61 of the housing 1, the mounting plate 2 is assembled on the housing 1, and it can also play a positioning and guiding role in the movement of the mounting plate 2.
[0047] like Figures 1 to 14 As shown, in some embodiments, the end of the mounting plate 2 is provided with a folded edge 21, which is detachably connected to the housing 1 via a locking member 22. The locking member 22 secures the mounting plate 2 within the housing 1, ensuring the stability of the mounting plate 2's position during transportation and preventing damage to the integrated fusion assembly 3 located on it due to sliding within the housing 1. Simultaneously, the folded edge 21 increases the contact area between the mounting plate 2 and the housing 1, allowing the locking member 22 to more firmly fix the mounting plate 2 to the housing 1, thus improving the stability of the mounting plate 2.
[0048] Optionally, the locking component 22 includes clamps, screws, or clips. In this embodiment, the locking component 22 uses a non-detachable bolt, which can effectively solve the problem of loosening that may occur with traditional bolts during long-term use. The non-detachable bolt can maintain a stable locking state during equipment operation, and even in harsh environments such as vibration or impact, it can ensure a firm connection between the mounting plate 2 and the housing 1, and will not cause the mounting plate 2 to shift or the fused integrated assembly 3 to be damaged due to bolt loosening.
[0049] Optionally, the mounting plate 2 is provided with flanges 21 on both sides of the box body 1 along its length. The two flanges 21 are connected to the box body 1 by two locking parts 22, which further improves the stability of the connection between the mounting plate 2 and the box body 1.
[0050] In some embodiments, two splitter brackets 7 are also provided inside the housing 1. The two splitter brackets 7 are respectively arranged on both sides of the length direction of the housing 1. An optical splitter 8 is provided on the splitter bracket 7. The optical splitter 8 is used to distribute and manage optical signals. By setting the splitter brackets 7 on both sides of the length direction of the housing 1, the internal space of the housing 1 can be fully utilized, the mutual interference between the optical splitter 8 and other components can be avoided, the utilization rate of the internal space of the housing 1 and the rationality of the component layout can be improved, and the stable transmission and efficient splitting of optical signals during the distribution process can also be ensured.
[0051] An optical cable fixing seat 13 is installed outside the housing 1. The main optical cable is stripped, fixed, and grounded on the optical cable fixing seat 13 and spliced with the pigtail on the integrated tray 31 to form a termination. The incoming optical cable signal is transmitted to the optical splitter 8 through the jumper. The optical splitter 8 splits the stronger optical signal and transmits it to the outgoing optical cable through the optical fiber jumper. The weaker optical signal is transmitted to the communication transmission equipment 5 through the optical fiber jumper. The communication transmission equipment 5 realizes the detection of the operating status of the power terminal equipment and reports the detection data to the power communication dispatch center through the optical fiber communication network, thereby meeting the needs of power distribution network automation.
[0052] like Figures 1 to 14 As shown, in some embodiments, the splitter bracket 7 includes a first frame 71 and a second frame 72 connected at an angle. The first frame 71 is disposed on the housing 1, and the second frame 72 is disposed opposite to the inner wall surface of the housing 1. An installation area 9 is enclosed between the first frame 71, the second frame 72, and the inner wall surface of the housing 1. The optical splitter 8 is disposed within the installation area 9. A fixing member 10 is movably disposed on the second frame 72 for clamping and fixing the optical splitter 8. The installation area 9 provides an installation position for the optical splitter 8, and the fixing member 10 limits and fixes the optical splitter 8 within the installation area 9, thereby improving the installation stability of the optical splitter 8. In addition, the first frame 71 and the second frame 72 can also provide a certain degree of protection for the optical splitter 8, preventing damage to the optical splitter 8 due to external forces or vibrations. Furthermore, the optical splitter 8 is movably mounted on the second frame 72 by means of the fastener 10, and is clamped and fixed in the installation area 9 by means of the fastener 10. This allows for flexible adjustment according to the actual size and shape of the optical splitter 8. The optical splitter 8 is firmly installed on the splitter bracket 7 by means of clamping and fixing, which not only ensures the stability of the optical splitter 8, but also facilitates the installation and disassembly of the optical splitter 8, thereby improving the maintenance efficiency and flexibility of the equipment.
[0053] The fastener 10 can be threaded onto the second frame 72; or the fastener 10 can be slidably disposed on the second frame 72 and fixed to the second frame 72 by a positioning pin. This allows the fastener 10 to be movable on the second frame 72, ensuring the fastener 10 effectively secures the optical splitter 8.
[0054] Of course, the end of the fixing member 10 that cooperates with the optical splitter 8 can also be provided with a flexible component. The flexible component ensures effective clamping of the optical splitter 8 while preventing damage to the optical splitter 8 from the clamping force, thus ensuring safety. The flexible component can be made of materials such as sponge, silicone, or rubber. In this embodiment, silicone is used as the flexible component. Besides ensuring flexible fixation, silicone can also create a certain amount of friction with the optical splitter 8, further improving the fixing effect.
[0055] In some embodiments, the fiber optic patch cord storage box 4 is equipped with an independent retractable and automatically retractable fiber optic storage unit. When the power company needs to activate different services successively, patch cords are pulled out from the corresponding service's storage module box and routed along the corresponding patch cord routing channel. When the length of the pulled-out patch cord is redundant, the storage box will slowly and automatically retract until the patch cord length is exactly connected to the corresponding service port, with no exposed redundant patch cords. The fiber optic routing inside the box is neat and simple. Once the optoelectronic integrated distribution box malfunctions, maintenance personnel only need to check the distribution fiber of the service with the problem, greatly improving maintenance efficiency.
[0056] In some embodiments, the optoelectronic integrated wiring box further includes a mounting bracket 11 disposed in the second inner cavity 102. The mounting bracket 11 is provided with mounting holes 111 and disassembly holes 112 at intervals. The communication transmission device 5 is mounted on the mounting bracket 11 through the mounting holes 111, and the disassembly holes 112 are detachably disposed on the box body 1 through mounting fittings 113. The disassembly holes 112 are used to assemble the device onto the box body 1, and the mounting holes 111 are used to mount the communication transmission device 5 on the mounting bracket 11, thereby assembling the communication transmission device 5 onto the box body 1 and ensuring the stability of the position of the communication transmission device 5.
[0057] The mounting bracket 11 has a detachable mounting hole 112 that is detachably mounted on the housing 1 via the mounting accessory 113. This allows the mounting bracket 11 to be mounted at any position on the housing 1, enabling flexible adjustment of the position of the communication transmission equipment 5 as needed. This further ensures the rational division and use of the internal space of the housing 1 and makes the layout of the housing 1 more reasonable.
[0058] The assembly 113 can be made of materials such as locating pins or screws. In this embodiment, the assembly 113 uses a wing nut. The wing-shaped portion of the wing nut provides a large base area, allowing for direct operation with fingers without the need for wrenches or other tools. This eliminates space constraints, reduces tool usage requirements, saves tool costs, and enables quick disassembly and installation. Furthermore, during assembly, the operator can intuitively feel the tightness of the wing nut, reducing the risk of thread damage or component deformation due to over-tightening.
[0059] The mounting hole 111 can be a gourd-shaped or D-shaped hole. The communication transmission equipment 5 is provided with a mounting part. The mounting hole 111 includes a wide part and a narrow part, and a channel connects the wide part and the narrow part. By hanging the mounting part on the wide part of the mounting hole 111, and then passing the mounting part through the channel into the narrow part, the mounting part is fixed at the narrow part, thereby realizing quick installation and disassembly.
[0060] In some embodiments, the enclosure 1 includes a base plate 103, side plates 104 are provided on opposite sides of the base plate 103, and a top plate 105 is provided at the end of the side plate 104 away from the base plate 103. A cover plate 106 and a back plate 107 are respectively provided at both ends of the base plate 103, and the cover plate 106 is movably disposed on the base plate 103. Multiple cable entry holes 108 are provided through the side plates 104 and the back plate 107. Optical cable fixing seats 13 are provided on both side plates 104. By providing cable entry holes 108 on the periphery of the enclosure 1, optical fibers can be easily introduced into the enclosure 1 without being blocked, thus avoiding the wiring difficulties caused by unreasonable cable entry positions in traditional single cable entry methods. This makes the optoelectronic integrated box highly versatile in such complex installation environments.
[0061] In some embodiments, the side panel 104 is provided with a hanging ear 12, which includes a first hanging plate 121 and a second hanging plate 122 connected at an angle. Both the first hanging plate 121 and the second hanging plate 122 are provided with a mounting portion 123 for detachable connection with the side panel 104. The first hanging plate 121 and the second hanging plate 122 have different dimensions along the length of the housing 1. The different dimensions can be converted by adjusting the installation direction of the hanging ear 12, allowing the optoelectronic integrated box to be installed in different situations. For example, when the length of the first hanging plate 121 is greater than the length of the second hanging plate 122, the distance between the second hanging plates 122 on both sides of the housing 1 can be 19 inches when the first hanging plate 121 is connected to the side panel 104; when the second hanging plate 122 is connected to the side panel 104, the distance between the first hanging plates 121 on both sides of the housing 1 can be 21 inches. Thus, the conversion between 19 inches and 21 inches can be achieved by adjusting the installation direction of the hanging ear 12, meeting the usage requirements in different situations.
[0062] Optionally, a grounding busbar 14 is also provided on the side plate 104. The grounding busbar 14 provides grounding protection, effectively preventing the impact of static electricity accumulation and electromagnetic interference on equipment operation, and further improving the safety and stability of the equipment. The grounding busbar 14 enables the entire wiring box to better resist interference from the external electromagnetic environment during operation, ensuring the stable transmission of fiber optic communication signals, while also providing a safer operating environment for maintenance personnel and reducing the risk of electric shock.
[0063] like Figures 1 to 14 As shown above, this application provides an integrated optoelectronic wiring box. The mounting plate 2 divides the interior of the box 1 into a first inner cavity 101 and a second inner cavity 102, thus dividing the interior of the box 1 into regions. The integrated fusion splicing assembly 3 is mounted on the mounting plate 2, and the integrated tray 31 and the direct fusion plate 32 are electrically connected and extend along the length of the box 1. This fully utilizes the internal space of the box 1, avoiding the space waste on both sides of the length direction caused by traditional stacking methods. Furthermore, by arranging the communication transmission device 5 and the jumper storage box 4 side-by-side on both sides of the second inner cavity 102, the height of the box 1 can be significantly reduced compared to the traditional top-bottom arrangement, effectively improving space utilization, reducing the overall volume of the box 1, lowering the transportation and installation costs of the equipment, and enabling it to better adapt to installation scenarios with limited space, thus expanding its application range.
[0064] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A photoelectric integrated wiring box, characterized in that, include: The box (1) has an installation plate (2) inside, which divides the box (1) into a first inner cavity (101) and a second inner cavity (102). The integrated melting and dispensing assembly (3) is disposed on the mounting plate (2) and located in the first inner cavity (101). The integrated melting and dispensing assembly (3) includes an electrically connected integrated tray (31) and a direct melting plate (32). The integrated tray (31) is disposed above the direct melting plate (32) and extends along the length direction of the housing (1). Multiple jumper storage boxes (4) are disposed in the second inner cavity (102) and connected to the integrated fusion splicing assembly (3). Each jumper storage box (4) is arranged vertically along the length direction of the box body (1). as well as The communication transmission device (5) and the jumper storage box (4) are respectively disposed on both sides of the second inner cavity (102) and connected to the jumper storage box (4).
2. The optoelectronic integrated wiring box as described in claim 1, characterized in that: The mounting plate (2) is slidably disposed in the housing (1) by a guide component (6). The guide component (6) includes a groove (61) and a rail (62) that are fitted together. One of the groove (61) and the rail (62) is disposed on the mounting plate (2), and the other is disposed on the housing (1).
3. The optoelectronic integrated wiring box as described in claim 2, characterized in that: The guide component (6) is provided in two sets, and the two sets of guide components (6) are respectively provided on both sides of the box body (1) in the length direction.
4. The optoelectronic integrated wiring box as described in claim 1, characterized in that: The mounting plate (2) has a folded edge (21) at its end, and the folded edge (21) is detachably connected to the housing (1) by a locking member (22).
5. The optoelectronic integrated wiring box as described in claim 4, characterized in that: The locking element (22) includes a non-detachable bolt.
6. The optoelectronic integrated wiring box as described in claim 1, characterized in that: The housing (1) is also provided with two splitter brackets (7), which are respectively located on both sides of the length direction of the housing (1). Optical splitters (8) are provided on the splitter brackets (7).
7. The optoelectronic integrated wiring box as described in claim 6, characterized in that: The splitter bracket (7) includes a first frame (71) and a second frame (72) connected at an angle. The first frame (71) is disposed on the housing (1), and the second frame (72) is disposed opposite to the inner wall of the housing (1). An installation area (9) is enclosed between the first frame (71), the second frame (72) and the inner wall of the housing (1). The optical splitter (8) is disposed in the installation area (9). A fixing member (10) is movably disposed on the second frame (72). The fixing member (10) is used to clamp and fix the optical splitter (8).
8. The optoelectronic integrated wiring box as described in claim 1, characterized in that: It also includes a mounting bracket (11) disposed in the second inner cavity (102). The mounting bracket (11) is provided with mounting holes (111) and disassembly holes (112) spaced apart. The communication transmission device (5) is disposed on the mounting bracket (111) through the mounting holes (111), and the disassembly holes (112) are detachably disposed on the housing (1) through the mounting fittings (113).
9. The optoelectronic integrated wiring box as described in claim 1, characterized in that: The enclosure (1) includes a bottom plate (103), side plates (104) are provided on opposite sides of the bottom plate (103), a top plate (105) is provided at the end of the side plate (104) away from the bottom plate (103), a cover plate (106) and a back plate (107) are provided at both ends of the bottom plate (103), and the cover plate (106) is movably disposed on the bottom plate (103); multiple cable inlet holes (108) are provided through the side plate (104) and the back plate (107).
10. The optoelectronic integrated wiring box as described in claim 9, characterized in that: The side panel (104) is provided with a hanging ear (12), the hanging ear (12) includes a first hanging plate (121) and a second hanging plate (122) connected at an angle, and both the first hanging plate (121) and the second hanging plate (122) are provided with a mounting part (123) for detachable connection with the side panel (104); the first hanging plate (121) and the second hanging plate (122) have different dimensions in the length direction of the box (1).