Modular power delivery system
Through a modular power delivery system, power transmission is achieved through plug-in connection, which solves the complex problems of traditional wiring methods and improves construction efficiency and safety.
Patent Information
- Application Number
- CN202510852593.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-24
- Publication Date
- 2025-08-12
AI Technical Summary
Traditional home decoration wiring methods require pipes and wiring within the walls. The construction is complicated and the lack of modular design, resulting in inconvenient and unsafe wiring.
It adopts a modular power transmission system, including transverse power line pipes, multi-pass connectors, adapter plugs and vertical routing tap plugs, and connects power equipment through plug-in to realize the modular design of power transmission.
It realizes power wiring without the need to penetrate pipes in the wall, is simple to operate, improves construction efficiency and safety, and enhances the convenience and reliability of wiring.
Smart Images

Figure CN120473908A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of power equipment, and in particular to a modular power transmission system. Background Art
[0002] In recent years, with the continuous deepening of the concept of smart home, in order to achieve the ultimate goal of automatic control and management of home appliances, changing the existing home decoration wiring form and rationally transforming the wiring technology and power system have gradually become an important development direction in the field of smart home.
[0003] The traditional way of wiring in home decoration is often to run wires through pipes inside the wall. During the construction process, complex processes such as digging grooves, burying pipes, threading wires, and filling grooves are required. The modular use of the overall wiring cannot be achieved. During the construction process, cables need to be passed back and forth in various parts, requiring multiple wiring. The modularity of the pipeline solution is poor. Combined with the current development of smart homes, it is urgent to design a modular solution that can be simply spliced to form the entire wiring, so as to make wiring more convenient, safer and more reliable. Summary of the Invention
[0004] In view of the defects in the prior art, an object of the present invention is to provide a modular power transmission system.
[0005] According to the present invention, a modular power transmission system is provided, comprising a horizontal power transmission pipe, a multi-way connector, a switching plug, a vertical routing tap plug, and a vertical power transmission pipe;
[0006] The plurality of horizontal power transmission pipes are connected to each other through a multi-way joint, and the vertical power transmission pipe is connected to the horizontal power transmission pipe through a vertical routing tap plug or through the multi-way joint. The adapter plug is used to connect electrical equipment and is arranged at any position at the bottom of the horizontal power transmission pipe or configured at the bottom of the vertical power transmission pipe.
[0007] Preferably, the horizontal power transmission line tube comprises a first tube shell, a support frame, three first conductors and a seal;
[0008] The first tube shell has an interior containing space, with a gap extending in the length direction provided at the bottom. The support frame is made of insulating material and is assembled within the interior of the containing space. The support frame has a first channel within the interior, and one first conductor hole is provided on one side of the first channel, and two first conductor holes are provided on the other side. The three first conductor holes each have a first opening on a side facing the first channel. The three first conductors are respectively assembled in the three first conductor holes, with side portions of each being exposed in the first channel through the first openings.
[0009] The first channel faces the gap, and a seal is disposed between the first channel and the gap to isolate the first channel from the outside. The seal is a flexible structure that allows deformation under external force to connect the gap with the first channel.
[0010] Preferably, when viewed along the axial direction of the first tube shell, the three first conductors are arranged in a triangular structure;
[0011] The first conductor is a tubular structure;
[0012] The first tube shell is made of aluminum alloy or stainless steel.
[0013] Preferably, the support frame includes a first rib and a second rib, the first channel is located between the first rib and the second rib, one first conductor hole is configured on the second rib, and the other two first conductor holes are configured on the first rib.
[0014] Preferably, an arc-shaped rib extends from the first rib toward one end of the gap, and an end portion of the sealing member abuts against the arc-shaped rib.
[0015] Preferably, both the horizontal power transmission line pipe and the vertical power transmission line pipe can be cut according to actual usage length to match different application scenarios.
[0016] Preferably, the adapter plug includes a base and a first plugboard arranged on the base, one side of the first plugboard has two first contacts, and the other side of the first plugboard has one first contact, and three cables extend from the interior of the base, and the roots of the three cables are respectively connected to the three first contacts;
[0017] The first plug board can be inserted into the first channel through the gap so that the three first contacts are connected to the three first conductors respectively.
[0018] Preferably, the vertical routing tap plug includes an intermediate platform and a second plugboard and a third plugboard respectively arranged on the upper and lower sides of the intermediate platform;
[0019] One side of the second plugboard has two second contacts, and the other side of the second plugboard has one second contact;
[0020] One side of the third plug board has two third contacts, the other side of the third plug board has one third contact, and the three second contacts are electrically connected to the corresponding three third contacts respectively;
[0021] The second plug-in board can be inserted into the first channel through the gap so that the three second contacts are connected to the three first conductors respectively.
[0022] Preferably, the vertical power transmission line tube includes a second tube shell and three second conductors;
[0023] The second tube shell has a second channel inside, and one side of the second channel is provided with a second conductor hole, and the other side is provided with two second conductor holes. The three second conductor holes have a second opening on the side facing the second channel. The three second conductors are respectively assembled in the three second conductor holes, and the side portions are exposed in the second channel through the second openings. The third plugboard matches the second channel.
[0024] Preferably, the multi-way connector is provided with at least two connecting ends, and each connecting end is provided with three first plugs, and the three first plugs can be respectively inserted into the three first conductor holes so as to connect the horizontal power transmission line pipe to the multi-way connector, or the three first plugs can be respectively inserted into the three second conductor holes so as to connect the vertical power transmission line pipe to the multi-way connector.
[0025] Compared with the prior art, the present invention has the following beneficial effects:
[0026] The modular power transmission system in the present invention does not require pipes to be laid in the wall. Power transmission can be achieved by directly plugging and connecting various components, realizing a modular design of the pipeline solution, making wiring more convenient, safer and more reliable. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] Other features, objects and advantages of the present invention will become more apparent upon reading the detailed description of non-limiting embodiments with reference to the following drawings:
[0028] Figure 1 This is a schematic diagram of the structure of the horizontal power transmission line pipe;
[0029] Figure 2 It is a structural diagram of the end portion of a horizontal power transmission line tube;
[0030] Figure 3 Schematic diagram of the structure of a tee joint;
[0031] Figure 4 This is a schematic diagram of an exploded structure of a three-way joint in one embodiment;
[0032] Figure 5 Schematic diagram of the structure of the adapter plug;
[0033] Figure 6 This is a schematic structural diagram of the vertical routing tap plug in Example 1;
[0034] Figure 7This is an exploded schematic diagram of the structure of the vertical routing tap plug in Example 1;
[0035] Figure 8 This is a schematic diagram of the structure of a vertical power transmission line pipe;
[0036] Figure 9 It is a structural diagram of the end of a vertical power transmission line pipe;
[0037] Figure 10 This is a schematic diagram of the structure in which three horizontal power transmission line pipes and one vertical power transmission line pipe are assembled together in one embodiment;
[0038] Figure 11 This is a schematic diagram of the structure of the vertical routing tap plug in Example 2;
[0039] Figure 12 This is a schematic diagram of a specific embodiment of a modular power transmission system. The figure shows:
[0040] Horizontal power transmission line pipe 1;
[0041] a first tube shell 11;
[0042] groove 111;
[0043] gap 112;
[0044] Fixed slot 113;
[0045] Accommodation space 114;
[0046] Blocking hole 115;
[0047] Support frame 12;
[0048] first rib 121;
[0049] Second rib 122;
[0050] curved ribs 123;
[0051] a first conductor 13;
[0052] Seal 14;
[0053] Sealing end 141;
[0054] Fixed end 142;
[0055] Tee connector 2;
[0056] Upper cover 21;
[0057] screw 211;
[0058] Lower cover 22;
[0059] T-shaped conductive pillar 23;
[0060] First plug 231;
[0061] Conductor head 2311;
[0062] Drum copper 2312;
[0063] Adapter plug 3;
[0064] Base 31;
[0065] Cable 311;
[0066] First plugboard 32;
[0067] First contact 321;
[0068] vertical routing tap plug 4;
[0069] Back shell 401;
[0070] a second conductive sheet 402;
[0071] front shell 403;
[0072] Middle Station 41;
[0073] Second plugboard 42;
[0074] Second contact 421;
[0075] The third plugboard 43;
[0076] third contact 431;
[0077] a second plug 44;
[0078] Vertical power transmission line pipe 5;
[0079] Second tube shell 51;
[0080] a second conductor 52;
[0081] Second channel 53. DETAILED DESCRIPTION
[0082] The present invention will be described in detail below with reference to specific embodiments. The following examples will help those skilled in the art to further understand the present invention, but are not intended to limit the present invention in any form. It should be noted that, for those skilled in the art, several changes and improvements can be made without departing from the scope of the present invention. These all fall within the scope of protection of the present invention.
[0083] Example 1:
[0084] The present invention provides a modular power transmission system, including a horizontal power transmission pipe 1, a multi-way joint, an adapter plug 3, a vertical routing tap plug 4 and a vertical power transmission pipe 5. Multiple horizontal power transmission pipes 1 are connected through a multi-way joint. The multi-way joint can be a two-way joint, a three-way joint, a four-way joint, a five-way joint, a six-way joint, etc. The vertical power transmission pipe 5 is connected to the horizontal power transmission pipe 1 through the vertical routing tap plug 4, or is connected to the horizontal power transmission pipe 1 through the multi-way joint. One end of the adapter plug 3 can be connected to the horizontal power transmission pipe 1 or the vertical power transmission pipe 5, and the other end is used to connect electrical equipment. The adapter plug 3 can be arranged at any position at the bottom of the horizontal power transmission pipe 1 or configured at the bottom of the vertical power transmission pipe 5. The present invention realizes modular wiring through the above components, is simple to operate, and is convenient to construct, greatly improving the use efficiency and the aesthetics after construction.
[0085] like Figure 1 、 Figure 2 As shown, the horizontal power transmission line pipe 1 is arranged horizontally when assembled, and includes a first tube shell 11, a support frame 12, three first conductors 13 and a seal 14. The interior of the first tube shell 11 has an accommodating space 114, and a gap 112 extending along the length direction is provided at the bottom. The support frame 12 is made of insulating material, and the first tube shell 11 is made of aluminum alloy or stainless steel. The support frame 12 is assembled inside the accommodating space 114 and is used to assemble the first conductor 13. The interior of the support frame 12 has a first channel, and one side of the first channel is provided with a first conductor hole, and the other side is provided with two first conductor holes. The three first conductor holes have a first opening on the side facing the first channel respectively. The three first conductors 13 are respectively assembled in the three first conductor holes and the side parts are exposed in the first channel through the first openings, so that the conductor entering the first channel can contact with the first conductor to realize power transmission.
[0086] Specifically, the first conductor 13 may be adhered in the first conductor hole, or the first conductor 13 may be assembled in the first conductor hole by a tight fit force, so as to improve assembly stability.
[0087] Furthermore, the first channel faces slit 112, and a seal 14 is disposed between the first channel and slit 112, isolating the first channel from the outside. Seal 14 prevents moisture from entering the first channel. Seal 14 is a flexible structure, allowing it to deform under external force, allowing slit 112 to connect with the first channel. The transverse power transmission conduit 1 of the present invention can be arranged horizontally, with slit 112 facing downward. A matching plug can be inserted through slit 112 into the first channel to connect to the conductor, enabling power transmission.
[0088] It should be noted that grooves 111 are respectively provided on the left and right sides of the first tube shell 11, which can be used to fix the horizontal power transmission line tube 1. Specifically, the grooves 111 on both sides can be set to be symmetrical or asymmetrical according to the actual scenario to meet the actual use requirements.
[0089] like Figure 2 As shown, when viewed along the axial direction of the first tube shell 11, the three first conductors 13 are arranged in a triangular structure. The first conductor 13 is a tubular structure. Figure 2 As shown, multiple transverse power transmission pipes 1 can be connected by setting matching multi-way connectors to meet the requirements of power transmission of different lengths.
[0090] Furthermore, the transverse power transmission pipe 1 can be cut according to the actual usage length to match different application scenarios. Therefore, the transverse power transmission pipe 1 has better versatility. When the length of the transverse power transmission pipe 1 meets the requirements, the end of the transverse power transmission pipe 1 can be sealed by a blind plate. A sealing hole 115 is provided on the first tube shell 11, and the blind plate can be fixed to the end of the transverse power transmission pipe 1 by screws.
[0091] like Figure 2 As shown, the support frame 12 includes a first rib 121 and a second rib 122. The first rib 121 and the second rib 122 are preferably arranged in parallel. The first channel is located between the first rib 121 and the second rib 122. A first conductor hole is configured on the second rib 122, and the other two first conductor holes are configured on the first rib 121.
[0092] Furthermore, an arc-shaped rib 123 extends from one end of the first rib 121 toward the gap 112. The protruding side of the arc-shaped rib 123 faces the seal 14. The end of the seal 14 abuts against the arc-shaped rib 123. In one possible embodiment, the seal 14 includes a fixed end 142 and a sealing end 141. The root of the sealing end 141 is fixed to the fixed end 142. The fixed end 142 is preferably a plastic part. The interior of the first tube shell 11 has a fixed groove 113. The fixed end 142 is assembled in the fixed groove 113. The sealing end 141 includes a soft fixing layer and a sponge arranged inside the soft fixing layer. The soft fixing layer can confine the sponge inside. The sealing end 141 can seal the connection between the gap 112 and the first channel. The end of the sealing end 141 abuts against the end face of the arc-shaped rib 123.
[0093] like Figure 5As shown, the adapter plug 3 includes a base 31 and a first plug plate 32 disposed on the base 31. One side of the first plug plate 32 has two first contacts 321, and the other side of the first plug plate 32 has a first contact 321. Three cables 311 extend from the interior of the base 31 and can be used to connect to electrical devices such as lamps, refrigerators, and washing machines. The bases of the three cables 311 are electrically connected to the three first contacts 321, respectively. Specifically, the first contacts 321 are disposed on a first conductive sheet, the ends of which are connected to the cables 311, achieving electrical continuity between the first contacts 321 and the cables 311.
[0094] In actual use, the first plug-in plate 32 can be inserted into the first channel through the gap 112. When the first plug-in plate 32 is inserted, the sealing end 141 deforms, thereby allowing the first plug-in plate 32 to be inserted into the first channel, and the three first contacts 321 are respectively connected to the three first conductors 13, thereby connecting the transverse power transmission line tube 1 to the external electrical equipment through the adapter plug 3. It should be noted that because the gap 112 extends along the length of the transverse power transmission line tube 1, the position of the adapter plug 3 on the transverse power transmission line tube 1 can be flexibly selected according to the actual location of the electrical equipment. At the same time, it is also very convenient to relocate the electrical equipment after using it for a period of time. Simply unplug the adapter plug 3 from the transverse power transmission line tube 1 and then plug it into the transverse power transmission line tube 1 at the desired location. This is simple to operate and easy to use.
[0095] like Figure 6 As shown, the vertical routing tap plug 4 includes an intermediate platform 41 and a second plug board 42 and a third plug board 43 respectively arranged on the upper and lower sides of the intermediate platform 41. One side of the second plug board 42 has two second contacts 421, and the other side of the second plug board 42 has one second contact 421. When in use, the second plug board 42 can be inserted into the first channel of the horizontal power transmission line pipe 1 according to actual needs.
[0096] Furthermore, one side of the third plug-in board 43 in the vertical routing tap plug 4 has two third contacts 431, and the other side of the third plug-in board 43 has one third contact 431. The three second contacts 421 are electrically connected to the corresponding three third contacts 431, respectively, to achieve power transmission between the corresponding contacts on the two plug-in boards; the second plug-in board 42 can be inserted into the first channel through the gap 112 and the three second contacts 421 are connected to the three first conductors 13, respectively. Therefore, by inserting the second plug-in board 42 on the vertical routing tap plug 4 into the horizontal power transmission line pipe 1, the power in the horizontal power transmission line pipe 1 can be transmitted to the third contact 431 on the third plug-in board 43, thereby achieving power transmission with other transmission line pipes. In one possible embodiment, as Figure 7As shown, the vertical routing tap plug 4 includes a front shell 403, a rear shell 401 and three second conductive plates 402. The front shell 403 is detachably configured on the rear shell 401 to form a tap plug shell. The three second conductive plates 402 are all configured inside the tap plug shell. The two ends of the second conductive plate 402 are respectively the second contact 421 and the third contact 431.
[0097] like Figure 8 、 Figure 9 As shown, the vertical power transmission pipe 5 includes a second tube shell 51 and three second conductors 52. The second tube shell 51 has a second channel 53 inside. The second channel 53 is provided with a second conductor hole on one side and two second conductor holes on the other side. The three second conductor holes each have a second opening on the side facing the second channel 53. The three second conductors 52 are respectively assembled in the three second conductor holes, and the side portions of the second conductors 52 are exposed in the second channel 53 through the second openings. The third plug-in plate 43 matches the second channel 53. In actual application, the vertical routing tap plug 4 is used to connect the horizontal power transmission pipe 1 and the vertical power transmission pipe 5 to achieve power transmission from horizontal to vertical. During connection, the second plug-in plate 42 is simply inserted into the first channel through the gap at the bottom of the horizontal power transmission pipe 1, and the third plug-in plate 43 is then inserted into the second channel 53 inside the vertical power transmission pipe 5 to achieve power transmission from the horizontal power transmission pipe 1 to the vertical power transmission pipe 5. The operation is simple and convenient. It should be noted that the vertical power transmission line pipe can also be cut according to the actual usage length to match different application scenarios, and has good versatility.
[0098] In a possible embodiment, the second tube shell 51 includes an outer aluminum alloy layer and a plastic layer embedded on the inner wall of the aluminum alloy layer. The second conductor holes are all located on the plastic layer, which can achieve both external beauty and inner insulation.
[0099] The multi-way connector is configured with at least two connecting ends, each of which is configured with three first plugs 231. The three first plugs 231 can be respectively inserted into the three first conductor holes to connect a horizontal power transmission pipe to the multi-way connector, or the three first plugs 231 can be respectively inserted into the three second conductor holes to connect a vertical power transmission pipe to the multi-way connector. The multi-way connector of the present invention can connect horizontal power transmission pipes 1 to horizontal power transmission pipes 1, connect horizontal power transmission pipes 1 to vertical power transmission pipes 5, connect vertical power transmission pipes 5 to vertical power transmission pipes 5, or connect multiple horizontal power transmission pipes 1 to multiple vertical power transmission pipes 5, thereby facilitating the modular design of power transmission.
[0100] In one possible embodiment, Figure 3 、 Figure 4As shown, the multi-way connector is a three-way connector 2, which includes an upper cover 21, a lower cover 22, and three T-shaped conductive posts 23. The left, right, and top ends of the T-shaped conductive posts 23 are each provided with a first plug 231. The upper cover 21 is detachably assembled with the lower cover 22 to form a connector housing, preferably connected by screws 211. The T-shaped conductive posts 23 are assembled within the connector housing, and three first plugs 231 extend from the left, right, and top sides of the connector housing. The three first plugs 231 are positioned to precisely fit within the three first conductors 13 of the horizontal power transmission line tube 1 and the vertical power transmission line tube 5. The first plugs 231 include a conductor head 2311 and a copper drum 2312. The copper drum 2312 is fitted over the conductor head 2311. The copper drum 2312 has a certain elasticity, which allows the first plugs 231 to make closer contact with the inner wall of the conductor hole, thereby improving the stability of power transmission.
[0101] like Figure 12 As shown, a specific design scheme of the modular power transmission system in the present invention is provided. Electricity is connected from the distribution box through the vertical power transmission pipe 5. The top of the vertical power transmission pipe 5 is connected to the horizontal power transmission pipe 1 through the vertical routing tap plug 4. The bottom of the horizontal power transmission pipe 1 can be directly equipped with an adapter plug 3 to connect to lighting fixtures, etc., and can also be connected to the vertical power transmission pipe 5 through the vertical routing tap plug 4 to realize power transmission to different parts of the power supply. The horizontal power transmission pipes 1 can be connected to each other by multiple-way connectors, making the entire layout modular, easy to assemble, and efficient.
[0102] Example 2:
[0103] The difference between this embodiment and embodiment 1 is that the vertical routing tap plug 4 includes an intermediate platform 41 and second plug boards 42 and three second plugs 44 respectively arranged on the upper and lower sides of the intermediate platform 41. Figure 11 As shown, the second plugboard 42 has two second contacts 421 on one side and one second contact 421 on the other side. The three second contacts 421 are electrically connected to corresponding three second plugs 44. The second plugboard 42 can be inserted into the first channel through the gap 112, so that the three second contacts 421 are connected to the three first conductors 13 respectively. The three second plugs 44 can be directly plugged into the vertical power transmission pipe 5.
[0104] In practical applications, both the upper and lower ends of the vertical routing tap plug 4 can be connected to the vertical power transmission line pipe 5 to achieve power transmission between the two vertical power transmission line pipes 5 .
[0105] by Figure 10 For example, the working principle of the present invention is as follows:
[0106] like Figure 10As shown, three horizontal power transmission pipes 1 are arranged on the roof. The three horizontal power transmission pipes 1 are connected by a three-way joint 2 to form a T-shaped pipeline layout. A vertical routing tap plug 4 is installed at the bottom of the middle horizontal power transmission pipe 1. A vertical power transmission pipe 5 is installed vertically at the bottom of the vertical routing tap plug 4. The lower end of the vertical power transmission pipe 5 is installed with a switching plug 3. The three cables 311 on the switching plug 3 are connected to the electrical equipment, realizing the power transmission design from the roof to a part of the space below the roof. The entire transmission only needs to be plugged in and assembled, without the need for complicated cable routing operations. It is realized through the metal conductors and plugs inside the power transmission pipe. It is simple to operate and easy to assemble, and can achieve reliable power transmission. The combination of accessories in the present invention transforms the wiring system into a modular and factory-based combined structure. All connections are standard parts. They can be simply spliced on site to form the entire wiring. The assembled building power routing system can be fully modularized and factory-based, which is more convenient, safer, more reliable and more practical than traditional solutions.
[0107] In the description of this application, it should be understood that the terms "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", etc., indicating the orientation or position relationship, are based on the orientation or position relationship shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on this application.
[0108] The above describes specific embodiments of the present invention. It should be understood that the present invention is not limited to the specific embodiments described above, and those skilled in the art may make various changes or modifications within the scope of the claims, which do not affect the essence of the present invention. The embodiments of this application and the features in the embodiments may be combined with each other in any manner unless there is a conflict.
Claims
1. A modular power transmission system, characterized in that: It comprises a horizontal power transmission line pipe (1), a multi-way joint, a switching plug (3), a vertical routing tap plug (4) and a vertical power transmission line pipe (5); The plurality of transverse power transmission pipes (1) are connected to each other via a multi-way joint, the vertical power transmission pipe (5) is connected to the transverse power transmission pipe (1) via a vertical routing tap plug (4) or via the multi-way joint, and the adapter plug (3) is used to connect electrical equipment and is arranged at any position on the bottom of the transverse power transmission pipe (1) or configured at the bottom of the vertical power transmission pipe (5).
2. The modular power transmission system according to claim 1, characterized in that The horizontal power transmission line tube (1) comprises a first tube shell (11), a support frame (12), three first conductors (13) and a sealing member (14); The first tube shell (11) has an interior containing space (114), and a gap (112) extending in the length direction is provided at the bottom. The support frame (12) is made of insulating material and is assembled inside the interior of the containing space (114). The support frame (12) has a first channel inside, and one side of the first channel is provided with a first conductor hole, and the other side is provided with two first conductor holes. The three first conductor holes have first openings on the side facing the first channel. The three first conductors (13) are respectively assembled in the three first conductor holes, and the side portions are exposed in the first channel through the first openings. The first channel faces the gap (112), and a sealing member (14) is arranged between the first channel and the gap (112) so as to separate the first channel from the outside. The sealing member (14) is a flexible structure and is allowed to deform under the driving of an external force so that the gap (112) is connected to the first channel.
3. The modular power transmission system according to claim 2, characterized in that When viewed along the axial direction of the first tube shell (11), the three first conductors (13) are arranged in a triangular structure; The first conductor (13) is a tubular structure; The first tube shell (11) is made of aluminum alloy or stainless steel.
4. The modular power transmission system according to claim 2, characterized in that The support frame (12) comprises a first rib plate (121) and a second rib plate (122), the first channel is located between the first rib plate (121) and the second rib plate (122), one first conductor hole is arranged on the second rib plate (122), and the other two first conductor holes are arranged on the first rib plate (121).
5. The modular power transmission system according to claim 4, characterized in that An arc-shaped rib (123) extends from one end of the first rib (121) toward the gap (112), and an end portion of the sealing member (14) abuts against the arc-shaped rib (123).
6. The modular power transmission system according to claim 1, characterized in that The horizontal power transmission line pipe (1) and the vertical power transmission line pipe (5) can both be cut according to actual use lengths to match different application scenarios.
7. The modular power transmission system according to claim 2, characterized in that The adapter plug (3) comprises a base (31) and a first plug board (32) arranged on the base (31); one side of the first plug board (32) has two first contacts (321); the other side of the first plug board (32) has one first contact (321); three cables (311) extend from the interior of the base (31); the roots of the three cables (311) are respectively connected to the three first contacts (321); The first plug board (32) can be inserted into the first channel through the gap (112) and enables the three first contacts (321) to be connected to the three first conductors (13) respectively.
8. The modular power transmission system according to claim 2, wherein: The vertical routing tap plug (4) adopts any of the following structures: The invention comprises an intermediate platform (41) and a second plug board (42) and a third plug board (43) respectively arranged on the upper and lower sides of the intermediate platform (41); one side of the second plug board (42) has two second contacts (421), and the other side of the second plug board (42) has one second contact (421); one side of the third plug board (43) has two third contacts (431), and the other side of the third plug board (43) has one third contact (431); the three second contacts (421) are respectively electrically connected to the corresponding three third contacts (431); The device comprises an intermediate platform (41), a second plug board (42) and three second plugs (44) respectively arranged on the upper and lower sides of the intermediate platform (41); one side of the second plug board (42) has two second contacts (421), and the other side of the second plug board (42) has one second contact (421); the three second contacts (421) are respectively electrically connected to the corresponding three second plugs (44); The second plug board (42) can be inserted into the first channel through the gap (112) so that the three second contacts (421) are respectively connected to the three first conductors (13).
9. The modular power transmission system according to claim 2, characterized in that The vertical power transmission line tube (5) comprises a second tube shell (51) and three second conductors (52); The second tube shell (51) has a second channel (53) inside, and one side of the second channel (53) is provided with a second conductor hole, and the other side is provided with two second conductor holes, and the three second conductor holes have a second opening on the side facing the second channel (53), and the three second conductors (52) are respectively assembled in the three second conductor holes, and the side portions are exposed in the second channel (53) through the second openings, wherein the third plug-in board (43) matches the second channel (53).
10. The modular power transmission system according to claim 2, characterized in that The multi-way connector is provided with at least two connecting ends, and each connecting end is provided with three first plugs (231). The three first plugs (231) can be respectively plugged into the three first conductor holes so as to connect a horizontal power transmission pipe to the multi-way connector, or the three first plugs (231) can be respectively plugged into the three second conductor holes so as to connect a vertical power transmission pipe to the multi-way connector.