Extension socket
By setting two rows of sockets and an independent switch module on the side panel inside the power strip housing, and alternately arranging conductive sheet mounting components, the problems of large footprint and insufficient power supply of existing power strips are solved, achieving higher space utilization and consumer acceptance.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHEN GREEN CONNECTION TECH CO LTD
- Filing Date
- 2025-05-30
- Publication Date
- 2026-05-19
AI Technical Summary
Existing power strips with independent switch modules typically only have one row of sockets, which cannot power multiple devices simultaneously, occupy too much space, and have low consumer acceptance.
Design a power strip with a housing including a front panel, a back panel, and two side panels. Two rows of sockets are arranged along the length of the housing. Two rows of independent switch modules are respectively set on the two side panels. Conductive sheet mounting components are alternately arranged with the socket groups to reduce the floor space.
It effectively reduces the footprint of power strips, increases consumer acceptance, and powers more electrical devices while reducing production and assembly costs.
Smart Images

Figure CN224264328U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of sockets, and in particular to a power strip. Background Technology
[0002] Existing technology features a power strip with a panel containing a row of sockets and a row of independent switch modules. The independent switch modules of this power strip correspond one-to-one with the sockets, allowing users to cut off some power as needed, resulting in a better user experience.
[0003] Due to the width of the independent switch module (e.g.) Figure 1 As shown in L1, the area of the aforementioned power strip is relatively large, so it is almost the same as that of a power strip with two rows of sockets. This also leads to the fact that power strips with independent switch modules generally only have one row of sockets. The reason is that if there were two rows of sockets and two rows of independent switch modules, the floor space occupied by the power strip would be too large for consumers to accept. Therefore, it can be seen that in the prior art, power strips with independent switch modules on the panel generally only have one row of sockets and one row of independent switch modules, which cannot supply power to a large number of electrical devices at the same time. Utility Model Content
[0004] The technical problem to be solved by this utility model embodiment is to provide a power strip that solves the problem that in the prior art, power strips with independent switch modules on the panel generally only have one row of sockets and one row of independent switch modules, which cannot supply power to a large number of electrical devices at the same time.
[0005] The power strip provided in this embodiment includes: a housing, comprising a front panel, a back panel, and two side panels, wherein the front panel and the back panel are arranged opposite to each other in the thickness direction of the housing; the front panel has two rows of socket groups arranged along the length direction of the housing; and the two side panels are arranged opposite to each other in the width direction of the housing; and two rows of independent switch modules, which are respectively disposed on the two side panels and are arranged in a one-to-one correspondence with the two rows of socket groups.
[0006] Optionally, the power strip further includes a conductive sheet mounting assembly, which is installed on the side of the panel near the back panel. The conductive sheet mounting assembly includes two rows of conductive sheet mounting blocks, which are arranged in a one-to-one correspondence with the two rows of socket groups. In the length direction of the housing, the independent switch module is alternately arranged with the conductive sheet mounting blocks.
[0007] Optionally, the conductive sheet mounting assembly further includes several connecting arms. In a row of conductive sheet mounting blocks, two adjacent conductive sheet mounting blocks are connected by the connecting arms, and the conductive sheet mounting blocks and the connecting arms are integrally formed.
[0008] Optionally, the socket group includes a ground socket, and the power strip further includes a ground assembly. The ground assembly includes two ground conductive plates, both of which are installed inside the housing and are respectively configured to correspond to the ground sockets of the two rows of socket groups.
[0009] Optionally, the conductive sheet mounting block is provided with a pin on the side facing the socket assembly, and the ground wire conductive sheet is provided with a socket hole for use with the pin, and the pin is inserted into the socket hole.
[0010] Optionally, the pin has a chamfered edge on the side near the socket assembly.
[0011] Optionally, multiple pins are provided, and the multiple pins are spaced apart along the length direction of the housing, and multiple corresponding sockets are provided.
[0012] Optionally, the panel includes two inclined walls arranged at an angle, and two rows of socket groups are respectively arranged on the two inclined walls. The distance between the two inclined walls has a narrowing trend in the direction away from the back panel.
[0013] Optionally, the socket group includes a live wire socket, and the power strip further includes a live wire conductive sheet, two rows of live wire sockets, and two rows of conductors. The two rows of live wire sockets are configured one-to-one with the live wire sockets in the two rows of socket groups. Each independent switch module is connected to the corresponding live wire socket through one of the conductors. The live wire conductive sheet includes: a first main conductive arm, which is disposed between the two rows of independent switch modules; and two rows of first branch conductive arms, which are respectively disposed on both sides of the first main conductive arm. The two rows of first branch conductive arms are configured one-to-one with the two rows of independent switch modules, so that each independent switch module is connected to one of the first branch conductive arms.
[0014] Optionally, the socket group further includes a neutral wire socket, and the socket bar further includes a neutral wire conductive piece. The neutral wire conductive piece includes: a second main conductive arm, which is disposed between the two rows of independent switch modules; and two rows of second branch conductive arms, which are respectively disposed on both sides of the second main conductive arm. The second branch conductive arms are provided with neutral wire sockets, and the two rows of neutral wire sockets are configured one-to-one with the neutral wire sockets in the two rows of socket groups.
[0015] Compared with the prior art, the beneficial effects of the power strip provided by this utility model embodiment are as follows: The power strip provided by this utility model embodiment includes a shell and two rows of independent switch modules. The shell includes a front panel, a back panel, and two side panels. The front panel and the back panel are arranged opposite to each other in the thickness direction of the shell, and the two side panels are arranged opposite to each other in the width direction of the shell. The front panel is provided with two rows of socket groups, which are arranged along the length direction of the shell. The two rows of independent switch modules are respectively disposed on the two side panels and are arranged one-to-one with the two rows of socket groups. Specifically, this utility model embodiment disposes the two rows of independent switch modules corresponding to the two rows of socket groups on the two side panels. Compared with the embodiment that disposes the two rows of independent switch modules on the front panel, it can effectively reduce the floor space occupied by the power strip and is more acceptable to consumers. Attached Figure Description
[0016] The technical solution of this utility model will be further described in detail below with reference to the accompanying drawings and embodiments. In the accompanying drawings:
[0017] Figure 1 This is a schematic diagram of the structure of the independent switch module provided in this embodiment of the utility model;
[0018] Figure 2 This is a schematic diagram of the power strip structure provided in an embodiment of the present invention;
[0019] Figure 3 yes Figure 2 A schematic diagram of the structure of the power strip at another angle is shown;
[0020] Figure 4 This is a schematic diagram of the power strip provided in this embodiment of the utility model, omitting the outer casing and power cord;
[0021] Figure 5 This is a schematic diagram of the structure provided in this embodiment of the utility model, showing adjacent conductive sheet mounting blocks connected together by a connecting arm;
[0022] Figure 6 This is a schematic diagram of the structure of the grounding conductive sheet provided in this embodiment of the utility model;
[0023] Figure 7 This is a schematic diagram of the structure of the conductive sheet mounting block, the neutral wire conductive sheet, and the live wire connector provided in this embodiment of the utility model;
[0024] Figure 8 This is an assembly diagram of the live wire socket and neutral wire socket with the conductive sheet mounting block provided in this embodiment of the utility model;
[0025] Figure 9 This is a comparison diagram of the width of the independent switch module in the vertical state and the independent switch module in the tilted state provided in this embodiment of the utility model;
[0026] Figure 10 This is a schematic diagram of the structure of the neutral wire conductive sheet provided in this embodiment of the utility model;
[0027] Figure 11 This is a schematic diagram of the structure of the fire wire connector provided in this embodiment of the utility model;
[0028] Figure 12 This is a schematic diagram of the conductor, independent switch module, live wire socket, and live wire conductive sheet provided in the embodiments of this utility model.
[0029] 1000, power strip;
[0030] 100. Outer casing; 110. Front panel; 111. Socket assembly; 1111. Ground socket; 1112. Live socket; 1113. Neutral socket; 112. Sloping wall; 120. Back panel; 130. Side panel;
[0031] 210. Independent switch module; 220. Overload protector;
[0032] 300. Conductive sheet mounting assembly; 310. Conductive sheet mounting block; 311. Pin; 3111. Chamfer; 320. Connecting arm;
[0033] 400. Grounding assembly; 410. Grounding conductive sheet; 411. Socket;
[0034] 500. Live wire connector; 510. Clamping arm; 511. Proximal end; 520. Flexible connection section;
[0035] 600. Conductor;
[0036] 700, live wire conductive sheet; 710, first main conductive arm; 720, first branch conductive arm;
[0037] 800. Neutral wire conductive piece; 810. Second main conductive arm; 820. Second branch conductive arm; 821. Neutral wire connector;
[0038] 900, USB module; 910, main control board; 920, first USB interface; 930, second USB interface. Detailed Implementation
[0039] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The preferred embodiments of this utility model will now be described in detail with reference to the accompanying drawings.
[0040] This utility model embodiment provides a power strip 1000, such as Figure 2 and Figure 3As shown, the power strip 1000 includes a housing 100 and two rows of independent switch modules 210. The housing 100 includes a front panel 110, a back panel 120, and two side panels 130. The front panel 110 and the back panel 120 are aligned in the thickness direction of the housing 100. Figure 2 The two rows of socket groups 111 are arranged opposite to each other in the Z direction of the outer casing 100. The panel 110 has two rows of socket groups 111, which are arranged along the length of the outer casing 100. Figure 2 The two side plates 130 are arranged in the X direction of the outer shell 100. Figure 2 The two rows of independent switch modules 210 are respectively set on the two side plates 130 and are set one-to-one with the two rows of socket groups 111.
[0041] Specifically, in this embodiment, the two rows of independent switch modules 210 corresponding to the two rows of socket groups 111 are respectively disposed on the two side plates 130, compared to Figure 1 The embodiment shown, which arranges two rows of independent switch modules 210 on the panel 110, can effectively reduce the footprint of the housing 100, making it more acceptable to consumers.
[0042] refer to Figures 4-8 In a specific embodiment, the power strip 1000 also includes a conductive sheet mounting assembly 300, which is installed on the side of the panel 110 near the back panel 120. The conductive sheet mounting assembly 300 includes two rows of conductive sheet mounting blocks 310, which are arranged one-to-one with two rows of socket groups 111. In the length direction of the housing 100, the independent switch module 210 and the conductive sheet mounting blocks 310 are alternately arranged.
[0043] Specifically, the independent switch module 210 can be located on the side of the conductive sheet mounting block 310 near the back plate 120. However, this arrangement results in a relatively large thickness of the power strip 1000, leading to a poor visual experience and low consumer acceptance. To solve this technical problem, in this embodiment, the socket group 111 and the independent switch module 210 are spaced apart along the length of the housing 100. Since the independent switch module 210 is not located on the side of the conductive sheet mounting block 310 near the back plate 120, the thickness of the power strip 1000 is relatively small, resulting in higher consumer acceptance.
[0044] It should be noted that since the external plug requires a relatively large space, some space will be left between adjacent socket groups 111 and between adjacent conductive sheet mounting blocks 310. This embodiment utilizes this space to install the independent switch module 210, which increases the space utilization rate. Compared with the embodiment in which the independent switch module 210 is set on the side of the conductive sheet mounting block 310 near the back plate 120, the size of the power strip 1000 will be smaller and more acceptable to consumers.
[0045] It is worth mentioning that the conductive plate mounting block 310 is an essential component for mounting the live wire socket 500 and the neutral wire socket 821. It is a structure that all power strips 1000 on the market have. Since the conductive plate mounting block 310 itself is existing technology known to those skilled in the art, this embodiment will not elaborate on the conductive plate mounting block 310.
[0046] refer to Figure 5 In a specific embodiment, the conductive sheet mounting assembly 300 further includes a plurality of connecting arms 320. In a row of conductive sheet mounting blocks 310, two adjacent conductive sheet mounting blocks 310 are connected by connecting arms 320, and the conductive sheet mounting blocks 310 and the connecting arms 320 are integrally formed.
[0047] Specifically, in the prior art, the multiple conductive sheet mounting blocks 310 in a row of conductive sheet mounting blocks 310 are independently set and have no connection with each other. Therefore, the number of components to be installed is relatively large, resulting in high assembly costs. In this embodiment, in a row of conductive sheet mounting blocks 310, two adjacent conductive sheet mounting blocks 310 are connected by a connecting arm 320, and the conductive sheet mounting block 310 and the connecting arm 320 are integrally formed. Therefore, each row of conductive sheet mounting blocks 310 belongs to the same component, which reduces the number of components to be installed and lowers assembly costs.
[0048] refer to Figure 2 and Figure 4 In a specific embodiment, the socket group 111 includes a ground socket 1111, and the power strip 1000 also includes a ground assembly 400. The ground assembly 400 includes two ground conductive plates 410, both of which are installed inside the housing 100 and are respectively configured to correspond to the ground sockets 1111 of the two rows of socket groups 111. This configuration allows the socket group 111 to be used for three-prong plug insertion, and the three-prong plug can make contact with the ground conductive plate 410 after being inserted into the socket group 111.
[0049] refer to Figures 4-6 In a specific embodiment, the conductive sheet mounting assembly 300 is provided with a pin 311 on the side facing the socket assembly 111, and the ground conductive sheet 410 is provided with a socket 411 that cooperates with the pin 311. The pin 311 is inserted into the socket 411 so that the ground conductive sheet 410 is mounted on the conductive sheet mounting block 310.
[0050] refer to Figure 5 In a specific embodiment, the edge of the pin 311 near the socket assembly 111 is provided with a chamfer 3111. The chamfer 3111 can facilitate the alignment of the pin 311 with the socket 411, thereby saving the assembly time of the ground wire conductive sheet 410 and the conductive sheet mounting block 310.
[0051] It should be noted that the chamfer 3111 can be either a rounded corner or a beveled corner, as long as it can save the assembly time of the grounding conductive sheet 410 and the conductive sheet mounting block 310. This embodiment does not limit it here.
[0052] refer to Figure 5 and Figure 6 In some embodiments, multiple pins 311 are provided, and the multiple pins 311 are spaced apart along the length of the housing 100, and multiple corresponding holes 411 are provided. This arrangement can increase the connection stability between the ground conductive sheet 410 and the conductive sheet mounting block 310.
[0053] refer to Figure 2 In some embodiments, the panel 110 includes two inclined walls 112 arranged at an included angle, and two rows of socket groups 111 are respectively disposed on the two inclined walls 112. The distance between the two inclined walls 112 has a narrowing trend in the direction away from the back panel 120.
[0054] Specifically, in the prior art, the panel 110 of the outer casing 100 is flat. When the plug of the electrical device occupies a large space, when one row of sockets 111 is in use, there is insufficient space next to the other row of sockets 111, making it impossible for the plug to be inserted into the other row of sockets 1000. In the power strip 1000 provided in this embodiment, the panel 110 of the outer casing 100 includes two inclined walls 112 set at an angle. The distance between the two inclined walls 112 has a narrowing trend in the direction away from the back panel 120. The two rows of sockets 111 are respectively arranged on the two inclined walls 112. In this way, when one row of sockets 111 is in use, the plug will not occupy the space of the other row of sockets 111. There is sufficient space next to the other row of sockets 111 for the plug to be inserted normally, thereby achieving the beneficial effect of providing power to more electrical devices.
[0055] It is worth mentioning that if the independent switch module 210 is also installed on the inclined wall 112, the independent switch module 210 also needs to be installed at an angle, as shown in the reference. Figure 9 After the independent switch module 210 is tilted, its width will further increase. Figure 9 (where L2 is greater than L1). Therefore, for a power strip 1000 with a sloping wall 112 on the panel 110, placing the independent switch module 210 on the panel 110 would increase the floor space. In this case, placing the independent switch module 210 on the side panel 130 can better reduce the floor space.
[0056] refer to Figure 10 and Figure 11In some embodiments, the socket group 111 includes a live wire socket 1112, and the power strip 1000 further includes a live wire conductive sheet 700, two rows of live wire sockets 500, and two rows of conductors 600. The two rows of live wire sockets 500 are configured one-to-one with the live wire sockets 1112 in the two rows of socket group 111, and each independent switch module 210 is connected to its corresponding live wire socket 500 via a conductor 600. The live wire conductive sheet 700 includes a first main conductive arm 710 and two rows of first branch conductive arms 720. The first main conductive arm 710 is disposed between the two rows of independent switch modules 210, and the two rows of first branch conductive arms 720 are respectively disposed on both sides of the first main conductive arm 710. The two rows of first branch conductive arms 720 are configured one-to-one with the two rows of independent switch modules 210, so that each independent switch module 210 is connected to a first branch conductive arm 720.
[0057] Specifically, the live wire conductive sheet 700 in this embodiment includes a first main conductive arm 710 and two rows of first branch conductive arms 720. The first main conductive arm 710 is disposed between two rows of independent switch modules 210, and the two rows of first branch conductive arms 720 are respectively disposed on both sides of the first main conductive arm 710. The two rows of first branch conductive arms 720 are configured one-to-one with the two rows of independent switch modules 210, so that each independent switch module 210 is connected to one first branch conductive arm 720. With this configuration, only one live wire conductive sheet 700 is needed to connect to the two rows of independent switch modules 210. Compared with the implementation method where each row of independent switch modules 210 needs to be equipped with a live wire conductive sheet 700, the number of parts is relatively small, which can effectively reduce the production cost and assembly cost of parts, thereby reducing the production cost of the power strip 1000.
[0058] refer to Figure 12 In a specific embodiment, the socket group 111 further includes a neutral wire socket 1113, and the power strip 1000 further includes a neutral wire conductive piece 800. The neutral wire conductive piece 800 includes a second main conductive arm 810 and two rows of second branch conductive arms 820. The second main conductive arm 810 is disposed between two rows of independent switch modules 210, and the two rows of second branch conductive arms 820 are respectively disposed on both sides of the second main conductive arm 810. The second branch conductive arm 820 is provided with a neutral wire socket 821, and the two rows of neutral wire sockets 821 are corresponding one-to-one with the neutral wire sockets 1113 in the two rows of socket groups 111.
[0059] By implementing this embodiment, only one live wire conductive sheet 700 and one neutral wire conductive sheet 800 need to be provided inside the housing 100, so that the plug can obtain power when it is inserted into any socket group 111. Compared with the implementation method that requires one live wire conductive sheet 700 and one neutral wire conductive sheet 800 for each row of socket groups 111, the number of parts is relatively small, which can effectively reduce the production cost and assembly cost of parts, thereby reducing the production cost of the power strip 1000.
[0060] refer to Figure 11 In some embodiments, the live wire connector 500 includes two spaced-apart clamping arms 510 and an elastic connecting section 520. The elastic connecting section 520 is disposed on the side of the two clamping arms 510 away from the live wire socket 1112. The two ends of the elastic connecting section 520 are respectively connected to the two clamping arms 510. The elastic connecting section 520 is used to generate elastic deformation when the two clamping arms 510 are far apart.
[0061] By implementing this embodiment, when the plug of an external electrical device is inserted into the live wire socket 1112, it will squeeze the two clamping arms 510, causing the two clamping arms 510 to move away from each other. At this time, the elastic connecting section 520 deforms, thereby applying a force to bring the two clamping arms 510 closer to each other, so that the two clamping arms 510 clamp the plug, ensuring the stability of the plug connection with the live wire socket 500.
[0062] refer to Figure 11 In a specific embodiment, both clamping arms 510 include a proximal end 511 near the live wire socket 1112, and the distance between the two proximal ends 511 has an expanding tendency in the direction near the live wire socket 1112.
[0063] By implementing this embodiment, when the plug of an external electrical device is inserted between the two proximal ends 511, the proximal ends 511 can be used to guide the plug, guiding the plug to go further between the two clamp arms 510, thus preventing the plug from getting stuck with the clamp arms 510 when it is inserted into the live wire socket 1112.
[0064] refer to Figure 4 In some embodiments, the power strip 1000 further includes a USB module 900, which includes a main control board 910 and a first USB interface 920. The main control board 910 is installed inside the housing 100, and the live wire conductive plate 700 and the neutral wire conductive plate 800 are both connected to the main control board 910. The first USB interface 920 is installed on the main control board 910 and exposed outside the housing 100.
[0065] By implementing this embodiment, the power strip 1000 can directly supply data cables for connection, eliminating the need for a power adapter to indirectly connect to the data cable, thus improving the user experience.
[0066] refer to Figure 4In a specific embodiment, several first USB ports 920 are provided, allowing multiple data cables to be plugged in simultaneously, resulting in a better user experience. For example, when a user places the power strip 1000 at their workstation, they can simultaneously use several first USB ports 920 to plug in multiple data cables, one of which is used to power a desktop fan, and another is used to charge a mobile phone or tablet.
[0067] Furthermore, the first USB interface 920 may specifically be configured to have two, three, or more than three, and this embodiment does not impose any limitation on this.
[0068] refer to Figure 4 In some embodiments, the USB module 900 further includes a second USB interface 930, which is of a different type from the first USB interface 920. The second USB interface 930 is mounted on the main control board 910 and exposed in the housing 100.
[0069] By implementing this embodiment, the USB module 900 can be used with data cables of various interface types, improving the user experience.
[0070] It is worth mentioning that there are many specific implementations of the first USB interface 920 and the second USB interface 930, and this embodiment does not limit them. For example, the first USB interface 920 is one of a USB-A interface, a TYPE-C interface, and a Micro USB interface; the second USB interface 930 is one of the other two of a USB-A interface, a TYPE-C interface, and a Micro USB interface.
[0071] refer to Figure 3 and Figure 4 The power strip 1000 also includes a power cord and an overload protector 220. The live wire conductive piece 700 is connected to the live wire in the power cord through the overload protector 200.
[0072] Specifically, the overload protector 220 can automatically cut off the power when the current reaches the threshold, preventing overheating and fire, thus improving the safety of the power strip 1000.
[0073] It should be understood that the above embodiments are only used to illustrate the technical solutions of this utility model, and are not intended to limit it. Those skilled in the art can modify the technical solutions described in the above embodiments, or make equivalent substitutions for some of the technical features; and all such modifications and substitutions should fall within the protection scope of the appended claims of this utility model.
Claims
1. A power strip, characterized in that, include: The outer casing includes a front panel, a back panel, and two side panels. The front panel and the back panel are arranged opposite to each other in the thickness direction of the outer casing. The front panel has two rows of socket groups, which are arranged along the length direction of the outer casing. The two side panels are arranged opposite to each other in the width direction of the outer casing. Two rows of independent switch modules are respectively set on the two side plates and are set one-to-one with the two rows of socket groups.
2. The power strip according to claim 1, characterized in that, The power strip also includes a conductive sheet mounting assembly, which is installed on the side of the panel near the back panel. The conductive sheet mounting assembly includes two rows of conductive sheet mounting blocks, which are arranged in a one-to-one correspondence with the two rows of socket groups. In the length direction of the housing, the independent switch module is alternately arranged with the conductive sheet mounting blocks.
3. The power strip according to claim 2, characterized in that, The conductive sheet mounting assembly further includes several connecting arms. In a row of conductive sheet mounting blocks, two adjacent conductive sheet mounting blocks are connected by the connecting arms, and the conductive sheet mounting blocks and the connecting arms are integrally formed.
4. The power strip according to claim 3, characterized in that, The socket group includes a ground socket, and the power strip also includes a ground assembly. The ground assembly includes two ground conductive plates, both of which are installed inside the housing and are respectively configured to correspond to the ground sockets of the two rows of socket groups.
5. The power strip according to claim 4, characterized in that, The conductive sheet mounting block has a pin on the side facing the socket assembly, and the ground wire conductive sheet has a socket hole for use with the pin, and the pin is inserted into the socket hole.
6. The power strip according to claim 5, characterized in that, The pin has a chamfered edge on the side near the socket assembly.
7. The power strip according to claim 5, characterized in that, The housing has multiple pins, which are spaced apart along its length, and the housing has multiple corresponding holes.
8. The power strip according to any one of claims 1-7, characterized in that, The panel includes two inclined walls set at an angle, and two rows of socket groups are respectively set on the two inclined walls. The distance between the two inclined walls has a narrowing trend in the direction away from the back panel.
9. The power strip according to any one of claims 1-7, characterized in that, The socket group includes a live wire socket, and the power strip further includes a live wire conductive sheet, two rows of live wire sockets, and two rows of conductors. The two rows of live wire sockets are configured one-to-one with the live wire sockets in the socket group. Each independent switch module is connected to its corresponding live wire socket via one of the conductors. The live wire conductive sheet includes: The first main conductive arm is disposed between the two rows of the independent switch modules; Two rows of first branch conductive arms are respectively disposed on both sides of the first main conductive arm. The two rows of first branch conductive arms correspond one-to-one with the two rows of independent switch modules, so that each independent switch module is connected to one of the first branch conductive arms.
10. The power strip according to claim 9, characterized in that, The socket assembly further includes a neutral wire socket, and the power strip further includes a neutral wire conductive piece, which includes: The second main conductive arm is disposed between the two rows of the independent switch modules; Two rows of second branch conductive arms are respectively arranged on both sides of the second main conductive arm. The second branch conductive arm is provided with a neutral wire socket. The two rows of neutral wire sockets are arranged one-to-one with the neutral wire sockets in the two rows of socket groups.