Conductive connection line and power strip

WO2025185493A8PCT designated stage Publication Date: 2025-10-02ANKER INNOVATIONS TECH CO LTD
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Patent Information

Application Number
PCT/CN2025/079109
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-03-07
Filing Date
2025-02-25
Publication Date
2025-10-02

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Abstract

The present application discloses a conductive connection line and a power strip. The conductive connection line comprises a joint part and a line body part; the joint part comprises a plurality of pins spaced apart; the line body part comprises a protective sheath and a plurality of power lines located in the protective sheath; the plurality of power lines have one-to-one correspondence to and are electrically connected to the plurality of pins; a partition member located in the protective sheath is arranged between every two adjacent power lines; and the partition member is connected to the protective sheath.
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Description

Conductive connecting wire and socket

[0001] Related applications

[0002] This application claims priority from the following Chinese patent application:

[0003] The application number is 2024204450270 filed on July 7, 2024, and the title is “A conductive connecting wire and a socket strip”;

[0004] The above patents are hereby incorporated by reference in their entirety into this application. Technical Field

[0005] The present application relates to the field of electrical connection technology, and in particular to a conductive connecting wire and a socket strip. Background Art

[0006] A power strip generally has a socket and a power plug. The power plug is configured to be connected to a power source such as a power grid. The socket can be used to power multiple electronic devices at the same time. The power plug is usually connected to the socket through an electrical connection line.

[0007] However, multiple power lines are usually arranged in the electrical connection line. The magnetic fields generated by the multiple power lines when conducting electricity are likely to interfere with each other, causing the signals transmitted by the multiple power lines to interfere with each other. Summary of the Invention

[0008] The present application provides a conductive connecting wire and a power strip, so that there is a gap between two adjacent power lines, which can prevent the signals transmitted by multiple power lines from interfering with each other.

[0009] In the first aspect, the present application provides a conductive connecting wire, comprising: a joint portion, the joint portion including a plurality of pins arranged at intervals; a wire body portion, the wire body portion including a protective shell and a plurality of power lines located in the protective shell, the plurality of power lines corresponding one-to-one to the plurality of pins and being electrically connected, a barrier located in the protective shell is provided between two adjacent power lines, and the barrier is connected to the protective shell.

[0010] In a second aspect, the present application also provides a power strip comprising a socket, an electrical plug, and a conductive connecting wire; wherein the socket or the electrical plug is provided with an interface that cooperates with the connector portion of the conductive connecting wire, and the connector portion is plugged into the interface to achieve a detachable connection between the electrical plug and the socket, and the interface comprises a plurality of pins, and the plurality of pins correspond one-to-one to the plurality of pins.

[0011] Based on the conductive connecting wires and power strips in the embodiments of the present application, the power lines are spaced apart from each other so that there is a gap between two adjacent power lines. This reserves diffusion space for the magnetic field generated by each power line, thereby reducing or even eliminating the overlapping area of ​​the magnetic fields generated by two adjacent power lines. This can weaken or even eliminate the mutual interference of the magnetic fields generated when the power lines are conducting, thereby preventing the signals transmitted by multiple power lines from interfering with each other. BRIEF DESCRIPTION OF THE DRAWINGS

[0012] In order to more clearly illustrate the technical solutions in the embodiments of the present application or related technologies, the following briefly introduces the drawings required for use in the embodiments or related technical descriptions. Obviously, the drawings described below are only some embodiments of the present application. For those skilled in the art, other drawings can be obtained based on these drawings without paying any creative work.

[0013] FIG1 is a schematic structural diagram of a conductive connecting wire in one embodiment of the present application;

[0014] FIG2 is a schematic structural diagram of a linear body portion according to an embodiment of the present application;

[0015] FIG3 is a schematic structural diagram of a wire body portion in another embodiment of the present application;

[0016] FIG4 is a schematic structural diagram of a line body portion in another embodiment of the present application;

[0017] FIG5 is a schematic structural diagram of a line body portion in another embodiment of the present application;

[0018] FIG6 is a schematic structural diagram of a power strip in another embodiment of the present application;

[0019] FIG7 is a schematic diagram of the components of a power strip according to an embodiment of the present application;

[0020] FIG8 is a schematic diagram showing the components of a power strip in one embodiment of the present application.

[0021] Figure numerals: 10, connector; 11, live wire pin; 12, neutral wire pin; 13, ground wire pin; 14, positive electrode pin; 15, negative electrode pin; 20, wire body; 21, protective shell; 211, groove structure; 22, live wire; 23, neutral wire; 24, ground wire; 25, positive electrode wire; 26, negative electrode wire; 271, conductor; 272, insulating shell; 28, first power line; 29, second power line; 29 1. Conductive lead; 30. Barrier; 31. Threading channel; 40. Socket; 41. Socket assembly; 411. DC socket; 412. AC socket; 50. Power plug; 51. Socket assembly; 52. Power conversion module; 521. DC conversion module; 60. Interface; 61. Live wire pin; 62. Neutral wire pin; 63. Ground wire pin; 64. Positive pin; 65. Negative pin. DETAILED DESCRIPTION

[0022] In order to make the purpose, technical solutions and advantages of this application more clearly understood, the following further describes this application in detail with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain this application and are not intended to limit this application.

[0023] The present application provides a conductive connecting cable and a power strip to solve the problem in the related art that a plurality of power lines are usually provided in the electrical connecting cable, and the plurality of power lines are in contact with each other, causing the magnetic fields generated by the power lines when conducting electricity to easily interfere with each other, thereby causing the signals transmitted by the plurality of power lines to interfere with each other.

[0024] In a first aspect, the present application provides a conductive connecting wire. As shown in FIG1 , the conductive connecting wire includes a connector portion 10 and a wire body portion 20 .

[0025] The connector portion 10 has a plurality of pins arranged at intervals. The connector portion 10 is a component on the conductive connecting line configured to electrically connect the conductive connecting line to the socket 40 or the power plug 50. The connector portion 10 can be a connector of a type such as a USB (Universal Serial Bus) connector or an HDMI (High Definition Multimedia Interface) connector. The pins are configured to electrically connect to pins on the socket 40 or the power plug 50 to achieve an electrical connection between the power plug 50 and the socket 40 through the conductive connecting line. When the power plug 50 is electrically connected to a power source such as a power grid or a mobile power supply, the power output of the power supply can be transmitted to the socket 40 through the power plug 50 and the conductive connecting line, so that the socket 40 can power an electronic device. The electronic device can be a smartphone, a tablet computer, a desktop computer host, a gaming device, an AR (Augmented Reality) device, a car, a data storage device, an audio playback device, a video playback device, a notebook, a wearable device such as an electronic watch, electronic glasses, an electronic helmet, an electronic bracelet, an electronic necklace, electronic clothing, and the like.

[0026] As shown in Figure 2, the wire body 20 includes a protective shell 21 and multiple power lines located in the protective shell 21, and the multiple power lines correspond to the multiple pins one by one and are electrically connected; the protective shell 21 can be made of insulating materials such as polyvinyl chloride, polyethylene or polytetrafluoroethylene propylene; the power line is a conductive line that conducts electricity in the conductive connecting line. When the other end of the power line is electrically connected to the socket 40, the connector part 10 is configured to be electrically connected to the power plug 50 to achieve electrical connection between the power plug 50 and the socket 40; when the other end of the power line is electrically connected to the power plug 50, the connector part 10 is configured to be electrically connected to the socket 40.

[0027] More specifically, referring to Figure 2, a barrier 30 located inside the protective shell 21 is provided between two adjacent power lines, and the barrier 30 is connected to the protective shell 21; it can be understood that the barrier 30 can separate the two adjacent power lines, and can ensure that the power lines are spaced apart from each other, so that there is a gap between the two adjacent power lines, which can reserve diffusion space for the magnetic field generated by each power line, thereby reducing or even eliminating the overlapping area of ​​the magnetic fields generated by the two adjacent power lines, thereby weakening or even eliminating the mutual interference of the magnetic fields generated when the power lines are conducting, so as to prevent the signals transmitted by multiple power lines from interfering with each other.

[0028] Furthermore, the barrier 30 is an electromagnetic shielding member. The barrier 30 can be made of materials such as copper, aluminum, nickel-copper alloy, or conductive rubber. The barrier 30 has an electromagnetic shielding function, preventing the magnetic field generated by the power lines from spreading to the area where adjacent power lines are located, thereby further preventing interference between signals transmitted by multiple power lines. It should also be noted that the barrier 30 can be formed together with the protective shell 21 through integral injection molding or other methods. Alternatively, the protective shell 21 can be formed first and then the barrier 30 is formed within the protective shell 21 by injection molding. Alternatively, the barrier 30 can be formed first and then the protective shell 21 is wrapped around the outside of the barrier 30.

[0029] Continuing to refer to Figure 2, in one embodiment of the present application, a plurality of barrier members 30 can be connected in sequence to form a barrier structure. The barrier structure can fill other spaces in the protective shell 21 other than the space occupied by the power cord. A threading channel 31 corresponding to the power cord can be formed on the barrier structure. The power cord is passed through the corresponding threading channel 31, and the threading channel 31 is used to provide protection and limitation for the power cord, thereby ensuring that each power cord is always in a spaced state and preventing the power cord from shaking during the use of the conductive connecting wire.

[0030] Continuing with Figure 2 , in one embodiment of the present application, the spacing between two adjacent power lines is d, where 2 mm ≤ d ≤ 5 mm. It will be appreciated that if d is too large, sufficient space will be required within the protective housing 21, which will result in excessively thick conductive wires. If d is too small, sufficient spacing between adjacent power lines cannot be guaranteed, and signals transmitted by multiple power lines may interfere with each other. d can be 2 mm, 3 mm, 4 mm, 5 mm, or other values.

[0031] Continuing to refer to Figures 1 and 2, in one embodiment of the present application, the multiple pins include a live wire pin 11, a neutral wire pin 12, a ground wire pin 13, a positive pin 14 and a negative pin 15, and the multiple power lines include a live wire 22, a neutral wire 23, a ground wire 24, a positive wire 25 and a negative wire 26.

[0032] Among them, the live wire 22 is electrically connected to the live pin 11, the neutral wire 23 is electrically connected to the neutral pin 12, the ground wire 24 is electrically connected to the ground pin 13, the positive wire 25 is electrically connected to the positive pin 14, and the negative wire 26 is electrically connected to the negative pin 15. It can be understood that the connector portion 10 has at least five pins, namely the live pin 11, the neutral pin 12, the ground pin 13, the positive pin 14, and the negative pin 15. Among them, the live pin 11, the neutral pin 12, and the ground pin 13 can transmit alternating current, and the positive pin 14 and the negative pin 15 can transmit direct current, so that the conductive connecting wire can support the transmission of both direct current and alternating current, so that the conductive connecting wire can be appropriately configured to connect more electronic devices to power supplies.

[0033] Continuing to refer to Figure 2, in some embodiments of the present application, a groove structure 211 is provided on the outer surface of the protective shell 21. The groove structure 211 extends along the length direction of the protective shell 21. The groove structure 211 can increase the friction on the surface of the protective shell 21, making it more convenient for the user to take the conductive connecting wire. In addition, when the groove structure 211 is formed on the outer surface of the protective shell 21, it can also eliminate irregular bulges and wear marks and other defects formed on the outer surface of the protective shell 21 when the protective shell 21 is molded by injection molding or the like, thereby improving the yield of the protective shell 21.

[0034] Among them, the cross-section of the groove structure 211 can be wavy, so that the groove structure 211 can be set in more areas, which can better eliminate irregular bulges and wear marks formed on the outer surface of the protective shell 21 when the protective shell 21 is formed by injection molding or other methods.

[0035] In some embodiments of the present application, the power cord includes a conductor 271 and an insulating shell 272 wrapped around the outer circumference of the conductor 271. The conductor 271 is a conductive part of the power cord. The conductor 271 can be made of conductive materials such as copper or copper alloy. The diameter of the conductor 271 can be 0.1 mm to 0.5 mm. The diameter of the conductor 271 can be 0.1 mm, 0.16 mm, 0.2 mm, 0.5 mm or other values; the insulating shell 272 is a shell in the power cord that is set to provide insulation protection for the conductor 271. The insulating shell can prevent the conductors 271 in each power cord from short-circuiting. The insulating shell 272 can be made of insulating materials such as polyvinyl chloride, polyethylene or polytetrafluoroethylene propylene.

[0036] Continuing to refer to Figure 2, in one embodiment of the present application, the protective shell 21 is in the shape of a flat tube, and multiple power cords are arranged in sequence along the length direction of the cross-section of the protective shell 21; it can be understood that by designing the overall shape of the protective shell 21 into a flat tube, so that the protective shell 21 has sufficient space to accommodate the power cord, the overall thickness of the protective shell 21 can be designed to be thinner, so that the thickness of the conductive connecting wire can also be designed to be thinner, thereby making the conductive connecting wire more foldable and bendable, making the folding and storage of the conductive connecting wire more convenient.

[0037] Among them, the length of the cross-section of the protective shell 21 in the longitudinal direction is L1, 17 mm ≤ L1 ≤ 19 mm, so that the protective shell 21 has a sufficient length for arranging the power cord, and L1 can be 17 mm, 17.8 mm, 18 mm, 18.2 mm, 19 mm or other values; the thickness of the cross-section of the protective shell 21 is L2, 3 mm ≤ L1 ≤ 5 mm, so that the protective shell 21 has a sufficient thickness for arranging the power cord, and L2 can be 3 mm, 3.9 mm, 4.1 mm, 4.3 mm, 5 mm or other values.

[0038] As shown in Figure 3, in another embodiment of the present application, the protective shell 21 is in the shape of a circular tube as a whole, and multiple power lines are arranged at intervals along the circumference of the protective shell 21; it can be understood that by designing the overall shape of the protective shell 21 into a circular tube, the shape of the protective shell 21 is simpler, the manufacturing is more convenient, and the stability and mechanical properties of the protective shell 21 in all directions are more consistent.

[0039] The diameter of the cross section of the protective shell 21 is R1, 7 mm ≤ R1 ≤ 8 mm, so that there is enough space inside the protective shell 21 for arranging the power cord. R1 can be 7 mm, 7.55 mm, 7.95 mm, 8 mm or other values.

[0040] As shown in FIG4 , in another embodiment of the present application, the protective shell 21 is generally in the shape of a circular tube or an elliptical tube. The multiple power lines include a first power line 28 and multiple second power lines 29. The first power line 28 is located in the center of the protective shell 21, and the multiple second power lines 29 are arranged at intervals around the circumference of the first power line 28. It will be understood that the first power line 28 is the power line located in the center of the protective shell 21 among the multiple power lines. The first power line 28 can be any one of the live line 22, the neutral line 23, the ground line 24, the positive line 25, and the negative line 26. By arranging the second power lines 29 around the first power line 28, the space within the protective shell 21 can be fully utilized.

[0041] The diameter of the cross section of the protective shell 21 is R2, 8 mm ≤ R2 ≤ 9 mm, so that there is enough space inside the protective shell 21 for arranging the power cord. R2 can be 8 mm, 8.3 mm, 8.7 mm, 9 mm or other values.

[0042] As shown in FIG4 , in another embodiment of the present application, at least one second power line 29 includes multiple conductive leads 291, which are arranged at intervals around the circumference of the first power line 28. It will be appreciated that, while ensuring the conductivity of the second power line 29, a portion of the second power line 29 is designed to be formed by multiple conductive leads 291. Compared to the second power line 29, the conductive leads 291 have a smaller diameter and are easier to bend, thereby further improving the foldability and bendability of the conductive connecting line, making the folding and storage of the conductive connecting line more convenient.

[0043] The diameter of the cross section of the protective shell 21 is R3, 9 mm ≤ R2 ≤ 10 mm, so that there is enough space inside the protective shell 21 for arranging the power cord. R3 can be 9 mm, 9.2 mm, 9.6 mm, 10 mm or other values.

[0044] In one embodiment of the present application, the shapes of the cross-sections of the power cords may be different to facilitate the user to distinguish between the power cords; in other embodiments, the colors of the power cords may also be different to facilitate the user to distinguish between the power cords, for example, the live wire 22 is white, the neutral wire 23 is green, the ground wire 24 is black, the positive wire 25 is red, and the negative wire 26 is pink.

[0045] On the second aspect, based on the above-mentioned conductive connecting wire, the present application also provides a power strip, as shown in Figure 6, the power strip includes a socket 40, an electrical plug 50 and a conductive connecting wire as in any of the above-mentioned embodiments; wherein, the socket 40 or the electrical plug 50 is provided with an interface 60 that cooperates with the connector part 10 of the conductive connecting wire, and the connector part 10 is plugged into the interface 60 to achieve a detachable connection between the electrical plug 50 and the socket 40, and the interface 60 includes a plurality of pins, and the plurality of pins correspond one-to-one to the plurality of pins. It should be noted that the power strip can simultaneously power multiple electronic devices, the power strip can be a multi-functional power strip, and the power strip can be a power strip with a switch or without a switch. The present application does not impose specific restrictions on the type, size and specifications of the power strip; it can be understood that when the multiple pins include a live pin 11, a neutral pin 12, a ground pin 13, a positive pin 14 and a negative pin 15, the multiple pins also include a live pin 61 corresponding to the live pin 11, a neutral pin 62 corresponding to the neutral pin 12, a ground pin 63 corresponding to the ground pin 13, a positive pin 64 corresponding to the positive pin 14 and a negative pin 65 corresponding to the negative pin 15.

[0046] It should also be noted that the connector portion 10 and the interface 60 are removably connected by plugging. When the interface 60 is provided on the socket 40, the conductive connecting wire is removably connected to the socket 40 through the connector portion 10 and the interface 60. When the interface 60 is provided on the power plug 50, the conductive connecting wire is removably connected to the power plug 50 through the connector portion 10 and the interface 60. The conductive connecting wire can extend the distance between the socket 40 and the power plug 50, so that when the power strip is in use, the socket 40 can be placed on a desktop or other place, while the power plug 50 is hidden under the table or other place, thereby reducing the desktop space occupied by the power strip when in use. In addition, the power plug 50 can be separated from the socket 40, making it more convenient to carry the power strip. The user can replace the power plug 50 with different functional specifications and power specifications according to power needs, thereby improving the user experience. The power plug 50 and the socket 40 can be made into standardized parts to reduce manufacturing costs.

[0047] In one embodiment of the present application, the conductive connecting wire can be detachably connected to the socket 40 and the power plug 50, so that the conductive connecting wire can be separated from the socket 40 and the power plug 50, so that the user can replace the conductive connecting wire separately according to the power requirements of the electronic device. In addition, the power plug 50 and the socket 40 can be replaced separately, reducing the cost of replacing components.

[0048] In another embodiment of the present application, the conductive connecting wire can be fixedly connected to the socket 40, and the conductive connecting wire can be detachably connected to the power plug 50. Specifically, the interface 60 is provided on the power plug 50, one end of the wire body 20 is fixedly connected to the socket 40, and the other end of the wire body 20 is connected to the connector 10. In yet another embodiment of the present application, the conductive connecting wire can also be fixedly connected to the power plug 50, and the conductive connecting wire can be detachably connected to the socket 40. Specifically, the interface 60 is provided on the socket 40, one end of the wire body 20 is fixedly connected to the power plug 50, and the other end of the wire body 20 is connected to the connector 10.

[0049] As shown in Figures 6 and 7, in some embodiments of the present application, the socket 40 includes a socket assembly 41, which is configured to be electrically connected to an electronic device; the socket assembly 41 refers to the socket on the socket 40 and the conductive part (such as a conductive socket) corresponding to the socket one by one. After the plug of the electronic device is inserted into the socket and electrically connected to the conductive part, the socket 40 can be used to power the electronic device.

[0050] The power plug 50 includes a pin assembly 51 and a power conversion module 52. The power conversion module 52 is electrically connected to the pin assembly 51 and electrically connected to the socket assembly 41 via a conductive connection line. The power conversion module 52 is configured to electrically connect the socket assembly 41 to a power source and convert the power output from the power source into the power required by the socket assembly 41. The pin assembly 51 is configured to connect to a power source such as the power grid and a mobile power supply and transmit the power output from the power source to the socket assembly 41 on the socket 40, allowing the socket 40 to power multiple electronic devices simultaneously.

[0051] It should be noted that different electronic devices have different power requirements. The power conversion module 52 can convert the electricity output by the power supply into the electricity required by the socket component 41, so that the socket component 41 can power various electronic devices. For example, the power supply outputs high voltage electricity, and the electronic device requires low voltage electricity. The power conversion module 52 can convert the high voltage electricity output by the power supply into the low voltage electricity required by the socket component 41. Of course, according to actual needs, the power conversion module 52 can also convert the low voltage electricity output by the power supply into the high voltage electricity required by the socket component 41; for example, the power supply outputs AC power, and the electronic device requires DC power. The power conversion module 52 can convert the AC power output by the power supply into the DC power required by the socket component 41. Of course, according to actual needs, the power conversion module 52 can also convert the DC power output by the power supply into the AC power required by the socket component 41.

[0052] It should also be noted that in the present application, the power conversion module 52 is integrated into the power plug 50. In this way, the power strip can meet the power needs of a variety of electronic devices. It is only necessary to set conductive parts such as conductive sockets on the socket 40, and there is no need to set functional modules such as the power conversion module 52 on the socket 40. The overall volume of the socket 40 can be reduced, thereby reducing the space occupied by the socket 40 when it is in use.

[0053] As shown in Figure 8, in one embodiment of the present application, the socket assembly 41 includes a DC socket 411 and an AC socket 412, and the power conversion module 52 includes a DC conversion module 521. The DC conversion module 521 is electrically connected to the pin assembly 51, and the DC conversion module 521 is configured to electrically connect the DC socket 411 to the power supply and convert the AC power output by the power supply into the DC power required by the socket assembly 41; the AC socket 412 is electrically connected to the pin assembly 51, and the AC socket 412 is configured to receive the AC power output by the power supply.

[0054] It should be noted that the DC socket 411 can be a USB socket, a circular connector socket or an audio head socket, etc. The DC socket 411 can provide DC power to electronic devices such as flashlights, mobile phones and Bluetooth headsets; as the name suggests, the DC conversion module 521 is a device that can convert AC power into DC power. The specific working principle of the DC conversion module 521 has long been disclosed in the relevant technology and will not be described in detail in this application. It should also be noted that the power output of power sources such as the power grid is generally AC power, while electronic devices connected to the socket 40 using a USB data cable need to be driven by DC power. By integrating the DC conversion module 521 on the power plug 50, the power plug 50 can provide the required DC power to the DC socket 411, so that the power strip can meet the power needs of more types of electronic devices. The number and type of DC sockets 411 on the socket 40 can be selected according to actual needs, and this application does not impose specific restrictions.

[0055] It should also be noted that the power output of a power source such as the power grid is generally AC power. AC socket 412 can be directly electrically connected to a power source such as the power grid via a plug-in assembly, allowing AC socket 412 to provide AC power to electronic devices such as washing machines, exhaust fans, and air conditioners. AC socket 412 can be a three-pin socket, a two-pin socket, or an AC audio socket. The number and type of AC sockets 412 on outlet 40 can be selected based on actual needs and are not specifically limited in this application.

[0056] It should also be noted that the AC socket 412 includes a live wire socket, a neutral wire socket and a ground wire socket, and the DC socket 411 includes a positive socket and a negative socket. Taking the interface 60 set on the socket 40 as an example, when the multiple pins of the interface 60 include a live wire pin 61, a neutral wire pin 62, a ground wire pin 63, a positive pin 64 and a negative pin 65, the live wire pin 61 is electrically connected to the live wire socket of the AC socket 412, the neutral wire pin 62 is electrically connected to the neutral wire socket of the AC socket 412, the ground wire pin 63 is electrically connected to the ground wire socket of the AC socket 412, the positive pin 64 is electrically connected to the positive socket of the DC socket 411, and the negative pin 65 is electrically connected to the negative socket of the DC socket 411.

[0057] The above are only preferred embodiments of the present application and are not intended to limit the present application. Any modifications, equivalent replacements, and improvements made within the spirit and principles of the present application should be included in the scope of protection of the present application.

Claims

1. A conductive connecting wire, wherein: include: A connector portion, the connector portion comprising a plurality of pins arranged at intervals; The wire body includes a protective shell and multiple power lines located in the protective shell. The multiple power lines correspond one-to-one to the multiple pins and are electrically connected. A barrier located in the protective shell is provided between two adjacent power lines, and the barrier is connected to the protective shell.

2. The conductive connecting wire according to claim 1, wherein The barrier member is an electromagnetic shielding member.

3. The conductive connecting wire according to claim 1, wherein: The interval distance between two adjacent power lines is d, 2 mm≤d≤5 mm.

4. The conductive connecting wire according to claim 1, wherein The plurality of pins include a live wire pin, a neutral wire pin, a ground wire pin, a positive pin and a negative pin, and the plurality of power lines include a live wire, a neutral wire, a ground wire, a positive wire and a negative wire; The live wire is electrically connected to the live wire pin, the neutral wire is electrically connected to the neutral wire pin, the ground wire is electrically connected to the ground wire pin, the positive wire is electrically connected to the positive pin, and the negative wire is electrically connected to the negative pin.

5. The conductive connecting wire according to claim 1, wherein The outer surface of the protective shell is provided with a groove structure, and the groove structure extends along the length direction of the protective shell.

6. The conductive connecting wire according to claim 5, wherein: The cross section of the groove structure is wavy.

7. The conductive connecting wire according to claim 1, wherein: The power cord includes a conductor and an insulating shell wrapped around the conductor.

8. The conductive connecting wire according to claim 1, wherein: The protective shell is in a flat tube shape, and the plurality of power lines are arranged in sequence along the length direction of the cross section of the protective shell; or The protective shell is in the shape of a circular tube, and the plurality of power lines are arranged at intervals along the circumference of the protective shell; or The protective shell is in the shape of a circular tube as a whole. The multiple power lines include a first power line and multiple second power lines. The first power line is located in the center of the protective shell, and the multiple second power lines are arranged at intervals around the circumference of the first power line.

9. The conductive connecting wire according to claim 1, wherein: The protective shell is in a circular tubular shape, and the plurality of power cords include a first power cord and a plurality of second power cords, wherein the first power cord is located in the center of the protective shell, and the plurality of second power cords are arranged at intervals around the circumference of the first power cord; At least one of the second power lines includes a plurality of conductive leads, and the plurality of conductive leads are arranged at intervals around the circumference of the first power line.

10. A power strip, wherein: It includes a socket, a power plug and a conductive connecting wire; the conductive connecting wire includes: A connector portion, the connector portion comprising a plurality of pins arranged at intervals; A wire body, the wire body comprising a protective shell and a plurality of power lines located within the protective shell, the plurality of power lines corresponding one-to-one to and electrically connected to the plurality of pins, a barrier located within the protective shell being provided between two adjacent power lines, the barrier being connected to the protective shell; In which, the socket or the power plug is provided with an interface that cooperates with the connector part of the conductive connecting wire, and the connector part is plugged into the interface to achieve a detachable connection between the power plug and the socket, and the interface includes a plurality of pins, and the plurality of pins correspond one-to-one to the plurality of pins.

11. The power strip according to claim 10, wherein: The barrier member is an electromagnetic shielding member.

12. The socket strip according to claim 10, wherein: The interval distance between two adjacent power lines is d, 2 mm≤d≤5 mm.

13. The power strip according to claim 10, wherein: The plurality of pins include a live wire pin, a neutral wire pin, a ground wire pin, a positive pin and a negative pin, and the plurality of power lines include a live wire, a neutral wire, a ground wire, a positive wire and a negative wire; The live wire is electrically connected to the live wire pin, the neutral wire is electrically connected to the neutral wire pin, the ground wire is electrically connected to the ground wire pin, the positive wire is electrically connected to the positive pin, and the negative wire is electrically connected to the negative pin.

14. The power strip according to claim 10, wherein: The outer surface of the protective shell is provided with a groove structure, and the groove structure extends along the length direction of the protective shell.

15. The socket strip according to claim 14, wherein: The cross section of the groove structure is wavy.

16. The socket strip according to claim 10, wherein: The power cord includes a conductor and an insulating shell wrapped around the conductor.

17. The power strip according to claim 10, wherein: The protective shell is in a flat tube shape, and the plurality of power lines are arranged in sequence along the length direction of the cross section of the protective shell; or The protective shell is in the shape of a circular tube, and the plurality of power lines are arranged at intervals along the circumference of the protective shell; or The protective shell is in the shape of a circular tube as a whole. The multiple power lines include a first power line and multiple second power lines. The first power line is located in the center of the protective shell, and the multiple second power lines are arranged at intervals around the circumference of the first power line.

18. The socket strip according to claim 10, wherein: The protective shell is in a circular tubular shape, and the plurality of power cords include a first power cord and a plurality of second power cords, wherein the first power cord is located in the center of the protective shell, and the plurality of second power cords are arranged at intervals around the circumference of the first power cord; At least one of the second power lines includes a plurality of conductive leads, and the plurality of conductive leads are arranged at intervals around the circumference of the first power line.