connector housing

CN224759652UActive Publication Date: 2026-09-15SHENZHEN NETSOK TECH CO LTD
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Patent Information

Application Number
CN202522710853.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-12-22
Publication Date
2026-09-15
Estimated Expiration
2035-12-22

AI Technical Summary

Technical Problem

然而,现有端子与电路板的卡接通常依赖一体成形的鼓簧结构,而卷制端子的冲压成型工艺特性导致其难以一体加工出该鼓簧结构,使得卷制端子无法满足充电座的卡接装配需求,限制了其在充电座中的应用

Benefits of technology

[0015] The beneficial effect of this utility model is that the conductive part and the connecting part of the first connecting terminal are divided into two parts. The first fixing piece and the second fixing piece have a fixing effect, while the multiple contact pieces contact the circuit board during use. In this way, the first connecting terminal can be adapted to the original product structure without changing it. Moreover, both the conductive part and the connecting part can be formed by stamping process, thereby reducing the cost of the connector socket.

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Abstract

The utility model discloses a connector seat, including seat body and being located in the first and third connecting terminal of the jack of seat body. First connecting terminal includes conducting part, first on -off part, sealing element and assembly spare: conducting part is equipped with passageway, and sealing element is sleeved in conducting part and blocks passageway intercommunication and abuts the inner wall of jack, first on -off part includes the first fixed sheet of sleeve conducting part, second fixed sheet and the plurality of contact sheet of two ends respectively connecting two fixed sheets, and contact sheet protrudes to the direction away from conducting part and interval distribution. The utility model will split setting with conducting part and on -off part, and fixed sheet realizes fixed function, and contact sheet and circuit board contact cooperation, need not change original product structure to be adapted to use, and conducting part and on -off part can all be formed through the stamping process, and the manufacturing cost of connector seat is effectively reduced.
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Description

Technical Field

[0001] This utility model relates to the field of connector technology, specifically to a connector socket. Background Technology

[0002] In electronic devices such as charging docks, terminals are critical connection components that need to reliably engage with the circuit board. Their manufacturing process and structural design directly affect product cost and assembly efficiency. Currently, conventional terminals are mostly produced by machining, which results in complex processes, low production efficiency, and high manufacturing costs.

[0003] Rolled terminals are manufactured using a stamping process, offering significant advantages over machined terminals in terms of production efficiency and manufacturing cost, making them a potential replacement for conventional terminals. However, existing terminals typically rely on a one-piece molded spring structure for connection to the circuit board. The stamping process of rolled terminals makes it difficult to machine this spring structure integrally, thus preventing rolled terminals from meeting the snap-fit ​​assembly requirements of charging sockets and limiting their application in charging sockets. Utility Model Content

[0004] In view of the shortcomings of the existing technology, this utility model provides a connector socket.

[0005] The present invention discloses a connector socket, comprising: a socket body, a plurality of first connecting terminals and a plurality of third connecting terminals, wherein the socket body has a plurality of sockets spaced apart, and the plurality of first connecting terminals and the plurality of third connecting terminals are disposed in the plurality of sockets. The first connection terminal includes a conductive element, a first connecting element, a sealing element, and an assembly. The conductive element is disposed inside the socket and has a channel. The first connecting element is sleeved on the outside of the conductive element. The sealing element is sleeved on the conductive element and blocks the connection between the channels on both sides of the sealing element. The sealing element abuts against the inner wall of the socket. The assembly is sleeved on the outside of the conductive element. The first contact element includes a first fixing plate, a second fixing plate, and multiple contact plates. The first fixing plate and the second fixing plate are both sleeved on the conductive element. The two ends of the contact plates are respectively connected to the first fixing plate and the second fixing plate, and the contact plates protrude from the first fixing plate and the second fixing plate in a direction away from the conductive element. The multiple contact plates are distributed at intervals.

[0006] According to one embodiment of the present invention, the first connecting terminal further includes at least two first limiting members disposed on the conductive member, and the at least two first limiting members are respectively disposed on one side of the first fixing plate and the second fixing plate.

[0007] According to one embodiment of the present invention, the first connecting terminal further includes at least two second limiting members disposed on the conductive member, the first connecting member having a notch, and the at least two second limiting members being located within the notch.

[0008] According to one embodiment of the present invention, the conductive component includes a conductor and a plurality of spring contacts. The conductor has a channel, and the plurality of spring contacts are spaced around one end of the conductor. A first connecting component is sleeved on the outside of the conductor, a sealing component is disposed on the conductor, and an assembly is sleeved on the outside of the conductor and the plurality of spring contacts.

[0009] According to one embodiment of the present invention, the conductive component further includes a first supporting curved surface and a second supporting curved surface located on both sides of the sealing component, a first connecting component sleeved on the outside of the first supporting curved surface, and an assembly sleeved on the outside of the second supporting curved surface.

[0010] According to one embodiment of the present invention, the assembly includes a sleeve, multiple support pieces and multiple first limiting pieces. The sleeve is sleeved on the outer surface of the second support curved surface and multiple spring pieces. The sleeve has multiple spaced-apart first through holes. The multiple support pieces are respectively disposed in the multiple first through holes and abut against the multiple spring pieces. The multiple first limiting pieces are spaced apart at the end of the sleeve away from the sealing member and are hooked inward at the end of the conductive member.

[0011] According to one embodiment of the present invention, the third connecting terminal has a fourth supporting curved surface, a second limiting protrusion, and a second connecting member. The second limiting protrusion and the second connecting member are both disposed on the outer surface of the fourth supporting curved surface, and one end of the second connecting member abuts against one side of the second limiting protrusion. The base is provided with a plurality of second supporting claws spaced apart in the insertion hole, and the plurality of second supporting claws abut against the side of the second limiting protrusion away from the second connecting member.

[0012] According to one embodiment of the present invention, one end of the third connecting terminal is further provided with a second fixing member, and the wire harness is connected to the second fixing member.

[0013] According to one embodiment of the present invention, it further includes a plurality of second connecting terminals disposed in a plurality of sockets; the second connecting terminals have a third supporting curved surface and a first limiting protrusion disposed on the outer surface of the third supporting curved surface; the base is provided with a plurality of first supporting claws spaced apart in the sockets, and the plurality of first supporting claws abut against the first limiting protrusions.

[0014] According to one embodiment of the present invention, one end of the second connecting terminal is further provided with a first fixing member, and the wire harness is connected to the first fixing member.

[0015] The beneficial effect of this utility model is that the conductive part and the connecting part of the first connecting terminal are divided into two parts. The first fixing piece and the second fixing piece have a fixing effect, while the multiple contact pieces contact the circuit board during use. In this way, the first connecting terminal can be adapted to the original product structure without changing it. Moreover, both the conductive part and the connecting part can be formed by stamping process, thereby reducing the cost of the connector socket. Attached Figure Description

[0016] The accompanying drawings, which are included to provide a further understanding of this application and form part of this application, illustrate exemplary embodiments and are used to explain this application, but do not constitute an undue limitation of this application. In the drawings: Figure 1 This is a three-dimensional structural diagram of the connector socket; Figure 2 This is a diagram showing the disassembled state of the connector socket; Figure 3 This is a partial structural diagram of the connector socket; Figure 4 This is a three-dimensional structural diagram of the first connecting terminal; Figure 5 This is a split view of the first connection terminal; Figure 6 This is another three-dimensional structural diagram of the first connecting terminal; Figure 7 This is a three-dimensional structural diagram of the second connecting terminal; Figure 8 This is another three-dimensional structural diagram of the second connecting terminal; Figure 9 This is a schematic diagram of the third connection terminal; Figure 10 This is a partial schematic diagram of the third connection terminal; Figure 11 This is another three-dimensional structural diagram of the connector socket; Figure 12 Another split view of the connector socket; Figure 13 This is a schematic diagram of another part of the connector socket structure.

[0017] Explanation of reference numerals in the attached figures 10. Base; 101. Socket; 102. First support claw; 103. Second support claw; 20. First connecting terminal; 201. Conductive element; 2011. Channel; 2012. Conductor; 2013. Spring; 2014. First supporting curved surface; 2015. Second supporting curved surface; 20151. Second through hole; 202. First connecting element; 2021. First fixing piece; 2022. Second fixing piece; 2023. Contact piece; 2024. Notch; 203. Sealing element; 204. Assembly part; 2041. Sleeve; 20411. First through hole; 2042. Support piece; 2043. First limiting piece; 2044. Second limiting piece; 205. First limiting element; 206. Second limiting element; 30. Second connecting terminal; 301. Third supporting curved surface; 302. First limiting protrusion; 303. First wire fixing component; 40. Third connecting terminal; 401. Fourth supporting curved surface; 4011. Limiting hole; 402. Second limiting protrusion; 403. Second connecting element; 404. Second fixing element. Detailed Implementation

[0018] The following drawings will disclose several embodiments of this utility model. For clarity, many practical details will be described in the following description. However, it should be understood that these practical details should not be used to limit this utility model. That is, in some embodiments of this utility model, these practical details are not essential. In addition, for the sake of simplicity, some conventional structures and components will be shown in the drawings in a simple schematic manner.

[0019] Furthermore, in this utility model, the use of terms such as "first" and "second" is for descriptive purposes only and does not specifically refer to any order or sequence, nor is it intended to limit the utility model. They are merely used to distinguish components or operations described with the same technical terms and should not be construed as indicating or implying their relative importance or implicitly specifying the number of indicated technical features. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the technical solutions of various embodiments can be combined with each other, but only if they are feasible for those skilled in the art. If a combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed by this utility model.

[0020] In practical use, the connector sockets in this embodiment can be divided into AC sockets and DC sockets. The structures of AC sockets and DC sockets are different, and the following will describe them using the two types of sockets as examples.

[0021] like Figures 1-3 As shown, Figure 1 This is a three-dimensional structural diagram of the connector socket; Figure 2 This is a diagram showing the disassembled state of the connector socket; Figure 3This is a partial structural diagram of a connector socket. Taking an AC socket as an example, the connector socket includes a body 10, a first connecting terminal 20, a second connecting terminal 30, and a third connecting terminal 40. The body 10 has several sockets 101, and correspondingly, there are several first connecting terminals 20, 30, and 40. A first connecting terminal 20, 30, or 40 is placed within each socket 101. Specifically, the number of sockets 101 can be set according to actual usage requirements, and the number of first connecting terminals 20, 30, and 40 depends on the number of sockets 101 in which they are placed. In use, external pins are inserted into the corresponding sockets 101 and abut against the first connecting terminals 20, 30, and 40, thereby achieving current conduction.

[0022] Please refer to the following: Figures 4-6 As shown, Figure 4 This is a three-dimensional structural diagram of the first connecting terminal 20; Figure 5 This is a split view of the first connecting terminal 20; Figure 6 This is another three-dimensional structural schematic diagram of the first connecting terminal 20.

[0023] The first connection terminal 20 includes a conductive element 201, a first contact element 202, a sealing element 203, and an assembly 204. The conductive element 201 is located inside the socket 101. The first contact element 202, the sealing element 203, and the assembly 204 are all sleeved on the conductive element 201. Meanwhile, the outer wall surface of the sealing element 203 abuts against the inner wall surface of the socket 101. In use, the first contact element 202 is connected to the circuit board inside the base 10, allowing current to flow between the first connection terminal 20 and the circuit board. The sealing element 203 is used to prevent external liquid from flowing into the interior, thus avoiding short circuits. The assembly 204 acts on the conductive element 201, providing support for it.

[0024] The conductive element 201 has a channel 2011, which is opened along the axial direction of the conductive element 201. In use, external pins and cables can be inserted into the channel 2011. The conductive element 201 includes a conductor 2012 and a plurality of spring contacts 2013. The channel 2011 is opened in the conductor 2012, and the plurality of spring contacts 2013 are spaced apart at one end of the conductor 2012. The first connecting element 202 is sleeved on the end of the conductor 2012 away from the spring contacts 2013, and the mounting part 204 is sleeved on the outside of the conductor 2012 and the spring contacts 2013. Specifically, multiple spring contacts 2013 are spaced apart along the edge of the conductor 2012, and together they form a socket (not shown in the figure). The socket is connected to the channel 2011. The external pin is first inserted into the socket and then inserted into the channel 2011 from the socket. The multiple spring contacts 2013 abut against the external pin, improving the connection effect between the first connection terminal 20 and the external pin, thereby ensuring the smooth conduction of current.

[0025] The conductive element 201 also includes a first supporting curved surface 2014 and a second supporting curved surface 2015. Both the first and second supporting curved surfaces 2014 and 2015 are located on the upper part of the channel 2011, respectively at the two ends of the conductor 2012. A first connecting element 202 is sleeved on the outside of the first supporting curved surface 2014 and the conductor 2012. An assembly 204 is sleeved on the outside of the second supporting curved surface 2015 and the conductor 2012. A sealing element 203 is located between the first and second supporting curved surfaces 2014 and 2015. In this embodiment, the conductor 2012, multiple spring contacts 2013, the first supporting curved surface 2014, and the second supporting curved surface 2015 are an integral structure. In practice, the conductive element 201 is integrally formed by a stamping process, and then the conductive element 201 is rolled up to obtain the corresponding structure.

[0026] In practical applications, the seal 203 is fitted over the conductor 2012. Simultaneously, the seal 203 also fills a portion of the channel 2011. This effectively blocks the channels 2011 on both sides of the seal 203, preventing external liquid from flowing into the interior and causing a short circuit. In this embodiment, the seal 203 is formed using injection molding. This means that the fluid seal 203 is injected into the channel 2011 and the outer surface of the conductor 2012 through injection molding. After the fluid seal 203 solidifies, it forms a structure that encloses the conductor 2012 and fills the channel 2011.

[0027] The first contact element 202 includes a first fixing piece 2021, a second fixing piece 2022, and a plurality of contact pieces 2023. The first fixing piece 2021 and the second fixing piece 2022 are both sleeved on the outside of the first supporting curved surface 2014 and the conductor 2012. The plurality of contact pieces 2023 are spaced apart between the first fixing piece 2021 and the second fixing piece 2022, and both ends of the contact pieces 2023 are respectively connected to the first fixing piece 2021 and the second fixing piece 2022. Specifically, the contact pieces 2023 gradually protrude from their ends towards the center, moving away from the conductor 2012. In other words, the outer diameter of the contact pieces 2023 is larger than the outer diameter of the first fixing piece 2021 and / or the second fixing piece 2022. In use, the plurality of contact pieces 2023 abut against the holes in the circuit board, enabling connection and current conduction.

[0028] Furthermore, the first connecting member 202 also has a notch 2024, which is opened along the axial direction of the first connecting member 202. In this embodiment, the first fixing piece 2021, the second fixing piece 2022, and the multiple contact pieces 2023 are all made by stamping. After being manufactured, they are rolled up to form the corresponding structure. During the rolling process, the first connecting member 202 is not a closed structure. Taking the first fixing piece 2021 as an example, when the first fixing piece 2021 is rolled up, there is a gap between the two ends of the first fixing piece 2021; similarly, there is also a gap between the two ends of the second fixing piece 2022. The gaps between the first fixing piece 2021 and the second fixing piece 2022 are axially connected, thus forming the notch 2024. The notch 2024 facilitates the installation and disassembly of the first connecting member 202 and the conductive member 201. In this embodiment, the first connecting member 202 is made entirely of a material with high conductivity and high yield strength.

[0029] Furthermore, the first connecting terminal 20 also includes at least two first limiting members 205. Both first limiting members 205 are disposed on the outer surface of the conductor 2012 and / or the first supporting curved surface 2014. At least one first limiting member 205 is provided on the side of the first fixing piece 2021 away from the second fixing piece 2022, and at least one first limiting member 205 is also provided on the side of the second fixing piece 2022 away from the first fixing piece 2021. The first limiting members 205 limit the first connecting member 202 axially, preventing it from falling or sliding off the conductor 2012. In use, the number of first limiting members 205 should be more than two, with a gap between adjacent first limiting members 205 on the same side. By providing multiple first limiting members 205, the area limiting the first connecting member 202 is increased, thereby achieving a better limiting effect on the first connecting member 202.

[0030] Furthermore, the first connecting terminal 20 also includes at least two second limiting members 206. Both second limiting members 206 are disposed on the outer surface of the conductor 2012 and / or the first supporting curved surface 2014, and are located within the notch 2024. The second limiting members 206 provide radial limiting for the first connecting member 202, thereby preventing rotation of the first connecting member 202 relative to the conductor 2012. Specifically, at least one second limiting member 206 is disposed at one end of the first fixing piece 2021, and at least one second limiting member 206 is disposed at the end of the second fixing piece 2022 opposite to the first fixing piece 2021. If the first contact element 202 rotates relative to the conductor 2012, one end of the first fixing piece 2021 will abut against the second limiting piece 206 and be blocked by the second limiting piece 206, thereby preventing the first contact element 202 from continuing to rotate; or, one end of the second fixing piece 2022 will abut against the second limiting piece 206 and be blocked by the second limiting piece 206, thereby preventing the first contact element 202 from continuing to rotate. Thus, regardless of whether the first contact element 202 rotates clockwise or counterclockwise, the second limiting piece 206 will block the first contact element 202.

[0031] The assembly 204 includes a sleeve 2041, multiple support plates 2042, and multiple first limiting plates 2043. The sleeve 2041 is sleeved on the outside of the conductor 2012, the second supporting curved surface 2015, and multiple spring pieces 2013. The sleeve 2041 has multiple spaced first through holes 20411. The multiple support plates 2042 are respectively disposed in the multiple first through holes 20411, and the multiple support plates 2042 abut against the multiple spring pieces 2013. The support plates 2042 provide support for the spring pieces 2013. When an external pin is inserted, the supporting force of the support plates 2042 on the spring pieces 2013 can effectively increase the positive force between the spring pieces 2013 and the external pin, thereby improving the current conduction effect between the two. In addition, the support of the spring pieces 2013 by the support plates 2042 can prevent the spring pieces 2013 from being easily crushed, thereby extending the service life of the spring pieces 2013. Multiple first limiting pieces 2043 are spaced apart at one end of the sleeve 2041 away from the first connecting member 202. The first limiting pieces 2043 are hooked onto the spring piece 2013, specifically meaning that the first limiting pieces 2043 are bent inward and abut against the inner wall surface of the spring piece 2013.

[0032] Furthermore, the second supporting curved surface 2015 has a second through hole 20151 communicating with the channel 2011. The assembly 204 also includes a second limiting piece 2044, which passes through the second through hole 20151 and abuts against the inner wall of the channel 2011. That is, the second limiting piece 2044 extends into the channel 2011 through the second through hole 20151, then bends and abuts against the inner wall of the channel 2011. Specifically, there are two second limiting pieces 2044, which are arranged opposite each other and are located on opposite sides of the second through hole 20151. Preferably, there are two second through holes 20151, which are arranged opposite each other, and each second through hole 20151 contains two corresponding second limiting pieces 2044. In this embodiment, one second through hole 20151 is located on the second support surface 2015, and the other second through hole 20151 is located on the conductor 2012. The fixing effect of the assembly 204 can be further improved by the cooperation between the second limiting piece 2044 and the second through hole 20151.

[0033] Please refer to the following: Figure 7 and Figure 8 , Figure 7 This is a three-dimensional structural diagram of the second connecting terminal 30; Figure 8 This is another three-dimensional structural diagram of the second connecting terminal 30. The structure of the second connecting terminal 30 is roughly the same as that of the first connecting terminal 20, except that the second connecting terminal 30 has a third supporting curved surface 301, a first limiting protrusion 302, and a first wire fixing member 303. The first limiting protrusion 302 is disposed on the outer surface of the third supporting curved surface 301, and the first wire fixing member 303 is disposed at the end of the second connecting terminal 30. Correspondingly, the base 10 also has a plurality of first supporting claws 102, which are located in the insertion hole 101 and are spaced apart. Each of the first supporting claws 102 abuts against one side of the first limiting protrusion 302, thereby positioning the second connecting terminal 30. In specific applications, the first wire fixing member 303 fixes and connects the wire harness. The first wire fixing member 303 can be a pressure plate structure (such as...). Figure 7 The first wire-fixing component 303 is fixed and connected to the wire harness. After the wire harness is inserted, it is pressed tightly by the pressure plates on both sides. In addition, the first wire-fixing component 303 can also be welded (e.g., Figure 8 The wire harness is fixed and connected to the first wire fixing component 303. The wire harness is placed on the plate-like structure of the first wire fixing component 303 and fixed to the first wire fixing component 303 by means of ultrasonic welding or other methods.

[0034] To further explain, the third support surface 301 can be understood as being equivalent to the first support surface 2014. Since the second connecting terminal 30 does not need to be provided with the structure of the first connecting member 202, there is no need to provide a corresponding structure (such as the first limiting member 205 and the second limiting member 206 of the first connecting terminal 20) on the third support surface 301 to achieve a fixing effect.

[0035] Please refer to the following: Figure 9 and Figure 10 , Figure 9 This is a schematic diagram of the structure of the third connecting terminal 40; Figure 10 This is a partial schematic diagram of the third connecting terminal 40. The structure of the third connecting terminal 40 is roughly the same as that of the first connecting terminal 20, except that the third connecting terminal 40 has a fourth supporting curved surface 401, a second limiting protrusion 402, a second connecting member 403, and a second fixing member 404. The second limiting protrusion 402 is disposed on the outer surface of the fourth supporting curved surface 401, the second connecting member 403 is sleeved on the outer surface of the fourth supporting curved surface 401, and one end of the second connecting member 403 abuts against one side of the second limiting protrusion 402. The second fixing member 404 is disposed at the end of the third connecting terminal 40. The base 10 also has a plurality of second supporting claws 103, all of which are located within the insertion hole 101. The plurality of second supporting claws 103 are spaced apart and abut against the side of the second limiting protrusion 402 away from the second connecting member 403. The positioning of the third connecting terminal 40 is achieved by the arrangement of the second supporting claws 103.

[0036] To further explain, the fourth support surface 401 can be understood as equivalent to the first support surface 2014, the second connecting member 403 can be understood as equivalent to the first connecting member 202, and the second limiting protrusion 402 can be understood as equivalent to the first limiting protrusion 302. Since one end of the second connecting member 403 abuts against the second limiting protrusion 402, and the second limiting protrusion 402 plays an axial limiting role for the second connecting member 403, the limiting member used to restrict the axial movement of the second connecting member 403 (such as the first limiting member 205 of the first connecting terminal 20) only needs to be provided on the side of the second connecting member 403 away from the second limiting protrusion 402. In addition, the third connecting terminal 40 does not have a limiting member (such as the second limiting member 206 of the first connecting terminal 20) to limit the radial rotation of the second connecting member 403. Instead, a corresponding limiting hole 4011 is opened on the fourth supporting curved surface 401, and the end of the second connecting member 403 can be hooked into the limiting hole 4011 to prevent the second connecting member 403 from rotating radially.

[0037] In this embodiment, the second wire fixing component 404 fixes and connects the wire harness. The second wire fixing component 404 may be a pressure plate structure (e.g., Figure 9The second wire-fixing component 404 is fixed and connected to the wire harness. After the wire harness is placed in, the wire harness is pressed tightly by the pressure plates on both sides. Alternatively, the second wire-fixing component 404 can also be fixed and connected to the wire harness by welding. The wire harness is placed on the plate-like structure of the second wire-fixing component 404 and fixed to the second wire-fixing component 404 by ultrasonic welding or other methods.

[0038] In summary, by dividing the conductive element 201 and the connecting element of the first connecting terminal 20 into two parts, the first fixing piece 2021 and the second fixing piece 2022 serve a fixing effect, while the multiple contact pieces 2023 make contact with the circuit board during use. In this way, the first connecting terminal 20 can be adapted to the original product structure without changing it. Moreover, both the conductive element 201 and the first connecting element 202 can be formed by stamping, thereby reducing the cost of the connector socket.

[0039] like Figures 11-13 As shown, Figure 11 This is another three-dimensional structural diagram of the connector socket; Figure 12 Another split view of the connector socket; Figure 13 This is a schematic diagram of another part of the connector socket structure. Taking a DC connector socket as an example, the connector socket includes a socket body 10, a first connecting terminal 20, and a third connecting terminal 40. The socket body 10 has a plurality of sockets 101, and correspondingly, there are a plurality of first connecting terminals 20 and third connecting terminals 40. A first connecting terminal 20 or a third connecting terminal 40 is placed in a socket 101. Specifically, the position and number of sockets 101 can be set according to actual usage requirements, and the number of first connecting terminals 20 and third connecting terminals 40 is determined by the number of sockets 101 in which they are placed. In use, external pins are inserted into the corresponding sockets 101 and abut against the first connecting terminals 20 and third connecting terminals 40, thereby realizing current conduction.

[0040] The specific structures of the base 10, the first connecting terminal 20 and the third connecting terminal 40 have been described above and will not be repeated here.

[0041] To further clarify, the number and position of the sockets 101 on the base 10 of the DC and AC power sockets differ. This embodiment does not limit the number and position of the sockets 101; the number and position of the sockets 101 can be changed according to requirements during use. Furthermore, the number and position of the first connection terminal 20 and the third connection terminal 40 used in the DC and AC power sockets also differ. The number and position of the first connection terminal 20 and the third connection terminal 40 can be set according to requirements during specific use.

[0042] Since the DC power socket does not require the use of the second connection terminal 30, the structure corresponding to the second connection terminal 30 in the socket body 10 is also omitted. For example, the structure of the first support claw 102 is omitted in the socket body 10 of the DC power socket, and only the structure of the second support claw 103 is retained.

[0043] The above description is merely an embodiment of this utility model and is not intended to limit the scope of this utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principle of this utility model should be included within the scope of the claims of this utility model.

Claims

1. A connector socket, characterized in that, include: The base (10), a plurality of first connecting terminals (20) and a plurality of third connecting terminals (40) are provided. The base (10) has a plurality of sockets (101) spaced apart. The plurality of first connecting terminals (20) and the plurality of third connecting terminals (40) are all disposed in the plurality of sockets (101). The first connection terminal (20) includes a conductive element (201), a first connecting element (202), a sealing element (203), and an assembly (204). The conductive element (201) is disposed in the socket (101) and has a channel (2011). The first connecting element (202) is sleeved on the outside of the conductive element (201). The sealing element (203) is sleeved on the conductive element (201) and blocks the connection of the channel (2011) on both sides of the sealing element (203). The sealing element (203) abuts against the inner wall surface of the socket (101). The assembly (204) is sleeved on the outside of the conductive element (201). The first contact element (202) includes a first fixing piece (2021), a second fixing piece (2022) and a plurality of contact pieces (2023). The first fixing piece (2021) and the second fixing piece (2022) are both sleeved on the conductive element (201). The two ends of the contact piece (2023) are respectively connected to the first fixing piece (2021) and the second fixing piece (2022), and the contact piece (2023) protrudes from the first fixing piece (2021) and the second fixing piece (2022) in a direction away from the conductive element (201). The plurality of contact pieces (2023) are distributed at intervals.

2. The connector socket according to claim 1, characterized in that, The first connecting terminal (20) also includes at least two first limiting members (205) disposed on the conductive member (201), the at least two first limiting members (205) being disposed on one side of the first fixing piece (2021) and the second fixing piece (2022), respectively.

3. The connector socket according to claim 2, characterized in that, The first connecting terminal (20) further includes at least two second limiting members (206) disposed on the conductive member (201), the first connecting member (202) having a notch (2024), and the at least two second limiting members (206) being located within the notch (2024).

4. The connector socket according to claim 1, characterized in that, The conductive element (201) includes a conductor (2012) and a plurality of springs (2013). The conductor (2012) has a channel (2011). The plurality of springs (2013) are spaced around one end of the conductor (2012). A first contact element (202) is sleeved on the outside of the conductor (2012). A sealing element (203) is disposed on the conductor (2012). An assembly (204) is sleeved on the outside of the conductor (2012) and the plurality of springs (2013).

5. The connector socket according to claim 4, characterized in that, The conductive component (201) also includes a first support surface (2014) and a second support surface (2015) located on both sides of the seal (203), the first connecting component (202) is sleeved on the outside of the first support surface (2014), and the mounting component (204) is sleeved on the outside of the second support surface (2015).

6. The connector socket according to claim 5, characterized in that, The assembly (204) includes a sleeve (2041), multiple support pieces (2042) and multiple first limiting pieces (2043). The sleeve (2041) is fitted onto the outer surface of the second support curved surface (2015) and multiple spring pieces (2013). The sleeve (2041) has multiple spaced first through holes (20411). Multiple support pieces (2042) are respectively disposed in the multiple first through holes (20411). Multiple support pieces (2042) abut against multiple spring pieces (2013). Multiple first limiting pieces (2043) are spaced apart at one end of the sleeve (2041) away from the seal (203), and multiple first limiting pieces (2043) are hooked inward at one end of the conductive element (201).

7. The connector socket according to any one of claims 1-6, characterized in that, The third connecting terminal (40) has a fourth supporting surface (401), a second limiting protrusion (402) and a second connecting member (403). The second limiting protrusion (402) and the second connecting member (403) are both disposed on the outer surface of the fourth supporting surface (401). One end of the second connecting member (403) abuts against one side of the second limiting protrusion (402). The seat (10) has a plurality of second supporting claws (103) spaced apart in the insertion hole (101). The plurality of second supporting claws (103) abut against the side of the second limiting protrusion (402) away from the second connecting member (403).

8. The connector socket according to claim 7, characterized in that, One end of the third connecting terminal (40) is also provided with a second wire fixing member (404), and the wire harness is connected to the second wire fixing member (404).

9. The connector socket according to any one of claims 1-6, characterized in that, It also includes a plurality of second connecting terminals (30) disposed in a plurality of sockets (101); the second connecting terminals (30) have a third supporting surface (301) and a first limiting protrusion (302) disposed on the outer surface of the third supporting surface (301); the base (10) is provided with a plurality of first supporting claws (102) spaced apart in the sockets (101), and the plurality of first supporting claws (102) abut against the first limiting protrusions (302).

10. The connector socket according to claim 9, characterized in that, One end of the second connection terminal (30) is also provided with a first wire fixing member (303), and the wire harness is connected to the first wire fixing member (303).