Electrical connector and lighting device

By designing an electrical connector set at an angle, the problem of large space occupied by multiple connections of DC DC plugs and easy bending of wires is solved, and the parallel or series connection of multiple lamp sources is realized, which extends the service life of the electrical connector and reduces poor connections.

CN115513696BActive Publication Date: 2025-08-22SUZHOU OPPLE LIGHTING +1
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Patent Information

Application Number
CN202211332875.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-10-28
Publication Date
2025-08-22
Estimated Expiration
2042-10-28

AI Technical Summary

Technical Problem

Existing DC DC plugs can only achieve one-to-one connection in one direction. Multiple plugs are required when connecting multiple lamp sources, which takes up a large space and easily bent wires lead to reduced life and poor contact.

Method used

An electrical connector is designed, including an insulating body, a first electrical connection member and a second electrical connection member. The conductive member is connected to both through an electrical connection port. The extension direction of the conductive member is angled with the relative arrangement of the electrical connection member to avoid bending. The electrical connection member is arranged in a opposite direction at both ends of the insulating body to realize parallel or series connection of multiple lamp sources.

Benefits of technology

It improves the service life of the electrical connector, reduces the situation of poor connection, improves the efficiency of space utilization, and facilitates user operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application provides an electrical connector and a lighting device, wherein a first electrical connector and a second electrical connector are provided on an insulating body of the electrical connector, and the first electrical connector and the second electrical connector are located at two ends of the insulating body to facilitate the user to install external devices. The extending direction of the conductive member of the electrical connector can be at an angle to the relative arrangement direction of the first electrical connector and the second electrical connector, and the conductive member is connected to the first electrical connector and the second electrical connector through the electrical connection port to supply power to the first electrical connector and the second electrical connector. In actual use, the conductive member does not need to be bent, which helps to improve the service life of the electrical connector and reduce the occurrence of poor connections.
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Description

Technical Field

[0001] The present application relates to the technical field of lighting equipment, and in particular to an electrical connector and a lighting device. Background Art

[0002] Currently, DC plugs used for electrical connections only provide a one-to-one connection in one direction. Connecting multiple light sources requires multiple DC plugs, which takes up a lot of space. Furthermore, the wires connected to the DC plugs are oriented in the same direction as the DC plugs, which can require bending when connecting to the light sources, potentially causing wire damage. Bend angles of 90° or more can shorten the life of the wires and lead to poor contact. Summary of the Invention

[0003] The present application provides an electrical connector and a lighting device to improve the connection effect of the electrical connector.

[0004] The present application provides an electrical connector, comprising an insulating body, a first electrical connector, a second electrical connector, and a conductive member. The insulating body has a first end, a second end, and a side portion, the side portion being provided with an electrical connection port; the first electrical connector is provided at the first end of the insulating body; the second electrical connector is provided at the second end of the insulating body; and the conductive member is connected to the first and second electrical connectors via the electrical connection port.

[0005] In some embodiments, the first electrical connector and the second electrical connector are connected in series or in parallel.

[0006] In some embodiments, the first electrical connector and the second electrical connector form an integral structure to be connected in series.

[0007] In some embodiments, the integrated structure includes a positive electrode connecting component and a negative electrode connecting component, and the positive electrode connecting component and the negative electrode connecting component are both extended in a direction from the first end to the second end. The side of the positive electrode connecting component and the negative electrode connecting component close to the first end forms the first electrical connector, and the side of the positive electrode connecting component and the negative electrode connecting component close to the second end forms the second electrical connector.

[0008] In some embodiments, the negative electrode connecting component is a conductive ring, the positive electrode connecting component is arranged on the circumferential inner side of the conductive ring, and the side surface of the conductive ring is provided with an opening for wiring.

[0009] In some embodiments, the conductive member includes a positive electrode connection line and a negative electrode connection line, the positive electrode connection line is connected to the positive electrode connection component, and the negative electrode connection line is connected to the negative electrode connection component.

[0010] In some embodiments, the first end and the second end are opposite in a first direction, the first electrical connector has a first electrical connection port, the second electrical connector has a second electrical connection port, and the first electrical connection port and the second electrical connection port are opposite to each other in the first direction.

[0011] In some embodiments, the first electrical connection port and the second electrical connection port are both male connection interfaces or both female connection interfaces.

[0012] In some embodiments, the conductive element passes through the insulating body along a second direction, and the first direction and the second direction are arranged at an angle.

[0013] In some embodiments, the first direction is perpendicular to the second direction.

[0014] In some embodiments, the conductive member includes a positive electrode connection line and a negative electrode connection line, and the positive electrode connection line and the negative electrode connection line are connected to the electrical connection port to connect with the first electrical connector and the second electrical connector.

[0015] Correspondingly, the present application also provides a lighting device, which includes a lighting unit, and the lighting unit includes a first light source, a second light source and the aforementioned electrical connector, the first light source is connected to the first electrical connection interface of the electrical connector, and the second light source is connected to the second electrical connection interface of the electrical connector.

[0016] In some embodiments, the lighting device includes at least two lighting units, and the electrical connectors of any two lighting units are connected in parallel.

[0017] The present application has the following beneficial effects: The present application provides an electrical connector and a lighting device, wherein a first electrical connector and a second electrical connector are provided on an insulating body of the electrical connector, and the first electrical connector and the second electrical connector are located at opposite ends of the insulating body to facilitate user installation of external components. In some embodiments, the extension direction of the conductive member of the electrical connector is angled with the relative arrangement direction of the first electrical connector and the second electrical connector, and the conductive member is connected to the first electrical connector and the second electrical connector through the electrical connection port to supply power to the first electrical connector and the second electrical connector. In actual use, the conductive member does not need to be bent, which helps to improve the service life of the electrical connector and reduce the occurrence of poor connections. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the description of the embodiments. 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 creative work.

[0019] Figure 1 A main surface cross-sectional view of an electrical connector in one embodiment is exemplarily shown.

[0020] Figure 2 A main surface cross-sectional view of an electrical connector in yet another embodiment is exemplarily shown.

[0021] Figure 3 A main surface cross-sectional view of an electrical connector in yet another embodiment is exemplarily shown.

[0022] Figure 4 A top view of an electrical connector is shown as an example.

[0023] Figure 5 An exploded schematic diagram of an electrical connector and an electrical connection end is exemplarily shown.

[0024] Figure 6 A structural diagram of a lighting device is shown as an example.

[0025] Figure 7 An exploded schematic diagram of a lighting device is shown as an example.

[0026] Description of the main components in the embodiment of this application:

[0027] Electrical connector 100 Insulation body 110

[0028] Accommodation space 111 First space 1111

[0029] Second space 1112 First end 112

[0030] Second end 113 Side 114

[0031] Electrical connection port 115 Electrical connection member 120

[0032] First electrical connector 121 Second electrical connector 122

[0033] First electrical connection port 123 Second electrical connection port 124

[0034] Positive electrode connecting member 125 Negative electrode connecting member 126

[0035] Opening 1261 Conductive member 130

[0036] Positive electrode connecting line 131 Negative electrode connecting line 132

[0037] Illuminating device 300 First light source 310

[0038] Second light source 320 Electrical connection terminal 330

[0039] First electrical connection end 331 Second electrical connection end 332

[0040] Carrier 340 First light-transmitting cover 350

[0041] Second light-transmitting cover 360 DETAILED DESCRIPTION

[0042] The technical solutions in the embodiments of the present application will be clearly and completely described below in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without making creative work are within the scope of protection of the present application. In addition, it should be understood that the specific implementation methods described herein are only used to illustrate and explain the present application, and are not used to limit the present application. In the present application, unless otherwise specified, the directional words used, such as "up", "down", "left", and "right", generally refer to the up, down, left, and right of the device in actual use or working state, specifically the drawing direction in the accompanying drawings.

[0043] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be understood to indicate or imply relative importance or implicitly specify the quantity of the technical features indicated. Thus, features defined as "first" or "second" may explicitly or implicitly include at least one of these features.

[0044] The present application provides an electrical connector and an illuminating device, each of which is described in detail below. It should be noted that the order in which the following embodiments are described does not limit the preferred order of the embodiments of the present application. Furthermore, in the following embodiments, the description of each embodiment has its own emphasis. For portions not detailed in one embodiment, please refer to the relevant descriptions of other embodiments.

[0045] See also Figure 1 An embodiment of the present application provides an electrical connector 100 , which includes an insulating body 110 , an electrical connector 120 , and a conductive member 130 .

[0046] The insulating body 110 is a structural foundation for supporting other components, and generally forms the overall shape and outline of the electrical connector 100. For example, in some embodiments, see Figure 1 and Figure 2, the insulating body 110 is covered on the outside of the electrical connector 120. For example, in other embodiments, please refer to Figure 3 The insulating body 110 has a receiving space 111 therein, and the receiving space 111 is used to arrange other components of the electrical connector 100, such as for receiving the electrical connector 120.

[0047] Here, the insulating body 110 has a first end 112 and a second end 113 , and the first end 112 and the second end 113 may be opposite to each other in a first direction X. Generally, the first direction X may be the longitudinal direction of the insulating body 110 , and the insulating body 110 extends longitudinally from the first end 112 to the second end 113 .

[0048] Furthermore, the insulating body 110 further comprises a side portion 114 located between the first end 112 and the second end 113, and the side portion 114 is arranged around a straight line parallel to the first direction X. An electrical connection port 115 is provided at the side portion 114, and the electrical connection port 115 is used for connecting components inside and outside the insulating body 110. Here, the electrical connection port 115 is mainly used for connecting the conductive member 130 with the electrical connector 120. Figure 1 Here, two electrical connection ports 115 are relatively arranged on the side 114 of the insulating body 110, and the two electrical connection ports 115 are opposite to each other in a second direction Y. The second direction Y can be set at an angle to the first direction X, for example, the first direction X and the second direction Y are perpendicular to each other.

[0049] The electrical connector 120 is provided on the insulating body 110 and is used to connect to an external device. For example, the electrical connector 120 has an electrical connection port (see Figure 1 The first electrical connection port 123 and the second electrical connection port 124 in the embodiment are described in detail later. It is understood that the electrical connection port is a structure for connecting to an external device and realizing an electrical transfer function. It can be a DC interface, a USB interface, a Type-c interface, etc., and this embodiment does not limit it. At the same time, an electrical connection terminal 330 corresponding to the electrical connection port is provided on the external device (see Figure 5 ). Exemplarily, the electrical connection port is a female connection terminal, and the electrical connection terminal 330 on the external device is correspondingly a male connection terminal, and the male connection terminal can be connected to the female connection terminal to achieve electrical connection. Alternatively, in other examples, the electrical connection port can be a male connection terminal, and the electrical connection terminal 330 on the external device can be correspondingly a female connection terminal, and the two can cooperate with each other to achieve electrical connection.

[0050] It is understandable that, generally, the electrical connection ports in the embodiments of the present application are all male connection interfaces or are all female connection interfaces. This is because, for a specific external device, its electrical connection end 330 is usually constant to be one of the male connection end and the female connection end. In order to achieve the technical effect of the electrical connection port being connected to the electrical connection end 330 of the external device in the present application, the electrical connection port should be the other of the male connection end and the female connection end in accordance with the setting of the connection end. That is, when the electrical connection end 330 of the external device is constant to be the male connection end, the electrical connection ports are all female connection interfaces. When the electrical connection end 330 of the external device is constant to be the female connection end, the electrical connection ports are all male connection interfaces.

[0051] Here, the electrical connection port has an access direction, and the access direction refers to the direction of movement of the electrical connection end 330 of the external device when it is connected to the electrical connection port. Usually, the access direction is the orientation of the electrical connection port. Exemplarily, the electrical connection port is a plug-in interface, and the external device can be plugged into the plug-in interface along the access direction to achieve electrical connection between the two. Another example is that the electrical connection port is an interface with a thread, that is, the outer surface or inner surface of the electrical connection port is provided with a thread. Here, the thread can also be provided on the insulating body 110, and this embodiment does not limit it. Here, the external device is threadedly engaged with the threaded interface and rotates. When rotating, the external device is connected to the threaded interface along the access direction to achieve electrical connection.

[0052] In the embodiment of the present application, the number of electrical connectors 120 is set to two. Therefore, in actual use, the electrical connector 100 can connect to two external devices. Compared with the electrical connection plug structure of the prior art that can only connect to one external device, it is more convenient for users to use. When connecting two external devices, only one electrical connector 100 is required. Compared with the prior art that uses multiple electrical connection plugs to connect external devices, the electrical connector 100 provided by the present application also has the advantages of being compact and taking up little space.

[0053] Furthermore, in relatively narrow usage scenarios, there may not be sufficient space to arrange multiple electrical connection ports in the same direction, or arranging the electrical connection ports on the same side may make it difficult to connect external devices, and multiple external devices may interfere with each other. Therefore, in the embodiment of the present application, the electrical connection ports of different electrical connectors 120 are arranged in opposite directions, that is, the electrical connectors 100 are arranged in opposite directions. This allows for more efficient use of space and a compact design.

[0054] In some embodiments, see Figure 1The electrical connector 120 includes a first electrical connector 121 and a second electrical connector 122. Here, the first electrical connector 121 and the second electrical connector 122 form an integrated structure to be connected in series. For example, the integrated structure includes a positive electrode connecting component 125 and a negative electrode connecting component 126. The positive electrode connecting component 125 and the negative electrode connecting component 126 are both extended along the direction from the first end 112 to the second end 113, that is, arranged along the first direction X. Here, the positive electrode connecting component 125 is a conductive needle, and the negative electrode connecting component 126 is a conductive ring. Both can be made of copper or other conductive materials. The conductive needle is arranged on the circumferential inner side of the conductive ring, and the side of the conductive ring is provided with an opening 1261 for wiring to connect to the conductive needle. The positive electrode connection component 125 and the negative electrode connection component 126 on one side close to the first end 112 form the first electrical connection component 121, and the positive electrode connection component 125 and the negative electrode connection component 126 on one side close to the second end 113 form the second electrical connection component 122. In addition, the positive electrode connection component 125 and the negative electrode connection component 126 are both connected to the two electrical connection ports 115. Therefore, when the conductive member 130 is connected to the electrical connection port 115, it can be electrically connected with the positive electrode connection component 125 and the negative electrode connection component 126.

[0055] Of course, it can be understood that in other embodiments, the first connector 121 and the second connector 122 can also be two components, the first electrical connector 121 is provided at the first end 112 of the insulating body 110, and the second electrical connector 122 is provided at the second end 113 of the insulating body 110, and the first connector 121 and the second connector 122 are connected in series or in parallel with each other, and this embodiment does not limit this.

[0056] For example, in some embodiments, see Figure 2 ,exist Figure 2 In the illustrated embodiment, the first connector 121 and the second connector 122 are two components, each having a positive electrode connector 125 and a negative electrode connector 126 , and the first connector 121 and the second connector 122 are connected in parallel.

[0057] For example, in some embodiments, see Figure 3 As mentioned above, the accommodating space 111 of the insulating body 110 specifically includes a first space 1111 near the first end 112 and a second space 1112 near the second end 113. The first electrical connector 121 is disposed in the first space 1111, that is, the first connector is located near the first end 112 of the insulating body. Here, it can be understood that Figure 3 and Figure 5 In the figure, the first electrical connector 121 and the second electrical connector 122 can be connected in series or in parallel, so the specific connection relationship between the two is not shown. The electrical connection interface includes a first electrical connection port 123 and a second electrical connection port 124. The first electrical connection port 123 is provided on the first electrical connector 121, and the second electrical connection port 124 is provided on the second electrical connector 122. Here, the first space 1111 has an opening on the side facing the first end 112 to expose the first electrical connection interface 123. The access direction A1 of the first electrical connection interface 123 is from the first end 112 to the second end 113. The second electrical connector 122 is provided in the second space 1112, that is, the second electrical connector 122 is located near the second end 113 of the insulating body. The second space 1112 also has an opening on the side facing the second end 113 to expose the second electrical connection interface 124. The access direction A2 of the second electrical connection interface 124 is from the second end 113 to the first end 112. The access direction A1 of the first electrical connection interface 123 and the access direction A2 of the second electrical connection interface 124 are both parallel to the first direction X, and the angle between them is 180°.

[0058] It can be seen that in the above Figure 1 、 Figure 2 and Figure 3 In the three examples shown, the first electrical connector 121 is located at the first end 112 of the insulating body 110, and the second electrical connector 122 is located at the second end 113 of the insulating body 110. When two external devices are respectively connected to the first electrical connector 121 and the second electrical connector 122, the user can move the two external devices along 180° opposite directions A1 and A2 to complete the connection with the electrical connector 100. For example, in Figure 7The figure shows two external devices, namely a first light source 310 and a second light source 320. For the first light source 310, during assembly, the user can move the first light source 310 along the access direction A1 to connect the first light source 310 to the first electrical connection interface 123. Specifically, in the figure, access direction A1 refers to the direction of movement from top to bottom for moving the first light source 310 to achieve a mating connection with the first electrical connection interface 123. For the second light source 320, during assembly, the user can move the second light source 320 along the access direction A2 to connect the second light source 320 to the second electrical connection interface 124. Specifically, in the figure, access direction A2 refers to the direction of movement from bottom to top for moving the second light source 320 to achieve a mating connection with the second electrical connection interface 124. Here, during assembly, the first and second light sources 310, 320 are less likely to interfere with each other, making operation and installation easier for the user. Furthermore, the first and second light sources 310, 320 are oriented toward opposite sides, achieving an optimal lighting effect.

[0059] As mentioned above, please refer to Figure 1 , the electrical connector 100 also includes a conductive member 130, which is passed through the insulating body 110 and connected to the electrical connector 120 to supply power to the electrical connector 120, and then the electrical connector 120 can supply power to the external device connected thereto. Usually, the conductive member 130 is a wire. It can be understood that a wire usually includes an insulator and a conductor. The insulator is wrapped around the conductor to form the outer contour of the conductive member 130, which usually has a certain hardness. Of course, in other embodiments, the conductive member 130 can also be a conductive sheet, etc., as long as it can achieve electrical connection between the power supply and the electrical connector 120, and this embodiment does not limit it. In addition, it can be understood that the conductive member 130 is used to achieve connection with the power supply, so it also has a connection part that can be used to connect to the power supply, which is well known to those skilled in the art and will not be described in detail in this embodiment.

[0060] For example, see Figure 1 and Figure 4The conductive member 130 includes a positive electrode connection line 131 and a negative electrode connection line 132. It is understood that in other embodiments, the positive electrode connection line 131 can be replaced with other conductive positive electrode connection parts such as metal parts, and the negative electrode connection line 132 can be replaced with other conductive negative electrode connection parts such as metal parts, and this embodiment is not limited thereto. The positive electrode connection line 131 and the negative electrode connection line 132 pass through the insulating body 110 along a second direction Y, and the first direction X is perpendicular to the second direction Y. Of course, in other embodiments, the first direction X and the second direction Y can also be arranged at other angles, as long as they are not parallel.

[0061] Correspondingly, as mentioned above, the electrical connector 120 has a positive electrode connecting component 125 and a negative electrode connecting component 126. Figure 1 In the illustrated example, the first electrical connector 121 and the second electrical connector 122 form an integral structure, sharing a set of the positive electrode connector 125 and the negative electrode connector 126. The positive electrode connector 131 is connected to the positive electrode connector 125, for example, by wrapping a conductive section of the positive electrode connector 131 around the positive electrode connector 125 to achieve electrical continuity, or by soldering a conductive section of the positive electrode connector 131 to the positive electrode connector 125 to achieve electrical continuity. This embodiment does not specifically limit the connection method between the two. Similarly, the negative electrode connector 132 is connected to the negative electrode connector 126.

[0062] and Figure 1 Unlike the example shown, Figure 2 In the illustrated example, the first electrical connector 121 and the second electrical connector 122 are split structures, each having the positive electrode connector 125 and the negative electrode connector 126. The positive electrode connector wire 131 is connected to the two positive electrode connectors 125, and the negative electrode connector wire 132 is connected to the two negative electrode connectors 126. The first electrical connector 121 and the second electrical connector 122 are connected in parallel via the conductor 130.

[0063] Here, please combine Figures 1 to 3In some embodiments, the first electrical connector 121 and the second electrical connector 122 are located on opposite sides along the first direction X, and the conductive member 130 is arranged along the second direction Y and pre-connected to the first electrical connector 121 and the second electrical connector 122. Compared to existing solutions using connecting plugs, the embodiments of the present application do not require excessive bending of the conductive member 130 during use to achieve connections between the first electrical connector 121 and the second electrical connector 122 at different locations on the electrical connector 100. This reduces the risk of malfunction of the conductive member 130, helps extend the service life of the conductive member 130, and improves its performance.

[0064] Here, the electrical connector 100 is used in a lighting device 300. Therefore, an embodiment of the present application correspondingly provides a lighting device 300, wherein the lighting device 300 includes a lighting unit, and the lighting unit includes a first light source 310, a second light source 320 and the aforementioned electrical connector 100.

[0065] See also Figure 6 , the lighting device 300 includes a carrier 340, the carrier 340 is roughly circular and has a hanging structure on its upper side. The hanging structure may include a ceiling mount and a hanging rope, etc., which is not limited in this embodiment. A number of lighting units are arranged on the carrier 340, each of which includes a first light source 310 and a second light source 320 that are relatively arranged. The first light source 310 is connected to the first electrical connector 121 of the lighting unit, and the second light source 320 is connected to the second electrical connector 122 of the lighting unit. In addition, the carrier 340 is set to be hollow to form a accommodating cavity (not shown in the figure), and the accommodating cavity is used to accommodate the electrical connector 120.

[0066] In this embodiment, the first light source 310 and the second light source 320 are both lamp cups, to which the aforementioned electrical connection end 330 is connected by welding or other means. Of course, in other embodiments, the first light source 310 and the second light source 320 can be bulb lamps, candle lamps, or other structures with light-emitting functions, and this embodiment is not limited thereto.

[0067] Wherein, for each of the lighting units, see Figure 7, the first light source 310 and the second light source 320 are respectively oriented toward opposite sides along the first direction X. The first light source 310 is further provided with a first light-transmitting cover 350, and the inner diameter of the first light-transmitting cover 350 gradually expands in a direction away from the first light source 310. The second light source 320 is provided with a second light-transmitting cover 360, and the inner diameter of the second light-transmitting cover 360 remains constant. Of course, the relevant examples of this embodiment do not constitute corresponding limitations. In other embodiments, the first light-transmitting cover 350 and / or the second light-transmitting cover 360 may not be provided, or the shape and structure of the first light-transmitting cover 350 and / or the second light-transmitting cover 360 may also be different from that of this example.

[0068] Here, in some embodiments, the lighting device 300 includes at least two lighting units, and the plurality of lighting units are connected in parallel via a conductive member 130 or other connector. Of course, it is understood that in other embodiments, the plurality of lighting units may also be connected in series via a conductive member 130 or other connector, and this embodiment is not limited thereto.

[0069] Application Example 1

[0070] In application example 1, an electrical connector 100 is provided, which includes an insulating body 110, a first electrical connector 121, a second electrical connector 122, and a conductive member 130. The first electrical connector 121 and the second electrical connector 122 are arranged opposite to each other in a vertical direction. The first electrical connector 121 is located at the upper end of the insulating body 110 and has a first electrical connection port 123 arranged toward the upper side. The second electrical connector 122 is located at the lower end of the insulating body 110 and has a second electrical connection port 124 arranged toward the lower side. The first electrical connection port 123 and the second electrical connection port 124 are both used to connect external devices, and both are DC female interfaces. The conductive member 130 extends in the horizontal direction and is electrically connected to the first electrical connection port 123 and the second electrical connection port 124.

[0071] Application Example 2

[0072] Application Example 2 provides a lighting device 300, which includes the electrical connector 100 provided in Application Example 1, as well as a first light source 310 and a second light source 320. The first light source 310 has a DC male connection terminal and is connected to the first electrical connection interface 123, and the second light source 320 has a DC male connection terminal and is connected to the second electrical connection interface 124.

[0073] It can be understood that the meanings of the terms in the embodiments of the present application are the same. For the content that is not described in detail in a certain embodiment, the specific implementation details can refer to the descriptions in other embodiments. The example descriptions and technical effects shown in the aforementioned embodiments can all be implemented accordingly. For the repeated parts, this embodiment will not go into details.

[0074] The above is a detailed introduction to the electrical connector and lighting device provided by the present application. Specific examples are used herein to illustrate the principles and implementation methods of the present application. The description of the above embodiments is only used to help understand the method and core idea of ​​the present application. At the same time, for those skilled in the art, based on the idea of ​​the present application, there will be changes in the specific implementation methods and application scope. In summary, the content of this specification should not be understood as a limitation on the present application.

Claims

1. An electrical connector (100), characterized in that include, An insulating body (110) having a first end (112), a second end (113) and a side portion, wherein the side portion is provided with an electrical connection port; A first electrical connector (121) is provided at the first end (112) of the insulating body; A second electrical connector (122) is provided at the second end (113) of the insulating body; and A conductive member (130), the conductive member (130) being connected to the first electrical connector (121) and the second electrical connector (122) through the electrical connection port (115); wherein the first electrical connector (121) and the second electrical connector (122) form an integral structure to be connected in series; the integral structure comprises a positive electrode connector (125) and a negative electrode connector (126); the positive electrode connector (125) and the negative electrode connector (126) are both extended in a direction from the first end (112) to the second end (113); the positive electrode connector (125) and the negative electrode connector (126) form the first electrical connector (121) on one side close to the first end (112); and the positive electrode connector (125) and the negative electrode connector (126) form the second electrical connector (122) on one side close to the second end (113); The conductive member (130) includes a positive electrode connecting line (131) and a negative electrode connecting line (132), and the positive electrode connecting line (131) and the negative electrode connecting line (132) are connected to the electrical connection port (115) to connect to the first electrical connector (121) and the second electrical connector (122).

2. The electrical connector (100) according to claim 1, characterized in that The negative electrode connecting component (126) is a conductive ring, the positive electrode connecting component (125) is arranged on the inner side of the conductive ring in the circumferential direction, and the side surface of the conductive ring is provided with an opening (1261) for wiring.

3. The electrical connector (100) according to claim 1, characterized in that The conductive member (130) includes a positive electrode connecting wire (131) and a negative electrode connecting wire (132), wherein the positive electrode connecting wire (131) is connected to the positive electrode connecting component (125), and the negative electrode connecting wire (132) is connected to the negative electrode connecting component (126).

4. The electrical connector (100) according to any one of claims 1 to 3, characterized in that: The first end (112) and the second end (113) are opposite to each other in a first direction, the first electrical connector (121) has a first electrical connection port (123), the second electrical connector (122) has a second electrical connection port (124), and the first electrical connection port (123) and the second electrical connection port (124) are opposite to each other in the first direction.

5. The electrical connector (100) according to claim 4, characterized in that: The first electrical connection port (123) and the second electrical connection port (124) are both male connection interfaces or both female connection interfaces.

6. The electrical connector (100) according to claim 4, characterized in that The conductive member (130) passes through the insulating body (110) along a second direction, and the first direction and the second direction are arranged at an angle.

7. The electrical connector (100) according to claim 6, characterized in that The first direction is perpendicular to the second direction.

Citation Information

Patent Citations

  • Electric connector and lighting device

    CN218770163U