Conductive connecting device
By designing a conductive connection device, the conductive pins are used to contact the conductive tape and mechanically connect them through the conductive structure, the problem of inconvenient connection of the existing conductive tape is solved and convenient conductive and mechanical fixation is achieved.
Patent Information
- Application Number
- CN202421755788.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-23
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2034-07-23
AI Technical Summary
The conductive connection of the existing conductive tape is not convenient enough, and additional joints are required for conduction, which is not convenient enough when used.
A conductive connection device is designed, including a mounting base, a pressure plate, a conductive pin and a conductive structure, and the conductive effect is realized through contact with the conductive strip, and the conductive structure is guided to the second connecting surface to realize the mechanical connection fixation and conductive function of the conductive strip.
It realizes convenient mechanical connection and conductive functions of conductive tape, improving the convenience of use.
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Figure CN222915203U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to conductive belt fittings, and particularly to a conductive connection device. Background Art
[0002] As Figure 8 shown, for the existing conductive belt, its main body is a woven cloth belt, and at least two conductive tracks are woven along the length direction on the woven cloth belt, corresponding to the positive and negative electrodes respectively. When in use, components such as hangers are often used to hang a part of the conductive belt. However, these hangers are only simple mechanical hanging, and the conduction of the conductive belt still requires other connectors for conduction, which is not convenient to use. Content of the Utility Model
[0003] The utility model aims to solve at least one of the above technical problems in the related art to a certain extent. For this purpose, the utility model provides a conductive connection device.
[0004] To achieve the above object, the technical solution of the utility model is as follows:
[0005] The conductive connection device according to the first aspect embodiment of the utility model includes:
[0006] A mounting base, the mounting base has a first connection surface and a second connection surface along the thickness direction, and an installation cavity is defined inside the mounting base between the first connection surface and the second connection surface;
[0007] A pressing plate, the pressing plate is hinged on the mounting base, and the pressing plate can be flipped relative to the first connection surface and can be fixed on the mounting base;
[0008] A first conductive pin and a second conductive pin, the first conductive pin and the second conductive pin are installed on the first connection surface, and the first conductive pin and the second conductive pin are distributed on both sides of the first connection surface;
[0009] A first conductive structure and a second conductive structure, the first conductive structure and the second conductive structure are arranged on the mounting base, the first conductive structure is connected to the first conductive pin, the second conductive structure is connected to the second conductive pin, and at least one end of the first conductive structure and at least one end of the second conductive structure extend to the second connection surface.
[0010] The conductive connection device according to the embodiment of the utility model has at least the following beneficial effects: the first conductive pin and the second conductive pin are in contact with the conductive belt to achieve the conductive function; the first conductive structure and the second conductive structure are used to guide to the second connection surface, so as to realize the mechanical connection and fixation of the conductive belt and the conductive function.
[0011] According to some embodiments of the present utility model, the spatial plane where the first connection surface is located has a first direction and a second direction that are perpendicular to each other. The first conductive pins and the second conductive pins are distributed along the first direction. A plurality of the first conductive pins are distributed along the second direction on the same side of the first connection surface, and adjacent first conductive pins are not on the same straight line along the second direction; a plurality of the second conductive pins are distributed along the second direction on the same side of the first connection surface, and adjacent second conductive pins are not on the same straight line along the second direction.
[0012] According to some embodiments of the present utility model, the mounting seat includes a base and a substrate. The substrate is fixed on the base. One surface of the substrate is the first connection surface, and one surface of the base is the second connection surface. The mounting cavity is defined between the substrate and the base, and the first conductive structure and the second conductive structure are arranged on the substrate.
[0013] According to some embodiments of the present utility model, a sunken cavity is provided on the base. A positioning post and a first chuck are provided on the sunken cavity. A plurality of the first chucks are distributed around the sunken cavity. A positioning hole is formed on the substrate. The substrate is placed in the sunken cavity. The positioning post passes through the positioning hole, and the first chuck abuts against the periphery of the first connection surface and presses the substrate downward in the direction of the second connection surface.
[0014] According to some embodiments of the present utility model, the inside of the positioning post is hollow and communicates with the first connection surface and the second connection surface.
[0015] According to some embodiments of the present utility model, a plurality of first through holes are formed on the second connection surface. The first conductive structure includes a plurality of first conductive ends and a first conductive strip. The second conductive structure includes a plurality of second conductive ends and a second conductive strip. Each of the first conductive ends and each of the second conductive ends are inserted into the first through holes in a one-to-one correspondence. The first conductive pins are electrically connected to the first conductive ends through the first conductive strip, and the second conductive pins are electrically connected to the second conductive ends through the second conductive strip.
[0016] According to some embodiments of the present utility model, the first through holes are distributed at the four corners of the second connection surface.
[0017] According to some embodiments of the present utility model, a second through hole is formed on the second connection surface. The first conductive structure further includes a third conductive end electrically connected to the first conductive pin, and the second conductive structure further includes a fourth conductive end electrically connected to the second conductive pin. The third conductive end and the fourth conductive end are aligned with the second through hole.
[0018] According to some embodiments of the present utility model, a second chuck is provided on the mounting base, and the pressing plate can be clamped with the second chuck.
[0019] The additional aspects and advantages of the present utility model will be partially given in the following description, partially become obvious from the following description, or be understood through the practice of the present utility model. Brief Description of the Drawings
[0020] The above and / or additional aspects and advantages of the present utility model will become obvious and easy to understand from the description of the embodiments in conjunction with the following drawings, wherein:
[0021] Figure 1 is a schematic structural diagram of the conductive connection device;
[0022] Figure 2 is Figure 1 a schematic diagram of the bottom direction of
[0023] Figure 3 is Figure 1 a schematic internal structure diagram of
[0024] Figure 4 is Figure 1 a schematic exploded view of the structure of
[0025] Figure 5 is a schematic structural diagram of the base;
[0026] Figure 6 is a schematic structural diagram of the substrate;
[0027] Figure 7 is Figure 6 another perspective schematic diagram of
[0028] Figure 8 is a schematic structural diagram of the conductive strip;
[0029] Figure 9 is Figure 1 another implementation manner of
[0030] Figure 10 is another schematic diagram of an embodiment of the conductive strip.
[0031] Reference numerals: mounting base 100; first connecting surface 101; second connecting surface 102; mounting cavity 110; base 120; sunk cavity 121; positioning post 122; first chuck 123; substrate 130; positioning hole 131; first through hole 140; second through hole 150; second chuck 160; first conductive pin 200; second conductive pin 300; pressing plate 400; first conductive structure 500; first conductive end 510; third conductive end 520; first conductive strip 530; second conductive structure 600; second conductive end 610; fourth conductive end 620; second conductive strip 630; conductive tape 700; conductive rail 710. Detailed implementation manners
[0032] The embodiments of the present invention will be described in detail below. The examples of the embodiments are shown in the drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the drawings are exemplary and are intended to explain the present invention and should not be construed as limiting the present invention.
[0033] The present invention relates to a conductive connection device, including a mounting base 100, a pressing plate 400, a first conductive pin 200, a second conductive pin 300, a first conductive structure 500 and a second conductive structure 600.
[0034] As Figure 1 , Figure 2 , Figure 3 and Figure 7 shown, the overall mounting base 100 can be set as a relatively flat cuboid shape. In the illustrated direction, the up and down directions in the figure are the thickness directions of the mounting base 100. The upper and lower side surfaces of the mounting base 100 in the thickness direction are respectively the first connecting surface 101 and the second connecting surface 102. An installation cavity 110 is defined inside the mounting base 100. Spatially, the installation cavity 110 is located between the first connecting surface 101 and the second connecting surface 102. The pressing plate 400 is hinged to the mounting base 100, and one side of the pressing plate 400 can be hinged to one side of the mounting base 100 through a rotating shaft. The pressing plate 400 can be flipped relative to the first connecting surface 101. When the pressing plate 400 is flipped to be close to the first connecting surface 101, the other side of the pressing plate 400 can be fixed to the mounting base 100. The fixed connection manner between the pressing plate 400 and the mounting base 100 can be through snap-fastening, screw locking, etc. In this embodiment, a second chuck 160 is provided on one side of the mounting base 100, and the second chuck 160 can be in the shape of an inverted hook. A card hole or card slot paired with the second chuck 160 is provided on the pressing plate 400, and the pressing plate 400 is fixed relative to the mounting base 100 by a clamping manner in cooperation with the second chuck 160. As Figure 1 and Figure 9As shown, the first conductive pin 200 and the second conductive pin 300 are installed on the mounting base 100. The ends of the first conductive pin 200 and the second conductive pin 300 can be set as pointed tips or arc-shaped ends, etc., and protrude upward through the first connection surface 101. In the illustrated direction, the first conductive pin 200 and the second conductive pin 300 are distributed on the left and right sides of the first connection surface 101. The first conductive pin 200 and the second conductive pin 300 extend into the installation cavity 110. The first conductive structure 500 and the second conductive structure 600 are on the mounting base 100. The first conductive structure 500 and the second conductive structure 600 can be conductive sheet structures. The first conductive structure 500 and the first conductive pin 200 can be electrically connected by means of wires or copper foils, etc. The second conductive structure 600 and the second conductive pin 300 can be electrically connected by means of wires or copper foils. At least one end of the first conductive structure 500 and at least one end of the second conductive structure 600 extend to the second connection surface 102. It can be that the first conductive structure 500 extends at least one end, and the end of the first conductive structure 500 extends to the second connection surface 102, or multiple first through holes 140 are opened on the second connection surface 102, and at least the first end of the first conductive structure 500 extends to the position where the first through hole 140 is located. The second conductive structure 600 extends at least one end, the end of the second conductive structure 600 extends to the second connection surface 102, or at least the first end of the second conductive structure 600 extends to the position where the first through hole 140 is located. Equivalently, the external component can come into contact with the first conductive structure 500 and the second conductive structure 600 through the second connection surface 102.
[0035] In actual use, in the initial state, the pressing plate 400 is flipped to a position away from the first connection surface 101. A part of the conductive tape 700 is placed on the first connection surface 101. At this time, the first conductive pin 200 is aligned with one of the conductive tracks 710 on the conductive tape 700, and the second conductive pin 300 is aligned with another conductive track 710 on the conductive tape 700. Then the pressing plate 400 is flipped towards the first connection surface 101. The pressing plate 400 presses the conductive tape 700 towards the first connection surface 101, and the conductive tape 700 is clamped between the first connection surface 101 and the pressing plate 400. The first conductive pin 200 and the second conductive pin 300 penetrate into the corresponding conductive tracks 710 of the conductive tape 700. Then the mounting base 100 is assembled to an external power connection device such as a power supply and a track by means of snap connection, screw locking, magnetic attraction, etc. The live wire and the neutral wire (positive and negative electrodes) on the power connection device pass through the second connection surface 102 and are respectively connected to the first conductive structure 500 and the second conductive structure 600. The power connection device conducts electricity with the conductive tape 700 through the first conductive structure 500, the second conductive structure 600, the first conductive pin 200, and the second conductive pin 300. When the ends of the first conductive pin 200 and the second conductive pin 300 are set to be pointed tips, the ends of the first conductive pin 200 and the second conductive pin 300 can penetrate into the conductive tape 700 to achieve mechanical connection, cooperate with the pressing plate 400 to prevent the conductive tape 700 from slipping out, and also play a role in conducting electricity. As Figure 9 shown, when the ends of the first conductive pin 200 and the second conductive pin 300 are set to be arc-shaped, after the pressing plate 400 is closed, a part of the conductive tape 700 is between the first connection surface 101 and the pressing plate 400, and the conductive tape 700 can slide relative to the mounting cavity, that is, the conductive connection structure can slide on the conductive tape 700, and the ends of the first conductive pin 200 and the second conductive pin 300 remain in contact with the conductive tracks 710 on the conductive tape 700 during the sliding. Among them, as Figure 10 shown, the conductive tape 700 can be set to a shape in which the thickness of the long sides on the left and right is larger than the thickness of the middle part, that is, the two sides of the conductive tape 700 are high in the middle and low, and the conductive tracks 710 are located between the long sides on both sides. It is guided to the second connection surface 102 by the first conductive structure 500 and the second conductive structure 600. The conductive connection device realizes the mechanical connection and fixation of the conductive tape 700 and the conductive function.
[0036] In some embodiments of the present invention, as Figure 1As shown, the spatial plane where the first connecting surface 101 is located has a first direction and a second direction that are perpendicular to each other. In the direction shown in the figure, the left-right direction of the first connecting surface 101 is the first direction, and the front-back direction is the second direction. The first conductive needle 200 and the second conductive needle 300 are distributed on the left and right sides of the first connecting surface 101 along the first direction. A plurality of first conductive needles 200 are installed on the left side of the first connecting surface 101. Each first conductive needle 200 is distributed in sequence front to back on the first connecting surface 101 along the second direction, and adjacent first conductive needles 200 are not on the same straight line along the second direction, that is, adjacent first conductive needles 200 are staggered left to right. A plurality of second conductive needles 300 are installed on the right side of the first connecting surface 101. As shown Figure 1 As shown, each second conductive needle 300 is distributed in sequence front to back on the first connection surface 101 along the second direction, and adjacent second conductive needles 300 are not on the same straight line along the second direction, that is, adjacent second conductive needles 300 are offset left to right. The two conductive tracks 710 on the conductive tape 700 are distributed left to right. When the conductive tape 700 is placed on the first connection surface 101, since multiple first conductive needles 200 are offset left to right, and multiple second conductive needles 300 are offset left to right, there must be at least one first conductive needle 200 and at least one second conductive needle 300 that are aligned and in contact with the corresponding conductive tracks 710 to ensure electrical conduction. It can also be set as follows Figure 9 As shown, each first conductive needle 200 is located on the same straight line, and each second conductive needle 300 is located on the same straight line to adapt to different conductive tapes 700 .
[0037] In some embodiments of the present invention, Figure 3 and Figure 4 As shown, the mounting seat 100 includes a base 120 and a substrate 130. The substrate 130 and the base 120 are arranged up and down, and the substrate 130 is fixed on the base 120. The upper surface of the substrate 130 is the first connection surface 101, and the lower surface of the base 120 is the second connection surface 102. There is a certain interval between the substrate 130 and the base 120, and the interval defines a mounting cavity 110. The first conductive structure 500 and the second conductive structure 600 can be arranged on the surface of the substrate 130 facing the mounting cavity 110, or can be embedded in the substrate 130. The first conductive needle 200 and the second conductive needle 300 can be installed on the substrate 130 by plugging. Among them, the substrate 130 can be used as a circuit board structure, and the first conductive structure 500 and the second conductive structure 600 are directly formed in the substrate 130.
[0038] Further, such as Figure 5 and Figure 6As shown, a sunken cavity 121 is provided on the base 120. The sunken cavity 121 sinks downward from the upper side of the base 120. A positioning post 122 can be arranged in the middle of the sunken cavity 121. The positioning post 122 extends upward along the thickness direction of the base 120. A plurality of first clamping heads 123 are arranged around the sunken cavity 121. The first clamping heads 123 can be in the shape of barbs. A positioning hole 131 is formed on the substrate 130, and the positioning hole 131 is adapted to the positioning post 122. During installation, the substrate 130 is placed into the sunken cavity 121. The positioning hole 131 and the positioning post 122 are aligned, and the positioning post 122 is inserted into the positioning hole 131 to position the substrate 130. Then the substrate 130 is further pressed downward. After the periphery of the substrate 130 passes downward over the first clamping heads 123, each first clamping head 123 abuts against the periphery of the first connection surface 101. The substrate 130 is pressed downward toward the second connection surface 102 through the first clamping heads 123 to prevent the substrate 130 from disengaging upward from the base 120, thereby quickly fixing and installing the substrate 130 on the base 120. There is no need to use other locking parts such as screws between the substrate 130 and the base 120, and the installation is very fast and convenient. The positioning post 122 can be set in the shape of a stepped shaft to limit the downward pressing position of the substrate 130. Among them, the inside of the positioning post 122 can be hollow, and the first connection surface 101 and the second connection surface 102 can be communicated through the positioning post 122. The conductive connection device can use screws to pass through the positioning post 122 to fix the mounting seat 100 on an external power connection device for use.
[0039] In some specific embodiments of the present invention, such as Figure 2 , Figure 4 , Figure 5 and Figure 7 shown, a plurality of first through holes 140 are formed on the second connection surface 102. The first conductive structure 500 includes a plurality of first conductive ends 510 and a first conductive bar 530, and the second conductive structure 600 includes a plurality of second conductive ends 610 and a second conductive bar 630. Each first conductive end 510 is electrically connected to the first conductive needle 200 through the first conductive bar 530, and each second conductive end 610 is electrically connected to the second conductive needle 300 through the second conductive bar 630. The first conductive bar 530 and the second conductive bar 630 can be formed on the substrate 130 by means of copper foil connection. The first conductive bar 530 is welded to the first conductive end 510 and the first conductive needle 200, and the second conductive bar 630 is welded to the second conductive end 610 and the second conductive needle 300. Each first conductive end 510 and each second conductive end 610 are inserted into the first through holes 140 in a one-to-one pairing manner. In this embodiment, the first through holes 140 are arranged at the four corners of the second connection surface 102. Two of the first through holes 140 are used for inserting two first conductive ends 510 led out by the first conductive structure 500, and the other two first through holes 140 are used for inserting two second conductive ends 610 led out by the second conductive structure 600.
[0040] Alternatively, a second through hole 150 may be formed in the second connection surface 102. The second through hole 150 may be formed at the center of the second connection surface 102. The first conductive structure 500 further includes a third conductive end 520. The second conductive structure 600 further includes a fourth conductive end 620. The third conductive end 520 may be electrically connected to the first conductive pin 200 through a first conductive strip 530, and the fourth conductive end 620 may be electrically connected to the second conductive pin 300 through a second conductive strip 630. The third conductive end 520 and the fourth conductive end 620 extend to a position opposite to the second through hole 150. An external power connection device may be connected to the third conductive end 520 and the fourth conductive end 620 by a wire passing through the second through hole 150.
[0041] In the description of this specification, the description with reference to terms such as "specific embodiments" means that the specific features, structures, materials, or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the schematic representation of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described may be combined in any one or more embodiments or examples in a suitable manner.
[0042] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the claims and their equivalents.
Claims
1. A conductive connection device, characterized in that: include: A mounting seat (100), the mounting seat (100) having a first connecting surface (101) and a second connecting surface (102) along a thickness direction, and a mounting cavity (110) is defined inside the mounting seat (100) between the first connecting surface (101) and the second connecting surface (102); A pressing plate (400), the pressing plate (400) being hinged on the mounting seat (100), the pressing plate (400) being capable of turning over relative to the first connecting surface (101) and being capable of being fixed on the mounting seat (100); A first conductive needle (200) and a second conductive needle (300), wherein the first conductive needle (200) and the second conductive needle (300) are mounted on the first connecting surface (101), and the first conductive needle (200) and the second conductive needle (300) are distributed on both sides of the first connecting surface (101); A first conductive structure (500) and a second conductive structure (600), wherein the first conductive structure (500) and the second conductive structure (600) are arranged on the mounting seat, the first conductive structure (500) is connected to the first conductive needle (200), the second conductive structure (600) is connected to the second conductive needle (300), and at least one end of the first conductive structure (500) and at least one end of the second conductive structure (600) extend to the second connection surface (102).
2. The conductive connection device according to claim 1, characterized in that: The spatial plane where the first connecting surface (101) is located has a first direction and a second direction perpendicular to each other; the first conductive needle (200) and the second conductive needle (300) are distributed along the first direction; a plurality of the first conductive needles (200) are located on the same side of the first connecting surface (101) and are distributed along the second direction, and adjacent first conductive needles (200) are on the same straight line or not on the same straight line along the second direction; a plurality of the second conductive needles (300) are located on the same side of the first connecting surface (101) and are distributed along the second direction, and adjacent second conductive needles (300) are on the same straight line or not on the same straight line along the second direction; and the ends of the first conductive needles (200) and the second conductive needles (300) protruding from the first connecting surface (101) are pointed ends or arcuate ends.
3. The conductive connection device according to claim 1, characterized in that: The mounting seat (100) comprises a base (120) and a substrate (130), wherein the substrate (130) is fixed on the base (120), one surface of the substrate (130) is the first connecting surface (101), and one surface of the base (120) is the second connecting surface (102), the mounting cavity (110) is defined between the substrate (130) and the base (120), and the first conductive structure (500) and the second conductive structure (600) are arranged on the substrate (130).
4. The conductive connection device according to claim 3, characterized in that: The base (120) is provided with a sink cavity (121), and the sink cavity (121) is provided with a positioning column (122) and a first clamp (123), and a plurality of the first clamps (123) are distributed around the sink cavity (121). A positioning hole (131) is opened on the base plate (130), and the base plate (130) is placed in the sink cavity (121). The positioning column (122) is passed through the positioning hole (131), and the first clamp (123) abuts against the periphery of the first connecting surface (101) and presses the base plate (130) downward toward the second connecting surface (102).
5. The conductive connection device according to claim 4, characterized in that: The interior of the positioning column (122) is hollow and communicates with the first connecting surface (101) and the second connecting surface (102).
6. The conductive connection device according to claim 1 or 3, characterized in that: A plurality of first through holes (140) are provided on the second connection surface (102); the first conductive structure (500) includes a plurality of first conductive ends (510) and a first conductive strip (530); the second conductive structure (600) includes a plurality of second conductive ends (610) and a second conductive strip (630); each of the first conductive ends (510) and each of the second conductive ends (610) are matched and plugged into the first through holes (140) one by one; the first conductive needle (200) is electrically connected to the first conductive end (510) through the first conductive strip (530); and the second conductive needle (300) is electrically connected to the second conductive end (610) through the second conductive strip (630).
7. The conductive connection device according to claim 6, characterized in that: The first through holes (140) are distributed at the four corners of the second connecting surface (102).
8. The conductive connection device according to claim 6, characterized in that: A second through hole (150) is provided on the second connecting surface (102); the first conductive structure (500) further includes a third conductive end (520) electrically connected to the first conductive needle (200); the second conductive structure (600) further includes a fourth conductive end (620) electrically connected to the second conductive needle (300); the third conductive end (520) and the fourth conductive end (620) are aligned with the second through hole (150).
9. The conductive connection device according to claim 1, characterized in that: The mounting seat (100) is provided with a second clamping head (160), and the pressing plate (400) can be clamped with the second clamping head (160).