Vehicle and glass assembly
By designing a removable connected glass assembly, the problem of easy damage to the output wire and terminal joints in functional glass vehicles is solved, and the function of replacing the wire group separately is realized, reducing maintenance costs and improving production efficiency.
Patent Information
- Application Number
- PCT/CN2024/140509
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-03-29
- Filing Date
- 2024-12-19
- Publication Date
- 2025-06-26
AI Technical Summary
In existing functional glass vehicles, the joint parts between the output wire and the terminal are prone to problems such as inability to be connected or circuit damage, resulting in the wire group being replaced with the functional glass, increasing maintenance costs.
A glass assembly is designed in which the functionalized glass is provided with an output line, and the wire group includes a conductive wire and a butt part. The output line and the butt part are removably connected to ensure that it is electrically conductive during connection and disconnected when disconnected. It supports the replacement of the wire group separately without the need to replace the functionalized glass.
Through this design, maintenance costs are reduced, cost waste caused by line set replacement is avoided, and production efficiency and product competitiveness are improved.
Smart Images

Figure CN2024140509_26062025_PF_FP_ABST
Abstract
Description
Vehicle and glass components
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS
[0002] This disclosure claims priority to a Chinese patent application with application number 202311759153X, filed with the Chinese Patent Office on December 20, 2023, and titled “Vehicle and Glass Components,” and claims priority to a Chinese patent application with application number 2024103784813, filed with the Chinese Patent Office on March 29, 2024, and titled “Vehicle and Glass Components,” the entire contents of which are incorporated by reference into this disclosure. Technical Field
[0003] The present application relates to the field of vehicle technology, and in particular to a vehicle and glass assembly. Background Art
[0004] For many years, vehicles have used traditional flat glass. Only in recent years have coated and filmed glass been used to adapt to various needs. Even with these technologies, their inherent functionality remains unchanged despite changes in weather or the environment. With the rapid development of optoelectronic technology, great expectations have been placed on research into the functionalization of glass—the ability to customize glass with functions such as dimming, photovoltaic power generation, and regional displays, collectively referred to as functionalized glass. These functionalized glasses typically have a typical laminated glass structure, consisting of an outer sheet of glass, an inner sheet of glass, and an intermediate layer. The intermediate layer of functionalized glass achieves its corresponding function through electrical conductivity. Therefore, vehicles equipped with functionalized glass require wiring corresponding to the functional layer on the vehicle body to supply current, voltage, and transmit signals.
[0005] In the prior art, functional glass is typically installed on vehicles, such as front and rear windshields, sunroofs, side windows, and corner windows. The functional glass is equipped with output cables, such as flexible flat cables, which are connected to terminals at the junction of the vehicle's wiring harness. These cables are rigidly bonded to the terminals and then plugged into the vehicle's power supply to form a complete circuit for functional outputs such as dimming.
[0006] However, whether in the production process or in the use of functional glass, when the joint between the output wire and the terminal cannot be connected or the circuit is damaged, the wire group and the functional glass need to be replaced together, which is costly and wasteful. Summary of the Invention
[0007] According to various embodiments of the present application, the present application provides a vehicle and glass assembly that can reduce maintenance costs.
[0008] A glass assembly, comprising:
[0009] Functionalized glass, wherein the functionalized glass is provided with an output line; and
[0010] A wire group includes a conductive wire and a docking portion connected to one end of the conductive wire, the docking portion is detachably connected to the output wire, when the output wire is connected to the docking portion, the output wire and the conductive wire are electrically conductive; when the output wire is separated from the docking portion, the output wire and the conductive wire are disconnected.
[0011] In one embodiment, the docking portion includes a circuit board and a docking connector provided on the circuit board; the docking connector is electrically connected to the conductive wire, and the docking connector is detachably connected to the output wire.
[0012] In one embodiment, the docking connector includes a crimping connector for pressing the output line onto the circuit board; or, the docking connector is provided with a plug interface or a card interface, and the output line is plugged into the plug interface or carded into the card interface.
[0013] In one embodiment, the docking portion includes a carrier and a pressing member detachably mounted on the carrier, one end of the conductive wire is connected to the carrier, and one end of the output wire is pressed and fixed to the carrier by the pressing member. When one end of the output wire is pressed and fixed by the pressing member, the output wire is electrically connected to the conductive wire; when the output wire is separated from the docking portion, the output wire is disconnected from the conductive wire.
[0014] In one embodiment, the pressing member is fixed to the carrier by snapping, fastening with fasteners, bonding or welding.
[0015] In one embodiment, two first connection parts are provided on the carrier and are spaced apart from each other. The opposite sides of the pressing member are respectively fixed to the two first connection parts by snapping, fastening with fasteners, bonding or welding, and the output line is located in the area between the two first connection parts.
[0016] In one embodiment, the pressing member is provided with at least one protruding portion, the output line includes at least one first conductive unit, and the protruding portion is correspondingly pressed on the first conductive unit.
[0017] In one embodiment, the output line is configured as a flexible flat cable, and the first conductive unit is a flat metal wire provided on the flexible flat cable; the first conductive unit is configured in plurality, and the protrusion is configured in plurality, and each protrusion is correspondingly pressed on each first conductive unit.
[0018] In one embodiment, the carrier is provided with a first conductive connection structure electrically connected to one end of the conductive line, the first conductive connection structure includes at least one first electrical connection part, the output line includes at least one first conductive unit, and each first electrical connection part is electrically conductive with each first conductive unit.
[0019] In one embodiment, the pressing member is provided with a second conductive connection structure, and the second conductive connection structure includes at least one second electrical connection part. When the pressing member is pressed against the output line, each second electrical connection part is in close conductive contact with each corresponding first conductive unit, and each second electrical connection part is also in close conductive contact with each corresponding first electrical connection part; or, when the pressing member is pressed against the output line, each first conductive unit is in close conductive contact with each corresponding first electrical connection part.
[0020] In one embodiment, a boss is provided on the carrier, the first electrical connection portion includes a first electrical connection segment provided on the top surface of the boss, the output line is configured as a flexible flat cable, the thickness of the flexible flat cable is set to d, and the distance from the top surface of the boss to the surface of the carrier is set to S, and d is 0.8S to 1.2S.
[0021] In one embodiment, the first electrical connection portion further includes a second electrical connection segment disposed on a side surface of the boss, the second electrical connection segment being electrically connected to the first electrical connection segment, and the second electrical connection segment being further electrically connected to the conductive wire.
[0022] In one embodiment, the carrier is set as a circuit board, and a third conductive connection structure is provided on the carrier, which is located between the conductive wire and the first conductive connection structure, and the conductive wire is conductively connected to the first conductive connection structure through the third conductive connection structure; the third conductive connection structure includes at least one adapter wire, each of the adapter wires is electrically connected to each of the first electrical connection parts, and each of the adapter wires is electrically connected to each of the second conductive units of the conductive wire.
[0023] In one embodiment, the glass assembly further includes a protective box, the docking portion is installed in the protective box, and the output line and the conductive line respectively penetrate the protective box and extend into the interior of the protective box.
[0024] In one embodiment, a third clamping portion is provided on the output line, and a fourth clamping portion that is engaged with the third clamping portion is provided on the carrier or the protective box, and the third clamping portion and the fourth clamping portion are engaged with each other.
[0025] In one embodiment, the third clamping portion includes a third clip provided on the output line, the fourth clamping portion includes a third clipping slot provided on the carrier or the protective box, and the third clip is engaged with the third clipping slot; and / or, the fourth clamping portion includes a fourth clipping slot provided on the output line, the third clamping portion includes a fourth clip provided on the carrier or the protective box, and the fourth clip is engaged with the fourth clipping slot.
[0026] In one embodiment, the output cable is configured as a flexible flat cable, and third clamping portions are respectively provided on opposite sides of the output cable, and two fourth clamping portions are provided and are corresponding to the third clamping portions.
[0027] In one embodiment, the output line is provided with a first positioning portion, and the carrier is provided with a second positioning portion; the first positioning portion and the second positioning portion are positioned and matched with each other.
[0028] In one embodiment, the first positioning portion includes a first positioning hole provided on the output line, the second positioning portion includes a first positioning piece provided on the carrier, and the first positioning piece is passed through the first positioning hole; and / or, the first positioning portion includes a second positioning piece provided on the output line, the second positioning portion includes a second positioning hole provided on the carrier, and the second positioning piece is passed through the second positioning hole.
[0029] A vehicle comprises the glass assembly and a vehicle body, wherein the glass assembly is mounted on the vehicle body.
[0030] The details of one or more embodiments of the present application are set forth in the accompanying drawings and the description below. Other features, objects, and advantages of the present application will become apparent from the description, drawings, and claims. BRIEF DESCRIPTION OF THE DRAWINGS
[0031] FIG1 is a structural diagram of a glass assembly according to an embodiment of the present application.
[0032] FIG2 is an enlarged structural diagram of the structure shown in FIG1 at point A. FIG.
[0033] FIG3 is a structural diagram of the structure shown in FIG2 with the pressing member removed.
[0034] FIG4 is a structural diagram of a glass assembly according to another embodiment of the present application.
[0035] FIG5 is an enlarged structural diagram of the structure shown in FIG4 at position B. FIG.
[0036] FIG6 is a structural diagram of the structure shown in FIG5 with the pressing member removed.
[0037] FIG7 is a structural diagram of a glass assembly according to another embodiment of the present application.
[0038] FIG8 is a structural diagram of a glass assembly according to another embodiment of the present application.
[0039] FIG9 is a structural diagram of a glass assembly according to yet another embodiment of the present application.
[0040] FIG10 is a structural diagram of functionalized glass according to an embodiment of the present application.
[0041] FIG11 is a structural diagram of a glass assembly according to another embodiment of the present application.
[0042] FIG. 12 is a structural diagram of the protective box in the structure shown in FIG. 11 after being decomposed.
[0043] FIG13 is a structural diagram showing the connection between output lines and line groups in a glass assembly according to another embodiment of the present application.
[0044] FIG14 is a structural diagram showing the connection between output lines and line groups in a glass assembly according to another embodiment of the present application.
[0045] FIG15 is a structural diagram of a glass assembly according to yet another embodiment of the present application.
[0046] FIG16 is an enlarged structural diagram of the structure shown in FIG15 at position C. ...
[0047] 10. Functionalized glass; 11. Outer glass plate; 12. Inner glass plate; 13. Functional layer; 131. Output line; 1311. First conductive unit; 1312. Insulating substrate; 1313. Third clamping portion; 1314. First positioning portion; 1315. Third positioning portion; 14. First adhesive layer; 15. Second adhesive layer; 20. Wire assembly; 21. Conductive line; 211. Second conductive unit; 22. Docking portion; 221. Carrier; 2211. First connecting portion; 22111. Second clamping portion; 22112. Axis hole; 2212. Boss; 2213 , fourth clamping portion; 2214, second positioning portion; 222, pressing piece; 2221, first clamping portion; 2222, protruding portion; 223, fastener; 224, bonding structure; 225, first conductive connection structure; 2251, first electrical connection portion; 22511, first electrical connection section; 22512, second electrical connection section; 226, second conductive connection structure; 2261, second electrical connection portion; 227, third conductive connection structure; 2271, adapter wire; 228, docking connector; 30, protective box; 31, bottom plate; 32, cover body; 33, fourth positioning portion. DETAILED DESCRIPTION
[0048] To make the above-mentioned objects, features, and advantages of the present application more clearly understood, the specific embodiments of the present application are described in detail below with reference to the accompanying drawings. The following description sets forth many specific details to facilitate a full understanding of the present application. However, the present application can be implemented in many other ways than those described herein, and those skilled in the art can make similar improvements without violating the scope of the present application. Therefore, the present application is not limited to the specific embodiments disclosed below.
[0049] As described in the background technology, when the joint between the output wire and the terminal of the functional glass in the related art cannot be connected or the circuit is damaged, the wire group needs to be replaced together with the functional glass, which has a high replacement cost and causes cost waste. The inventors have found that the reason for this problem is that the connection method between the output wire and the terminal in the related art is rigidly joined and fixed together, which makes it impossible to disassemble and replace the wire group separately, so that the wire group and the functional glass need to be replaced together, which leads to high replacement cost and cost waste.
[0050] Based on the above reasons, the present application provides a vehicle and glass assembly that can reduce maintenance costs.
[0051] Referring to Figures 1, 2, and 10, Figure 1 illustrates a structural diagram of a glass assembly in one embodiment of the present application. Figure 2 illustrates an enlarged structural diagram of Figure 1 at point A. Figure 10 illustrates a structural diagram of functionalized glass 10 in one embodiment of the present application. One embodiment of the present application provides a glass assembly comprising functionalized glass 10 and a wiring assembly 20. Functionalized glass 10 includes, but is not limited to, front and rear windshields, sunroofs, side windows, corner windows, and the like, and can be used to achieve various functions, including but not limited to dimming, photovoltaic power generation, and area display. Functionalized glass 10 is provided with output cables 131, which may include, but are not limited to, flexible flat cables or wiring harnesses. Flexible flat cables may be configured as, for example, flexible printed circuits, thin film conductors, flat cables, and the like, and facilitate electrical connection to other components. A wiring harness refers to a combination of multiple wires or cables bundled together. Furthermore, wiring assembly 20 includes conductive wires 21 and a docking portion 22 connected to one end of conductive wires 21. Conductive wires 21 may include, but are not limited to, wiring harnesses or flexible flat cables.
[0052] The docking portion 22 is detachably connected to the output cable 131. When the output cable 131 is connected to the docking portion 22, it is electrically connected to the conductive cable 21, thereby enabling electrical connection to an external power source, electronic control device, etc.; when the output cable 131 is separated from the docking portion 22, the output cable 131 is disconnected from the conductive cable 21. Disconnection in this embodiment means that the two conductive members are disconnected from each other and no longer conduct electricity to each other.
[0053] During operation, since the output cable 131 is connected to the docking portion 22, the output cable 131 and the conductive cable 21 are electrically connected, thereby receiving external power and signals, etc., to meet various functional requirements. In addition, since the docking portion 22 and the output cable 131 are detachably connected, if the conductive cable 21 and the output cable 131 have a connection problem and require maintenance, the docking portion 22 and the output cable 131 can be separated to disconnect the output cable 131 and the conductive cable 21. The cable assembly 20 can then be disassembled and replaced separately, without having to replace the functionalized glass 10 and the cable assembly 20 together, significantly reducing maintenance costs.
[0054] Specifically, the docking portion 22 includes a carrier 221 and a pressing member 222 detachably mounted on the carrier 221. One end of the conductive wire 21 is connected to the carrier 221, and one end of the output wire 131 is pressed and fixed to the carrier 221 by the pressing member 222. When one end of the output wire 131 is pressed and fixed by the pressing member 222, the output wire 131 is electrically connected to the conductive wire 21, thereby achieving electrical connection with an external power supply, electronic control equipment, etc.; when the output wire 131 is separated from the docking portion 22, the output wire 131 is disconnected from the conductive wire 21. Disconnection in this embodiment means that the two conductive members are disconnected from each other and no longer conduct electricity to each other.
[0055] Referring again to FIG. 10 , in some embodiments, functionalized glass 10 includes, but is not limited to, laminated glass, comprising an outer glass panel 11 facing the external environment, an inner glass panel 12 facing the internal environment, and a functional layer 13 disposed between the outer and inner glass panels 11, 12. Functional layer 13 can be flexibly adjusted and configured based on actual needs, for example, to achieve various functions including, but not limited to, dimming, photovoltaic power generation, and regional display.
[0056] Specifically, the laminated glass further includes a first adhesive layer 14 disposed between the outer glass sheet 11 and the functional layer 13, and a second adhesive layer 15 disposed between the inner glass sheet 12 and the functional layer 13. The bonding force of the first adhesive layer 14 and the second adhesive layer 15 allows the outer glass sheet 11, the functional layer 13, and the inner glass sheet 12 to be combined into a single unit.
[0057] Among them, the external environment refers to the environment outside the vehicle, and the internal environment refers to the environment inside the vehicle.
[0058] When the functional layer 13 is set as the dimming functional layer 13, the dimming functional layer 13 includes but is not limited to LC (dye liquid crystal film) film, PDLC (polymer dispersed liquid crystal) film, GHLC (guest-host liquid crystal), PNLC (Polymer Network Liquid Crystal) functional element, PSLC (polymer stabilized liquid crystal) film, PILC (pixel isolation liquid crystal) film, etc., or a combination of two or more.
[0059] In some embodiments, the first adhesive layer 14 and the second adhesive layer 15 are independently provided, including but not limited to being made of PVB material, EVA material, TPU material or SGP material.
[0060] In the aforementioned glass assembly, one end of the output line 131 is pressed and fixed to the carrier 221 by the pressing member 222, so that the output line 131 and the conductive line 21 are electrically connected to each other, thereby receiving external power and signals, etc., to meet various functional requirements. In addition, because the pressing member 222 and the carrier 221 are detachably connected, when the conductive line 21 and the output line 131 have a connection problem and require maintenance, the pressing member 222 and the carrier 221 can be disassembled, thereby separating the output line 131 from the docking portion 22, disconnecting the output line 131 from the conductive line 21, and then the line assembly 20 can be disassembled and replaced separately, without having to replace the functionalized glass 10 and the line assembly 20 together, thereby significantly reducing maintenance costs.
[0061] In addition, during the production process, the functionalized glass 10 and its output line 131 are processed and transported separately, without having to process and transport them together with the line group 20, which facilitates production operations, improves production efficiency and frequency, and avoids the problem of the line group 20 scratching the functionalized glass 10 and surrounding parts in the related art. At the same time, it is convenient for product transportation, does not require additional accessories or structures for fixing, and reduces transportation costs.
[0062] In addition, during the transportation, handling, and production of the functional glass 10, the loosening of the connection between the output wire 131 and the functional layer 13 and the connection between the output wire 131 and the docking portion 22 due to the pulling and swinging of the wire group 20 is avoided, thereby reducing the risk of disconnection between the output wire 131 and the functional layer 13 and the risk of disconnection between the output wire 131 and the docking portion 22.
[0063] In addition, during the lamination process of the functionalized glass 10 in the autoclave, since there is only the output line 131 and no line group 20, there is no need to consider the impact of the autoclave on the line group 20. The line group 20 does not need to use materials that are resistant to high temperatures and high pressures, which reduces the material cost of the line group 20 and improves the competitiveness of the product. Among them, the autoclave refers to the equipment that needs to be evacuated after the laminated glass is laid.
[0064] Referring to Figures 2 and 4 to 9, the difference between the structures shown in Figures 2 and 4 lies in the presence or absence of a circuit board, while the main difference between the structures shown in Figures 4 to 9 lies in the different ways in which the pressing member 222 is mounted on the carrier 221. In one embodiment, the pressing member 222 includes, but is not limited to, snap-fitting (as shown in Figures 2, 4, or 7), fastening with fasteners 223 (as shown in Figure 8), adhesive fixing, or welding fixing to the carrier 221 (as shown in Figure 9).
[0065] In some embodiments, when the pressing member 222 is clamped and fixed on the carrier 221, as shown in Figures 5 and 6, the pressing member 222 can be clamped and fixed on the carrier 221 by pressing in a direction perpendicular to the bearing surface of the carrier 221, that is, the pressing member 222 is pressed in a direction perpendicular to the bearing surface of the carrier 221, so that the pressing member 222 moves toward the carrier 221 and is clamped and fixed on the carrier 221, so that the pressing member 222 compresses the output line 131 accordingly. Conversely, the pressing member 222 is moved in a direction away from the carrier 221, so that the pressing member 222 is separated from the carrier 221, so that the pressing member 222 releases the output line 131 accordingly; it can also be clamped and fixed on the carrier 221 in a flipping manner, as shown in Figure 5. 3 or 7 , specifically, one end of the pressing member 222 is rotatably connected to the carrier 221, and the other end of the pressing member 222 is engaged with the carrier 221. By flipping the pressing member 222, the pressing member 222 is engaged with the carrier 221 to thereby compress the output line 131 or separated to thereby release the output line 131. Alternatively, the pressing member 222 may be slid in a direction parallel to the bearing surface of the carrier 221 and engaged and fixed on the carrier 221. That is, by pushing the pressing member 222 to the pressing position, the pressing member 222 can correspondingly compress the output line 131 and be engaged and fixed with the carrier 221. By pushing the pressing member 222 to the releasing position, the pressing member 222 can correspondingly release the output line 131. Alternatively, various other engaging modes may be configured according to actual needs.
[0066] In some embodiments, referring to FIG. 8 , the fasteners 223 in this embodiment include but are not limited to various parts such as bolts, screws, pins, and rivets.
[0067] In some embodiments, referring to FIG9 , when the pressing member 222 is bonded or welded to the carrier 221, to improve stability, opposite sides of the pressing member 222 are respectively connected and fixed to the carrier 221, for example, via bonding structures 224 or welding structures. Furthermore, to facilitate removal of the pressing member 222 from the carrier 221 for various operations such as maintenance and replacement of the wiring assembly, the bond between the pressing member 222 and the carrier 221 must be moderately strong. This ensures that when external forces act on the pressing member 222 or the carrier 221, the bonding material between the pressing member 222 and the carrier 221 breaks or loosens, thereby allowing the pressing member 222 to be removed from the carrier 221. As an example, the bonding strength between the clamping piece 222 and the carrier 221 can be adjusted by flexibly adjusting and controlling the bonding area size and thickness of the bonding material between the clamping piece 222 and the carrier 221, or selecting a bonding material that is easily cut or torn, so that the bonding strength is not too small to stably bond the clamping piece 222 and the carrier 221 together, and not too large to make it difficult to disassemble the two under the action of external force.
[0068] Similarly, the weld strength between the pressing member 222 and the carrier 221 cannot be too strong, so as to ensure that when an external force acts on the pressing member 222 or the carrier 221, the weld material between the pressing member 222 and the carrier 221 can be broken or loosened, thereby achieving the removal of the pressing member 222 from the carrier 221. As an example, the adhesive strength between the pressing member 222 and the carrier 221 can be adjusted by flexibly adjusting and controlling the size of the weld area between the pressing member 222 and the carrier 221, the thickness of the weld material, or selecting a weld material that is easily cut or torn, so that the adhesive strength is not too weak to stably weld the pressing member 222 and the carrier 221 together, nor too strong to make it difficult to remove the two under the action of external force.
[0069] Compared with the method of bonding or welding to the carrier 221, the clamping member 222 is fixed to the carrier 221 by snapping or fixing to the carrier 221 by fasteners 223. This can increase the clamping force on the output line 131, thereby making the electrical contact good and stable, and can also make it easier to separate the clamping member 222 from the carrier 221 and facilitate various operations such as disassembly and maintenance.
[0070] Referring to Figures 2, 4, and 9, in one embodiment, two first connection portions 2211 are provided on the carrier 221, spaced apart from each other. Opposite sides of the pressing member 222 are respectively secured to the two first connection portions 2211 by snapping, fastening with fasteners 223, bonding, or welding. The output line 131 is located in the area between the two first connection portions 2211. This allows the output line 131 to be securely compressed and secured between the pressing member 222 and the carrier 221, improving conductive contact stability.
[0071] In some embodiments, the pressing member 222 in this embodiment includes but is not limited to various regular and irregular shaped pressing structures such as a pressing plate, a pressing block, a pressing strip, and a pressing rod, and is flexibly adjusted and set according to actual needs. In addition, the carrier 221 includes but is not limited to a bearing plate. When the pressing member 222 is set as a pressing plate, the shape of the plate surface of the pressing plate is adapted to the shape of the bearing surface of the carrier 221, and specifically, for example, both are set to a flat surface or a curved surface. The gap between the pressing plate and the bearing surface of the carrier 221 is small, which can be more conducive to achieving the compression and fixation of the output line 131 on the carrier 221, thereby improving the stability of the conductive contact.
[0072] In some embodiments, the first connection portion 2211 in this embodiment includes but is not limited to various connection structures such as a connection plate, a connection block, and a connection rib.
[0073] Specifically, when the two opposite sides of the pressing member 222 are respectively engaged and fixed with the two first connecting portions 2211, the pressing member 222 can be engaged in the space between the two first connecting portions 2211 (as shown in FIG. 2 or FIG. 5 ), or can be located on the side of the two first connecting portions 2211 facing away from the carrier 221. Compared to arranging the pressing member 222 on the side of the first connecting portions 2211 facing away from the carrier 221, when the pressing member 222 is engaged in the space between the two first connecting portions 2211, the distance between the pressing member 222 and the output cable 131 is relatively closer, which can facilitate the compression and fixing of the output cable 131 to the carrier 221.
[0074] Referring to Figures 2, 3, 5, and 6, the pressing member 222 is provided with first engaging portions 2221 on opposite sides thereof, and the two first connecting portions 2211 are respectively provided with second engaging portions 22111 that engage with the two first engaging portions 2221, and the first engaging portions 2221 and the second engaging portions 22111 are engaged with each other. The first engaging portion 2221 includes a first buckle provided on the pressing member 222, the second buckle 22111 includes a first slot provided on the first connecting portion 2211, and the first buckle engages with the first slot; and / or the first buckle 2221 includes a second slot provided on the first connecting portion 2211, the second buckle 22111 includes a second buckle provided on the pressing member 222, and the second buckle engages with the second slot. Furthermore, when the pressing member 222 is rotatably connected to the first connecting portion 2211, the first connecting portion 2211 is further provided with an axial hole 22112, and the pressing member 222 is provided with a rotating shaft rotatably disposed in the axial hole 22112. In this way, the pressing member 222 is opened or closed in a flip-over manner and is clamped on the carrier 221.
[0075] Specifically, referring to Figure 8, when the opposite sides of the pressing member 222 are respectively fastened, bonded, or welded to the two first connecting portions 2211 using fasteners 223, the pressing member 222 can be located in the space between the two first connecting portions 2211, or on the side of the two first connecting portions 2211 facing away from the carrier 221. Compared to locating the pressing member 222 in the space between the two first connecting portions 2211, locating the pressing member 222 on the side of the first connecting portion 2211 facing away from the carrier 221 is more conducive to quickly and firmly fixing the pressing member 222 to the first connecting portion 2211.
[0076] Referring to Figures 2 and 3 or Figures 5 and 6 , in one embodiment, the pressing member 222 is provided with at least one protrusion 2222, and the output line 131 includes at least one first conductive unit 1311, and the protrusion 2222 is correspondingly pressed against the first conductive unit 1311. Thus, when the same magnitude of compressive force is applied to the pressing member 222, the protrusion 2222 is provided to compress and mate with the first conductive unit 1311, so that the compressive force is more concentrated on the first conductive unit 1311, thereby improving the stability of the conductive contact. To avoid damage defects during the compression process, the protrusion 2222 includes, but is not limited to, an elastic portion that can adaptively deform during the compression process, thereby further improving the stability of the conductive contact.
[0077] Specifically, the number and spacing of the protrusions 2222 on the pressing member 222 are set according to the number and spacing of the first conductive units 1311 on the output line 131, so that each protrusion 2222 is pressed against each first conductive unit 1311. The first conductive unit 1311 is, for example, a metal wire, a metal sheet, a metal block, a cable, etc. In this embodiment, it is specifically a metal wire. The cross-sectional shape of the metal wire along its length includes but is not limited to a circle, an ellipse, a polygon, etc. In this embodiment, it is preferably set as a flat wire body, so that the contact area of the metal wire is larger when it is pressed and fixed by the pressing member 222, which can improve the stability of the conductive contact.
[0078] In some embodiments, the output cable 131 includes, but is not limited to, a wiring harness or a flexible flat cable. When the output cable 131 is configured as a flexible flat cable, the flexible flat cable is specifically described using a flexible printed circuit board as an example. The flexible flat cable further includes an insulating base 1312 made of a flexible material, with each first conductive unit 1311 arranged in parallel and spaced apart on the insulating base 1312. When the output cable 131 is configured as a wiring harness, the output cable 131 further includes an insulating sleeve, with the first conductive units 1311 correspondingly configured as, for example, a cable, with each first conductive unit 1311 inserted into the insulating sleeve.
[0079] Please refer to Figures 2 and 3 or Figures 5 and 6. In some embodiments, the conductive wire 21 includes one or more second conductive units 211. The number of the second conductive units 211 of the conductive wire 21 is the same as the number of the first conductive units 1311 of the output wire 131, and each second conductive unit 211 is electrically connected to each first conductive unit 1311 to achieve electrical connection between the conductive wire 21 and the output wire 131. In addition, the conductive wire 21 includes but is not limited to being configured as a wiring harness or a flexible flat cable. In this embodiment, the conductive wire 21 is specifically configured as a wiring harness for example. The second conductive unit 211 is specifically, for example, a wire or a cable, so that it can be easily led out to the target position of the vehicle body and electrically connected to various devices such as the vehicle body power supply and controller.
[0080] Referring to Figures 2 and 3 or Figures 5 and 6 , in one embodiment, the output line 131 is configured as a flexible printed circuit board, and the first conductive unit 1311 is a flat metal wire disposed on the flexible printed circuit board. A plurality of first conductive units 1311 are provided, and a plurality of protrusions 2222 are provided, with each protrusion 2222 correspondingly pressing against a respective first conductive unit 1311.
[0081] 2 and 3 or 6 and 7 , in some embodiments, a first conductive connection structure 225 is provided on the carrier 221 and is electrically connected to one end of the conductive line 21. A second conductive connection structure 226 is provided on the pressing member 222. When the pressing member 222 presses one end of the output line 131, the second conductive connection structure 226 is electrically connected to the first conductive connection structure 225 and one end of the output line 131, respectively, thereby achieving electrical connection between the output line 131 and the conductive line 21.
[0082] In some embodiments, the second conductive connection structure 226 in the above embodiment can be omitted. Specifically, a first conductive connection structure 225 electrically connected to one end of the conductive line 21 is provided on the carrier 221. When one end of the output line 131 is placed on the carrier 221, it directly contacts and conducts with the first conductive connection structure 225. Under the pressure of the pressing member 222, the output line 131 is stably electrically connected to the first conductive connection structure 225.
[0083] In some embodiments, the first conductive connection structure 225 in the above embodiment can be further omitted. Specifically, one end of the conductive line 21 is in direct electrical contact and conduction with one end of the output line 131, and the connection is stably established under the pressing force of the pressing member 222. Compared to the absence of the first conductive connection structure 225 and / or the second conductive connection structure 226, the provision of the first conductive connection structure 225 and / or the second conductive connection structure 226 is more conducive to achieving stable conductive contact between the transmission line and the conductive line 21.
[0084] Referring to Figures 2 and 3 or Figures 5 and 6, in one specific embodiment, a first conductive connection structure 225 is provided on the carrier 221 and is electrically connected to one end of the conductive line 21. The first conductive connection structure 225 includes at least one first electrical connection portion 2251. The output line 131 includes at least one first conductive unit 1311, and each first electrical connection portion 2251 is electrically conductive with each first conductive unit 1311. In this way, the conductive line 21 does not need to be directly electrically connected to the output line 131, but is indirectly electrically connected to the output line 131 through the first conductive connection structure 225. This makes the conductive contact more stable and reliable, especially in a scenario where the conductive line 21 is configured as a wiring harness and the output line 131 is configured as a flexible circuit board.
[0085] The first electrical connection portion 2251 is not limited to one, and may be, for example, multiple, with the specific number being the same as the number of the first conductive units 1311 , so that each first electrical connection portion 2251 can be electrically connected to each first conductive unit 1311 .
[0086] In one embodiment, the pressing member 222 is provided with a second conductive connection structure 226. The second conductive connection structure 226 includes at least one second electrical connection portion 2261. When the pressing member 222 is pressed against the output line 131, each second electrical connection portion 2261 is in close conductive contact with each first conductive unit 1311, and each second electrical connection portion 2261 is also in close conductive contact with each first electrical connection portion 2251. Alternatively, when the pressing member 222 is pressed against the output line 131, each first conductive unit 1311 is in close conductive contact with each first electrical connection portion 2251.
[0087] Please refer to Figures 2 and 3 or Figures 5 and 6. In some specific embodiments, when a protrusion 2222 is provided on the pressing member 222, each second electrical connection portion 2261 is correspondingly arranged on each protrusion 2222, including but not limited to using a printing process, an electroplating process, a patch process, bonding, clamping or using a fastener 223 to fasten the connection to the surface of the protrusion 2222 facing the carrier 221.
[0088] Referring to Figures 2 and 3 or Figures 5 and 6 , in one embodiment, a protrusion 2212 is provided on the carrier 221. The first electrical connection portion 2251 includes a first electrical connection segment 22511 disposed on the top surface of the protrusion 2212. The output line 131 is provided as a flexible printed circuit board (FPC). The thickness of the FPC is d. The distance from the top surface of the protrusion 2212 to the surface of the carrier 221 is S, and d is 0.8S to 1.2S. Specifically, d is, for example, 0.8S, 0.9S, 1S, 1.1S, 1.2S, and so on. In this way, the magnitudes of d and S are substantially consistent, so that the first electrical connection section 22511 and the first conductive unit 1311 are substantially coplanar. When the pressing member 222 presses the output line 131, the second electrical connection portion 2261 can simultaneously and tightly contact the first electrical connection section 22511 and the first conductive unit 1311. The pressing forces applied to the first electrical connection section 22511 and the first conductive unit 1311 are substantially the same, ensuring stable and reliable conductive contact. Furthermore, the pressing member 222 can be configured as a flat plate, for example, to facilitate processing.
[0089] Of course, in some other embodiments, when the clamping member 222 and the second electrical connection portion 2261 thereon are set to a non-planar structure, for example, they are set to be curved or in other shapes, the distance S from the top surface of the boss 2212 to the surface of the carrier 221 can be flexibly adjusted accordingly and is no longer limited to the size relationship in the above embodiments.
[0090] Referring to Figures 2 and 3 or Figures 5 and 6 , in one embodiment, the first electrical connection portion 2251 further includes a second electrical connection segment 22512 disposed on a side surface of the boss 2212. The second electrical connection segment 22512 is electrically connected to the first electrical connection segment 22511 and is also electrically connected to the conductive wire 21. This facilitates connection between the second electrical connection segment 22512 and the conductive wire 21. Specifically, each second electrical connection segment 22512 can be directly electrically connected to each second conductive unit 211 of the conductive wire 21, for example, by welding, conductive adhesive, metal screws, metal rivets, or other conductive structures. Alternatively, the connection can be indirect, i.e., a third conductive connection structure 227 is disposed between the second electrical connection segment 22512 and the corresponding second conductive unit 211.
[0091] Specifically, the first electrical connection section 22511 and the second electrical connection section 22512 are combined to form an L-shaped electrode.
[0092] Referring to Figures 5 and 6 , in one embodiment, the carrier 221 is configured as a circuit board. A third conductive connection structure 227 is provided on the carrier 221, positioned between the conductive wire 21 and the first conductive connection structure 225. The conductive wire 21 is electrically connected to the first conductive connection structure 225 via the third conductive connection structure 227. Specifically, the third conductive connection structure 227 includes at least one adapter wire 2271. Each adapter wire 2271 is electrically conductive with each first electrical connection portion 2251, and each adapter wire 2271 is electrically conductive with each second conductive unit 211 of the conductive wire 21. Thus, when the carrier 221 is configured as a circuit board, the adapter wires 2271 are provided on the circuit board. The adapter wires 2271 provide for flexible placement of the conductive wires 21. The placement of the conductive wires 21 on the circuit board can be adjusted and configured based on actual needs, facilitating assembly and connection with the vehicle body.
[0093] In some embodiments, the circuit board includes but is not limited to a board made of glass fiber epoxy resin material (also referred to as FR-4 material), which has good insulation, heat resistance and stability.
[0094] Of course, in some embodiments, please refer to Figures 2 and 3 again. There is no need to set the carrier 221 as a circuit board, that is, there is no need to set the adapter line 2271. The respective second conductive units 211 of the conductive line 21 are directly electrically connected to the respective first electrical connection parts 2251.
[0095] Referring to Figures 11 and 12 , in one embodiment, the glass assembly further includes a protective box 30. Specifically, the protective box 30 includes a base plate 31 and a cover 32 mounted on the base plate 31. The docking portion 22 is mounted in the protective box 30, and the output line 131 and the conductive line 21 respectively pass through the protective box 30 and extend into the interior of the protective box 30. In this way, the protective box 30 protects the docking portion 22 mounted therein, prevents the docking portion 22 from being exposed, and prevents the junction between the docking portion 22 and the output line 131 from being exposed, thereby providing a decorative effect.
[0096] Referring to Figures 5 and 6 , in one embodiment, the output cable 131 is provided with a third engaging portion 1313, and the carrier 221 or protective box 30 is provided with a fourth engaging portion 2213 that engages with the third engaging portion 1313. The third engaging portion 1313 and the fourth engaging portion 2213 are mutually engaged. Thus, after the pressing member 222 and the output cable assembly 131 are assembled together, the third engaging portion 1313 and the fourth engaging portion 2213 are mutually engaged, thereby increasing the coupling force between the output cable 131 and the docking portion 22, thereby improving the connection stability between the output cable 131 and the docking portion 22 and preventing the output cable 131 from being easily dislodged from the docking portion 22 due to external forces.
[0097] In one embodiment, the third clamping portion 1313 includes a third clamping portion provided on the output line 131, the fourth clamping portion 2213 includes a third clamping slot provided on the carrier 221 or the protective box, and the third clamping portion is clamped into engagement with the third clamping slot; and / or, the fourth clamping portion 2213 includes a fourth clamping slot provided on the output line 131, the third clamping portion 1313 includes a fourth clamping portion provided on the carrier 221 or the protective box, and the fourth clamping portion is clamped into engagement with the fourth clamping slot.
[0098] In some embodiments, the third buckle and the fourth buckle are independently set and are flexibly adjusted and set according to actual needs, including but not limited to various structural forms such as protrusions, columns, buckles, and inverted hooks, as long as they can be snapped together with their corresponding slots.
[0099] Referring to Figures 5 and 6, in one embodiment, the output cable 131 is configured as a flexible flat cable, and third engaging portions 1313 are provided on opposite sides of the output cable 131, respectively. Two fourth engaging portions 2213 are provided, corresponding to the third engaging portions 1313. Thus, the two third engaging portions 1313 provided on opposite sides of the output cable 131 respectively engage with the two fourth engaging portions 2213 on the circuit board or protective box, thereby firmly connecting the output cable 131 to the docking portion 22 and preventing it from being dislodged from the docking portion 22 under external force.
[0100] It should be noted that the "third clamping portion 1313" can be "a part of the output line 131", that is, the "third clamping portion 1313" and the "other parts of the output line 131" are integrally formed; it can also be an independent component that is separable from the "other parts of the output line 131", that is, the "third clamping portion 1313" can be manufactured independently and then combined with the "other parts of the output line 131" into a whole.
[0101] Referring to Figures 5 and 6 , in some embodiments, the output cable 131 is provided with a first positioning portion 1314, and the carrier 221 is provided with a second positioning portion 2214. The first positioning portion 1314 and the second positioning portion 2214 are positioned and engaged with each other. Thus, the carrier 221 secures the output cable 131 through the mutual engagement of the first and second positioning portions 1314, thereby improving the connection stability between the output cable 131 and the docking portion 22 and preventing the output cable 131 from being easily dislodged from the docking portion 22 under external forces, thereby affecting normal circuit performance.
[0102] In some embodiments, the first positioning portion 1314 includes a first positioning hole provided on the output line 131, the second positioning portion 2214 includes a first positioning piece provided on the carrier 221, and the first positioning piece is passed through the first positioning hole; and / or, the first positioning portion 1314 includes a second positioning piece provided on the output line 131, the second positioning portion 2214 includes a second positioning hole provided on the carrier 221, and the second positioning piece is passed through the second positioning hole.
[0103] Referring to Figures 13 and 14 , in one embodiment, the output cable 131 is provided with a third positioning portion 1315, and the protective housing is provided with a fourth positioning portion 33. The third positioning portion 1315 and the fourth positioning portion 33 are positioned and engaged with each other. Thus, the protective housing secures the output cable 131 through the interlocking positioning of the third positioning portion 1314 and the fourth positioning portion 33. This improves the connection stability between the output cable 131 and the docking portion 22, preventing the output cable 131 from being easily dislodged from the docking portion 22 due to external forces, which could affect normal circuit performance.
[0104] In one embodiment, the third positioning portion 1315 includes a third positioning hole provided on the output line 131, the fourth positioning portion 33 includes a third positioning piece provided on the protective box, and the third positioning piece is passed through the third positioning hole; and / or, the third positioning portion 1315 includes a fourth positioning piece provided on the output line 131, the fourth positioning portion 33 includes a fourth positioning hole provided on the protective box, and the fourth positioning piece is passed through the fourth positioning hole.
[0105] In some embodiments, the third and fourth positioning holes are independently configured according to actual needs, including but not limited to regular shapes such as circular holes, elliptical holes, and polygonal holes, as well as other irregular shapes. In this embodiment, the third and fourth positioning holes are each independently configured as circular holes, and the diameter of the circular holes includes but is not limited to 1 mm to 10 mm, specifically 1 mm, 2 mm, 3 mm, 4 mm, 5 mm, or 10 mm.
[0106] In some embodiments, the third positioning member and the fourth positioning member are independently configured according to actual needs, including but not limited to various structural forms such as positioning columns, positioning rods, and positioning needles.
[0107] It should be noted that the "third positioning member" can be "a part of the protective box", that is, the "third positioning member" and the "other parts of the protective box" are manufactured as one piece; it can also be an independent component that can be separated from the "other parts of the protective box", that is, the "third positioning member" can be manufactured independently and then combined with the "other parts of the protective box" into a whole.
[0108] In some embodiments, the protective box can be an insulating box made of plastic, or a metal box made of, for example, stainless steel, aluminum, copper, or other metal materials. Furthermore, the protective box can be provided with an openable lid, which allows for assembly and disassembly of the docking portion 22 and the output cable 131.
[0109] Referring to Figures 13 to 16 , in one embodiment, the docking portion 22 includes a circuit board and a docking connector 228 disposed on the circuit board. The docking connector 228 is electrically connected to the conductive wire 21 and is detachably connected to the output wire 131. Thus, the output wire 131 is electrically connected to the docking connector 228, thereby electrically connecting to the conductive wire 21. When the docking connector 228 is opened, the output wire 131 is detached from the docking connector 228, thereby enabling the removal and replacement of the wire assembly 20. This makes the assembly and removal of the wire assembly 20 more convenient and quicker.
[0110] Referring to Figures 13-16 , in some embodiments, the docking connector 228 comprises a crimping connector for pressing the output cable 131 against the circuit board. This crimping connector compresses and secures the output cable 131, similar to the function performed by the compression member 222 in any of the aforementioned embodiments. The docking connector 228 presses the output cable 131 against the circuit board, thereby electrically connecting the output cable 131 to the circuit board. When the docking connector 228 releases the output cable 131, the output cable 131 can be removed, facilitating assembly and disassembly of the cable assembly 20.
[0111] Specifically, the docking joint 228 can be set on the circuit board in a flip-open manner. After the docking joint 228 is flipped open, the docking joint 228 can correspondingly loosen the output line 131. When the docking joint 228 is flipped closed on the circuit board, the output line 131 can be correspondingly pressed. It can also be set on the circuit board in a sliding manner. By pushing the docking joint 228 to the pressing position, the docking joint 228 can correspondingly press the output line 131. When the docking joint 228 is pushed to the loosening position, the docking joint 228 can correspondingly release the output line 131. It can also be set vertically. It is pluggable and arranged on the circuit board in the direction of the circuit board surface. When the docking joint 228 is pulled outward in the direction away from the circuit board, the docking joint 228 loosens the output line 131 accordingly. Conversely, when the docking joint 228 is pressed in the direction close to the circuit board, the docking joint 228 presses the output line 131 accordingly. It can also include a fastener 223, which is connected to the circuit board through the fastener 223. By adjusting the tightness of the fastener 223, the output line 131 can be loosened or tightened accordingly. The fastener 223 includes but is not limited to screws, bolts, etc.
[0112] Referring to Figures 13 to 16 , in some embodiments, the docking connector 228 is not limited to being configured as a crimping connector as in the above-described embodiments. Alternatively, it may be configured as a plug-in interface or a card interface, with the output cable 131 plugged into or carded into the plug-in interface. When the output cable 131 is plugged into or carded into the plug-in interface, the output cable 131 is electrically connected to the docking connector 228, thereby electrically connecting to the conductive wire 21. Conversely, when the output cable 131 is removed from the plug-in interface or card interface, the output cable 131 is disconnected from the docking connector 228.
[0113] Referring to Figures 13 to 16 , in one embodiment, the butt connector 228 is soldered to the circuit board, and the conductive wire 21 is soldered to the circuit board. Thus, the butt connector 228, the circuit board, and the conductive wire 21 form a complete circuit. When the butt connector 228 is connected to the output wire 131, the output wire 131 can receive external power and signals, meeting various functional requirements. Furthermore, when the butt connector 228, the circuit board, and the conductive wire 21 are assembled together, they form a secure bond that is not easily loosened, resulting in excellent electrical performance.
[0114] Specifically, the docking connector 228 is soldered and mounted on the circuit board using, for example, the SMT patch process.
[0115] In one embodiment, a vehicle includes but is not limited to a car, bus, sedan, public bus, coach, truck, jeep, train, high-speed train, etc. The vehicle includes the glass assembly of any of the above embodiments and a vehicle body, wherein the glass assembly is mounted on the vehicle body.
[0116] In the aforementioned vehicle, one end of the output line 131 is compressed and fixed to the carrier 221 by the compression member 222, thereby achieving electrical continuity between the output line 131 and the conductive line 21, thereby providing access to external power and signals, and meeting various functional requirements. Furthermore, because the compression member 222 is detachably connected to the carrier 221, when maintenance is required, such as when a connection problem occurs between the conductive line 21 and the output line 131, the compression member 222 can be separated from the carrier 221, thereby separating the output line 131 from the docking portion 22, disconnecting the output line 131 from the conductive line 21, and then disassembling and replacing the wire assembly 20 separately, without having to replace the functionalized glass 10 and the wire assembly 20 together, thereby significantly reducing maintenance costs.
[0117] In this application, unless otherwise specified or limited, the terms "mounted," "connected," "connected," "fixed," etc., should be interpreted broadly. For example, these terms may refer to fixed connections, removable connections, or integration; mechanical connections or electrical connections; direct connections or indirect connections through an intermediary; and internal communication between two components or interaction between two components, unless otherwise specified. Those skilled in the art will understand the specific meanings of these terms in this application based on the specific circumstances.
[0118] The technical features of the above-mentioned embodiments can be combined arbitrarily. In order to make the description concise, not all possible combinations of the technical features in the above-mentioned embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.
[0119] The above-described embodiments merely represent several implementation methods of the present application. While the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the patent application. It should be noted that a person of ordinary skill in the art may make various modifications and improvements without departing from the spirit of the present application, and these modifications and improvements fall within the scope of protection of the present application. Therefore, the scope of protection of the present patent application shall be determined by the appended claims.
Claims
1. A glass component, wherein: The glass assembly comprises: Functionalized glass, wherein the functionalized glass is provided with an output line; and A wire group, the wire group includes a conductive wire and a docking portion connected to one end of the conductive wire, the docking portion is detachably connected to the output wire, when the output wire is connected to the docking portion, the output wire is electrically connected to the conductive wire; when the output wire is separated from the docking portion, the output wire is disconnected from the conductive wire.
2. The glass assembly according to claim 1, wherein the docking portion comprises a circuit board and a docking joint disposed on the circuit board; the docking joint is electrically connected to the conductive wire, and the docking joint is detachably connected to the output wire.
3. The glass assembly according to claim 2, wherein the butt joint comprises a crimping joint for pressing the output line onto the circuit board; or, the butt joint is provided with a plug interface or a card interface, and the output line is plugged into the plug interface or carded into the card interface.
4. According to the glass assembly according to claim 1, the docking part includes a carrier and a clamping piece detachably mounted on the carrier, one end of the conductive wire is connected to the carrier, and one end of the output wire is clamped and fixed to the carrier by the clamping piece, and when one end of the output wire is clamped and fixed by the clamping piece, the output wire is electrically connected to the conductive wire; when the output wire is separated from the docking part, the output wire is disconnected from the conductive wire. 5 . The glass assembly according to claim 4 , wherein the pressing member is fixed to the carrier by snapping, fastening with a fastener, bonding or welding.
6. The glass assembly according to claim 5, wherein the carrier is provided with two first connecting parts arranged relatively at a distance, the opposite sides of the clamping member are respectively fixed to the two first connecting parts by snapping, fastening with fasteners, bonding or welding, and the output line is located in the area between the two first connecting parts. 7 . The glass assembly according to claim 4 , wherein the pressing member is provided with at least one protrusion, the output line comprises at least one first conductive unit, and the protrusion is pressed against the first conductive unit accordingly.
8. The glass assembly according to claim 7, wherein the output line is configured as a flexible flat cable, and the first conductive unit is a flat metal wire provided on the flexible flat cable; a plurality of the first conductive units are configured, a plurality of the protrusions are configured, and each of the protrusions is correspondingly pressed against each of the first conductive units.
9. The glass assembly according to claim 4, wherein the carrier is provided with a first conductive connection structure electrically connected to one end of the conductive line, the first conductive connection structure includes at least one first electrical connection part, the output line includes at least one first conductive unit, and each of the first electrical connection parts is electrically conductive with each of the first conductive units.
10. According to the glass assembly according to claim 9, a second conductive connection structure is provided on the pressing member, and the second conductive connection structure includes at least one second electrical connection part, and when the pressing member is pressed on the output line, each of the second electrical connection parts is in close conductive contact with each of the first conductive units, and each of the second electrical connection parts is also in close conductive contact with each of the first conductive units; or, when the pressing member is pressed on the output line, each of the first conductive units is in close conductive contact with each of the first electrical connection parts.
11. According to the glass component of claim 10, a boss is provided on the carrier, the first electrical connection portion includes a first electrical connection section arranged on the top surface of the boss, the output line is set to be a soft flat cable, the thickness of the soft flat cable is set to d, and the distance from the top surface of the boss to the surface of the carrier is set to S, and d is 0.8S to 1.2S. 12 . The glass assembly according to claim 11 , wherein the first electrical connection portion further comprises a second electrical connection segment disposed on a side surface of the boss, the second electrical connection segment being electrically connected to the first electrical connection segment, and the second electrical connection segment being also electrically connected to the conductive wire.
13. According to the glass component of claim 9, the carrier is set as a circuit board, and a third conductive connection structure is provided on the carrier and is located between the conductive wire and the first conductive connection structure, and the conductive wire is conductively connected to the first conductive connection structure through the third conductive connection structure; the third conductive connection structure includes at least one adapter wire, each of the adapter wires is electrically connected to each of the first electrical connection parts, and each of the adapter wires is electrically connected to each of the second conductive units of the conductive wire.
14. The glass assembly according to claim 4, further comprising a protective box, wherein the docking portion is installed in the protective box, and the output line and the conductive line respectively penetrate through the protective box and extend into the interior of the protective box.
15. The glass assembly according to claim 14, wherein a third clamping portion is provided on the output line, and a fourth clamping portion that is clamped and matched with the third clamping portion is provided on the carrier or the protective box, and the third clamping portion and the fourth clamping portion are clamped with each other.
16. According to the glass assembly according to claim 15, the third clamping portion includes a third clip arranged on the output line, the fourth clamping portion includes a third slot arranged on the carrier or the protective box, and the third clip is engaged with the third slot; and / or, the fourth clamping portion includes a fourth slot arranged on the output line, the third clamping portion includes a fourth clip arranged on the carrier or the protective box, and the fourth clip is engaged with the fourth slot. 17 . The glass assembly according to claim 15 , wherein the output line is a flexible flat cable, and third clamping portions are respectively disposed on opposite sides of the output line, and two fourth clamping portions are provided and are disposed corresponding to the third clamping portions.
18. According to the glass assembly of claim 4, the output line is provided with a first positioning portion, the carrier is provided with a second positioning portion, the first positioning portion and the second positioning portion are positioned and matched with each other; and / or, the output line is provided with a third positioning portion, the protective box is provided with a fourth positioning portion, the third positioning portion and the fourth positioning portion are positioned and matched with each other.
19. According to the glass assembly of claim 18, the first positioning portion includes a first positioning hole arranged on the output line, the second positioning portion includes a first positioning piece arranged on the carrier, and the first positioning piece is passed through the first positioning hole; and / or, the first positioning portion includes a second positioning piece arranged on the output line, the second positioning portion includes a second positioning hole arranged on the carrier, and the second positioning piece is passed through the second positioning hole; and / or, the third positioning portion includes a third positioning hole arranged on the output line, the fourth positioning portion includes a third positioning piece arranged on the protective box, and the third positioning piece is passed through the third positioning hole; and / or, the third positioning portion includes a fourth positioning piece arranged on the output line, the fourth positioning portion includes a fourth positioning hole arranged on the protective box, and the fourth positioning piece is passed through the fourth positioning hole.
20. A vehicle, wherein: The vehicle comprises the glass assembly according to any one of claims 1 to 19, and further comprises a vehicle body, wherein the glass assembly is mounted on the vehicle body.
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