Glass assembly and vehicle

The modular design of the glass assembly allows for splicing between the lamp bases, solving the problems of poor versatility and high development costs caused by the integrated design of automotive glass and lamps. This achieves efficient versatility and interchangeability of the lamps across different vehicle models, reducing development costs and improving product reliability.

CN122126176APending Publication Date: 2026-06-02FUYAO GLASS IND GROUP CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
FUYAO GLASS IND GROUP CO LTD
Filing Date
2026-04-22
Publication Date
2026-06-02

AI Technical Summary

Technical Problem

The integrated design of the vehicle's glass and lighting assembly results in poor compatibility between different vehicle models, leading to high development costs.

Method used

The glass assembly adopts a modular structure, and the bases of the lamp groups can be spliced ​​together, including the front section, the rear section and the detachable splicing section. By adjusting the number of splicing sections, it can adapt to the installation space and length requirements of different vehicle models. Combined with light guides and positioning mechanisms, it can achieve precise positioning and stable connection.

Benefits of technology

This improves the universality and interchangeability of the lighting system across different vehicle models, reduces mold investment and R&D cycle, enhances product reliability and lifespan, and simplifies the assembly process.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN122126176A_ABST
    Figure CN122126176A_ABST
Patent Text Reader

Abstract

This application relates to a glass assembly and a vehicle, which can solve the problem of poor universality and high development cost caused by customized lamp designs in related technologies when they are used in different vehicle models. The glass assembly includes a glass component and at least two lamps. Each lamp includes a base, a light-emitting module, and a cover. The base is connected to the glass component, and the cover is detachably connected to the base. The light-emitting module is disposed in the cavity of the cover. The bases of two adjacent lamps are spliced ​​together. The glass assembly provided by this application effectively solves the problem of poor vehicle universality and high development cost caused by customized lamp designs in related technologies by setting the lamps as a modular structure that can be spliced ​​together.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the field of vehicle manufacturing technology, and in particular to a glass assembly and a vehicle. Background Technology

[0002] With the development of vehicle intelligence and integration technology, vehicle glass is gradually integrating lighting or ambient lighting functions, and the integrated assembly of glass and lighting units has become the mainstream trend in the industry.

[0003] In related technologies, automotive glass and lighting assemblies are generally integrated into a single assembly, requiring customized design of the lighting assemblies for different vehicle models.

[0004] However, customized headlight designs suffer from poor versatility across different vehicle models, leading to high development costs. Summary of the Invention

[0005] Therefore, it is necessary to provide a glass assembly and vehicle to address the problem that customized lamp assemblies in related technologies have poor versatility across different vehicle models, leading to high development costs.

[0006] On one hand, this application provides a glass assembly, the glass assembly comprising:

[0007] Glass components;

[0008] At least two light groups are provided, each light group comprising a base, a light-emitting module, and a cover. The base is connected to the glass assembly, and the cover is detachably connected to the base. The light-emitting module is disposed within the cavity of the cover, and the bases of two adjacent light groups are spliced ​​together.

[0009] The glass assembly provided in this application effectively solves the problems of poor vehicle versatility and high development costs caused by customized design of lamp assemblies in related technologies by setting the lamp assemblies as a modular structure that can be spliced ​​together. In addition, the bases of adjacent lamp assemblies can be spliced ​​together, so the number of assemblies can be freely combined according to the installation space and length requirements of different vehicle models. There is no need to develop dedicated lamp assemblies for a single vehicle model, which greatly improves the versatility and interchangeability of lamp assemblies between different vehicle models, and reduces mold investment, R&D cycle and overall development cost.

[0010] In one embodiment, the light assembly is configured to include a head section, a tail section, and a plurality of detachable splicing sections, wherein the splicing sections are alternatively spliced ​​between the head section and the tail section.

[0011] In one embodiment, the head segment and the splicing segment are configured as standardized structures of fixed length, and the tail segment is configured as a replaceable structure of non-fixed length.

[0012] In one embodiment, the length of the head segment is configured as C1, the length of the splicing segment is configured as C2, and the length of the tail segment is configured as C3, wherein C1, C2, and C3 are configured as: C1 + C2 ≥ C3 ≥ 50 mm.

[0013] In one embodiment, the glass assembly further includes a light guide connected to the glass assembly, and the base is provided with a positioning mechanism that abuts against and limits the light guide.

[0014] In one embodiment, the positioning mechanism includes a first positioning structure and a second positioning structure; wherein each of the bases is provided with the first positioning structure, the first positioning structure abuts against and is limited to both sides of the light guide along the width direction of the light guide, and the bases of the two sets of lamps corresponding to the head and tail sections of the glass assembly are provided with the second positioning structure, the second positioning structure abuts against and is limited to both sides of the light guide along the length direction of the light guide.

[0015] In one embodiment, the glass assembly further includes a light guide, and the bases are spliced ​​together to form a receiving groove for accommodating the light guide.

[0016] In one embodiment, the base is provided with a first limiting groove that extends through the direction perpendicular to the glass assembly, and the light guide is received in each of the first limiting grooves along the splicing direction of each base.

[0017] In one embodiment, adjacent bases are spliced ​​together to form a second limiting groove, and the splicing direction of the first limiting groove and the second limiting groove of each base is through to form the receiving groove.

[0018] In one embodiment, the light guide is configured as an integral light guide strip.

[0019] In one embodiment, the light-emitting module includes a circuit board and an insulating component. The insulating component is connected to the circuit board. When the cover is connected to the base, the circuit board and the light guide are aligned with each other, and the insulating component is disposed between the circuit board and the light guide.

[0020] In one embodiment, one of the bases of two adjacent lamp groups is provided with a positioning buckle at one end, and the other is provided with a positioning groove at the corresponding end, and the positioning buckle is engaged with the positioning groove.

[0021] In one embodiment, the base of one of two adjacent lamp groups is provided with a first flange, and the base of the other is provided with a second flange, the first flange and the second flange overlapping each other along the thickness direction of the glass assembly.

[0022] In one embodiment, the lamp assembly includes an adhesive member bonded between the base and the glass assembly. One of the adhesive members of two adjacent lamp assemblies has a third flange, and the other has a fourth flange. The third flange and the fourth flange overlap and cooperate with each other along the width direction of the lamp assembly.

[0023] In one embodiment, the light-emitting module includes a circuit board and a fixing member. The circuit board has a countersunk hole, and the cover has a fixing hole. The fixing member passes through the countersunk hole and the fixing hole to fix the circuit board relative to the cover. The height of the fixing member is flush with or lower than the surface of the circuit board on the side away from the cover.

[0024] In one embodiment, the light-emitting module includes a circuit board with a positioning hole, and the cover has a positioning body that engages with the positioning hole.

[0025] In one embodiment, the base includes a first latching portion and a second latching portion spaced apart along the width direction of the lamp assembly, and the cover is provided with a first latching body and a second latching body, wherein the first latching body latches onto the first latching portion and the second latching body latches onto the second latching portion.

[0026] In one embodiment, the first snap-fit ​​body includes a chamfered structure and a positioning member. The first snap-fit ​​portion is configured as a slot. The chamfered structure is used to slide and snap into the inner wall of the slot. The positioning member abuts against the inner wall of the slot.

[0027] In one embodiment, the second snap-fit ​​body includes a first limiting structure and a second limiting structure, and the second snap-fit ​​portion includes a snap-fit ​​protrusion. The first limiting structure and the second limiting structure respectively abut against and limit the snap-fit ​​protrusion on both sides in the thickness direction.

[0028] In one embodiment, the device further includes a counter and a connector, the connector being integrally formed on the base, and the counter being detachably connected to the base via the connector.

[0029] On the other hand, this application provides a vehicle that includes the glass assembly as described above. Attached Figure Description

[0030] Figure 1 This is a front view of the structure of the glass assembly in one embodiment of this application.

[0031] Figure 2 for Figure 1 Top view of the glass assembly shown.

[0032] Figure 3 for Figure 2 The glass assembly shown is a cross-sectional view at point AA.

[0033] Figure 4 This is a schematic diagram of the splicing of the bases of the glass assembly in one embodiment of this application.

[0034] Figure 5 for Figure 4 Exploded view of the glass assembly shown.

[0035] Figure 6 for Figure 5 The enlarged view of the glass assembly shown at point F.

[0036] Figure 7 for Figure 4 The enlarged view of the glass assembly shown at EE.

[0037] Figure 8 for Figure 1 The diagram shown is a structural schematic of the glass assembly without the glass components and light-emitting module.

[0038] Figure 9 for Figure 8 The rear view of the glass assembly shown.

[0039] Figure 10 for Figure 9 The enlarged view of the glass assembly shown at point M.

[0040] Figure 11 for Figure 1 A schematic diagram of the light-emitting module structure of the splicing section of the glass assembly shown.

[0041] Figure 12 for Figure 11 The rear view of the glass assembly shown.

[0042] Figure 13 for Figure 12 The schematic diagram of the glass assembly shown omits the structure of the light-emitting module.

[0043] Figure 14 for Figure 2 The glass assembly shown is a cross-sectional view at BB.

[0044] Figure 15 for Figure 13 Right view of the glass assembly shown.

[0045] Figure 16 for Figure 2 The glass assembly shown is a cross-sectional view at CC.

[0046] Figure 17 for Figure 2 The glass assembly shown is a cross-sectional view at DD.

[0047] Figure 18 for Figure 9 The enlarged view of the glass assembly shown at point N.

[0048] Figure 19 This is a schematic diagram of the glass assembly in another embodiment of this application.

[0049] Figure 20 This is a schematic diagram of the glass assembly in another embodiment of this application.

[0050] 10. Glass assembly; Z, thickness direction of glass component; X, length direction of lamp assembly; Y, width direction of lamp assembly; 11. Glass component; 12. Lamp assembly; 12a. Head section; 12b. Splicing section; 12c. Tail section; 100. Base; 100a. Receiving groove; a1. First limiting groove; a2. Second limiting groove; 100b. Long side; 100c. Wide side; 110. Positioning buckle; 120. Positioning groove; 130. First flange; 140. Second flange; 150. First locking part; 160. Second locking part; 161. Second hook; 162. Locking protrusion; 170. Positioning mechanism; 1 71. First positioning structure; 172. Second positioning structure; 200. Light-emitting module; 210. Circuit board; 211. Countersunk hole; 212. Positioning hole; 213. Insulating component; 220. Light-emitting body; 300. Cover; 310. Fixing hole; 320. Positioning body; 330. First snap-fit ​​body; 331. Chamfer structure; 332. Positioning component; 340. Second snap-fit ​​body; 341. First hook; 342. First limiting structure; 343. Second limiting structure; 400. Adhesive component; 410. Third flange; 420. Fourth flange; 13. Light guide component; 14. Hand component; 15. Connector component. Detailed Implementation

[0051] To make the above-mentioned objectives, features, and advantages of this application more apparent and understandable, the specific embodiments of this application are described in detail below with reference to the accompanying drawings. Many specific details are set forth in the following description to provide a thorough understanding of this application. However, this application can be implemented in many other ways different from those described herein, and those skilled in the art can make similar modifications without departing from the spirit of this application. Therefore, this application is not limited to the specific embodiments disclosed below.

[0052] Please see Figures 1 to 4This application provides a glass assembly 10, which includes a glass component 11 and at least two lamp groups 12. Each lamp group 12 includes a base 100, a light-emitting module 200, and a cover 300. The base 100 is connected to the glass component 11, the cover 300 is detachably connected to the base 100, the light-emitting module 200 is disposed in the cavity of the cover 300, and the bases 100 of two adjacent lamp groups 12 are spliced ​​together.

[0053] The glass assembly 10 provided in this application effectively solves the problems of poor vehicle versatility and high development costs caused by the customized design of the lamp assembly 12 in related technologies by setting the lamp assembly 12 as a modular structure that can be spliced ​​together. In addition, the bases 100 of adjacent lamp assemblies 12 can be spliced ​​together, so the number of splices can be freely combined according to the installation space and length requirements of different vehicle models. There is no need to develop a dedicated lamp assembly 12 for a single vehicle model, which greatly improves the versatility and interchangeability of the lamp assembly 12 between different vehicle models and reduces mold investment, R&D cycle and overall development cost.

[0054] Specifically, standardized splicing units can be directly used and borrowed across different vehicle models and projects, eliminating the need for redevelopment for each project and effectively shortening the development cycle and reducing development costs. Furthermore, shorter units experience less thermal expansion, resulting in higher dimensional stability at high temperatures. This avoids the risks of bulging, deformation, or even breakage caused by thermal expansion and contraction, significantly improving the product's reliability and lifespan under high-temperature automotive conditions.

[0055] Please see Figure 1 In some embodiments, the lamp assembly 12 can be configured to include one front section 12a, one rear section 12c, and multiple detachable splicing sections 12b. The splicing sections 12b are interchangeably spliced ​​between the front section 12a and the rear section 12c. This allows for adaptation to different vehicle models and installation space requirements by increasing or decreasing the number of splicing sections 12b. It is worth noting that the number of splicing sections 12b can be set to 0, 1, 2, or more according to actual assembly requirements, satisfying diverse length configuration requirements.

[0056] In some embodiments, the head segment 12a and the splicing segment 12b can be configured as a standardized structure of fixed length, and the tail segment 12c can be configured as a replaceable structure of non-fixed length.

[0057] Specifically, in this embodiment, the head section 12a and / or splicing section 12b can adopt a standardized structure of fixed length. By increasing or decreasing the number of splicing sections 12b and matching the corresponding length of the tail section 12c, the overall length adjustment flexibility of the lamp assembly 12 can be further improved to adapt to the usage requirements of different vehicle models and different installation spaces, significantly improving the versatility and interchangeability of the lamp assembly 12 and reducing mold opening costs.

[0058] In some embodiments, the length of the head segment 12a is configured as C1, the length of the splicing segment 12b is configured as C2, and the length of the tail segment 12c is configured as C3, wherein C1, C2, and C3 are configured such that C1 + C2 ≥ C ≥ 50 mm.

[0059] Specifically, by setting the lengths of the head section 12a, splicing section 12b, and tail section 12c to a dimensional constraint of C1+C2≥C≥50mm, it is possible to ensure that each lamp assembly 12 has a reasonable structural length and installation space. This avoids excessive splicing and reduced assembly efficiency due to excessively short individual sections, while also ensuring that each section has sufficient structural rigidity to prevent insufficient strength and easy damage due to excessive length. At the same time, this dimensional range allows each lamp assembly 12 to maintain good dimensional stability, effectively controlling production shrinkage and high-temperature expansion, reducing the risk of deformation, warping, and breakage, and further improving product yield and service life. In addition, this length configuration allows the head section 12a, splicing section 12b, and tail section 12c to form a modular configuration, facilitating interchangeability between different vehicle models and projects without the need for frequent new mold creation, further reducing development costs and mold expenses, and balancing assembly efficiency, structural reliability, and versatility.

[0060] Please see Figure 5 and Figure 6 In some embodiments, the base 100 of one of the two adjacent lamp groups 12 is provided with a positioning buckle 110 at one end, and the corresponding end of the other is provided with a positioning groove 120, and the positioning buckle 110 is engaged with the positioning groove 120.

[0061] Specifically, the cooperation between the positioning buckle 110 and the positioning groove 120 enables the rapid docking and precise positioning of adjacent bases 100, avoiding problems such as offset and misalignment during the splicing process, improving splicing efficiency and positioning reliability. At the same time, the snap-fit ​​cooperation can enhance the connection strength of adjacent bases 100, prevent loosening or separation during use, and ensure the overall stability of the lamp group 12 after splicing.

[0062] Please see Figure 7 In some embodiments, the base 100 of one of the two adjacent lamp groups 12 is provided with a first flange 130, and the base 100 of the other is provided with a second flange 140. The first flange 130 and the second flange 140 overlap and cooperate with each other along the thickness direction Z of the glass assembly 11.

[0063] Specifically, the first flange 130 and the second flange 140 overlap each other along the thickness direction Z of the glass assembly 11 to seal the gap at the splicing point of the adjacent base 100, effectively blocking light from leaking from the splicing gap, avoiding light leakage, uneven brightness and other phenomena, improving the light emission uniformity and lighting effect of the lamp group 12, and at the same time, the overlapping structure can further improve the sealing and structural integrity of the splicing point.

[0064] Optionally, the first flange 130 and the second flange 140 may be configured as stepped structures that can be interlocked, thereby further improving the tightness of the fit.

[0065] Please see Figures 8 to 10 In some embodiments, the lamp assembly 12 includes an adhesive member 400, which is bonded between the base 100 and the glass assembly 11. One of the adhesive members 400 of two adjacent lamp assemblies 12 is provided with a third flange 410, and the other adhesive member 400 is provided with a fourth flange 420. The third flange 410 and the fourth flange 420 overlap and cooperate with each other along the width direction Y of the lamp assembly 12.

[0066] Specifically, the adhesive 400 enables a stable bond between the base 100 and the glass assembly 11 without the need for additional fasteners, simplifying the assembly process. The third flange 410 and the fourth flange 420 overlap and cooperate along the width direction Y of the lamp assembly 12, which can further seal the splicing gap of the bonding area, suppress light leakage from the width direction Y of the lamp assembly 12, improve the overall light shielding effect and light emission uniformity, and enhance the integrity of the bonding area, ensuring the bonding reliability between the base 100 and the glass assembly 11.

[0067] Please refer to the previous document. Figure 3 and Figure 4 The glass assembly 10 also includes a light guide 13. The bases 100 are spliced ​​together to form a receiving groove 100a, which is used to receive the light guide 13. Specifically, the receiving groove 100a is configured as an integral receiving groove 100a extending along the splicing direction of each base 100.

[0068] Correspondingly, in some embodiments, the light guide 13 can be configured as an integrated light guide strip, which is confined within the receiving groove 100a. The light guide 13 can conduct, diffuse, and homogenize the light emitted by the light-emitting module 200, improving the light emission effect and visual experience of the glass assembly 10. At the same time, with the assembly structure in which the light guide 13 is confined within the receiving groove 100a, the light guide 13 can also be used to install and position each splicing base 100 as a whole, eliminating the need for manual alignment adjustments, greatly simplifying the assembly steps, effectively improving assembly efficiency and alignment accuracy, and ensuring the ease of installation and positional accuracy of each base 100.

[0069] Optionally, the light guide 13 may be attached to the glass assembly 11 by means of adhesive bonding.

[0070] In some embodiments, the base 100 is provided with a first limiting groove a1 that extends through the vertical glass assembly 11, and the light guide 13 is housed in each first limiting groove a1 along the splicing direction of each base, so that the light guide 13 is used to install and position each splicing base 100 as a whole.

[0071] In some embodiments, adjacent bases 100 are spliced ​​together to form a second limiting groove a2, and the first limiting groove a1 and the second limiting groove a2 extend through each base 100 to form a receiving groove 100a. Figure 4 As shown, the first limiting groove a1 and the second limiting groove a2 are connected sequentially along the splicing direction to form a continuous and integrated receiving groove 100a.

[0072] Specifically, such as Figures 4 to 6 As shown, the base 100 may include two long sides 100b and two wide sides 100c that are arranged in an enclosing manner. The wide sides 100c of two adjacent bases 100 are spliced ​​together, which helps to improve the overall structural integrity and connection rigidity of the multi-segment bases 100 after splicing, and simplifies the mold and production process. In addition, the two wide sides 100c of the spliced ​​part and the adjacent long sides 100b are staggered along the height direction of the base 100 to form a second limiting groove a2 at the splicing position. This staggered structure helps to form a stable installation space for the light guide 13, so as to ensure full support and limiting of the light guide 13 and avoid shaking, displacement and warping.

[0073] Please see Figure 18 In some embodiments, the glass assembly 10 further includes a light guide 13 connected to the glass assembly 11. The base 100 is provided with a positioning mechanism 170, which abuts against and limits the light guide 13. This effectively utilizes the mutual abutment and limiting between the light guide 13 and the positioning mechanism 170 to achieve precise positioning of the base 100 and reduce the movement and shaking of the base 100.

[0074] Please continue reading. Figure 18 In some embodiments, the positioning mechanism 170 may include a first positioning structure 171 and a second positioning structure 172; wherein each base 100 is provided with a first positioning structure 171, which abuts against and is limited to both sides of the light guide 13 along the width direction, thereby effectively restraining the movement and swaying of the base 100 in the width direction. The bases 100 of the two sets of lamp groups 12 corresponding to the head section 12a and the tail section 12c of the glass assembly 10 are each provided with a second positioning structure 172, which abuts against and is limited to both sides of the light guide 13 along the length direction, thereby locking the position of each base 100 in the length direction.

[0075] Specifically, by using full-section Y-axis positioning in conjunction with end-to-end X-axis positioning, a stable bidirectional constraint can be formed between the light guide 13 and each base 100. Thus, under conditions of vehicle vibration and thermal expansion and contraction at high and low temperatures, each base 100 can still maintain a stable relative position with the help of the limiting effect of the light guide 13, thereby ensuring the alignment accuracy between the light-emitting module 200 and the light guide 13 and ensuring uniform and consistent light output.

[0076] Please see Figures 11 to 14 In some embodiments, the light-emitting module 200 includes a circuit board 210 and a fixing member (not shown). The circuit board 210 is provided with a countersunk hole 211, and the cover 300 is provided with a fixing hole 310. The fixing member passes through the countersunk hole 211 and the fixing hole 310 to fix the circuit board 210 relative to the cover 300, and the height of the fixing member is flush with or lower than the surface of the circuit board 210 on the side away from the cover 300.

[0077] Specifically, the countersunk hole 211 provides recessed installation space for the fastener, preventing the fastener from protruding from the surface of the circuit board 210 and occupying extra space, and preventing the fastener from touching the light guide 13, which would cause the gap between the circuit board 210 and the light guide 13 to be too large, thereby improving the structural compactness and assembly accuracy.

[0078] Alternatively, the fasteners can be bolts, rivets, or other structures, which can ensure reliable fastening while reducing the difficulty of processing and assembly.

[0079] Of course, please see Figure 12 The light-emitting module 200 also includes a light-emitting element 220, which is disposed on the circuit board 210. When the cover 300 is connected to the base 100, the light-emitting element 220 is aligned and engaged with the light guide 13. Optionally, the aforementioned light-emitting elements 220 can be configured as multiple and arranged at intervals on the circuit board 210. Of course, the aforementioned light-emitting elements 220 can also be configured as a strip-shaped integrated light strip, which is not limited here.

[0080] Please combine Figure 12 , Figure 14 and Figure 15 As shown, in some embodiments, the circuit board 210 is provided with a positioning hole 212, and the cover 300 is provided with a positioning body 320, which is snapped into the positioning hole 212.

[0081] Specifically, the cooperation between the positioning body 320 and the positioning hole 212 enables the circuit board 210 and the cover 300 to be quickly pre-positioned, avoiding the circuit board 210 from shifting or shaking during the assembly process, improving the installation efficiency and positioning accuracy of the circuit board 210, and thus ensuring the alignment accuracy of the light-emitting module 200 and the light guide 13.

[0082] Optionally, the positioning body 320 may, but is not limited to, adopt a positioning post structure, and the number may, but is not limited to, be set to at least two, so as to achieve multi-directional positioning and further improve positioning stability.

[0083] In some embodiments, the cover 300 may also be provided with reinforcing ribs (not shown) to support the circuit board 210, thereby improving the installation stability of the light-emitting module 200.

[0084] Please see Figure 16 In some embodiments, the light-emitting module 200 includes a circuit board 210 and an insulating component 213. The insulating component 213 is connected to the circuit board 210. When the cover 300 is connected to the base 100, the circuit board 210 and the light guide 13 are aligned with each other, and the insulating component 213 is disposed between the circuit board 210 and the light guide 13.

[0085] Specifically, the insulating component 213 can effectively isolate the circuit board 210 and the light guide 13, preventing the circuit board 210 from making conductive contact with the light guide 13 after being powered on, thus improving the safety of the glass assembly 10. In addition, it helps to reduce the noise problem caused by the structural friction between the circuit board 210 and the light guide 13, while also playing a buffering and protective role, preventing the circuit board 210 and the light guide 13 from directly contacting each other and causing wear or squeezing damage, thus protecting the structural integrity of the light-emitting module 200 and the light guide 13.

[0086] Optionally, the aforementioned insulating element 213 may be, but is not limited to, made of non-woven fabric, etc.

[0087] Please refer to the previous document. Figure 3 In some embodiments, the base 100 includes a first latching portion 150 and a second latching portion 160 spaced apart along the width direction Y of the lamp group 12, and the cover 300 is provided with a first latching body 330 and a second latching body 340, the first latching body 330 latching onto the first latching portion 150, and the second latching body 340 latching onto the second latching portion 160.

[0088] Specifically, two sets of snap-fit ​​structures spaced Y along the width direction of the lamp group 12 cooperate with each other, which enables the cover 300 and the base 100 to be quickly and detachably connected. They can be disassembled and assembled without the aid of tools, which facilitates the maintenance and replacement of the light-emitting module 200. At the same time, the force on both sides of the snap-fit ​​is uniform, which can prevent the cover 300 from warping or loosening after assembly, thus improving the connection stability and structural reliability.

[0089] Please combine Figure 11 and Figure 15 As shown, in some embodiments, the first snap-fit ​​body 330 includes a chamfered corner structure 331 and a positioning member 332. The first snap-fit ​​part 150 is configured as a slot. The chamfered corner structure 331 is used to slide and snap-fit ​​with the inner wall of the slot. The positioning member 332 abuts against the inner wall of the slot.

[0090] Specifically, the chamfered structure 331 can guide the first snap-fit ​​body 330 to slide smoothly into the slot at an inclined angle, thus reducing friction, wear and jamming between structures during the snap-fit ​​process, improving the smoothness of the snap-fit. After the sliding snap-fit ​​is in place, rotating the cover 300 can make the positioning component 332 stably abut against the inner wall of the slot, achieving reliable locking and ensuring the positioning accuracy and connection strength after the snap-fit.

[0091] Please see Figure 16 In some embodiments, the second snap-fit ​​body 340 includes a first snap hook 341, and the second snap-fit ​​part 160 includes a second snap hook 161, with the first snap hook 341 and the second snap hook 161 hooking together.

[0092] Specifically, the first hook 341 and the second hook 161 engage with each other to enable quick snap-fit ​​fixing of the cover 300 and the base 100. The snap-fit ​​process is simple and efficient, and the locking is reliable. It can effectively prevent the cover 300 from falling off accidentally, thereby improving assembly efficiency and safety.

[0093] Please combine Figure 3 , Figure 11 , Figure 16 and Figure 17 As shown, in some embodiments, the second snap-fit ​​body 340 includes a first limiting structure 342 and a second limiting structure 343, and the second snap-fit ​​portion 160 includes a snap-fit ​​protrusion 162. The first limiting structure 342 and the second limiting structure 343 respectively abut against and limit the snap-fit ​​protrusion 162 on both sides in the thickness direction.

[0094] Specifically, the first limiting structure 342 and the second limiting structure 343 clamp and limit the cover 300 from both sides of the thickness direction of the snap-fit ​​protrusion 162, which can effectively limit the shaking and movement of the cover 300 along the thickness direction of the snap-fit ​​protrusion 162, improve the stability of the cover 300 after assembly, avoid vibration causing the cover 300 to loosen, and ensure the working stability of the light-emitting module 200.

[0095] It is worth noting that the thickness direction of the aforementioned snap-fit ​​protrusion 162 can be the width direction Y of the lamp assembly 12 in this application.

[0096] Additionally, please see Figure 11 The first limiting structure 342 and the second limiting structure 343 described above in this application can be spaced apart or integrated along the length X of the lamp assembly 12, as long as reliable limiting can be achieved. For example, please refer to... Figure 11 The first limiting structure 342 and the second limiting structure 343 can be arranged at intervals along the length X of the lamp assembly 12. Of course, in some other embodiments, the first limiting structure 342 and the second limiting structure 343 can also be integrated at the same position along the length X of the lamp assembly 12.

[0097] Please continue reading. Figure 11 It is worth noting that both the first snap-fit ​​body 330 and the second snap-fit ​​body 340 are configured with a cantilever structure, which helps to increase the snap-fit ​​elasticity, making the snap-fit ​​more secure and improving the installation stability of the cover 300.

[0098] Please see Figure 19 and Figure 20The glass assembly 10 also includes a counter 14 and a connector 15. The connector 15 is integrally formed on the base 100, and the counter 14 is detachably connected to the base 100 through the connector 15.

[0099] Specifically, the connector 15 is integrally formed with the base 100, so there is no need to add an additional mounting bracket or fixing structure. This allows the accessory 14 to be quickly assembled to the base 100 through the connector 15, simplifying the overall assembly process and helping to improve the structural compactness, integration and space utilization of the base 100.

[0100] For example, the accessory 14 can be configured as a sliding rail for the vehicle sunshade, thus integrating the sliding rail of the sunshade into the base 100 of the light assembly 12, thereby eliminating the need for a dedicated mounting structure, reducing the space occupied in the vehicle interior, which helps to increase the effective viewing area of ​​the vehicle's sunroof and improve the user experience.

[0101] Optionally, the aforementioned connector 15 may be implemented as a nut or a snap fastener, etc.

[0102] According to another aspect of this application, this application also provides a vehicle that includes the glass assembly 10 as described above. By adopting the glass assembly 10, this vehicle effectively solves the problems of poor vehicle versatility and high development costs caused by the customized design of the lamp assembly 12 in related technologies. In addition, the bases 100 of adjacent lamp assemblies 12 are spliced ​​together, so the number of splices can be freely combined according to the installation space and length requirements of different vehicle models. There is no need to re-develop dedicated lamp assemblies 12 for a single vehicle model, which greatly improves the versatility and interchangeability of lamp assemblies 12 between different vehicle models and reduces mold investment, R&D cycle and overall development cost.

[0103] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above 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.

[0104] The embodiments described above are merely illustrative of several implementation methods of this application, and 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 those skilled in the art can make various modifications and improvements without departing from the concept of this application, and these all fall within the protection scope of this application. Therefore, the protection scope of this patent application should be determined by the appended claims.

Claims

1. A glass assembly, characterized in that, The glass assembly includes: Glass components; At least two light groups are provided, each light group comprising a base, a light-emitting module, and a cover. The base is connected to the glass assembly, and the cover is detachably connected to the base. The light-emitting module is disposed within the cavity of the cover, and the bases of two adjacent light groups are spliced ​​together.

2. The glass assembly according to claim 1, characterized in that, The light assembly is configured to include a head section, a tail section, and multiple detachable splicing sections, wherein the splicing sections can be interchangeably spliced ​​between the head section and the tail section.

3. The glass assembly according to claim 2, characterized in that, The head section and the splicing section are configured as standardized structures of fixed length, while the tail section is configured as a replaceable structure of non-fixed length.

4. The glass assembly according to claim 2 or 3, characterized in that, The length of the head segment is configured as C1, the length of the splicing segment is configured as C2, and the length of the tail segment is configured as C3. C1, C2, and C3 are configured as follows: C1 + C2 ≥ C3 ≥ 50 mm.

5. The glass assembly according to claim 1, characterized in that, The glass assembly also includes a light guide, which is connected to the glass assembly. The base is provided with a positioning mechanism, which abuts against and limits the position of the light guide.

6. The glass assembly according to claim 5, characterized in that, The positioning mechanism includes a first positioning structure and a second positioning structure; wherein, each of the bases is provided with the first positioning structure, the first positioning structure abuts against and is limited to both sides of the light guide along the width direction of the light guide, and the bases of the two sets of lamps corresponding to the head and tail sections of the glass assembly are provided with the second positioning structure, the second positioning structure abuts against and is limited to both sides of the light guide along the length direction of the light guide.

7. The glass assembly according to claim 1, characterized in that, The glass assembly also includes a light guide, and the bases are spliced ​​together to form a receiving groove, which is used to accommodate the light guide.

8. The glass assembly according to claim 7, characterized in that, The base is provided with a first limiting groove that runs through the direction perpendicular to the glass assembly, and the light guide is housed in each of the first limiting grooves along the splicing direction of each base.

9. The glass assembly according to claim 8, characterized in that, The adjacent bases are spliced ​​together to form a second limiting groove, and the first limiting groove and the second limiting groove are connected along the splicing direction of each base to form the receiving groove.

10. The glass assembly according to any one of claims 5-9, characterized in that, The light guide is configured as an integrated light guide strip.

11. The glass assembly according to claim 10, characterized in that, The light-emitting module includes a circuit board and an insulating component. The insulating component is connected to the circuit board. When the cover is connected to the base, the circuit board and the light guide are aligned with each other, and the insulating component is disposed between the circuit board and the light guide.

12. The glass assembly according to claim 1, characterized in that, One of the two adjacent lamp sets has a positioning buckle at one end of its base, and the other has a positioning groove at the corresponding end. The positioning buckle is engaged with the positioning groove.

13. The glass assembly according to claim 1, characterized in that, The base of one of the two adjacent lamp groups is provided with a first flange, and the base of the other is provided with a second flange. The first flange and the second flange overlap and cooperate with each other along the thickness direction of the glass assembly.

14. The glass assembly according to claim 1 or 13, characterized in that, The lamp assembly includes an adhesive component that is bonded between the base and the glass assembly. One of the adhesive components of two adjacent lamp assemblies has a third flange, and the other has a fourth flange. The third flange and the fourth flange overlap and cooperate with each other along the width direction of the lamp assembly.

15. The glass assembly according to claim 1, characterized in that, The light-emitting module includes a circuit board and a fixing component. The circuit board has a countersunk hole, and the cover has a fixing hole. The fixing component passes through the countersunk hole and the fixing hole to fix the circuit board relative to the cover. The height of the fixing component is flush with or lower than the surface of the circuit board on the side away from the cover.

16. The glass assembly according to claim 1, characterized in that, The light-emitting module includes a circuit board with positioning holes, and the cover has a positioning body that is engaged with the positioning holes.

17. The glass assembly according to claim 1, characterized in that, The base includes a first latching portion and a second latching portion spaced apart along the width direction of the lamp assembly. The cover is provided with a first latching body and a second latching body. The first latching body latches onto the first latching portion, and the second latching body latches onto the second latching portion.

18. The glass assembly according to claim 17, characterized in that, The first snap-fit ​​body includes a chamfered structure and a positioning member. The first snap-fit ​​part is configured as a snap-fit ​​groove. The chamfered structure is used to slide and snap-fit ​​with the inner wall of the snap-fit ​​groove. The positioning member abuts against the inner wall of the snap-fit ​​groove.

19. The glass assembly according to claim 17, characterized in that, The second snap-fit ​​body includes a first limiting structure and a second limiting structure, and the second snap-fit ​​part includes a snap-fit ​​protrusion. The first limiting structure and the second limiting structure respectively abut against and limit the snap-fit ​​protrusion on both sides in the thickness direction.

20. The glass assembly according to claim 1, characterized in that, It also includes a counter and a connector, wherein the connector is integrally formed on the base and the counter is detachably connected to the base via the connector.

21. A vehicle, characterized in that, The vehicle includes a glass assembly as described in any one of claims 1-20.