Photovoltaic glass coating film curing device

By using concave and convex lenses to adjust the light intensity in the photovoltaic glass coating curing device and manually adjusting the angle of the curing lamp, the problem of high cost of existing devices is solved, and efficient curing and uniform illumination of photovoltaic glass coating are achieved.

CN223496378UActive Publication Date: 2025-10-31JETION SOLAR HLDG
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422969730.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-03
Publication Date
2025-10-31
Estimated Expiration
2034-12-03

AI Technical Summary

Technical Problem

The existing photovoltaic glass is coated with a photosensitive antireflective film, and the curing device adjusts the light intensity and area through three sets of linear transmission structures, which is costly.

Method used

The light intensity near the photovoltaic glass is adjusted by using concave and convex lenses, and the illumination area is adjusted by manually adjusting the illumination angle of the curing lamp. Combined with the cooperation of multiple curing components, uniformity of light intensity is achieved.

Benefits of technology

It reduces the manufacturing cost of the device, improves the effect and quality of photovoltaic glass coating curing, and makes light intensity adjustment convenient and uniform.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223496378U_ABST
    Figure CN223496378U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of photovoltaic glass processing and manufacturing, and discloses a photovoltaic glass coating and curing device which comprises a curing assembly, a fixing assembly and a rotation adjusting assembly, the curing assembly comprises a curing lamp, a clamping part, a dimming plate and a rotation adjusting part, the curing lamp is installed on the clamping part, the dimming plate is provided with a convex lens and a concave lens which are matched with the curing lamp, and the rotation adjusting part is installed on the clamping part; the rotation adjusting part is connected to the clamping part; the carrying assembly is arranged below the curing assembly; and the mounting frame is connected to the curing assembly and the carrying assembly. According to the photovoltaic glass coating and curing device, the clamping part is manually adjusted, so that the position of the clamping part for clamping the dimming plate is adjusted, the convex lens or the concave lens is aligned with the curing lamp, ultraviolet light emitted by the curing lamp is gathered or diffused, the illumination intensity of the ultraviolet light near photovoltaic glass is changed, and the curing effect of the photovoltaic glass is improved. The adjustable LED lamp has the advantages that the structure is simple, the manufacturing cost is lower, and the adjustment is convenient.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of photovoltaic glass processing and manufacturing, and more specifically, it relates to a photovoltaic glass coating and curing device. Background Technology

[0002] Photovoltaic glass, as the outermost encapsulation panel of a photovoltaic module, is a crucial component. It primarily protects the internal photovoltaic cells and ensures efficient sunlight transmission. Therefore, photovoltaic glass is typically coated with an anti-reflective film. This film helps to equalize the refractive index of different wavelengths of light on the photovoltaic glass surface, thereby reducing reflection and increasing light transmission, ultimately improving the photoelectric conversion efficiency of the photovoltaic module. After coating the photovoltaic glass with the anti-reflective film, a curing process is required to enhance the adhesion between the film and the glass. Photosensitive anti-reflective film is a commonly used type of anti-reflective film. After coating the photovoltaic glass with this film, curing is mainly achieved through curing lamp irradiation.

[0003] After the existing photovoltaic glass surface is coated with a photosensitive antireflective film, its curing device usually adjusts the spatial position of the curing lamp through three sets of linear transmission structures, thereby adjusting the light intensity and light area near the photovoltaic glass. The manufacturing cost of the curing device is relatively high. Utility Model Content

[0004] The purpose of this invention is to overcome the defects in the existing technology and provide a photovoltaic glass coating curing device that adjusts the light intensity near the photovoltaic glass by using concave and convex lenses and adjusts the light area by manually adjusting the irradiation angle of the curing lamp.

[0005] To achieve the above objectives, the technical solution of this utility model is to provide a photovoltaic glass coating and curing device, comprising:

[0006] A curing assembly includes a curing lamp, a clamping part, a dimming plate, and a rotation adjustment part. The curing lamp is used to cure a photosensitive antireflective film. The curing lamp is mounted on the clamping part, which is used to clamp and fix the dimming plate. The dimming plate is provided with a convex lens and a concave lens that cooperate with the curing lamp. The rotation adjustment part is connected to the clamping part and is used to adjust the orientation of the curing lamp.

[0007] A carrier component, disposed below the curing component, is used to support the photovoltaic glass and fix its position.

[0008] A mounting bracket is connected to the curing component and the carrier component for mounting the curing component and the carrier component.

[0009] By using the photovoltaic glass coating curing device described in this utility model, the clamping part can be manually adjusted to adjust the position of the dimming plate, so that the convex or concave lens is aligned with the curing lamp, thereby focusing or diffusing the ultraviolet light emitted by the curing lamp, thus adjusting the light intensity of the ultraviolet light emitted by the curing lamp, changing the light intensity of the ultraviolet light near the photovoltaic glass. The rotating adjustment part can be manually adjusted to make the curing lamp, clamping part and dimming plate rotate synchronously, thereby adjusting the illumination area, so that the photosensitive antireflective film coated on the photovoltaic glass is in a suitable curing environment. This utility model has a simple structure, low manufacturing cost and convenient adjustment.

[0010] Preferably, the curing components are provided in multiple sets. This design allows for more uniform light intensity near the photovoltaic glass through the cooperation of multiple sets of curing components, thereby improving the curing effect and ultimately enhancing the quality of the photovoltaic glass.

[0011] Preferably, the curing lamp includes a bulb and a lampshade, with the bulb installed inside the lampshade and the dimming plate fitted into the opening of the lampshade. This design helps to reduce light loss and energy consumption.

[0012] Preferably, the clamping part includes a mounting plate and a pressing unit. The mounting plate includes a mounting member connected to the rotation adjustment part. The lampshade is fixedly mounted on the mounting member. A first connecting plate and a second connecting plate are fixedly connected to both ends of the mounting member, respectively. A first support plate is fixedly connected to the side of the first connecting plate near the second connecting plate, and a second support plate is fixedly connected to the side of the second connecting plate near the first connecting plate. The top surfaces of both the first and second support plates are in contact with the bottom surface of the dimming plate. The pressing unit is mounted on the mounting plate and is used to press the dimming plate tightly against the mounting plate. In this design, the first and second support plates support the dimming plate, ensuring that the dimming plate is always in contact with the opening of the lampshade.

[0013] Preferably, the clamping unit includes a fixed cylinder, a first spring, and a push rod. The fixed cylinder has a mounting groove, one end of the first spring is fixedly installed in the mounting groove, and the other end of the first spring is fixedly connected to the push rod, which is slidably connected to the mounting groove. A second connecting plate has a through-hole, and the fixed cylinder is installed in the mounting hole. The push rod abuts against the dimming plate. With this design, the first spring pushes the push rod to press the dimming plate, thus fixing the position of the dimming plate.

[0014] Preferably, a positioning block is fixedly connected to the side of the first support plate near the dimming plate. The dimming plate has a sliding groove that slides with the positioning block. The sliding groove includes a first positioning groove, a connecting groove, and a second positioning groove connected in sequence. The first positioning groove and the second positioning groove are located at opposite ends of the connecting groove, and both the first positioning groove and the second positioning groove are located on the side of the connecting groove near the second connecting plate. This design facilitates the adjustment of the dimming plate's position, allowing for quick and precise alignment of the convex or concave lens with the curing lamp.

[0015] Preferably, the rotation adjustment part includes a fixed rod, a fixed shaft, a first faceted gear, a second faceted gear, a cylindrical shell, a second spring, and a connecting member. The fixed rod is fixedly connected to the mounting member, the fixed shaft is fixedly connected to the fixed rod, the first faceted gear is fixedly sleeved to the fixed shaft, the second faceted gear is meshed with the first faceted gear and movably sleeved to the fixed shaft, the cylindrical shell is fixedly sleeved to the second faceted gear, one end of the second spring is fixedly connected to the inner wall of the cylindrical shell, and the other end of the second spring abuts against the first faceted gear. The connecting member is fixedly connected to the outer wall of the cylindrical shell and is also fixedly connected to the mounting bracket. This design allows for adjustment of the curing lamp's orientation by adjusting the fixed rod.

[0016] Preferably, the loading assembly includes a loading plate, a third spring, and a clamping plate. The loading plate is mounted on a mounting frame. A guide groove is provided on one side of the loading plate to slide against the clamping plate. One end of the third spring is fixedly connected to the inner wall of the guide groove, and the other end is fixedly connected to the clamping plate. The top surface of the clamping plate is flush with the top surface of the loading plate. A first baffle is provided on the top of the loading plate on the side away from the clamping plate, and a second baffle is provided on the top of the clamping plate on the side away from the loading plate. This design allows the loading assembly to clamp and fix photovoltaic glass of different sizes.

[0017] Preferably, the heights of both the first and second baffles are less than the thickness of the photovoltaic glass. This design prevents ultraviolet light from being blocked by the first or second baffle, which is beneficial for the curing of the photosensitizing antireflective film.

[0018] Preferably, a support plate is mounted on the mounting bracket, the top surface of the support plate being in contact with the bottom surface of the clamping plate, and a third baffle is provided at the top of the end of the support plate away from the clamping plate. This design ensures good clamping effect of the load-bearing component on the photovoltaic glass.

[0019] The beneficial effects of this utility model are as follows:

[0020] By using the photovoltaic glass coating curing device described in this utility model, the clamping part can be manually adjusted to adjust the position of the dimming plate, so that the convex or concave lens is aligned with the curing lamp, thereby focusing or diffusing the ultraviolet light emitted by the curing lamp, thus adjusting the light intensity of the ultraviolet light emitted by the curing lamp, changing the light intensity of the ultraviolet light near the photovoltaic glass. The rotating adjustment part can be manually adjusted to make the curing lamp, clamping part and dimming plate rotate synchronously, thereby adjusting the illumination area, so that the photosensitive antireflective film coated on the photovoltaic glass is in a suitable curing environment. This utility model has a simple structure, low manufacturing cost and convenient adjustment. Attached Figure Description

[0021] Figure 1 This is a schematic diagram of the overall structure of the photovoltaic glass coating and curing device;

[0022] Figure 2 This is a schematic diagram of the three-dimensional structure of the curing component;

[0023] Figure 3 This is a front sectional view of the curing component;

[0024] Figure 4 This is a side sectional view diagram;

[0025] Figure 5 This is a three-dimensional structural diagram of the mounting plate;

[0026] Figure 6 This is a bottom view of the cured component;

[0027] Figure 7 This is a downward view of the dimming panel;

[0028] Figure 8 yes Figure 4 Enlarged view of the structure at point A in the middle;

[0029] Figure 9 This is an exploded view of the rotating adjustment section;

[0030] Figure 10 It is a three-dimensional structural cross-sectional view of the mounting frame and cargo-carrying components;

[0031] Figure 11 This is a top sectional view of the cargo-carrying components, support plate, and third baffle.

[0032] In the diagram: 100, Curing component; 110, Curing lamp; 111, Bulb; 112, Lampshade; 120, Clamping part; 121, Mounting plate; 1211, First connecting plate; 1212, Second connecting plate; 1213, First support plate; 1214, Positioning block; 1215, Second support plate; 1216, Mounting component; 1217, Mounting hole; 122, Clamping unit; 1221, Fixing cylinder; 1222, First spring; 1 223. Push rod; 1224. Mounting slot; 130. Dimming plate; 131. Convex lens; 132. Concave lens; 133. Slide groove; 1331. First positioning slot; 1332. Connecting slot; 1333. Second positioning slot; 140. Rotation adjustment part; 141. Fixed rod; 142. Fixed shaft; 143. First gear; 144. Second gear; 145. Cylindrical shell; 146. Second spring; 147. Connector;

[0033] 200. Loading assembly; 210. Loading plate; 211. Guide groove; 212. First baffle; 220. Third spring; 230. Clamping plate; 231. Second baffle;

[0034] 300. Mounting bracket;

[0035] 410. Support plate; 420. Third baffle. Detailed Implementation

[0036] The subject matter described herein will now be discussed with reference to exemplary embodiments. It should be understood that these embodiments are discussed to enable those skilled in the art to better understand and implement the subject matter described herein. Changes may be made to the function and arrangement of the elements discussed without departing from the scope of this specification. Various processes or components may be omitted, substituted, or added as needed in the examples. Furthermore, features described in some examples may be combined in other examples.

[0037] To better understand this utility model, the following is in conjunction with... Figures 1-11 The photovoltaic glass coating and curing device of this utility model is described in detail.

[0038] Example 1:

[0039] like Figure 1 and Figure 4 As shown, the photovoltaic glass coating and curing apparatus includes:

[0040] Curing assembly 100 is provided in multiple sets. Each set of curing assembly 100 includes a curing lamp 110, a clamping part 120, a dimming plate 130, and a rotation adjustment part 140. The curing lamp 110 is used to cure the photosensitive antireflective film. The curing lamp 110 is installed on the clamping part 120. The clamping part 120 is used to clamp and fix the dimming plate 130. The dimming plate 130 is provided with a convex lens 131 and a concave lens 132 that cooperate with the curing lamp 110. The rotation adjustment part 140 is connected to the clamping part 120 and is used to adjust the orientation of the curing lamp 110.

[0041] The carrier component 200 is disposed below the curing component 100 and is used to support the photovoltaic glass and fix the position of the photovoltaic glass.

[0042] Mounting bracket 300 is connected to curing component 100 and carrier component 200 and is used to mount curing component 100 and carrier component 200.

[0043] It should be noted that the photovoltaic glass is coated with a photosensitive antireflective film. During the curing process, the ultraviolet light emitted by the bulb 111 can penetrate the photosensitive antireflective film and trigger a chemical reaction within it, causing the photosensitive antireflective film to cure rapidly. In addition, the bulb 111 generates a certain amount of heat during the light emission process, providing a suitable curing temperature. The area near the photovoltaic glass refers not only to the area around the photovoltaic glass, but also to the area where the photovoltaic glass is located, that is, the area where the photosensitive antireflective film to be cured is located and its surrounding area.

[0044] By adjusting the position of the clamping part 120 clamping the dimming plate 130, the convex lens 131 or the concave lens 132 is aligned with the curing lamp 110. When the convex lens 131 is aligned with the curing lamp 110, the ultraviolet light emitted by the curing lamp 110 is focused, and the light intensity of the ultraviolet light illuminating the photovoltaic glass is enhanced. When the concave lens 132 is aligned with the curing lamp 110, the ultraviolet light emitted by the curing lamp 110 is diffused, and the light intensity of the ultraviolet light illuminating the photovoltaic glass is weakened, thereby achieving the adjustment of the light intensity. By adjusting the rotation adjustment part 140, the curing lamp 110, the clamping part 120 and the dimming plate 130 can be rotated synchronously in the vertical plane, thereby adjusting the irradiation angle of the curing lamp 110, and thus completing the adjustment of the illumination area.

[0045] By adjusting the light intensity and direction of multiple curing components 100, and superimposing multiple sets of ultraviolet light irradiating the photovoltaic glass, the light intensity of ultraviolet light near the photovoltaic glass can be made more uniform, the curing effect is better, and the quality of photovoltaic glass is higher. Furthermore, by superimposing ultraviolet light, the range of light intensity adjustment can be increased, thereby improving the applicability of the photovoltaic glass coating curing device.

[0046] In this embodiment, the current of the curing lamp 110 can be adjusted to regulate the intensity of the ultraviolet light emitted directly by the curing lamp 110. With the focusing or diffusing effect of the convex lens 131 and the concave lens 132 on the ultraviolet light emitted by the curing lamp 110, a wider range of light intensity adjustment can be achieved.

[0047] By using the photovoltaic glass coating curing device of this invention, the clamping part 120 is manually adjusted to adjust the position of the dimming plate 130, so that the convex lens 131 or concave lens 132 is aligned with the curing lamp 110, thereby focusing or diffusing the ultraviolet light emitted by the curing lamp 110, thus adjusting the light intensity of the ultraviolet light emitted by the curing lamp 110 and changing the light intensity of the ultraviolet light near the photovoltaic glass. The rotating adjustment part 140 is manually adjusted to make the curing lamp 110, the clamping part 120 and the dimming plate 130 rotate synchronously, thereby adjusting the illumination area and placing the photosensitive antireflective film coated on the photovoltaic glass in a suitable curing environment. This invention has a simple structure, low manufacturing cost and convenient adjustment.

[0048] Example 2:

[0049] As an optimization of Example 1, such as Figure 3 and Figure 4 As shown, the curing lamp 110 includes a bulb 111 and a lamp cover 112. The bulb 111 is installed inside the lamp cover 112, and the dimming plate 130 is attached to the opening of the lamp cover 112.

[0050] It should be noted that the lampshade 112 can focus the ultraviolet light emitted by the bulb 111, reducing the loss of ultraviolet light. The adjustment plate is attached to the opening of the lampshade 112, which can further reduce the loss of ultraviolet light, thereby reducing energy consumption. If the adjustment plate is not attached to the opening of the lampshade 112, the ultraviolet light emitted by the bulb 111 will diffuse out from the gap between the lampshade 112 and the adjustment plate, resulting in the loss of ultraviolet light. The larger the gap between the adjustment plate and the lampshade 112, the greater the loss of ultraviolet light.

[0051] Example 3:

[0052] As an optimization of Example 2, such as Figure 2 , Figure 3 and Figure 5As shown, the clamping part 120 includes a mounting plate 121 and a pressing unit 122. The mounting plate 121 includes a mounting member 1216 connected to the rotation adjustment part 140. The lampshade 112 is fixedly mounted on the mounting member 1216. A first connecting plate 1211 and a second connecting plate 1212 are fixedly connected to both ends of the mounting member 1216, respectively. A first support plate 1213 is fixedly connected to the side of the first connecting plate 1211 near the second connecting plate 1212. A second support plate 1215 is fixedly connected to the side of the second connecting plate 1212 near the first connecting plate 1211. The top surfaces of the first support plate 1213 and the second support plate 1215 are both in contact with the bottom surface of the dimming plate 130. The pressing unit 122 is mounted on the mounting plate 121 and is used to press the dimming plate 130 tightly onto the mounting plate 121.

[0053] The clamping unit 122 includes a fixed cylinder 1221, a first spring 1222, and a push rod 1223. The fixed cylinder 1221 is provided with a mounting groove 1224. One end of the first spring 1222 is fixedly installed in the mounting groove 1224, and the other end of the first spring 1222 is fixedly connected to the push rod 1223. The push rod 1223 is slidably connected to the mounting groove 1224. The second connecting plate 1212 is provided with a mounting hole 1217. The fixed cylinder 1221 is installed in the mounting hole 1217, and the push rod 1223 abuts against the dimming plate 130.

[0054] It should be noted that the first support plate 1213 and the second support plate 1215 are used to support the dimming plate 130, ensuring that the dimming plate 130 is always in contact with the opening of the lampshade 112. The first spring 1222 is in a compressed state, and the first spring 1222 pushes the push rod 1223 to squeeze the dimming plate 130. One side of the dimming plate 130 abuts against the push rod 1223, and the other side of the dimming plate 130 abuts against the first connecting plate 1211. With the limiting effect of the lampshade 112, the first support plate 1213 and the second support plate 1215 on the dimming plate 130, the position of the dimming plate 130 is fixed.

[0055] In this embodiment, each curing component 100 is provided with three sets of clamping units 122 to ensure that the dimming plate 130 is stably pressed between the first support plate 1213 and the second support plate 1215. The mounting hole 1217 is a threaded hole, and the fixing cylinder 1221 is threadedly connected to the mounting hole 1217 to facilitate the disassembly and replacement of the dimming plate 130 and the clamping unit 122.

[0056] Example 4:

[0057] As an optimization of Example 3, such as Figures 3-7As shown, a positioning block 1214 is fixedly connected to the side of the first support plate 1213 near the dimming plate 130. The dimming plate 130 has a sliding groove 133 that slides with the positioning block 1214. The sliding groove 133 includes a first positioning groove 1331, a connecting groove 1332 and a second positioning groove 1333 connected in sequence. The first positioning groove 1331 and the second positioning groove 1333 are located at both ends of the connecting groove 1332, and both the first positioning groove 1331 and the second positioning groove 1333 are located on the side of the connecting groove 1332 near the second connecting plate 1212.

[0058] It should be noted that when the positioning block 1214 is located in the first positioning groove 1331, the convex lens 131 is aligned with the curing lamp 110, and the dimming plate 130 is used to focus the light. When the positioning block 1214 is located in the second positioning groove 1333, the concave lens 132 is aligned with the curing lamp 110, and the dimming plate 130 is used to diffuse the light.

[0059] When it is necessary to change the focus from focused to diffused light, first push the dimming plate 130 away from the first support plate 1213 until the positioning block 1214 enters the connecting groove 1332 from the first positioning groove 1331. During this process, the dimming plate 130 pushes the push rod 1223 to move away from the first support plate 1213, the first spring 1222 is compressed, and the positioning block 1214 is located at one end of the connecting groove 1332. Then, pull the dimming plate 130 along the length of the connecting groove 1332. Positioning block 1214 is positioned at the other end of connecting groove 1332. Then, dimming plate 130 is released. Under the restoring force of first spring 1222, first spring 1222 extends and pushes push rod 1223 to move closer to first support plate 1213. Push rod 1223 pushes dimming plate 130 to move closer to first support plate 1213, so that positioning block 1214 enters second positioning groove 1333. At this time, concave lens 132 is aligned with curing lamp 110.

[0060] When it is necessary to change the diffused light to the focused light, the adjustment process is similar to the process of changing the focused light to the diffused light described above, and will not be repeated here. Through the cooperation of the first positioning groove 1331 or the second positioning groove 1333 and the positioning block 1214, the convex lens 131 or the concave lens 132 automatically aligns with the curing lamp 110, making the position adjustment of the dimming plate 130 more convenient and faster. Moreover, the first positioning groove 1331 and the second positioning groove 1333 have a limiting effect on the positioning block 1214, so the dimming plate 130 will not shift.

[0061] Example 5:

[0062] As an optimization of Example 4, such as Figure 2 , Figure 4 , Figure 8 and Figure 9As shown, the rotation adjustment part 140 includes a fixed rod 141, a fixed shaft 142, a first face gear 143, a second face gear 144, a cylindrical shell 145, a second spring 146, and a connecting member 147. The fixed rod 141 is fixedly connected to the mounting member 1216, the fixed shaft 142 is fixedly connected to the fixed rod 141, the first face gear 143 is fixedly sleeved with the fixed shaft 142, the second face gear 144 is meshed with the first face gear 143 and is movably sleeved with the fixed shaft 142, the cylindrical shell 145 is fixedly sleeved with the second face gear 144, one end of the second spring 146 is fixedly connected to the inner wall of the cylindrical shell 145, the other end of the second spring 146 abuts against the first face gear 143, and the connecting member 147 is fixedly connected to the outer wall of the cylindrical shell 145 and is fixedly connected to the mounting bracket 300.

[0063] It should be noted that when the orientation of the curing lamp 110 needs to be adjusted, the fixing rod 141 is pushed towards the cylindrical shell 145, compressing the second spring 146. The curing lamp 110, clamping part 120, dimming plate 130, fixing shaft 142, and first gear 143 move synchronously with the fixing rod 141 until the first gear 143 and the second gear 144 are completely separated. Then, the fixing rod 141 is rotated about the axis of the fixing shaft 142, and the curing lamp 110, clamping part 120, dimming plate 130, fixing shaft 142, and first gear 143 move synchronously with the fixing rod 141 until the first gear 143 and the second gear 144 are completely separated. One gear 143 rotates synchronously with the fixing rod 141 until the curing lamp 110 is in the correct orientation. The fixing rod 141 is then released. Under the restoring force of the second spring 146, the second spring 146 extends and pushes the first gear 143 to move closer to the second gear 144. The curing lamp 110, the clamping part 120, the dimming plate 130, the fixing shaft 142, and the fixing rod 141 move synchronously with the first gear 143 until the first gear 143 re-engages with the second gear 144, and the orientation of the curing lamp 110 is fixed.

[0064] Example 6:

[0065] As an optimization of Example 5, such as Figure 1 , Figure 10 and Figure 11 As shown, the loading assembly 200 includes a loading plate 210, a third spring 220, and a clamping plate 230. The loading plate 210 is mounted on the mounting bracket 300. A guide groove 211 is provided on one side of the loading plate 210, which slides with the clamping plate 230. One end of the third spring 220 is fixedly connected to the inner wall of the guide groove 211, and the other end of the third spring 220 is fixedly connected to the clamping plate 230. The top surface of the clamping plate 230 is flush with the top surface of the loading plate 210. A first baffle 212 is provided on the top side of the loading plate 210 away from the clamping plate 230, and a second baffle 231 is provided on the top side of the clamping plate 230 away from the loading plate 210.

[0066] The heights of both the first baffle 212 and the second baffle 231 are less than the thickness of the photovoltaic glass.

[0067] A support plate 410 is installed on the mounting bracket 300. The top surface of the support plate 410 is in contact with the bottom surface of the clamping plate 230. A third baffle 420 is provided on the top of the end of the support plate 410 away from the clamping plate 230.

[0068] It should be noted that when the photovoltaic glass is fixed on the carrier component 200, the top surface of the carrier plate 210 and the top surface of the clamping plate 230 are both in contact with the bottom surface of the photovoltaic glass, and the sides of the first baffle 212 and the second baffle 231 that are close to each other are respectively in contact with the two opposite sides of the photovoltaic glass.

[0069] When fixing the photovoltaic glass, first pull the clamp 230 away from the carrier plate 210 to make the distance between the clamp 230 and the carrier plate 210 appropriate. Then, place the photovoltaic glass on the top surface of the carrier plate 210. At this time, the top surface of the photovoltaic glass is in contact with the top surface of the clamp 230. During this process, the third spring 220 extends. After that, release the clamp 230. Under the restoring force of the third spring 220, the third spring 220 shortens and pulls the clamp 230 to move closer to the carrier plate 210 until the first baffle 212 and the second baffle 231 clamp the photovoltaic glass together. During the movement of the clamp 230, the guide groove 211 plays a guiding role, and the second baffle 231 and the second baffle 231 remain parallel.

[0070] If the height of the first baffle 212 and the second baffle 231 is greater than the thickness of the photovoltaic glass, some of the ultraviolet light emitted by the curing module 100 will be blocked by the first baffle 212 or the second baffle 231, affecting the uniformity of light intensity near the photovoltaic glass and hindering the curing of the photosensitive antireflective film.

[0071] The support plate 410 supports the clamping plate 230 to prevent the clamping plate 230 from tilting, which would cause the first baffle 212 and the second baffle 231 to no longer be parallel, reducing the clamping effect on the photovoltaic glass. In fact, during the curing process, the photovoltaic glass may fly off the load assembly 200 under the action of unbalanced forces on both sides. The third baffle 420 limits the clamping plate 230 to prevent the third spring 220 from being damaged due to excessive extension.

[0072] The embodiments of the utility model have been described above with reference to the accompanying drawings. However, the embodiments are not limited to the specific implementation methods described above. The specific implementation methods described above are merely illustrative and not restrictive. Those skilled in the art can make many other forms under the guidance of the embodiments without departing from the spirit of the embodiments and the scope of protection of the claims, and all of these forms are within the protection scope of the embodiments.

Claims

1. A photovoltaic glass coating and curing device, characterized in that, include: The curing assembly (100) includes a curing lamp (110), a clamping part (120), a dimming plate (130), and a rotation adjustment part (140). The curing lamp (110) is used to cure the photosensitive antireflective film. The curing lamp (110) is mounted on the clamping part (120). The clamping part (120) is used to clamp and fix the dimming plate (130). The dimming plate (130) is provided with a convex lens (131) and a concave lens (132) that cooperate with the curing lamp (110). The rotation adjustment part (140) is connected to the clamping part (120) and is used to adjust the orientation of the curing lamp (110). A carrier assembly (200) is disposed below the curing assembly (100) and is used to support the photovoltaic glass and fix its position. Mounting bracket (300), connected to the curing assembly (100) and the carrier assembly (200), for mounting the curing assembly (100) and the carrier assembly (200).

2. The photovoltaic glass coating and curing apparatus according to claim 1, characterized in that, The curing component (100) is provided in multiple sets.

3. The photovoltaic glass coating and curing apparatus according to claim 1, characterized in that, The curing lamp (110) includes a bulb (111) and a lampshade (112), the bulb (111) is installed inside the lampshade (112), and the dimming plate (130) is attached to the opening of the lampshade (112).

4. The photovoltaic glass coating and curing apparatus according to claim 3, characterized in that, The clamping part (120) includes a mounting plate (121) and a clamping unit (122). The mounting plate (121) includes a mounting member (1216) connected to the rotation adjustment part (140). The lampshade (112) is fixedly mounted on the mounting member (1216). A first connecting plate (1211) and a second connecting plate (1212) are fixedly connected to both ends of the mounting member (1216). The side of the first connecting plate (1211) closest to the second connecting plate (1212) is fixedly... A first support plate (1213) is fixedly connected to the second connecting plate (1212), and a second support plate (1215) is fixedly connected to the side of the second connecting plate (1212) near the first connecting plate (1211). The top surfaces of the first support plate (1213) and the second support plate (1215) are both in contact with the bottom surface of the dimming plate (130). The pressing unit (122) is installed on the mounting plate (121) and is used to press the dimming plate (130) tightly onto the mounting plate (121).

5. The photovoltaic glass coating and curing apparatus according to claim 4, characterized in that, The clamping unit (122) includes a fixed cylinder (1221), a first spring (1222), and a push rod (1223). The fixed cylinder (1221) is provided with a mounting groove (1224). One end of the first spring (1222) is fixedly installed in the mounting groove (1224), and the other end of the first spring (1222) is fixedly connected to the push rod (1223). The push rod (1223) is slidably connected to the mounting groove (1224). The second connecting plate (1212) is provided with a through mounting hole (1217). The fixed cylinder (1221) is installed in the mounting hole (1217), and the push rod (1223) abuts against the dimming plate (130).

6. The photovoltaic glass coating and curing apparatus according to claim 5, characterized in that, A positioning block (1214) is fixedly connected to the side of the first tray (1213) near the dimming plate (130). The dimming plate (130) has a sliding groove (133) that slides with the positioning block (1214). The sliding groove (133) includes a first positioning groove (1331), a connecting groove (1332), and a second positioning groove (1333) connected in sequence. The first positioning groove (1331) and the second positioning groove (1333) are located at both ends of the connecting groove (1332), and both the first positioning groove (1331) and the second positioning groove (1333) are located on the side of the connecting groove (1332) near the second connecting plate (1212).

7. The photovoltaic glass coating and curing apparatus according to claim 4, characterized in that, The rotation adjustment part (140) includes a fixed rod (141), a fixed shaft (142), a first face gear (143), a second face gear (144), a cylindrical shell (145), a second spring (146), and a connecting piece (147). The fixed rod (141) is fixedly connected to the mounting piece (146), the fixed shaft (142) is fixedly connected to the fixed rod (141), the first face gear (143) is fixedly sleeved with the fixed shaft (142), and the second face gear (144) is fixedly sleeved with the first face gear (145). 43) The meshing connection is made such that the second face gear (144) is movably sleeved with the fixed shaft (142), the cylindrical shell (145) is fixedly sleeved with the second face gear (144), one end of the second spring (146) is fixedly connected to the inner wall of the cylindrical shell (145), the other end of the second spring (146) abuts against the first face gear (143), the connecting piece (147) is fixedly connected to the outer wall of the cylindrical shell (145), and the connecting piece (147) is fixedly connected to the mounting bracket (300).

8. The photovoltaic glass coating and curing apparatus according to claim 1, characterized in that, The loading assembly (200) includes a loading plate (210), a third spring (220), and a clamping plate (230). The loading plate (210) is mounted on a mounting frame (300). A guide groove (211) is provided on one side of the loading plate (210) to slide with the clamping plate (230). One end of the third spring (220) is fixedly connected to the inner wall of the guide groove (211), and the other end of the third spring (220) is fixedly connected to the clamping plate (230). The top surface of the clamping plate (230) is flush with the top surface of the loading plate (210). A first baffle (212) is provided on the top side of the loading plate (210) away from the clamping plate (230), and a second baffle (231) is provided on the top side of the clamping plate (230) away from the loading plate (210).

9. The photovoltaic glass coating and curing apparatus according to claim 8, characterized in that, The heights of the first baffle (212) and the second baffle (231) are both less than the thickness of the photovoltaic glass.

10. The photovoltaic glass coating and curing apparatus according to claim 9, characterized in that, A support plate (410) is installed on the mounting bracket (300). The top surface of the support plate (410) is in contact with the bottom surface of the clamping plate (230). A third baffle (420) is provided on the top of the end of the support plate (410) away from the clamping plate (230).