Laminated Glass

By forming notch or cutout on the laminated glass functional layer on the car windshield, the problem that functional layer is prone to wrinkles when curvature is high is solved, and the effect of preventing wrinkles is achieved and the appearance quality of windshield is improved.

JP7675508B2Active Publication Date: 2025-05-13NIPPON SHEET GLASS CO LTD
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Patent Information

Application Number
JP2020148606
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2020-09-04
Publication Date
2025-05-13
Estimated Expiration
2040-09-04

AI Technical Summary

Technical Problem

Laminated glass on existing cars Windshield In the case of high curvature, functional layer is prone to wrinkles, affecting the appearance.

Method used

Form a notch or cutout on the functional layer of the laminated glass to absorb the wrinkles caused by curvature and hide them within the area of ​​the shielding layer.

Benefits of technology

Effectively prevent the appearance of functional layer wrinkles, making the windshield look smoother and more beautiful, and avoiding unnecessary aesthetic problems.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide laminated glass for automobiles capable of preventing unfavorable appearance caused by wrinkles formed on a functional layer of an intermediate film disposed between two curved glass plates.SOLUTION: Laminated glass relating to the present invention comprises an outside glass plate, an inside glass plate disposed opposite the outside glass plate, and an intermediate film disposed between the outside glass plate and the inside glass plate. The outside glass plate and the inside glass plate are curved in the horizontal direction and the vertical direction. The intermediate film includes a functional layer and an adhesive layer for fixing the functional layer between the two glass plates. The functional layer has at least one notch or incision extending from the end thereof.SELECTED DRAWING: Figure 5
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Description

[Technical field]

[0001] The present invention relates to a laminated glass for use in automobiles and the like. [Background technology]

[0002] Automotive laminated glass used for windshields and the like is composed of an outer glass sheet, an inner glass sheet, and an interlayer film disposed between these glass sheets. In recent years, various functions have been added to the interlayer film; for example, a functional layer such as a heat-shielding film is disposed within the interlayer film in order to suppress a temperature rise caused by light from outside the vehicle (for example, Patent Document 1). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] JP 2016-64965 A Summary of the Invention [Problem to be solved by the invention]

[0004] Incidentally, the above-mentioned laminated glass is formed into a curved shape so as to be convex toward the outside of the vehicle. To explain in more detail, for example, many windshields have a three-dimensional structure that is curved along an axis extending in the horizontal direction and also curved along an axis extending in the vertical direction. Therefore, when a functional layer, which is a flat film, is sandwiched between the two glass plates, wrinkles are generated in the functional layer, resulting in a poor appearance.

[0005] The present invention has been made to solve the above problems, and has an object to provide a laminated glass for automobiles that can prevent poor appearance due to wrinkles occurring in the functional layer of an interlayer film that is disposed between two curved glass sheets. [Means for solving the problem]

[0006] Item 1. A laminated glass to which an information acquisition device that acquires information about the outside of the vehicle by light can be attached via a bracket, An outer glass plate; An inner glass plate disposed opposite the outer glass plate; a functional layer disposed between the outer glass sheet and the inner glass sheet; an adhesive layer for fixing the functional layer between the two glass plates; a shielding layer provided on at least one of the outer glass sheet and the inner glass sheet, the shielding layer suppressing transmission of visible light from outside the vehicle; Equipped with The outer glass sheet and the inner glass sheet are curved along the horizontal direction and the vertical direction, The shielding layer is A peripheral region formed on a peripheral portion of the laminated glass to be fixed to a vehicle body; a mounting area protruding from the peripheral area and to which at least a portion of the bracket is attached; Equipped with A laminated glass, in which when a pair of imaginary lines extending perpendicularly to the edge of the laminated glass from both ends of a connection portion of the mounting region with the peripheral region are defined, at least one notch or cut is formed on the edge of the functional layer in a region in the peripheral region sandwiched between the pair of imaginary lines and at a position corresponding to either the mounting region.

[0007] Item 2. The laminated glass according to item 1, wherein the functional layer has at least one notch formed therein.

[0008] Item 3. The laminated glass according to item 2, wherein a tip of the notch is formed with an acute corner.

[0009] Item 4. The outer glass plate and the inner glass plate are formed into a rectangular shape having long sides and short sides, Item 4. The laminated glass according to any one of items 1 to 3, wherein the notch or cut is formed on the long side.

[0010] Item 5. The horizontal and vertical curvature radii of the outer glass plate and the inner glass plate are different, Item 5. The laminated glass according to any one of items 1 to 4, wherein the notch or cut is formed on an edge along a direction in which the radius of curvature is smaller.

[0011] Item 6. The attachment area is provided with an information acquisition area for receiving the light, Item 6. The laminated glass according to any one of items 1 to 5, wherein the notch or cut is not formed in the information acquisition region.

[0012] Item 7. The attachment area is provided with an information acquisition area for receiving the light, Item 6. The laminated glass according to any one of items 1 to 5, wherein the cutout is formed so as to encompass the information acquisition area.

[0013] Item 8. The laminated glass according to any one of Items 1 to 7, wherein the functional layer has at least one second notch having an acute tip formed in a position different from the notch or notch on the edge where the notch or notch is formed.

[0014] Item 9. The laminated glass according to any one of Items 1 to 8, wherein a plurality of the notches or cuts are formed.

[0015] Item 10. The laminated glass according to any one of Items 1 to 9, wherein the notch or cut is further formed at a position corresponding to a peripheral region of the shielding layer.

[0016] Item 11. The laminated glass according to any one of Items 1 to 10, wherein the functional layer has a thickness of 2.0 mm or less.

[0017] Item 12. The laminated glass according to any one of Items 1 to 11, wherein the functional layer is formed of a projection film for a HUD.

[0018] Item 13. The laminated glass according to any one of Items 1 to 12, wherein the interlayer film includes the functional layer and a pair of the adhesive layers sandwiching the functional layer. Effect of the Invention

[0019] According to the present invention, it is possible to prevent wrinkles occurring in the functional layer of the interlayer film disposed between two curved glass sheets, which can result in a poor appearance. [Brief description of the drawings]

[0020] [Figure 1] FIG. 1 is a plan view showing an embodiment in which an automotive laminated glass according to the present invention is applied to a windshield. [Diagram 2] FIG. 2 is a cross-sectional view of FIG. [Diagram 3] FIG. 2 is a partial cross-sectional view of the windshield of FIG. [Figure 4] FIG. 2 is an exploded cross-sectional view of a portion of the windshield of FIG. 1. [Diagram 5] FIG. 1 is a block diagram illustrating an example of an image processing device. [Figure 6] FIG. 2 is a plan view of the windshield of FIG. [Figure 7A] FIG. 13 is a diagram showing an example of a cutout. [Figure 7B] FIG. 13 is a diagram showing an example of a cutout. [Figure 7C] FIG. 13 is a diagram showing an example of a cutout. [Figure 7D] FIG. 13 is a diagram showing an example of a cutout. [Figure 8] FIG. 13 is a diagram showing an example of a cut. [Figure 9] FIG. 13 is a diagram showing another example of the cut. [Figure 10] FIG. 2 is a plan view showing a windshield according to the embodiment. [Figure 11] FIG. 13 is a plan view showing a cutout in the embodiment. [Figure 12] FIG. 11 is a diagram showing wrinkles that have occurred in a windshield according to a comparative example. [Figure 13]FIG. 11 is a diagram showing wrinkles that have occurred in a windshield according to a comparative example. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0021] First, the configuration of the windshield according to this embodiment will be described with reference to Figures 1 and 2. Figure 1 is a plan view of the windshield, and Figure 2 is a cross-sectional view of Figure 1. For ease of explanation, the up-down direction in Figure 1 will be referred to as "up-down", "vertical", and "length", and the left-right direction in Figure 1 will be referred to as "left-right". Figure 1 illustrates the windshield as seen from the inside of the vehicle. That is, the back side of the paper in Figure 1 is the outside of the vehicle, and the front side of the paper in Figure 1 is the inside of the vehicle.

[0022] As shown in Fig. 1 and Fig. 2, this windshield has a laminated glass 10 having a substantially rectangular shape, and is installed on the vehicle body in an inclined state. The laminated glass 10 has an outer glass sheet 11 arranged on the outer side of the vehicle, an inner glass sheet 12 arranged on the inner side of the vehicle, and an intermediate film 13 arranged between these glass sheets 11 and 12. A shielding layer 110 that blocks the view from outside the vehicle is provided on the periphery of the laminated glass 10, and the imaging device 2 is arranged so that it cannot be seen from outside the vehicle by the shielding layer 110. However, the imaging device 2 is a camera for photographing the situation outside the vehicle. Therefore, a photographing window (opening) 113 is provided in the shielding layer 110 at a position corresponding to the imaging device 2, and the imaging device 2 arranged inside the vehicle can photograph the situation outside the vehicle through the photographing window 113.

[0023] An image processing device 3 is connected to the photographing device 2, and images captured by the photographing device 2 are processed by this image processing device 3. The photographing device 2 and the image processing device 3 constitute an in-vehicle system 5, which can provide various information to passengers in accordance with the processing of the image processing device 3. Each component will be described below.

[0024] <1. Laminated glass> <1-1. Glass plate> First, the outer glass plate 11 and the inner glass plate 12 will be described. The outer glass plate 11 and the inner glass plate 12 can be made of known glass plates, and can also be made of heat absorbing glass, general clear glass, green glass, or UV green glass. However, these glass plates 11 and 12 need to achieve a visible light transmittance that meets the safety standards of the country in which the automobile is used. For example, the outer glass plate 11 can ensure the required solar radiation absorptance, and the inner glass plate 12 can adjust the visible light transmittance to meet the safety standards. Examples of clear glass, heat absorbing glass, and soda lime glass are shown below.

[0025] (Clear glass) SiO2:70~73% by mass Al2O3:0.6~2.4% by mass CaO: 7~12% by mass MgO: 1.0~4.5% by mass RO: 13 to 15 mass% (R is an alkali metal) Total iron oxide converted to Fe2O3 (T-Fe2O3): 0.08-0.14 mass%

[0026] (Heat absorbing glass) The composition of the heat ray absorbing glass can be, for example, based on the composition of clear glass, with the ratio of total iron oxide converted to Fe2O3 (T-Fe2O3) being 0.4 to 1.3 mass%, the ratio of CeO2 being 0 to 2 mass%, the ratio of TiO2 being 0 to 0.5 mass%, and the glass skeletal components (mainly SiO2 and Al2O3) being reduced by the increases in T-Fe2O3, CeO2, and TiO2.

[0027] (Soda-lime glass) SiO2: 65~80% by mass Al2O3: 0~5% by mass CaO: 5~15% by mass MgO: 2% by mass or more NaO: 10~18% by mass K2O: 0~5% by mass MgO+CaO: 5~15% by mass Na2O+K2O: 10~20% by mass SO3:0.05~0.3% by mass B2O3: 0~5% by mass Total iron oxide converted to Fe2O3 (T-Fe2O3): 0.02-0.03 mass%

[0028] The thickness of the laminated glass 10 according to this embodiment is not particularly limited. However, the total thickness of the outer glass sheet 11 and the inner glass sheet 12 can be, for example, 2.1 to 6 mm. From the viewpoint of weight reduction, the total thickness of the outer glass sheet 11 and the inner glass sheet 12 is preferably 2.4 to 3.8 mm, more preferably 2.6 to 3.4 mm, and particularly preferably 2.7 to 3.2 mm.

[0029] The outer glass sheet 11 is primarily required to be durable and impact resistant against external obstacles, and as a windshield for an automobile, it is required to have impact resistance against flying objects such as pebbles. On the other hand, the thicker the sheet, the heavier it becomes, which is not preferable. From this viewpoint, the thickness of the outer glass sheet 11 is preferably 1.8 to 2.3 mm, and more preferably 1.9 to 2.1 mm. The thickness to be adopted can be determined according to the application of the glass.

[0030] The thickness of the inner glass sheet 12 can be the same as that of the outer glass sheet 11, but can be made thinner than the outer glass sheet 11, for example, to reduce the weight of the laminated glass 10. Specifically, in consideration of the strength of the glass, the thickness is preferably 0.6 to 2.0 mm, more preferably 0.8 to 1.6 mm, and particularly preferably 1.0 to 1.4 mm. Furthermore, the thickness of the inner glass sheet 12 is preferably 0.8 to 1.3 mm. The thickness to be adopted for the inner glass sheet 12 can be determined depending on the application of the glass.

[0031] As described later, the laminated glass 10 is curved so as to be convex toward the outside of the vehicle, and in this case, the thickness is measured at two points above and below a center line (curve OP described later) that extends vertically through the center of the laminated glass 10 in the left-right direction. The measuring device is not particularly limited, but for example, a thickness gauge such as SM-112 manufactured by Techclock Corporation can be used. During measurement, the laminated glass 10 is placed so that the curved surface thereof is placed on a flat surface, and the edge of the laminated glass 10 is clamped with the thickness gauge to perform the measurement.

[0032] The outer glass plate 11 and the inner glass plate 12 are curved in the vertical direction and the horizontal direction so as to be convex toward the outside of the vehicle, and the radii of curvature are different. The surface of the outer glass plate 11 facing the inside of the vehicle and the surface of the inner glass plate 12 facing the outside of the vehicle are in contact with each other via the intermediate film 13, so that the radii of curvature of these surfaces can be considered to be approximately the same. The radius of curvature in the vertical direction of this portion can be, for example, 1200 to 16000 mm, and the radius of curvature in the horizontal direction can be, for example, 400 to 6000 mm, with the radius of curvature in the horizontal direction being smaller. The method of measuring the radius of curvature is not particularly limited, but for example, the surface shape of each glass plate 11, 12 can be measured three-dimensionally and calculated based on the measured value, or the surface shape of each glass plate 11, 12 can be measured by a depth gauge and the value can be calculated from the measured value.

[0033] <1-2. Interlayer film> Fig. 3 is a partial cross-sectional view of the laminated glass. As shown in Fig. 3, the interlayer film 13 includes a first transparent adhesive layer 131 bonded to the outer glass sheet 11, a second transparent adhesive layer 132 bonded to the inner glass sheet 12, and a transparent functional layer 133 disposed between the first and second adhesive layers 131, 132.

[0034] The first adhesive layer 131 and the second adhesive layer 132 are not particularly limited as long as they are formed in a sheet shape and bonded to the glass plates 11, 12 by fusion, and can be formed, for example, from polyvinyl butyral resin (PVB), ethylene vinyl acetate resin (EVA), etc. In general, the hardness of polyvinyl acetal resin can be controlled by (a) the polymerization degree of polyvinyl alcohol, which is the starting material, (b) the acetalization degree, (c) the type of plasticizer, (d) the addition ratio of the plasticizer, etc.

[0035] Before being bonded to each glass plate 11, 12, the first adhesive layer 131 and the second adhesive layer 132 may be embossed on their surfaces to easily push out air when bonding to the functional layer 133 or when bonding to each glass plate 11, 12.

[0036] The thickness of the first adhesive layer 131 and the second adhesive layer 132 is not particularly limited, but is preferably 0.001 to 2.0 mm, and more preferably 0.1 to 1.0 mm, for example. However, the thicknesses of both adhesive layers 131, 132 may be the same or different.

[0037] The total thickness of both adhesive layers 131, 132 is preferably 0.76 mm or more in order to ensure the penetration resistance of the windshield as stipulated in, for example, JIS R3211 and R3212.

[0038] Films having various functions can be used depending on the application as the functional layer 133. For example, a heat shielding film, a heat generating film, a projection film for HUD, a light emitting film, a film for an antenna, etc. can be used.

[0039] The heat-shielding film is a film that is configured to reflect or absorb infrared rays in order to suppress a rise in temperature inside a vehicle.

[0040] The heat generating film is used to remove fog or melt ice, and can be made of a plurality of thin wires that generate heat when a voltage is applied, or a transparent conductive film supported by a base film.

[0041] The projection film projects information by light emitted from a head-up display device (HUD device). The projection film is not particularly limited as long as it is a film that reflects light and has a refractive index different from that of both adhesive layers 131 and 132, but is preferably a film that can control polarization and has a reflectance of p-polarized light higher than that of glass. The size of the projection film is not particularly limited, but is preferably larger than the area where information is projected.

[0042] The light-emitting film has an LED or the like built in and emits light that indicates predetermined characters, figures, etc.

[0043] Antenna films, like heat generating films, are films with antennas for FM, AM, DTV, DAB, etc. arranged on a base film.

[0044] The above are examples of the functional layer 133, and the present invention is not limited to these.

[0045] The thickness of the film constituting the functional layer 133 as described above is not particularly limited, but is preferably 0.01 to 2.0 mm, more preferably 0.02 to 1.0 mm, and even more preferably 0.03 to 0.6 mm. Thus, the upper limit of the thickness of the peripheral edge face of the film is preferably 2.0 mm. This is because if the thickness of the edge face of the film is large, the functional layer 133 is smaller than both adhesive layers 131, 132, and a step is generated in the intermediate film 13, and this step may cause air to be trapped and bubbles to be generated when the intermediate film 13 is sandwiched between the glass plates 11, 12.

[0046] The thermal shrinkage of the functional layer 133 is preferably small, and is preferably 4% or less, more preferably 3% or less, and particularly preferably 2% or less when heated at 130°C for 30 minutes. In particular, when a projection film is used as the functional layer 133, it is preferably 1% or less when heated at 130°C for 30 minutes. The thermal shrinkage can be measured as follows. First, a film having the functional layer 133 is marked at intervals of 500 mm, the film is placed on a substrate without being fixed, and the film is kept in an electric furnace kept at 130°C for 30 minutes, and the distance between the marks is measured to calculate the thermal shrinkage. The thermal shrinkage of the functional layer 133 may be different in the horizontal direction and the vertical direction. For example, it is preferable that the thermal shrinkage in the horizontal direction is smaller than the thermal shrinkage in the vertical direction.

[0047] The thickness of each of the adhesive layers 131, 132 and the functional layer 133 can be measured, for example, as follows. First, a cross section of the windshield (e.g., a cross section when cut) is magnified 175 times and displayed using a microscope (e.g., Keyence VH-5500). Then, the thickness of each of the adhesive layers 131, 132 and the functional layer 133 is identified and measured by visual inspection. At this time, in order to eliminate variations due to visual inspection, the measurement is performed five times, and the average value is taken as the thickness of each of the adhesive layers 131, 132 and the functional layer 133.

[0048] The size of each of the adhesive layers 131, 132 is the same as that of the outer glass plate 11 and the inner glass plate 12, but the size of the functional layer 133 is smaller than that of both adhesive layers 131, 132. Specifically, the periphery of the functional layer 133 is located inside the periphery of each of the glass plates 11, 12. For example, it is preferable that the periphery of the functional layer 133 is located 10 mm or more inside from the periphery of each of the glass plates 11, 12. One of the purposes of this is to prevent moisture from entering from the edge of the intermediate film 13 when wrinkles are generated at the edge of the functional layer 133, as described later. The position of the edge of the functional layer 133 can be adjusted so that it is hidden by the peripheral region 111 of the shielding layer 110 described later.

[0049] The above-mentioned adhesive layers 131, 132 and functional layer 133 can be prepared individually (three layers in total), stacked, and disposed between the glass plates 11, 12 as described below. In addition, for example, an adhesive layer can be applied to one side of the functional layer 133. That is, as shown in FIG. 4, one functional layer 133 coated with the adhesive layer 132 and one first adhesive layer 131 can be prepared. Alternatively, the adhesive layers 131, 132 can be bonded to both sides of the functional layer 133 in advance, and the three layers can be integrated. The adhesive layer 132 applied to the functional layer 133 can be thin, for example, 1 to 50 μm. In this case, the first adhesive layer 131, which has a large thickness, can be disposed on the outside of the vehicle. This is because, for example, when a projection film is used as the functional layer 133, the distance from the surface of the inner glass plate 12 facing the vehicle to the projection film 133 is shortened, and therefore the optical path is shortened, and light attenuation can be reduced. Alternatively, it is possible to prepare a functional layer 133 having an adhesive layer applied to both sides thereof. It is also possible to arrange the first adhesive layer 131, which is thicker, on the vehicle inner side, and the second adhesive layer 132 on the vehicle outer side.

[0050] <2. Shielding layer> Next, the shielding layer 110 will be described. As illustrated in FIG. 1 and FIG. 2, in this embodiment, the shielding layer 110 is laminated on the vehicle-inside surfaces of the outer glass sheet 11 and the inner glass sheet 12. Specifically, as shown in FIG. 1, the shielding layer 110 according to this embodiment can be divided into a peripheral region 111 along the peripheral portion of the laminated glass 10 and a protruding region (mounting region) 112 protruding downward in a rectangular shape from the upper side of the laminated glass 10. The peripheral region 111 blocks the incidence of light from the peripheral portion of the windshield. On the other hand, the protruding region 112 prevents the imaging device 2 arranged inside the vehicle from being seen from outside the vehicle. The shielding layer 110 laminated on the outer glass sheet 11 and the shielding layer 110 laminated on the inner glass sheet 12 can be made to have roughly the same shape, but they do not necessarily have to have the same shape.

[0051] However, if the shielding layer 110 shields the shooting range of the imaging device 2, the imaging device 2 will not be able to capture the situation outside the vehicle. For this reason, in this embodiment, a trapezoidal imaging window 113 is provided in the protruding region 112 of the shielding layer 110 at a position corresponding to the imaging device 2 so that the imaging device 2 can capture the situation outside the vehicle. In other words, the imaging window 113 is provided independently from the non-shielding region 120 located inside the shielding layer 110 in the surface direction. Furthermore, this imaging window 113 is an area where the material of the shielding layer 110 is not laminated, and the laminated glass has the above-mentioned visible light transmittance, making it possible to capture the situation outside the vehicle. The size of the imaging window 113 is not particularly limited, but may be, for example, 7000 mm 2 Moreover, in the case where the camera of the photographing device 2 is a stereo camera, or where the photographing device 2 has a plurality of cameras, a plurality of photographing windows 113 are provided.

[0052] As described above, the shielding layer 110 may be laminated only on the surface of the inner glass sheet 12 facing the vehicle interior side, or only on the surface of the outer glass sheet 11 facing the vehicle interior side.

[0053] Next, a description will be given of the material of the shielding layer 110. The material of this shielding layer 110 may be appropriately selected depending on the embodiment as long as it can block the view from outside the vehicle, and for example, a dark colored ceramic such as black, brown, gray, or dark blue may be used.

[0054] When black ceramic is selected as the material for the shielding layer 110, for example, black ceramic is laminated on the periphery of the inner surface 130 of the inner glass plate 12 by screen printing or the like, and the laminated ceramic is heated together with the inner glass plate 12. This allows the shielding layer 110 to be formed on the periphery of the inner glass plate 12. Also, when printing the black ceramic, a region is provided where the black ceramic is not printed. This allows the imaging window 113 to be formed. Note that various materials can be used as the ceramic for the shielding layer 110. For example, ceramics having the composition shown in Table 1 below can be used for the shielding layer 110.

[0055] [Table 1] *1, Main components: copper oxide, chromium oxide, iron oxide and manganese oxide *2, Main ingredients: bismuth borosilicate, zinc borosilicate

[0056] The shielding layer 110 may be made of, for example, polyurethane, in addition to the ceramic as described above. Alternatively, the shielding layer 110 may be made of a resin film, which may be attached to the glass plates 11 and 12 to form the shielding layer 110.

[0057] <3. In-vehicle systems> Next, an in-vehicle system 5 including an imaging device (information acquisition device) 2 and an image processing device 3 will be described with reference to Fig. 5. Fig. 5 illustrates an example of the configuration of the in-vehicle system 5. As illustrated in Fig. 5, the in-vehicle system 5 according to this embodiment includes the imaging device 2 and an image processing device 3 connected to the imaging device 2.

[0058] The image processing device 3 is a device that processes the captured image acquired by the photographing device 2. The image processing device 3 has, for example, general hardware such as a storage unit 31, a control unit 32, and an input / output unit 33 connected by a bus as a hardware configuration. However, the hardware configuration of the image processing device 3 is not limited to this example, and components can be added, omitted, or added as appropriate to the specific hardware configuration of the image processing device 3 depending on the embodiment.

[0059] The storage unit 31 stores various data and programs (not shown) used in the processes executed by the control unit 32. The storage unit 31 may be realized, for example, by a hard disk or a recording medium such as a USB memory. The various data and programs stored in the storage unit 31 may be acquired from a recording medium such as a CD (Compact Disc) or a DVD (Digital Versatile Disc). Furthermore, the storage unit 31 may be called an auxiliary storage device.

[0060] As described above, the laminated glass 10 is disposed at an angle with respect to the vertical direction and is curved. The image capturing device 2 captures the situation outside the vehicle through the laminated glass 10. Therefore, the captured image captured by the image capturing device 2 is deformed according to the attitude, shape, refractive index, optical defects, etc. of the laminated glass 10. In addition, aberration inherent to the camera lens of the image capturing device 2 is also added. Therefore, the storage unit 31 may store correction data for correcting the image deformed by the aberration of the laminated glass 10 and the camera lens.

[0061] The control unit 32 has one or more processors such as a microprocessor or a CPU (Central Processing Unit), and peripheral circuits (ROM (Read Only Memory), RAM (Random Access Memory), interface circuits, etc.) used for processing by the processor. The ROM, RAM, etc. may be called main memory devices in the sense that they are arranged in an address space handled by the processor in the control unit 32. The control unit 32 functions as an image processing unit 321 by executing various data and programs stored in the memory unit 31.

[0062] The image processing unit 321 processes the captured image acquired by the image capturing device 2. The processing of the captured image can be appropriately selected according to the embodiment. For example, the image processing unit 321 may recognize the subject appearing in the captured image by analyzing the captured image by pattern matching or the like. In this embodiment, since the image capturing device 2 captures the situation in front of the vehicle, the image processing unit 321 may further determine whether or not a living being such as a human is captured in front of the vehicle based on the subject recognition. If a person is captured in front of the vehicle, the image processing unit 321 may output a warning message by a predetermined method. Also, for example, the image processing unit 321 may perform a predetermined processing process on the captured image. Then, the image processing unit 321 may output the processed captured image to a display device (not shown) such as a display connected to the image processing device 3.

[0063] The input / output unit 33 is one or more interfaces for transmitting and receiving data to and from a device external to the image processing device 3. The input / output unit 33 is, for example, an interface for connecting to a user interface, or an interface such as a Universal Serial Bus (USB). In this embodiment, the image processing device 3 is connected to the photographing device 2 via the input / output unit 33, and acquires an image photographed by the photographing device 2.

[0064] Such an image processing device 3 may be a device designed specifically for the service to be provided, or a general-purpose device such as a PC (Personal Computer) or a tablet terminal.

[0065] The photographing device 2 is attached to a bracket (not shown), and the bracket is attached in the protruding region 112 of the shielding layer 110. In this state, the attachment of the photographing device 2 to the bracket and the attachment of the bracket to the shielding layer 110 are adjusted so that the optical axis of the camera of the photographing device 2 passes through the photographing window 113. A cover (not shown) is attached to the bracket so as to cover the photographing device 2. The photographing device 2 is therefore arranged in a space surrounded by the laminated glass 10, the bracket, and the cover, and is not visible from the inside of the vehicle, and only a part of the photographing device 2 is visible from the outside of the vehicle through the photographing window 113. The photographing device 2 and the above-mentioned input / output unit 33 are connected by a cable (not shown), and this cable is drawn out from the cover and connected to the image processing device 3 arranged at a predetermined position inside the vehicle. Depending on the shape of the bracket, the bracket may be attached over both the protruding region 112 and the peripheral region 111 adjacent thereto.

[0066] <4. Notches or cuts formed in the interlayer> A notch or cut is formed at an edge of the functional layer 133 of the interlayer film 13 according to this embodiment. This is to prevent wrinkles from occurring in the functional layer 133 when the interlayer film 13 is sandwiched between the glass plates 11 and 12 to manufacture the laminated glass 10, as described below. Note that, as shown in Fig. 4, when the functional layer 133 and the second adhesive layer 132 are integrated, a notch or cut is also formed in the second adhesive layer.

[0067] FIG. 6 shows an example of the cutout. As described above, the edge of the functional layer 133 is arranged so as to be hidden by the shielding layer 110, and the cutout 14 is also arranged so as to be hidden by the shielding layer 110. Specifically, the cutout 14 is formed as follows. First, a pair of imaginary lines X extending perpendicularly to the edge of the laminated glass from both sides of the protruding region 112 at the connecting portion between the protruding region 112 and the peripheral region 111 are defined. Then, the region sandwiched between the pair of imaginary lines in the peripheral region and the protruding region are defined as a cutout region (region surrounded by a thick line in FIG. 6). In this embodiment, first, two cutouts 14 are formed at a predetermined interval in this cutout region above the photographing window 113. Furthermore, a cutout 14 is formed at each of the four corners of the functional layer 133. Although each cutout 14 is formed in a triangular shape having a sharp corner at the tip, the shape of the cutout 14 is not particularly limited.

[0068] For example, the notch 14 shown in Fig. 7A has a triangular shape that narrows toward the tip, but the tip is formed in an arc shape. The notch 14 shown in Fig. 7B has a trapezoidal shape that narrows toward the tip. The notch 14 shown in Fig. 7C has an arc shape. Furthermore, the notch 14 shown in Fig. 7D has a polygonal shape. Note that these are examples of the notch 14, and various shapes can be used as long as it has a predetermined area.

[0069] In addition to the notch 14 having an area, a cut 15 may be formed as shown in Fig. 8. The cut 15 is formed by a line, but in addition to being formed in a straight line as shown in Fig. 8, it may be formed in a curved line, or may be a combination of multiple straight lines or curved lines.

[0070] Furthermore, the number and positions of the notches 14 or the cutouts 15 are not particularly limited and can be set appropriately. For example, in the example of FIG. 6, six notches 14 are formed, but this is only one example, and one or more notches 14 may be formed on the edge of the functional layer 133. However, it is preferable that the notches 14 or the cutouts 15 are formed at least in the cutout region. Alternatively, in addition to the example of FIG. 6, the notches 14 or the cutouts 15 can be formed at any position of the upper side, lower side, right side, or left side other than the corners of the functional layer 133. Furthermore, the notches 14 and the cutouts 15 can be mixed. Note that the notches formed on the upper side of the functional layer 133 other than the cutout region correspond to the second notch of the present invention.

[0071] 4, when using a functional layer 133 coated with an adhesive layer 132, the notch 14 or the cut 15 can be formed in the functional layer 133 and the adhesive layer 132. In this case, the notch 14 or the cut 15 is not formed in the first adhesive layer 131.

[0072] <5. Windshield manufacturing method> Next, an example of a method for manufacturing the windshield configured as above will be described. First, a method for manufacturing the laminated glass 1 will be described.

[0073] First, the above-mentioned shielding layer 110 is laminated on at least one of the flat outer glass plate 11 and the inner glass plate 12. Next, these glass plates 11, 12 are formed so as to be curved. The forming method is not particularly limited, and a known method can be adopted. For example, after a flat glass plate passes through a heating furnace, it can be pressed by an upper mold and a lower mold to be formed into a curved shape. Alternatively, the flat outer glass plate and the inner glass plate are overlapped, placed on a frame-shaped forming mold, and passed through a heating furnace. As a result, both glass plates are softened and formed into a curved shape by their own weight.

[0074] Thus, when the outer glass sheet 11 and the inner glass sheet 12 are formed into a curved shape, the interlayer film 13 is sandwiched between the outer glass sheet 11 and the inner glass sheet 12, and then placed in a rubber bag, and pre-bonded at about 70 to 110°C while being suctioned under reduced pressure. As described above, the interlayer film 13 is a laminate of the adhesive layers 131, 132 and the functional layer 133. Other methods of pre-bonding are also possible. For example, the interlayer film 13 is sandwiched between the outer glass sheet 11 and the inner glass sheet 12, and heated in an oven at 45 to 65°C. Then, the laminated glass is pressed by a roll at 0.45 to 0.55 MPa. Next, the laminated glass is heated again in an oven at 80 to 105°C, and then pressed again by a roll at 0.45 to 0.55 MPa. Thus, the pre-bonding is completed.

[0075] Next, the main bonding is performed. The laminated glass that has been subjected to the preliminary bonding is subjected to the main bonding in an autoclave, for example, at 8 to 15 atmospheres and 100 to 150°C. Specifically, the main bonding can be performed, for example, under conditions of 14 atmospheres and 140°C. In this way, the laminated glass 10 according to the present embodiment is manufactured. Note that, when the functional layer 133 to which the adhesive layer 132 is applied is used, the adhesive layer 132 has a notch 14 or a cut 15 formed therein. However, since both the adhesive layers 131 and 132 are melted by heating, the cut 14 formed in the adhesive layer 132 is filled with the first adhesive layer 131. Therefore, both the glass plates 11 and 12 are fixed by the adhesive layers 131 and 132.

[0076] <6. Features> According to the windshield described above, the planar functional layer 133 arranged between the curved glass plates 11 and 12 has the notch 14 or the cut 15 formed therein so as to be located within the above-mentioned cutout region. When the inventor removed the shielding layer 110 and checked, wrinkles extending from the notch 14 or the cut 15 were confirmed. It was also confirmed that the wrinkles generally extend in the same direction as the notch 14 or the cut 15. Therefore, even if wrinkles occur, they occur within the cutout region of the shielding layer 110, so that the wrinkles can be made invisible from the outside. That is, by forming the cut 14 or the cut 15 where the wrinkles occur within the cutout region, the wrinkles can be hidden within the cutout region together with the cutout 14 or the cut 15. Therefore, it is possible to prevent the windshield from looking bad.

[0077] If the notch 14 or the cutout 15 is located within the peripheral region 111, it is permissible for the notch 14 or the cutout 15 to extend beyond the cutout region, provided that the notch 14 or the cutout 15 extends beyond the cutout region by a small amount. However, if it is desired to prevent the wrinkles from extending beyond the cutout region as much as possible, the notch 14 or the cutout 15 is preferably at least 10 mm away from the imaginary line X, and more preferably at least 20 mm away (see FIG. 11, for example). The vertical distance from the tip of the notch 14 or the cutout 15 to the photographing window 113 is preferably at least 20 mm, more preferably at least 30 mm away, and particularly preferably at least 40 mm away.

[0078] Furthermore, the inventors have found that, as described above, by forming the cuts 14 or notches 15 in the functional layer 133 in corners and the like other than the cut region, it is possible to suppress the occurrence of wrinkles.

[0079] The inventors have confirmed that wrinkles do not occur due to the notch 14 or the cut 15. That is, when the planar functional layer 133 is disposed between the curved glass plates 11 and 12, the notch 14 or the cut 15 absorbs the deformation of the edge of the functional layer 133, so that wrinkles may not occur.

[0080] <7. Variations> Although one embodiment of the present invention has been described above, the present invention is not limited to the above embodiment, and various modifications are possible without departing from the spirit of the present invention. The following modified examples can be appropriately combined.

[0081] <7-1> The shape of the shielding layer 4 is not particularly limited, and in the above example, the shielding layer 4 has the peripheral region 111 and the protruding region 112, but for example, the shape and position of the protruding region 112 and the shape and number of the imaging window 113 can be appropriately changed, and the width of the peripheral region 111 does not have to be constant and may vary. As described above, the shielding layer 13 may be formed on either the outer glass plate 11 or the inner glass plate 12, and in this case, even if wrinkles occur in the functional layer 133, the wrinkles may be hidden by the shielding layer 110 of either the glass plate 11, 12.

[0082] <7-2> In the above embodiment, the functional layer 133 is sandwiched between the two adhesive layers 131, 132, but for example, the intermediate layer 13 may be formed by laminating one adhesive layer and one functional layer 133. In this case, the functional layer 133 needs to contain a material that can be adhered to the glass plates 11, 12, and may contain, for example, PVB, PVA, EVA, etc.

[0083] <7-3> The shape of the cutout can be as shown in Fig. 9. In the example of Fig. 9, the cutout 14 is formed in a rectangular shape extending downward from the edge of the functional layer 133, and is configured to include the imaging window (information acquisition area) 113 formed in the shielding layer 13. This can further suppress the occurrence of wrinkles in the functional layer 133 within the imaging window 113. The shape of the cutout may be other than rectangular, and is not particularly limited as long as it is configured to include the imaging window.

[0084] <7-4> In the above embodiment, the laminated glass for automobiles of the present invention is applied to a windshield, but it can also be applied to a rear window, a side window, etc. In this case, the shielding layer 110 does not necessarily have to be provided. EXAMPLES

[0085] Examples of the present invention will be described below, but the present invention is not limited to the following embodiments.

[0086] Using the manufacturing method shown in the above embodiment, a windshield shown in Fig. 10 was prepared as an example. In this example, two notches 14 were formed above the shooting window 113 on the upper side of the functional layer 133. The specific dimensions of the notches 14 are as shown in Fig. 11. The functional layer 133 is formed so that the periphery of the functional layer 133 is located 10 mm inward from the periphery of the glass plates 11 and 12. Meanwhile, a comparative example was prepared in which no notches were formed in the above example.

[0087] The glass plates and interlayers were as follows: Outer glass panel: 2.3mm thick float glass Inner glass panel: 2.0mm thick float glass First adhesive layer: PVB with a thickness of 800 μm Functional layer with adhesive layer: A 30μm thick PVB is applied to a 60μm thick projection film (vertical heat shrinkage rate 3%, horizontal heat shrinkage rate 2%). The notch was formed in the functional layer with the adhesive layer.

[0088] When the windshields according to the embodiment and the comparative example manufactured in this way were observed, wrinkles were confirmed in the area surrounded by a white circle in the comparative example, as shown in Fig. 12 and Fig. 13. That is, as shown in Fig. 12, many wrinkles were observed along the upper side of the windshield. Also, as shown in Fig. 13, three wrinkles were observed on the right side of the windshield. In addition, although not shown, wrinkles extending from the peripheral region 111 into the protruding region 112 were also confirmed. On the other hand, in the windshield according to the embodiment, a wrinkle (about 15 mm) extending downward from the tip of the notch 14 was confirmed, although not shown. However, this wrinkle did not reach the photographing window 113, and was hidden by the shielding layer 110 together with the notch 14, so it was not visible from the outside. [Explanation of symbols]

[0089] 10. Laminated Glass 11 Outer glass plate 12 Inner glass plate 13 Interlayer 131 1st adhesive layer 132 Second adhesive layer 133 Functional Layer 110 Shielding layer

Claims

1. A laminated glass to which an information acquisition device that acquires information about the outside of a vehicle by light can be attached via a bracket, An outer glass plate; An inner glass plate disposed opposite the outer glass plate; a functional layer disposed between the outer glass sheet and the inner glass sheet; an adhesive layer for fixing the functional layer between the two glass plates; a shielding layer provided on at least one of the outer glass sheet and the inner glass sheet, the shielding layer suppressing transmission of visible light from outside the vehicle; Equipped with The outer glass sheet and the inner glass sheet are curved along the horizontal direction and the vertical direction, The shielding layer is A peripheral region formed on a peripheral portion of the laminated glass to be fixed to a vehicle body; a mounting area protruding from the peripheral area and to which at least a portion of the bracket is attached; Equipped with when a pair of imaginary lines extending perpendicularly to an edge of the laminated glass from both ends of a connection portion of the attachment region with the peripheral region are defined, at least one notch or cut in which wrinkles may occur is formed on the edge of the functional layer in a region in the peripheral region that is sandwiched between the pair of imaginary lines and at a position corresponding to either the attachment region, and a wrinkle is formed extending from at least one of the notch or cut, The attachment area is provided with an information acquisition area for receiving the light, The information acquisition area does not have the notch or cut, The laminated glass, wherein the shielding layer is configured to cover the wrinkles.

2. The laminated glass according to claim 1 , wherein the functional layer has at least one notch formed therein.

3. The laminated glass according to claim 2 , wherein a tip of the notch is formed by an acute corner.

4. The outer glass plate and the inner glass plate are formed in a substantially rectangular shape having long sides and short sides, The laminated glass according to claim 1 , wherein the notch or cut is formed on the long side.

5. The outer glass sheet and the inner glass sheet have different radii of curvature in the horizontal and vertical directions, The laminated glass according to claim 1 , wherein the notch or cut is formed on an edge along a direction in which the radius of curvature is smaller.

6. 6. The laminated glass according to claim 1, wherein the functional layer has at least one second notch having an acute tip formed in a position different from the notch or cut in an edge where the notch or cut is formed.

7. The laminated glass according to claim 1 , wherein a plurality of the notches or cuts are formed.

8. The laminated glass according to claim 1 , wherein the notch or cut is further formed at a position corresponding to a peripheral region of the shielding layer.

9. The laminated glass according to claim 1 , wherein the functional layer has a thickness of 2.0 mm or less.

10. The laminated glass according to claim 1 , wherein the functional layer is formed of a projection film for a head-up display (HUD).

11. The laminated glass according to claim 1 , wherein the interlayer film comprises the functional layer and a pair of the adhesive layers sandwiching the functional layer.

Citation Information

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