1. Field of the Invention
The present invention relates to a device that uses a general-purpose material to display a light pattern (for example, a logo) of desired color and shape on a surface of the device.
2. Description of the Related Art
There have been conventionally known light emitting devices on which different colors are visible when the light source is turned off and when the light source is turned on. For example, in a light emitting device described in Japanese Patent Application Laid-open No. H06-19411, the color of light emitted from a light source and transmitted through a surface member is visible when the light source is turned on, whereas the color of ambient light reflected on the surface is visible when the light source is turned off. This device accomplishes presenting to view distinctively different colors when the light emitting device is turned off and when the light emitting device is turned on by using a special coating film which has the characteristics described above as a color variable member.
The conventional light emitting device requiring a special coating film which gives reflected light and transmitted light different colors cannot obtain a desired color by mixing general-purpose paints freely. The resultant problem is that, when used in an electronic device such as a portable device to display a logo or the like, the light emitting device described above limits the body color of the product and the color of the logo.
Further, in the case of a product such as the above-mentioned portable device that comes in a variation of colors, it is desirable from the standpoint of mounting process to use a common light source in all variations of the product irrespective of color differences, and varying the color of light emitted from the light source from one product color to another is therefore not a practical adjustment.
The present invention solves the problems of prior art described above by providing a technology for presenting to view light of different color tones when a light source is turned on and when the light source is turned off by using a material that gives reflected light and transmitted light similar color tones.
The present invention also provides a technology for improving the degree of freedom in selecting colors of light that are visible when the light source is turned on and when the light source is turned off.
According to an exemplary embodiment of the present invention, there is provided an electronic device for displaying a light pattern in a section of a surface by turning on a light source. The electronic device includes: the light source; a first light-transmissive colored layer provided on the surface and has reflectance and transmittance that peak in a wavelength range of light of a first color; and a second light-transmissive colored layer provided on a path of light that is emitted from the light source and reaches the first light-transmissive colored layer, the second light-transmissive colored layer having transmittance that peaks in a wavelength range of light of a second color different from the first color. The second light-transmissive colored layer has light transmission characteristics adjusted such that light of a desired color exits the section of the surface where the light emitted from the light source reaches when the light source is turned on.
In another exemplary embodiment, the electronic device further includes a light shielding layer disposed between the light source and the first light-transmissive colored layer, a part of the light shielding layer including a light transmitting pattern. The second light-transmissive colored layer is placed along a path of light being emitted from the light source, transmitted through the light transmitting pattern, and reaching the first light-transmissive colored layer. The second light-transmissive colored layer has light transmission characteristics adjusted such that light of a desired color exits the section of the surface where the light emitted from the light source and transmitted through the light transmitting pattern reaches when the light source is turned on.
In yet another exemplary embodiment, the light source is an aggregation of a plurality of light source components arranged so as to display the light pattern in the section of the surface.
In yet another exemplary embodiment, in the section of the surface, light reflected from the first light-transmissive colored layer is visible when the light source is turned off, and a color of light emitted from the light source and transmitted through the second light-transmissive colored layer and the first light-transmissive colored layer is visible when the light source is turned on.
In yet another exemplary embodiment, the second light-transmissive colored layer has light transmission characteristics adjusted such that light having the same color as that of light emitted from the light source exits the section of the surface when the light source is turned on.
In yet another exemplary embodiment, the second color is a complementary color of the first color.
In yet another exemplary embodiment, one of the first color and the second color is a color selected from the group consisting of red, green, and blue.
In yet another exemplary embodiment, the light source is a white light source.
In yet another exemplary embodiment, the first light-transmissive colored layer and the second light-transmissive colored layer are each made from one of ink and paint.
In yet another exemplary embodiment, the light transmitting pattern is shaped like one of letters and a graphic form.
In yet another exemplary embodiment, the electronic device further includes: an input interface configured to receive an instruction from a user; and a processor configured to control turning on and off of the light source based on the instruction from the user.
In yet another exemplary embodiment, the electronic device further includes: a sensor configured to detect a tilt; and a processor configured to control turning on and off of the light source based on the tilt detected by the sensor.
According to an exemplary embodiment of the present invention, there is provided a light emitting unit configured to display a light pattern in a section of a surface of a device by turning on a light source. The light emitting unit includes: the light source; a first light-transmissive colored layer having reflectance and transmittance that peak in a wavelength range of light of a first color; and a second light-transmissive colored layer provided on a path of light that is emitted from the light source and reaches the first light-transmissive colored layer, the second light-transmissive colored layer having transmittance that peaks in a wavelength range of light of a second color different from the first color. The second light-transmissive colored layer has light transmission characteristics adjusted such that light of a desired color exits the section of the surface where the light emitted from the light source reaches when the light source is turned on.
In another exemplary embodiment, the light emitting unit further includes a light shielding layer disposed between the light source and the first light-transmissive colored layer, the light shielding layer including a light transmitting pattern. The second light-transmissive colored layer is placed along a path of light being emitted from the light source, transmitted through the light transmitting pattern, and reaching the first light-transmissive colored layer. The second light-transmissive colored layer has light transmission characteristics adjusted such that light of a desired color exits the section of the surface where the light emitted from the light source and transmitted through the light transmitting pattern reaches when the light source is turned on.
In yet another exemplary embodiment, the light source is an aggregation of a plurality of light source components arranged so as to display the light pattern in the section of the surface.
According to an exemplary embodiment of the present invention, there is provided a light-transmissive panel for use in an electronic device for displaying a light pattern in a section of a surface by turning on a light source. The light-transmissive panel includes: a first light-transmissive colored layer having reflectance and transmittance that peak in a wavelength range of light of a first color; and a second light-transmissive colored layer provided on a path of light that is emitted from the light source and reaches the first light-transmissive colored layer, the second light-transmissive colored layer having transmittance that peaks in a wavelength range of light of a second color different from the first color. The second light-transmissive colored layer has light transmission characteristics adjusted such that light emitted from the light source and transmitted through the first light-transmissive colored layer has a desired color when the light source is turned on.
In another exemplary embodiment, the light-transmissive panel further includes a light shielding layer disposed close to the first light-transmissive colored layer, a part of the light shielding layer including a light transmitting pattern. The second light-transmissive colored layer is placed along a path of light being emitted from the light source, transmitted through the light transmitting pattern, and reaching the first light-transmissive colored layer. The second light-transmissive colored layer has light transmission characteristics adjusted such that light being emitted from the light source, transmitted through the light transmitting pattern, and exiting the first light-transmissive colored layer has a desired color when the light source is turned on.
According to yet another present invention, the color of ambient light reflected from the first light-transmissive colored layer is mainly visible when the light source is turned off, and the color of light transmitted through the second light-transmissive colored layer and the first light-transmissive colored layer both is visible when the light source is turned on. The present invention therefore does not need such a coating film having special characteristics as the one used in conventional light emitting devices. As a result, a device on which distinctively different colors are visible when the device is turned off and when the device is turned on is realized at low cost.
Other features, elements, processes, steps, characteristics and advantages of the present invention will become more apparent from the following detailed description of preferred embodiments of the present invention with reference to the attached drawings.
An embodiment of the present invention is described below with reference to the drawings. Before a description of a specific embodiment is given, a basic structure and principle according to the embodiment of the present invention are described.
The light source 2 can be a general-purpose light source such as a light emitting diode, a fluorescent lamp, or a light bulb. The light source 2 emits white light in the illustrated example, but may emit other types of light than white light.
The first light-transmissive colored layer 3 have a reflectance and a transmittance that peak in the wavelength range of the first color light as described above. The first light-transmissive colored layer 3 can be made from a general-purpose material such as light-transmissive ink, paint, or color filter. The first light-transmissive colored layer 3 is typically provided on a surface of the device. Accordingly, the first color which is the main color of light reflected by the first light-transmissive colored layer 3 is visible on the surface of the device.
The light shielding layer 4 is made from non-light-transmissive material except the light transmitting pattern 4a, which constitutes a part of the light shielding layer 4, and is disposed between the first light-transmissive colored layer 3 and the light source 2. The light transmitting pattern 4a is formed in the shape of a pattern to be displayed on the surface of the device. The light transmitting pattern 4a is shaped like letters or a graphic form, and “ABC” is indicated in the example of
The second light-transmissive colored layer 5 is provided along the path of light that is emitted from the light source 2, is transmitted through the light transmitting pattern 4a, and reaches the first light-transmissive colored layer 3. The second light-transmissive colored layer 5 is interposed between the light shielding layer 4 and the light source 2 in the example of
Parts (a), (b), and (c) of
Part (c) of
Part (b) of
The light transmitted through the second light-transmissive colored layer 5 enters the light shielding layer 4. Of the light incident on the light shielding layer 4, light that arrives at the region of the light transmitting pattern 4a is transmitted as it is whereas light that arrives at other regions is lost. Only the light transmitted through the light transmitting pattern 4a reaches the first light-transmissive colored layer 3 as a result. The light that is transmitted through the light transmitting pattern 4a and reaches the first light-transmissive colored layer 3, too, has the spectral distribution of part (b) of
Part (a) of
Through the above-mentioned process, a light pattern having the same shape as that of the light transmitting pattern 4a is displayed on the surface of the device when the light source 2 is turned on. The second color in the example described above is determined as yellow because it has been determined that the body color of the device is to be blue on the premise that the light source 2 used emits white light. In the case where light emitted from the light source 2 and the device body have other colors, the second color, too, is changed to a color suited to the colors of the emitted light and the device body.
As described above, according to the embodiment of the present invention, a light pattern having a desired shape such as a logo can be displayed in a desired color on a surface of a device with the use of a general-purpose light source and a general-purpose light-transmissive material. The color of light emitted from the light source therefore does not need to be varied to match, for example, color variations of the electronic device, and a pattern can be displayed in a desired color merely by varying the light transmission characteristics of the second light-transmissive colored layer 5. In short, the embodiment of the present invention has a valuable effect in that light emission improved in flexibility and reduced in cost compared to conventional technologies is accomplished.
In the example described above, light pattern of an arbitrary shape is displayed by providing the light shielding layer 4 which has the light transmitting pattern 4a. The same result can be attained without providing the light shielding layer 4. The light shielding layer 4 can be omitted by using a light source that is capable of emitting light in the same pattern as a light pattern to be displayed on the surface. A second basic structure example of the embodiment of the present invention is described below.
An advantage of the structure example of
A more specific description of the embodiment of the present invention is given below.
Described first is a case where a light emitting unit according to the embodiment of the present invention is used in a digital photo frame.
The screen unit 10 includes an acrylic panel 11, which serves as a base material transmissive of light, a front cover 12, an LCD unit 13, a logo light unit 14, which uses a white light source, and a back cover 15.
The acrylic panel 11 is a part bonded to the front cover 12 so as to cover the front side (the top side in
The logo light unit 14 is a part for lighting up a brand logo provided in the logo portion 18 on the acrylic panel 11. The logo light unit 14 has, for example, a white light emitting diode and emits white light at a relatively high luminance. The logo portion 18 is visible only when the logo light unit 14 is turned on. When the logo light unit 14 is turned off, the logo portion 18 shows a color similar to that of the frame portion 17 and therefore is not visible or does not stand out.
The front cover 12 is a part for fixing the LCD unit 13 and the logo light unit 14 in an appropriate position lengthwise, widthwise, and front to back. The back cover 15 is a part for covering the back of the screen unit 10. The LCD unit 13 is a part for displaying a photograph or other images saved in a storage device such as a memory (not shown), and a screen of a graphical user interface (GUI).
In this embodiment, three types of original printing plates for forming the colored layer 50, the light shielding layer 60, and the emission color adjusting layer 70 are used to form an ink layer structure on the acrylic panel 11. Any known printing method can be employed but, from the standpoint of manufacture cost and difficulty, using silk printing is considered to be the best. With silk printing, the logo transmission portion 62 is created by applying ink onto a mesh sheet shaped into the desired shape. The manufacture method for the layers is not limited to printing and the material of the layers is not limited to ink. Other materials for the layers than ink can be, for example, paint, tape, or a filter.
A description is given below of the structures of the respective layers formed on the base material of the acrylic panel 11 with the use of the three types of original printing plates described above.
The colored layer 50, the light shielding layer 60, and the emission color adjusting portion 73 which are formed by printing in this embodiment may be formed by other methods. Other methods of forming the layers than printing include, for example, application and sticking a sheet or tape. In the case where the emission color adjusting layer 70 is implemented by a transmissive sheet or tape, an empty space is created between the colored layer 50 and the emission color adjusting layer 70 as illustrated in
The emission color adjusting layer 70 may be provided between the colored layer 50 and the light shielding layer 60 as illustrated in
In this embodiment, the colored layer 50 functions as the first light-transmissive colored layer of the present invention, the light shielding layer 60 functions as the light shielding layer of the present invention, the emission color adjusting layer 70 functions as the second light-transmissive colored layer of the present invention, and the logo light unit 14 functions as the light source of the present invention.
The emission color adjusting layer 70 is provided closer to the logo light unit 14 than the colored layer 50 is. With this structure, the color of ambient light reflected by the colored layer 50 is mainly visible when the light source is turned off, and the color of light transmitted through the emission color adjusting layer 70 and the colored layer 50 both is visible when the light source is turned on. In addition, a light emission pattern of an arbitrary shape can be obtained irrespective of the shape of the light source because the light shielding layer 60 is provided to partially block light from the light source.
How the logo portion 18 provided in the frame portion 17 of the acrylic panel 11 is made visible is described below.
In
The frame portion 17 of the acrylic panel 11 is visible as the reflected light 90. When the logo light unit 14 is turned off, the color of the reflected light 91 is substantially the same as that of the reflected light 90 and the logo portion 18 is therefore not visible or does not stand out. A part of the incident light 80 reaches the light shielding portion 63, thereby causing reflection from the light shielding portion 63. The reflected light 91 and the reflected light 90 are therefore not completely the same in color and light amount. The light shielding portion 63 in this embodiment is silver as mentioned above in order to minimize the influence of the color of the light shielding portion 63 on the reflected light 90. However, the light shielding portion 63 does not always need to be silver and can have any color as long as light from the light source can be blocked.
When the logo light unit 14 is turned on, on the other hand, combined light of the transmitted light 100 and the reflected light 91 is visible. In this embodiment, the light amount of the logo light unit 14 is set such that the light amount of the transmitted light 100 is much larger than the light amount of the reflected light 91, and the color of the reflected light 91 is therefore not discernible and most of the visible color is the color of the transmitted light 100. The transmitted light 100 of the logo light unit 14 is made to look white by the following two-stage processing.
A part of light emitted from the logo light unit 14 that reaches other regions than the logo transmission portion 62 is blocked by the light shielding portion 63 and becomes the lost light 110, which is not visible. Accordingly, a light pattern that is exactly the same as the shape of the logo transmission portion 62 can be made visible by using the logo light unit 14 which is shaped for general use.
As described above, the digital photo frame 400 of this embodiment presents to view light of completely different color tones when the light source is turned on and when the light source is turned off by using a general-purpose ink which gives reflected light and transmitted light similar color tones, instead of using a special paint. In the case where the selected color variation of the frame portion 17 is pink as in the digital photo frame 400 of this embodiment, the device may be designed to display a logo in white only when the light source is turned on whereas the logo portion 18 appears pink like its surrounding region when the light source is turned off. The color of the digital photo frame 400 is not limited to pink and, when a different color is selected, the same effect can be obtained with the identical logo light unit 14 by giving the emission color adjusting layer 70 light transmission characteristics suited to the selected color.
This embodiment can thus fulfill both the demand for manufacturing a plurality of types of products in a variation of colors by varying the color of the frame portion and the demand for using the same color light source for all of the frame color variations. In other words, this embodiment has a valuable effect in that a desired body color and a desired light emission color are obtained with the same light source by merely varying the colored layer 50 and the emission color adjusting layer 70. Another effect of this embodiment is that, because the colored layer 50 and the emission color adjusting layer 70 can be provided on the same acrylic panel 11, models having color variations are easily produced by giving the other parts of the product than the acrylic panel 11 a shared design and simply switching the acrylic panel 11.
The effects of this embodiment could be obtained without the emission color adjusting layer 70 by changing the light source to one that emits green light itself. However, if the emission color adjusting layer 70 is not provided, the light source used needs to be capable of producing both a frame portion color to be viewed when the light source is turned off and the light emission color to be obtained when the light source is turned on. This is inferior to the structure of this embodiment in that a general-purpose light source cannot be used. The inability to obtain a desired color also makes this inferior to the structure of this embodiment because there is generally only a limited selection of light source colors to choose from.
The logo portion 18 in this embodiment is lit in a color close to that of light emitted from the logo light unit 14 by using the complementary color of the colored layer 50 for the emission color adjusting layer 70. However, the color of the emission color adjusting layer 70 does not need to be the complementary color of the colored layer 50. For example, the logo portion 18 can be lit in yellow by using the colored layer 50 that is red and the emission color adjusting layer 70 that is green as illustrated in
The light source in this embodiment is the logo light unit 14 which is a white light source, but it is not always necessary to use a white light source.
As described above, according to this embodiment, the digital photo frame 400 which has a high degree of freedom in selecting colors that are visible when the light source is turned on and when the light source is turned off can be provided at a low cost.
Described next are other components and functions of the digital photo frame 400 according to this embodiment. The digital photo frame 400 may further include, for example, the following components and functions.
The digital photo frame 400 of this embodiment may have a function of stopping light emission from the logo portion 18 when the main body in a lateral position is rotated to a longitudinal position as illustrated in
The digital photo frame 400 may also have a function of switching between displaying and not displaying the logo portion 18 in response to an input from the user. This function is implemented by the processor 120 by controlling the turning on/off of the logo light unit 14 based on the user's instruction input via the input interface 130. This provides a function of manually erasing a logo to the user who does not like logo display or the like.
In the manner described above, by allowing a flexible adjustment of how the logo portion 18 is displayed based on the state of the device or the user's operation, the digital photo frame 400 with higher added values can be provided.
A light emission method according to the present invention which is applied to the digital photo frame 400 in this embodiment can be used in any device. Examples in which this light emission method is applied to other electronic devices are described below.
The present invention makes it possible to easily display a light pattern of an arbitrary shape in an arbitrary color by using a general-purpose material. The present invention is therefore applicable to all kinds of devices including digital photo frames and television sets for kitchens. The present invention is particularly effective when a product is to be made available in a variation of colors such as pink, black, and white.
While the present invention has been described with respect to preferred embodiments thereof, it will be apparent to those skilled in the art that the disclosed invention may be modified in numerous ways and may assume many embodiments other than those specifically described above. Accordingly, it is intended by the appended claims to cover all modifications of the invention that fall within the true spirit and scope of the invention.
This application is based on Japanese Patent Applications No. 2011-199300 filed on Sep. 13, 2011 and No. 2012-003831 filed on Jan. 12, 2012, the entire contents of which are hereby incorporated by reference.
Number | Date | Country | Kind |
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2011-199300 | Sep 2011 | JP | national |