This application is based upon and claims the benefit of priority from the prior Japanese Patent Application No. 2012-273782 filed on Dec. 14, 2012, the entire contents of which are incorporated herein by reference.
The embodiment discussed herein is related to a device configured to light an input operation section of an electronic device.
Sometimes, an electronic device such as a notebook computer is used in a dark environment. For example, when a notebook computer is used in an airplane, a user may perform an input operation of the keys of the notebook computer in a dark environment with low lighting in the airplane. In this case, it is desirable to light up only the keys, so that a user may recognize the keys of an operation section and other passengers are not bothered by the light.
Thus, a side lighting unit has been proposed in which light guiding material is disposed in the vicinity of an object to be lighted of an electronic device and an LED is disposed as a light source at one end of the light guiding material so that the object is irradiated with the light from the LED via the light guiding material. This technique is disclosed, for example, in International Publication Pamphlet No. WO 2007/097117. In addition, a technique has been proposed in which in an information processing device which is provided with an LCD having a backlight in the vicinity of an operation section (keyboard), light from the backlight is guided by a light guiding unit and an operation section is lighted from a diagonally upper position. This technique is disclosed, for example, in Japanese Laid-Open Patent Publication No. 2001-67145.
According to an aspect of the invention, a lighting device includes a light source which is disposed in a vicinity of a part to be lighted and provided for a function other than lighting the part to be lighted, and a light projecting part which is movable between a lighting position and a non-lighting position and configured to emit the light from the light source to the part to be lighted when the light projecting part is moved to the lighting position.
The object and advantages of the invention will be realized and attained by means of the elements and combinations particularly pointed out in the claims.
It is to be understood that both the foregoing general description and the following detailed description are exemplary and explanatory and are not restrictive of the invention, as claimed.
Providing an additional light source for lighting and light guiding material for guiding the light from the light source as disclosed in International Publication Pamphlet No. WO 2007/097117 hinders miniaturization and thinning of the electronic device. In addition, the number of components of the electronic device and manufacturing cost are increased.
As disclosed in Japanese Laid-Open Patent Publication No. 2001-67145, a light guiding unit for guiding light from a back light of a display device to a keyboard has a complicated structure, and thus miniaturization and thinning of the information processing device may be hindered. Furthermore, because the additional light guiding unit is provided, the manufacturing cost of the information processing device is increased accordingly.
Then, in order to solve the above-described problem, it is desirable to develop a lighting device without providing therein an additional light source or a complicated light guiding unit, the lighting device being capable of lighting up an operation section.
Next, an embodiment will be described with reference to the drawings.
A notebook computer 10 illustrated in
In the main body 20, a power button 40 and indicators 50A to 50E are arranged in the vicinity of the input operation section 26.
The power button 40 is a switch button for turning on or off the power supply of the notebook computer 10. The power button 40 is a component which is operated by an operator pressing with a finger and has a certain size so as to be easily pressed with a finger.
The indicators 50A to 50E are display lights which each display an operation state of the notebook computer 10. The indicators 50A to 50E light on to indicate ON/OFF states of various operations and functions.
In the present embodiment, various keys of the input operation section 26 are lighted up by using a light source for lighting up the power button 40 from the inside. In addition, the various keys of the input operation section 26 are lighted up by using a light source for lighting the indicators 50A to 50E.
First, a lighting device will be described which lights up the keys 22, 24 of the input operation section 26 by using the light source for lighting up the power button 40 from the inside. The input operation section 26 including the various keys 22, 24 is a part to be lighted and corresponds to a to-be-lighted part.
As illustrated in
Inside the main body 20, a substrate 60 is disposed below the power button 40 and a switch 62 is mounted on the substrate 60. The switch 62 is disposed so as to be located just below the switch pressing part 40d of the power button 40. Therefore, when the top surface 40a of the power button 40 is pressed and the power button 40 is lowered, the switch pressing part 40d is lowered to press the switch 62, and thus the switch 62 is in a conductive state. When the switch 62 is in a conductive state, a power on signal is supplied to a control unit (not illustrated) of the notebook computer 10, and the power supply of the notebook computer 10 is turned on.
A plurality of LEDs 64 are disposed as light sources for lighting the icon 40b around the switch 62 on the substrate 60. When power is supplied to the notebook computer 10, the LEDs 64 consistently light up so as to irradiate the inside of the power button 40 consistently and to light up the icon 40b.
As illustrated in
In the following, the shape of the power button 40 will be further described in detail. As illustrated in
As illustrated in
The top plate 40c of the power button 40 is also composed of a transparent material, and a reflective film is provided on the top surface 40a or the face on the other side (the face inside the power button) of the top surface 40a. The above-described icon 40b corresponds to a portion where no reflective film is formed, and light from the LEDs 64 passes through the icon 40b and is emitted to the outside of the power button 40. The reflective film is, for example, a metal thin film and may be formed in the power button 40 by a method such as vapor deposition. It is preferable that the reflective film be formed in the inner surface of the side wall 40e of the power button 40 illustrated in
As described above, the inner surfaces of the side wall 40e and the top plate 40c of the power button 40 each serve as a reflective surface for reflecting light from the LEDs 64. The light reflected by the reflective surfaces is concentrated in the transparent part 40f, passes through the transparent part 40f, and is emitted to the outside of the power button 40. In this manner, the inner reflective surfaces of the power button 40 and the transparent part 40f each correspond to a light projecting part for emitting light.
As illustrated in
In
Approximately the entire keys of the input operation section 26 is lighted up by the light through the transparent part 40f of the power button 40, thus approximately the entire input operation section 26 may be lighted up by the existing light sources (LEDs 64) provided for the power button 40.
The leaf spring 66 is provided as an elastic body for urging the power button 40, however, the elastic body is not limited to the leaf spring 66 and an elastic body such as a coil spring or a rubber element may be used.
When the input operation section 26 does not have to be lighted, the power button 40 is lightly pressed down with a finger, and thus the power button 40 may be returned to the original position (corresponding to the non-lighting position illustrated in
Combination of the leaf spring 66 for urging the power button 40 and the slide knob 42 for holding the power button 40 has been described as an example of raising and lowering mechanism of the aforementioned power button 40, however, the raising and lowering mechanism is not limited to this and other well-known mechanisms may be used. For example, the lateral surface of the power button 40 may be provided with a spiral groove and movement of the power button 40, which is rotated while being raised or lowered, is utilized, so that the power button 40 may be held at an upper or lower position. Optionally, the raising and lowering mechanism of a depression electrical switch may also be used.
As described above, according to the present embodiment, a lighting device for lighting the input operation section 26 includes the light projecting part having the inner reflective surfaces of the power button 40 and the transparent part 40f, and the LEDs 64 which are existing light sources for lighting the power button 40 from the inside. The light sources of the lighting device is the existing LEDs 64, and an additional light source does not have to be provided. The mechanism for raising the power button 40 only includes the slide knob 42 for locking the power button 40, and the leaf spring 66 or the coil spring 68 which are each an elastic body for urging the power button 40 upward. Therefore, the number of additional components for forming the lighting device is only a few and the structure of the lighting device is simple. An increase of the manufacturing cost of the notebook computer 10 for forming the lighting device is almost negligible.
The notebook computer 10 according to the present embodiment is provided with a lighting device which uses the light source of the indicators 50A to 50E in addition to the above-described lighting device which uses the light source of the power button 40.
The reflective plate 80 is provided above the LED 74. The reflective plate 80 is a horizontally long U-shaped member made of resin which is vertically movable above the LED 74. That is to say, when both sides of the reflective plate 80 are raised with fingers, an opening is formed between the upper surface 20a of the housing of the main body 20 and the reflective plate 80, and light from the LED 74, which is disposed below the reflective plate 80, may be emitted to the outside of the housing of the main body 20 through the opening.
The bottom of the reflective plate 80 is provided with a reflective surface 80a which is inclined at an angle of approximately 45 degrees with respect to the direction to the LED 74. The reflective surface 80a is provided in order to reflect the light from the LED 74 and to bend the traveling direction of the light for approximately 90 degrees.
The sides of both ends of the U-shaped reflective plate 80 are formed so as to open outward, thus are pressed against the housing of the main body 20. Consequently, frictional force between the sides of both ends of the reflective plate 80 and the housing of the main body 20 is capable of holding the reflective plate 80 at a raised position. The raised position of the reflective plate 80 corresponds to the lighting position. When the input operation section 26 does not have to be lighted, the upper surface of the reflective plate 80 may be lightly pressed down with a finger to be returned to the original position (corresponding to the non-lighting position illustrated in
When the reflective plate 80 is in a raised state as illustrated in
Approximately the entire keys of the input operation section 26 is lighted up by the light from the reflective plate 80, thus approximately the entire input operation section 26 may be lighted up by the existing light source (LED 74) provided for the indicator 50.
In the present embodiment, the opening 20c of the housing of the main body 20 is exposed by raising or lowering the entire reflective plate 80, however, the opening 20c may also be exposed by moving the reflective plate 80 with another method. For example, the opening 20c of the housing may be exposed by rotating the reflective plate 80 around the center of one side (the side away from the input operation section 26) of the reflective plate 80 in the longitudinal direction.
In the present embodiment, the reflective plate 80 is provided for a plurality of the LEDs 74 for a plurality (five pieces) of indicators 50A to 50E, however, the number of LEDs as the light source for one reflective plate is not limited to 5 pieces, and may be 2 to 4 pieces or 6 pieces or more.
According to the present embodiment, the lighting device for lighting the input operation section 26 includes the reflective plate 80 which has the reflective surface 80a serving as a light projecting part and may be raised or lowered, and the LED 74 which is the existing light source for emitting the reflective plane 80a. The light sources of the lighting device is the existing LEDs 74, and an additional light source does not have to be provided. In addition, the reflective plate 80 is just raised or lowered by holding with fingers, and a raising and lowering mechanism may not be particularly provided. Therefore, the number of additional components for forming the lighting device is only a few and the structure of the lighting device is simple. An increase of the manufacturing cost of the notebook computer 10 for forming the lighting device is almost negligible.
All examples and conditional language recited herein are intended for pedagogical purposes to aid the reader in understanding the invention and the concepts contributed by the inventor to furthering the art, and are to be construed as being without limitation to such specifically recited examples and conditions, nor does the organization of such examples in the specification relate to a showing of the superiority and inferiority of the invention. Although the embodiment of the present invention has been described in detail, it should be understood that the various changes, substitutions, and alterations could be made hereto without departing from the spirit and scope of the invention.
Number | Date | Country | Kind |
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2012-273782 | Dec 2012 | JP | national |