1. Field of the Invention
The present invention relates to a manipulation input device suitable to a cellular phone and a portable music player, particularly to a low-profile manipulation input device.
2. Description of the Related Art
Conventionally, for example, as shown in
However, in the manipulation input device, elastic pawl portions 155 and 155 extended from the manipulation plate 150 are latched and assembled in a pair of elastic engagement holders 113 and 113 cut and raised from an outer circumferential edge portion of the base 110. Therefore, when the manipulation input device is assembled in a chassis of the cellular phone, the elastic engagement holder 113 is easily caught to abstract the assembly.
Because the manipulation plate 150 of the manipulation input device is formed by a resin molded component, fatigue fracture is easily generated by a repeatedly-applied pressing-down force. Therefore, even if the thickness of the manipulation plate is decreased to thin the manipulation input device, there is a limitation to the thinning. Additionally, the limitation to the thinning of the manipulation plate increases a distance between the ring magnet of the manipulation dial rotatably supported by the upper surface of the manipulation plate and the magnetic-field detection element mounted in the upper surface of the printed-circuit board. Therefore, the magnetic-field detection element decreases sensitivity to the ring magnet, and it is necessary to use the ring magnet having a large magnetic force, i.e., the ring magnet having a large sectional area. Accordingly, a height of the whole of the manipulation input device is increased, which results in a problem in that the manipulation input device cannot be thinned.
In view of the foregoing, an object of the present invention is to provide a low-profile manipulation input device having an excellent assembly property and a high magnetic sensitivity property.
In order to solve the above problems, a manipulation input device according to a first aspect of the present invention includes a base; a printed-circuit board in which a plurality of push-button switches and a magnetic-field detection element are mounted on an upper surface thereof, the printed-circuit board adhering integrally to an upper surface of the base; a manipulation member in which ring-shape plate spring and a pedestal portion are integrated, a pressing projection manipulably press-contacting a push-button switch of the printed-circuit board by fixing a mounting portion to an outer circumferential edge portion of the upper surface of the base, the pressing projection being provided toward a lower surface of the pedestal portion, the mounting portion being extended downward from an outer circumferential edge portion of the ring-shape plate spring; and a manipulation dial in which a ring magnet is assembled in a lower surface thereof, N poles and S poles being alternatively arranged in the ring magnet, the manipulation dial being rotatably assembled in an upper surface of the pedestal portion, wherein a change in magnetic flux of the ring magnet is detected with the magnetic-field detection element to detect a rotating direction by rotating the manipulation dial, and the push-button switch is manipulated with the pressing projection provided in the lower surface of the pedestal portion of the manipulation member by pressing the manipulation dial.
In the first aspect of the present invention, the mounting portion extended downward from the outer circumferential edge portion of the ring-shape plate spring is fixed to the outer circumferential edge portion of the upper surface of the base. Therefore, unlike the conventional technique, it is not necessary that the elastic engagement holder be cut and raised in the base, and it is not necessary to avoid the elastic engagement holder when the manipulation input device is assembled in the chassis of the cellular phone. As a result, an installation space can be reduced in the chassis to obtain the low-profile manipulation input device having the excellent assembly property.
In the manipulation input device according to the first aspect of the present invention, preferably a resin pedestal portion is integrally molded in a metal ring-shape plate spring. Accordingly, because the metal material having excellent strength is used as the ring-shape plate spring, the ring-shape plate spring is hardly broken to improve durability, and the ring-shape plate spring can be thinned compared with the conventional technique. The whole of the manipulation member is thinned, so that the ring magnet of the manipulation dial rotatably supported by the upper surface of the manipulation member can be disposed near the magnetic-field detection element mounted in the upper surface of the printed-circuit board. Therefore, sensitivity of the magnetic-field detection element is improved and the low-profile ring magnet is used, so that the whole of the manipulation input device can further be thinned.
In the manipulation input device according to the first aspect of the present invention, preferably an outer diameter of the pedestal portion of the manipulation member is smaller than an inner diameter of the ring magnet, and the pedestal portion of the manipulation member is disposed inside the ring magnet. Accordingly, because the ring magnet of the manipulation dial does not overlap the pedestal portion of the manipulation member, the manipulation input device is further thinned.
In the manipulation input device according to the first aspect of the present invention, preferably a push button is disposed in a manipulation hole through a ring spring upwardly bent and folded into two such that the push-button switch mounted in the printed-circuit board can be manipulated, the manipulation hole being made in a center of the manipulation dial.
Accordingly, because the push button disposed in the center of the manipulation dial is always biased by the ring spring, looseness is eliminated to obtain the manipulation input device having a comfortable manipulation feeling,
In an electronic instrument according to a second aspect of the present invention, a manipulation dial is attached in an exposed manner such that the manipulation input device according to the first aspect of the present invention can be manipulated from an outside.
In accordance with the present invention, the low-profile electronic instrument in which the magnetic property of the magnetic-field detection element can effectively be used is obtained.
A manipulation input device according to a preferred embodiment of the present invention will be described below with reference to the accompanying drawings of
As shown in
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The entire surface and back side of the printed-circuit board 20 are coated with insulating resin films except for the positioning hole and the jig hole.
As shown in
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As shown in
Thus, the metal components and the resin components are integrally formed in the manipulation member 60, so that the rigidity can be ensured by the metal components while the sliding property can be ensured by the resin component even if the manipulation input device is thinned. That is, in the manipulation member 60, the balance between the rigidity and the sliding property can be achieved as the rotating body retaining component.
Examples of the method for integrating the ring-shape plate spring 61 and the pedestal portion 65 include integrally molding, bonding, and fitting. The pressing projections 67a to 67d may be made of a resin while integrally molded with the pedestal portion 65, or the pressing projections 67a to 67d may be made of a material different from the pedestal portion 65, i.e., a material except for the resin. Not only the pressing projections 67a to 67d are provided in the pedestal portion 65 as described above, but also the pressing projections 67a to 67d may directly be provided in the ring-shape plate spring 61.
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A process of assembling the components will be described below. The jig holes 12a and 12b of the metal base 10 are positioned by inserting a pair of positioning pins (not shown) therein respectively. On the other hand, the hall elements 29a and 29b are mounted at predetermined positions of the board main body 20a of the printed-circuit board 20. Then, the positioning projections 11 a and 11 b and the positioning pins are inserted into the through-holes 26a and 26b and jig holes 27a and 27b of the printed-circuit board 20 and adhere integrally to the metal base 10. The movable contacts 31 to 35, the backing sheets 30a, and the spacer 39 adhere integrally to the insulating sheet 30 at predetermined positions. Then, the positioning projections 11a and 11b and the positioning pins are inserted into the through-holes 36a and 36b and jig holes 37a and 37b of the insulating sheet 30 respectively, whereby the insulating sheet 30 adheres integrally to the printed-circuit board 20.
On the other hand, the slide sheet 70 is assembled in the ring groove 85 while the ring magnet 75 is fitted in and bonded to the ring groove 86 of the manipulation dial 80. The ring groove 85 of the manipulation dial 80 and the pedestal portion 65 of the manipulation member 60 are assembled such that the slide sheet 70 is clamped between the bottom surface of the ring groove 85 and the pedestal portion 65. Then, the caulking projection 84 of the manipulation dial 80 is fitted in and caulked by the caulking hole 51 of the fixing ring 50, which allows the fixing ring 50 to engage the ring-shape step portion 68 of the pedestal portion 65. Therefore, the manipulation member 60 and the slide sheet 70 are clamped between the manipulation dial 80 and the fixing ring 50, whereby the manipulation member 60 rotatably supports the manipulation dial 80 through the slide sheet 70.
As shown in
According to the embodiment, the manipulation member 60 is fixed to the metal base 10 so as not to be rotated. When any position of the manipulation dial 80 is pressed down, the pressing projections 67a to 67d of the manipulation member 60 press down the movable contacts 32 to 35 respectively, which allow the pressing-down manipulation to be performed. On the other hand, the rotating manipulation can be performed by rotating the manipulation dial 80 rotatably assembled in the upper surface of the manipulation member 60.
According to the embodiment, because the manipulation member 60 is biased upward by press-contacting the movable contacts 32 to 35, the looseness is not generated in the manipulation member 60. Because the excessive rotation caused by the inertia force can be suppressed in the manipulation dial 80 by the frictional force generated between the slide sheet 60 and the manipulation dial 80, advantageously the false manipulation is hardly generated.
A method for manipulating the cellular phone (not shown) into which the manipulation input device having the above configuration is incorporated will be described below. When the ring magnet 75 integral with the manipulation dial 80 is rotated by rotating the manipulation dial 80 incorporated into the cellular phone, the pair of hall elements 29a and 29b detects a change in magnetic field, and a rotating direction and a rotation amount are detected based on the change in magnetic field. The detection result is reflected as the movement of the scroll bar on the screen display of the monitor of the cellular phone. When the push button 40 is pressed at the time the scroll bar reaches the desired position, the movable contact 31 is inverted and brought into contact with the central fixed contact portion 21 to output a selection instruction. The movable contact 35 located immediately below the pressing projection 67d may be inverted and conducted to the fixed contact portion 25 by pressing down a surrounding portion of the manipulation dial 80, e.g., as shown in
Obviously the manipulation input device according to the present invention can be applied to not only the cellular phone but also other mobile instruments or other electronic instruments.
Number | Date | Country | Kind |
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2007-004879 | Jan 2007 | JP | national |