This application claims benefit of priority to Japanese Patent Application No. 2015-075232 filed on Apr. 1, 2015, which is hereby incorporated by reference in its entirety.
1. Field of the Disclosure
The present disclosure relates to an input device that turns on a switching unit in response to a pressing load applied by an input manipulation.
2. Description of the Related Art
When a reliable manipulation is required for an input device that turns on a switching unit in response to a pressing load applied by an input manipulation, a setting to turn on the switching unit with a higher load is demanded. To meet this demand, measures have been devised.
Japanese Unexamined Patent Application Publication No. 2003-151407, for example, discloses a mechanism that uses dome-shaped elastic pressure members to generate a pressing load.
A circuit board 115 is disposed in a switch case 114 and the pressure member unit 124, which includes eight elastic pressure members 116 to 123, is provided on the circuit board 115, as illustrated in
The manipulated part 123b, for example, receives a pressing force exerted in the direction indicated by the arrow A in
A load needed to deform the rising parts 116a to 123a of the elastic pressure members 116 to 123 can be set by selecting a rubber material and changing the thickness, the height, and other parameters of the shapes of the rising parts 116a to 123a. Therefore, it is possible to set a pressing load applied to the input device by making an adjustment so that the elastic pressure members 116 to 123 are deformed with a load higher than a contact load under which the movable contact plate 132a and fixed contact 132b, for example, are electrically connected.
An input device includes: a switch unit that has a fixed contact and a movable contact placed so as to be movable away from and toward the fixed contact; a rubber member provided so as to be elastically deformable, the rubber member pressing the movable contact; and a slide member placed so as to be movable so that the slide member can press the rubber member. The rubber member has a first load generating part, which presses the movable contact, and a plurality of load adjusting parts disposed so as to enclose the first load generating part. The slide member has a first pressing part, which presses the first load generating part, and a plurality of second pressing parts, which press the plurality of load adjusting parts.
In this structure, a total load can be determined from the sum of a load generated by the plurality of load adjusting parts disposed on the rubber member and a load generated by the first load generating part disposed on the rubber member, the first load generating part pressing the movable contact. Therefore, freedom can be increased in adjustment of the amount of elastic deformation and the pressing load, enabling finer settings to be made for the stroke and pressing load.
First Embodiment
An embodiment of the present invention will be described below in detail with reference to the drawings. For easy understanding, dimensions in the drawings have been appropriately changed.
The input device 1, in this embodiment, is turned on by a pressing load applied in an input manipulation. The input device 1 provides a manipulation feeling in which a change in a load is felt. The input device 1 is suitable when a reliable manipulation is demanded; the input device responds to this demand by being set so that the input device 1 is turned on under a high load.
The input device 1 in this embodiment includes the slide member 10, rubber member 20, and switch unit 30 as illustrated in
The slide member 10 is shaped so that it can freely fit to a through-hole formed in a case (not illustrated). The slide member 10 is moved in response to an input manipulation by the manipulator. The slide member 10 is not limited to a structure in which the manipulator presses the slide member 10 to move it; the slide member 10 may be moved by performing an input manipulation on another manipulated member. With the input device 1 in this embodiment, the slide member 10 is made of a synthetic resin and has a pressing part 10a and a plurality of pressing parts 10b on the same side as the Z2 axis, as illustrated in
The switch unit 30 is placed on a supporting circuit board 50 and is connected to wires (not illustrated). As illustrated in
The rubber member 20 is preferably made of a material that is elastic such as a silicon rubber and into which less water infiltrates, and is preferably shaped in a thin stereoscopic shape. As illustrated in
With the input device 1 in this embodiment, the rubber member 20 preferably has a pressed part 20a and a plurality of pressed parts 20b, which are pressed by the slide member 10, on the front surface side as illustrated in
Thus, the rubber member 20 has a first load generating part 21, which presses the movable contact 32, and a plurality of load adjusting parts 24 placed so as to enclose the first load generating part 21. The first load generating part 21 applies a manipulation load needed to press the switch unit 30 to the slide member 10 as a reactive force of the first load generating part 21. The first load generating part 21 is disposed in such a way that the pressing part 10a of the slide member 10 can abut the pressed part 20a of the rubber member 20. The load adjusting part 24 applies an additional manipulation force to the slide member 10. The load adjusting part 24 is disposed in such a way that the pressing part 10b of the slide member 10 can abut the relevant pressed part 20b of the rubber member 20. When the rubber member 20 is warped toward the hollow 40, the load adjusting part 24 can release an excessive load. Furthermore, a load can be increased or decreased by changing the thickness of the rubber member 20. Therefore, the additional manipulation load applied to the slide member 10 is adjustable to a desired load. In the initial state of the input device 1 in this embodiment, the pressing part 10a of the slide member 10 is in contact with the pressed part 20a and each pressing part 10b leaves a small clearance between it and its relevant pressed part 20b, as illustrated in
Next, the operation of the input device 1 in this embodiment will be described with reference to
In the initial state illustrated in
Next, it will be described in detail that a stroke and a pressing load can be finely set for the input device 1 in this embodiment.
With the input device 1 in this embodiment, the slide member 10 is made of a synthetic resin and a stroke in the movement of the slide member 10 is the amount of movement of the pressing part 10a. As illustrated in
The lower limit of the pressing load is the reactive force generated at the first load generating part 21 during the movement of the pressing part 10a described above. To increase the pressing load without changing the stroke, it suffices to use the load adjusting part 24 to apply an additional manipulation load to the slide member 10. In this embodiment, the first load generating part 21 is preferably disposed so as to be rotationally symmetric with respect to the center line 32b of the switch unit 30, the center line 32b passing through the top 32a of the movable contact 32, as illustrated in
On the rubber member 20, supported members 20c in contact with the supporting circuit board 50 are placed at the four places at which the second load generating parts 22 are placed so as to form the hollow 40. Each second load generating part 22, which is the load adjusting part 24, is preferably formed in a thin stereoscopic shape that has the supported members 20c and a side wall 25 in a cylindrical shape. As illustrated in
Since the second load generating parts 22 are placed on a circumference of a circle as the load adjusting parts 24, they are well balanced. The attitude of the slide member 10 at the time of pressing is stabilized. The manipulation load added by the second load generating part 22 can be set by setting the material of the rubber member 20 and various dimensions of the second load generating part 22. The manipulation load is adjustable by changing, for example, the height and diameter of the columnar portion of the pressed part 20b, the thickness of the rubber member 20 at a portion facing the hollow 40, and the dimensions (inner diameter, outer diameter, and height) of the side wall 25. In addition, a timing at which the pressed part 20a disposed at the first load generating part 21 abuts the pressing part 10a is preferably set so as to differ from timings at which the pressed parts 20b disposed at the load adjusting parts 24 abut the pressing parts 10b. Therefore, the load adjusting part 24 can apply a load at any timing depending on a clearance between the pressed part 20b and the pressing part 10b in the initial state.
With the input device 1 in this embodiment, the rubber member 20 covers the switch unit 30, so a water-proof structure can be easily formed.
Effects obtained in this embodiment will be described below.
The input device 1 in this embodiment includes: the switch unit 30 that has the fixed contact 31 and the movable contact 32 placed so as to be movable away from and toward the fixed contact 31; the rubber member 20 provided so as to be elastically deformable, the rubber member 20 pressing the movable contact 32; and the slide member 10 placed so as to be movable so that the slide member 10 can press the rubber member 20. The rubber member 20 has the first load generating part 21, which presses the movable contact 32, and a plurality of load adjusting parts 24 disposed so as to enclose the first load generating part 21. The slide member 10 has the pressing part 10a, which presses the first load generating part 21, and a plurality of pressing parts 10b, which press a plurality of load adjusting parts 24.
In this structure, a total load can be determined from the sum of a load generated by the plurality of load adjusting parts 24 disposed on the rubber member 20 and a load generated by the first load generating part 21 disposed on the rubber member 20, the first load generating part 21 pressing the movable contact 32. Therefore, freedom can be increased in adjustment of the amount of elastic deformation and the pressing load, enabling finer settings to be made for the stroke and pressing load.
With the input device 1 in this embodiment, each load adjusting part 24 is preferably the second load generating part 22, which is adjustable so as to generate a different load from the first load generating part 21. The first load generating part 21 is preferably disposed so as to be rotationally symmetric with respect to the center line 32b of the switch unit 30. The second load generating parts 22 are preferably disposed so as to be equally spaced on a circumference of a circle about the center line 32b.
Since, in this structure, the second load generating parts 22 are placed, as the load adjusting parts 24, so as to be equally spaced on a circumference of a circle, they are well balanced. The attitude of the slide member 10 at the time of pressing is stabilized.
With the input device 1 in this embodiment, the rubber member 20 preferably has the pressed part 20a and a plurality of pressed parts 20b, the pressed part 20a and pressed parts 20b being pressed by the slide member 10. A timing at which the pressed part 20a, which is disposed at the first load generating part 21, abuts the pressing part 10a is preferably set so as to differ from timings at which the pressed parts 20b, which are disposed at the load adjusting parts 24, abut the pressing parts 10b.
Since, in this structure, abutting timings vary, a load can be applied at any timing.
With the input device 1 in this embodiment, at the load adjusting part 24, the rubber member 20 is preferably formed in a thin stereoscopic shape, and the rear surface of the pressed part 20b preferably faces the hollow 40 at a portion that abuts the pressing part 10b.
In this structure, when the rubber member 20 is warped toward the hollow 40, an excessive load can be released, so adjustment to any load is possible by changing the thickness of the rubber member 20.
With the input device 1 in this embodiment, the load adjusting part 24 is preferably formed in a thin stereoscopic shape having the side wall 25 in a cylindrical shape and part of the side wall 25 is preferably open toward the first load generating part 21.
Since, in this structure, the side wall 25 in a cylindrical form suppresses the rubber member 20 from being warped, freedom is increased in adjustment of the pressing load, enabling finer settings to be made.
With the input device 1 in this embodiment, the rubber member 20 is made of a material into which less water infiltrates and is formed in a sheet-like shape so as to cover the switch unit 30.
Since, in this structure, the rubber member 20 covers the switch unit 30, a water-proof structure can be easily formed.
So far, the input device 1 in an embodiment of the present invention has been specifically described. However, the present invention is not limited to the embodiment described above. Various changes are possible in the present invention without departing from the intended scope of the present invention. For example, the present invention can also be practiced by making variations as described below. These variations are also included in the technical range of the present invention.
Number | Date | Country | Kind |
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2015-075232 | Apr 2015 | JP | national |
Number | Name | Date | Kind |
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6246019 | Nakamura | Jun 2001 | B1 |
Number | Date | Country |
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1 310 969 | May 2003 | EP |
2003-151407 | May 2003 | JP |
Number | Date | Country | |
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20160293361 A1 | Oct 2016 | US |