1. Technical Field
The present invention relates to push switches for use in input control sections of various electronic apparatuses.
2. Background Art
Various kinds of push switches are used in input control sections of various electronic apparatuses. For example, quite a number of double-action push switches are used for shutter functions of cameras. When a double-action push switch is depressed, a first switch operates first, and a second switch operates thereafter when it is depressed further down.
Referring to
Case 1 made of an insulation resin has a recess as shown in
The recess of case 1 has such a shape that it is formed of a circular recess provided with four extended portions (i.e., grooves 8). Grooves 8 are formed radially from the center of the recess at uniform angles of 90 degrees.
To begin with, description is provided of first movable contact 10.
First movable contact 10 is made of a thin plate-like elastic metal. A shape of first movable contact 10 is configured of annular portion 12 and four extended portions 13. Annular portion 12 has a shape of circular ring with center opening 11 of a round form. Extended portions 13 extend obliquely downward from the outer edge of annular portion 12. First movable contact 10 has an upwardly curved shape (or, dome-like shape). When first movable contact 10 is depressed from above annular portion 12, a physical configuration of it changes from a state of
Each of four extended portions 13 of first movable contact 10 is disposed in their corresponding one of grooves 8 in case 1. A lower face of annular portion 12 is located above side contacts 3 and 4 (second stationary contacts) with a predetermined space maintained between them.
Description is provided next about second movable contact 15.
Second movable contact 15 is made of a thin plate-like elastic metal. Second movable contact 15 has an upwardly convexed shape (dome-like shape). In addition, second movable contact 15 has a round shape in a plan view. An outer edge of second movable contact 15 overlaps with an outer edge of annular portion 12 of first movable contact 10 in the plan view. A lower side of the outer edge of second movable contact 15 abuts on an upper side of the outer edge of annular portion 12. The lower face in a center portion of second movable contact 15 is located above center contact 2 (first stationary contact) with a predetermined space through center opening 11 of annular portion 12.
When a center portion of second movable contact 15 is depressed with a force exceeding a given amount, the upwardly convexed second movable contact 15 deforms elastically in a manner to warp downward with a tactile click. In other words, its physical configuration changes from the state of
Here, the depressing force to make second movable contact 15 deform elastically and warp downward is larger than the depressing force to make first movable contact 10 deform elastically to warp downward. In addition, a force of second movable contact 15 to regain its original state is larger than a force of first movable contact 10 to regain its original state.
Flexible protective sheet 17 is disposed to cover the upper side of the recess in case 1. Protective sheet 17 is formed of a film of insulation resin. In addition, cover 19 made of a metal sheet is attached to case 1 in position above case 1. Cover 19 has through-hole 20 formed in a center portion thereof.
In the conventional push switch constructed as above, first movable contact 10 and second movable contact 15 constitute a movable contact unit, and side contacts 3 and 4 and center contact 2 constitute a stationary contact unit.
The conventional push switch operates in a manner which is described next.
When a part of protective sheet 17 exposed from through-hole 20 of cover 19 is depressed, a force of the depression is applied to both second movable contact 15 and first movable contact 10 through protective sheet 17. When the depressing force applied to protective sheet 17 exceeds a given amount, the dome-shaped portion of first movable contact 10 elastically deforms first into the downwardly convexed shape with a tactile click. As a result of the elastic deformation of the dome-shaped portion, a lower face of annular portion 12 comes into contact with confronting contacts 3 and 4, as shown in
When protective sheet 17 is depressed further down, second movable contact 15 elastically deforms and warps downward with a tactile click, as shown in
When the depressing force is removed thereafter, second movable contact 15 reverts to the upwardly convexed dome-like shape (i.e., original state) with a tactile click. Second movable contact 15 then separates from center contact 2, so that second terminal 5 is electrically isolated from first terminals 6 and 7.
Subsequently, first movable contact 10 reverts to the upwardly convexed dome-like shape (i.e., original state) with a tactile click. The lower face of annular portion 12 of first movable contact 10 thus separates from side contacts 3 and 4, so that first terminals 6 and 7 are electrically isolated from each other. Push switch returns to the normal state (i.e., the state of
Patent literature 1 is one example of the prior art documents known to be related to the present invention in this application (e.g., Unexamined Japanese Patent Publication No. 2008-41603).
A primary aspect of the present invention is a push switch configured to cause a movable contact unit to deform elastically to establish continuity between a first stationary contact and a second stationary contact through the movable contact unit, and that the push switch comprises the first stationary contact, the second stationary contact disposed apart from the first stationary contact, and the movable contact unit confronting the first stationary contact with a space between them. The movable contact unit includes a center portion and a surrounding portion. The center portion has a dome-like shape, and the surrounding portion is formed along a peripheral region of the center portion. The above are distinctive features provided by the present invention.
Thus achieved by virtue of the above structure is to increase a moving distance that brings the movable contact unit into elastic deformation, thereby extending an operating stroke.
Description is provided of a drawback associated with conventional push switches before going into details of exemplary embodiments.
The conventional push switch shown in
The present invention addresses such a problem of the conventional art, and aims at providing a push switch of which an operating stroke in the first stage of the push switch is longer than that of conventional products.
Description is provided hereinafter of the exemplary embodiments of the present invention with reference to
In a structure of the push switch of this embodiment shown in
Second movable contact 30 of the first exemplary embodiment is described hereinafter in detail.
As shown in
When a center portion in dome-shaped portion 31 of second movable contact 30 is depressed, and when a depressing force exceeds a given amount, dome-shaped portion 31 deforms elastically into a downwardly convexed shape with a tactile click. The depressing force necessary to turn dome-shaped portion 31 into the downwardly convexed shape is larger than a depressing force to make first movable contact 10 deform elastically. In addition, a force required for dome-shaped portion 31 to regain its original state (i.e., upwardly convexed dome-like shape) is larger than a force of second movable contact 30 to regain its original state.
Second movable contact 30 is disposed on top of first movable contact 10. Annular portion 12 of first movable contact 10 rises toward the center in a side view, as shown in
Flexible protective sheet 17 is disposed above case 1 in a manner to cover the upper side of a recess of case 1. In addition, cover 19 made of a metal sheet is attached above case 1. Cover 19 has through-hole 20 formed in a center portion thereof.
Here, first movable contact 10 and second movable contact 30 are collectively referred to as a movable contact unit.
The push switch of the first exemplary embodiment operates in a manner which is described next.
When a part of protective sheet 17 exposed from through-hole 20 of cover 19 is depressed, the depressing force is applied to second movable contact 30 and first movable contact 10 through protective sheet 17 in the like manner as in the conventional case. When the depressing force exceeds the given amount, annular portion 12 of first movable contact 10 elastically deforms first, and warps downward with a tactile click. At this time, a lower face of annular portion 12 comes into contact with confronting side contacts 3 and 4 as shown in
That is, when a first stage of the push switch turns into the ON state (from the state of
Description is provided next about operation of the second switch.
When the push switch of this embodiment is depressed further down after the ON state of the first switch, dome-shaped portion (center portion) 31 of second movable contact 30 deforms elastically and warps downward with a tactile click, as shown in
When the depressing force is removed thereafter, dome-shaped portion 31 of second movable contact 30 reverts first into the upwardly convexed original dome-like shape with a tactile click. At the same time, second movable contact 30 separates from center contact 2, so that second terminal 5 is electrically isolated from first terminals 6 and 7. Subsequently, first movable contact 10 reverts to the upwardly warped original state with a tactile click. At the same time, the lower face of annular portion 12 separates from side contacts 3 and 4, and first terminals 6 and 7 are electrically isolated from each other. The push switch of this embodiment thus returns to the normal state shown in
As described above, the push switch of this exemplary embodiment achieves to increase a stroke in the depressing manipulation and provide a positive feeling in the depressing manipulation.
Description is provided next of surrounding portion 32 of second movable contact 30.
Second movable contact 30 of this embodiment described above by referring to
In this exemplary embodiment, an outer diameter of surrounding portion 32 is formed equivalent to that of annular portion 12 of first movable contact 10. Because of this structure, both the outer edge of surrounding portion 32 and the outer edge of annular portion 12 are guided by the inner wall of the recess when the first switch is being depressed. It thus becomes possible to prevent them from being displaced and provide a positive depressing feel in this push switch of the embodiment.
Furthermore, since second movable contact 30 is only the structure that differs from the conventional push switch showed in
Described next pertains to examples of certain variations of second movable contact 30.
Although second movable contact 30 of this embodiment described by referring to
Or, second movable contact 30 may be formed into a continuous piece without making any space between dome-shaped portion 31 and surrounding portion 32 by not providing connecting portions 33.
Description is provided further of another example of variation of second movable contact 30 with reference to
In this exemplary embodiment shown in
Description is provided next of second exemplary embodiment. Since all what differ between the first exemplary embodiment and the second exemplary embodiment are shapes of connecting portions and dome-shaped portion of the second movable contact, description will be omitted for other structures that are identical to the first exemplary embodiment.
The second movable contact of the second exemplary embodiment is illustrated in
One end of each of connecting portions 43 is connected to dome-shaped portion 41 in an area between cutout portions 41A and 41B. The other end of connecting portion 43 is joined to surrounding portion 42.
In other words, the connections between dome-shaped portion 41 and connecting portion 43 of second movable contact 40 shown in
According to the second exemplary embodiment, there is a space between the lower end of the peripheral edge at each area of cutout portions 41A and 41B of second movable contact 40 and first movable contact (10), whereas the lower end of the entire peripheral edge of dome-shaped portion 31 is in contact with first movable contact 10 in the case of the first exemplary embodiment as shown in
In other words, when being depressed, the push switch provided with second movable contact 40 shown in
Accordingly, the second exemplary embodiment has advantages of avoiding deformation of connecting portions 43 attributable to repeated operation of the switch and preventing undue stresses from being exerted on connecting portions 43, in addition to the advantages of the push switch of the first exemplary embodiment.
In the above exemplary embodiments, although description has been provided by using a double-action push switch, the scope of this invention is not limited only to the double-action push switch. It is with ease to make up a single-action push switch by using any of second movable contacts 30 and 40 of these exemplary embodiments.
Push switches according to the present invention have advantages of increasing an operating stroke and providing a positive feeling in depressing manipulation. In addition, the push switches of this invention are useful for input control sections and the like of various electronic apparatuses.
Number | Date | Country | Kind |
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2012-230708 | Oct 2012 | JP | national |