The present invention relates to a rocker switch in which a pair of switches are selectively turned ON/OFF by pushing opposite end parts of a knob in turn to thus rock the knob.
A rocker switch is formed so as to include a knob that rocks with a fulcrum part as the center when its opposite end parts in a specific direction are selectively pushed, a case that supports the knob so that it can rock, a pair of switches that are provided at positions corresponding to the opposite end parts of the knob respectively within the case, and urging means that urges the opposite end parts of the knob in opposite pushing operation directions. In such a rocker switch, when one of the opposite end parts of the knob is pushed and the knob is rocked with the fulcrum part as the center, one of the pair of switches is turned ON. Therefore, when the opposite end parts of the knob are pushed in turn, the pair of switches are turned ON/OFF in turn.
When the knob rocks with the fulcrum part as the center due to one of the opposite end parts of the knob of the rocker switch being pushed as described above, since an end part on the opposite pushing operation side of the knob protrudes from a reference plane, there is the problem that the appearance of the rocker switch is degraded.
Japanese Patent Application Laid-open No. 2006-040614 proposes a rocker switch in which pins are provided on either one of a knob (button) and a case (support member) at positions corresponding to opposite end parts of the knob, elongated holes are provided at positions corresponding to the pins, and the knob is engaged with the case via the elongated holes. In accordance with such a rocker switch, when either one of the opposite end parts of the knob is pushed, the knob rocks with the pin on the opposite side (opposite pushing operation side) as the fulcrum, an end part, on the opposite pushing operation side, of the knob will not protrude greatly from a reference plane, and the appearance of the rocker switch will not be impaired.
Japanese Utility Model Application Laid-open No. S62-152329 proposes a rocker switch in which fulcrum parts are provided on portions protruding from opposite end parts of a knob (push button), these fulcrum parts are abutted against a reverse face of a panel member (escutcheon), and operating parts (pushing ribs) that act on a pair of switches are provided on inner sides of the two fulcrum parts respectively. In accordance with such a rocker switch, when one of the opposite end parts of the knob is pushed in order to make the knob rock, since the knob rocks toward the interior of the panel member with the fulcrum part provided on the other end part of the knob as a center, the other end part (the end part on the opposite pushing operation side) of the knob will not protrude greatly from the panel member, and the appearance of the rocker switch will not be impaired.
However, in the rocker switch proposed in Japanese Patent Application Laid-open No. 2006-040614, when the knob is made to rock, since the operating part of the knob pushes the switch (operation element) via a portion on the inner side of the fulcrum part (pin), if one of the opposite end parts of the knob is pushed and the knob is made to rock with the pin on the other end side (the opposite pushing operation side) as the fulcrum, the operating part of the other end part of the knob abuts against the switch via the portion on the inner side of the fulcrum part (pin), thus pushing the switch (operation element); therefore, due to said pushing the knob receives a reaction force from the switch (operation element) on the opposite pushing operation side, and there is the problem that because of the reaction force it will become difficult to set the operating load of the knob at a predetermined design value.
Furthermore, in the rocker switch proposed in Japanese Utility Model Application Laid-open No. S62-152329, since the fulcrum parts are provided on the outer side of the opposite end parts of the knob, it is necessary to ensure a predetermined clearance between the fulcrum parts and a peripheral member, and there is thus the problem that the rocker switch increases in size.
The present invention has been accomplished in light of the above problems, and it is an object thereof to provide a rocker switch that enables the operating load to be easily set at a design value without causing degradation of the appearance, increasing the size, or being influenced by excess reaction force.
In order to achieve the object, according to an aspect of the present invention, there is provided a rocker switch comprising a knob that rocks when an operational input is made, a case that supports the knob, a pair of switches that are provided on opposite end part sides respectively with respect to a middle part of the knob within the case, an urging part that urges opposite end parts of the knob toward a non-operated position, a pair of operation input parts that are provided at positions corresponding to the pair of switches respectively within the case and turn the respective switches ON/OFF, and a pair of fulcrum parts that are provided on the middle part side of the knob with respect to the pair of operation input parts respectively, wherein in the pair of fulcrum parts, the fulcrum part on a side opposite to the operation input part, of the pair of operation input parts, that has turned the switch ON/OFF by an operational input being made serves as a rocking axis of the knob.
In accordance with the aspect of the present invention, when one end part of the knob is for example pushed so as to input the operating force to one operation input part, the knob rocks with the fulcrum part on the opposite operation input side as the rocking axis, and the amount of displacement (amount of protrusion from a reference plane) of the knob on the opposite operation input side can thereby be kept small, thus preventing the appearance of the rocker switch from being degraded. Furthermore, since the operation input part and the fulcrum part do not protrude on the outer side of the opposite end parts of the knob, it is possible to prevent the rocker switch from increasing in size. Moreover, since the pair of operation input parts are disposed on the outer side of the pair of fulcrum parts, when the knob rocks with the fulcrum part on the opposite operation input side as the rocking axis, the end part on the opposite operation input side of the knob moves away from the switch side and will not receive a reaction force from the switch side. Because of this, it is possible to easily set the operating load of the knob at a design value without it being subject to the influence of excess reaction force.
The above and other objects, characteristics and advantages of the present invention will be clear from detailed descriptions of the preferred embodiment which will be provided below while referring to the attached drawings.
An embodiment of the present invention is explained below by reference to the attached drawings.
[Arrangement of Rocker Switch]
A rocker switch 1 as illustrated is provided on for example a spoke part of a steering wheel, which is not illustrated, of a vehicle, and a driver can operate the rocker switch 1 while gripping the steering wheel. This rocker switch 1 includes a rectangular box-shaped knob 2 that is long and narrow in the in the left-and-right direction (in a specific direction), and a rectangular box-shaped case 3 that is long and narrow in the in the left-and-right direction and supports the knob 2 so that it can rock. In the present embodiment, the knob 2 and the case 3 are molded from a resin such as ABS, the knob 2 being disposed on the front side (rear side), and the case 3 being disposed on the inner side of the knob (front side).
A plate-shaped bracket 2A is as shown in
Formed at two, left and right, locations close to a middle part in the left-and-right direction of a lower face of the knob 2 are rectangular window holes (engagement holes) 2b that are long in the rocking direction of the knob 2 as shown in
Each of the left and right fulcrum parts 10 is as shown in
As described above, when the knob 2 is assembled onto the case 3, as shown in
As shown in
When the rocker switch 1 is in a non-operated state (the initial position) (when the knob 2 is not being pushed), as shown in
As shown in
In the rocker switch 1 related to the present embodiment, as shown in
In the state shown in
[Operation of Rocker Switch]
The operation of the rocker switch 1 arranged as above is now explained by reference to
When the left end part of the knob 2 is pushed in the state shown in
The switch 5 on the pushing operation side (on the left side) is pushed via the operation element 7 and the projecting part 6A of the rubber contact 6 and turned ON, and the switch 5 on the opposite pushing operation side (on the right side) maintains an OFF state.
Rocking of the knob 2 is schematically shown in
x
1=A·sinθ (1)
x
2=B·sinθ (2)
Because of A>B, the magnitudes of the displacement x1 and the displacement x2 hold the following relationship.
x1>x2 (3)
In this way, since the displacement x2 of the end part (right end part) on the opposite pushing operation side of the knob 2 is kept small, the amount of the end part (right end part) protruding can be kept small, thereby preventing the appearance of the rocker switch 1 from being degraded.
In the rocker switch 1 related to the present embodiment, since the operation elements 7 as the left and right operation input parts of the knob 2 are disposed on the outer side of the fulcrum part 10 (the point a) in the left-and-right direction, all of the pressing force F of the end part (left end part) on the pushing operation side of the knob 2 acts on the switch 5 via the operation element 7, whereas the end part (right end part) on the opposite pushing operation side of the knob 2 is displaced to a direction away from the operation element 7 and does not push the operation element 7. Because of this, the right end part of the knob 2 will not receive a reaction force from the operation element 7, and as described above all of the pressing force F acting on the left end part of the knob 2 acts on one switch 5 (on the left side). The operating load of the knob 2 can therefore easily be set to a design value without being influenced by excess reaction force.
On the other hand, in the conventional rocker switch, the relationship between the fulcrum, the point of action, and the reaction force acting on a knob from a switch (operation element) is as schematically shown in
That is, a left end part of a knob 102 is for example pushed, a pressing force F1 acts on an operation element 107 on the left side of the knob 102 to thus push down the operation element 107, and in this process the knob 102 receives a reaction force R1 as shown from the operation element 107. In the conventional rocker switch, since the operation element 107 is disposed on the inner side of a fulcrum a′, if the knob 102 rocks only by an angle θ as shown from the chain-line position to the solid-line position with the fulcrum a′ on the right side as the center in the figure, the right end part of the knob 102 of
In the rocker switch 1 related to the present embodiment, since all components such as the fulcrum part 10 (the window hole 2b of the knob 2 and the engagement claw 3b of the case 3), the operation element 7, and the switch 5 are disposed within the range of the length in the left-and-right direction of the knob 2, any increase in the dimensions of the rocker switch 1 can be prevented.
A state in which the right end part of the knob 2 is pushed is shown in
Also, when the right end part of the knob 2 is pushed, the knob 2 pivots with the fulcrum a on the opposite pushing operation side (on the left side in
Although not illustrated, even when the left and right end parts of the knob 2 are simultaneously pushed, since parallel movement of the knob 2 by a predetermined amount (the clearance δ between the knob 2 and the stopper 8) or greater can be prevented by the stopper 8, it is possible to reliably prevent the occurrence of the malfunction of the left and right switches 5 being turned ON simultaneously.
As is clear from the above explanation, in accordance with the embodiment of the present invention, the effect of the operating load of the knob 2 being able to be easily set to a design value can be obtained without causing degradation of the appearance of the rocker switch 1 or an increase in size and without being influenced by excess reaction force.
In the embodiment above, the window hole 2b forming the fulcrum part 10 is formed in the knob 2, and the engagement claw 3b is projectingly provided on the case 3, but alternatively an elongated hole may be formed in the case 3 and an engagement claw may be projectingly provided on the knob 2.
Furthermore, in the embodiment above, the stopper 8 is provided on the case 3 side, but the stopper 8 may be provided on the knob 2 side.
In the illustrated embodiment, the mode of operation of the knob 2 is a pushing operation, but an operation mode may be employed in which a lever-shaped member is projectingly provided on the knob 2, and the lever-shaped member may be tilted so as to make the knob 2 rock.
An embodiment of the present invention is explained above, but the present invention is not limited to the above-mentioned embodiment and may be modified in a variety of ways as long as the modifications do not depart from the gist of the present invention.
The present invention is not limited to a rocker switch disposed on a spoke part of a steering wheel of a vehicle, and may be applied to any type of rocker switch.
Number | Date | Country | Kind |
---|---|---|---|
2019-197186 | Oct 2019 | JP | national |