The present invention relates to a switch device that is used to operate a power widow of an automobile.
In the configuration of the switch device in the related art, the height H of the pusher 33 is set to be about ‘0.13 times’ of the distance Lmo between an operating point Pm of the manual switch 31 and an operating point Po of the automatic switch 32. Therefore, when the manual switch 31 and the automatic switch 32 are pushed and turned on sequentially, the self-holding force Fo of the automatic switch 32 increases and thus the cost of the automatic switch 32 tends to rise.
The invention has been invented in view of the problems inherent to the switch device in the related art, and it is an advantage of an aspect of the invention to provide a switch device capable of pushing the manual switch and the automatic switch sequentially for turning them on while the self-holding force of the automatic switch is small.
A switch device according to a first aspect of the invention includes:
a push-type manual switch that is to be pushed against self-holding force to an ON state, the self-holding force being set to have a relatively large value;
a push-type automatic switch that is to be pushed against the self-holding force to an ON state, the self-holding force being set to have a relatively small value smaller than the relatively large value;
a switch substrate that outputs manual signals for operating a power window of a vehicle to move as long as the manual switch remains in the ON state on the basis of the operation of the manual switch in the ON state, and outputs automatic signals for operating the power window to move to an allowable position on the basis of the operation of the automatic switch in the ON state;
a knob that can be operated by a user; and
a pusher that pushes the manual switch and the automatic switch sequentially by operating force applied from the knob,
wherein a height of the pusher is set to be 0.9 times or more of a distance between an operating point of pushing force exerted on the manual switch from the pusher and an operating point of pushing force exerted on the automatic switch from the pusher.
According to a second aspect of the invention, the knob transfers the operating force to the pusher at a location closer to the manual switch side with respect to a center point of a segment connecting the operating point of pushing force exerted on the manual switch from the pusher and the operating point of pushing force exerted on the automatic switch from the pusher.
When a knob is operated, operating force is transferred from a pusher to an operating point of a manual switch and an operating point of an automatic switch. In addition, the manual switch is pushed and turned on preferentially, and then the automatic switch is pushed and turned on in succession to the manual switch. In this case, since the height of the pusher is set to be 0.9 times or more of the distance between the operating point of the manual switch and an operating point of the automatic switch 32, the height of the pusher is relatively high. As a result, when the automatic switch is pushed, the operating force of the knob is considerably influenced by friction, therefore, it is possible to push and turn on the manual switch and the automatic switch sequentially while using the automatic switch having small self-holding force.
An embodiment according to the present invention will be described with reference to accompanying drawings.
A switch substrate 1 comprises a printed circuit board, and a fixed manual contact point 2 and a fixed automatic contact point 3 are formed on the wiring pattern of the switch substrate 1 as shown in
The holder base 6 includes a movable manual contact point 7, which is integrally formed therewith as a rubber contact point. The movable manual contact point 7 includes a contact point part 8 and a skirt part 9, and the contact point part 8 is coupled with the holder base 6 by the skirt part 9. The contact point part 8 and the skirt part 9 correspond to a relatively rigid body and a relatively elastic body, respectively. The contact point part 8 comes into contact with the fixed manual contact point 2 so as to turn a switch ON when the skirt part 9 is elastically deformed, and is separated from the fixed manual contact point 2 so as to turn the switch back to OFF when the skirt part 9 elastically returns due to the elastic force of the rubber. That is, the fixed manual contact point 2 and the movable manual contact point 7 constitute a push-type manual switch 10.
The holder base 6 includes a movable automatic contact point 11, which is integrally formed therewith as a rubber contact point. The movable automatic contact point 11 includes a contact point part 12 acting as a relatively rigid body and a skirt part 13 acting as a relatively elastic body. The contact point part 12 comes into contact with the fixed automatic contact point 3 so as to turn the switch ON when the skirt part 13 is elastically deformed, and is separated from the fixed automatic contact point 3 so as to turn the switch back to OFF when the skirt part 13 elastically returns due to the elastic force of the rubber. The skirt part 13 of the movable automatic contact point 11 is thinner than the skirt part 9 of the movable manual contact point 7, and the self-holding force Fo of the movable automatic contact point 11 is set to be smaller than the self-holding force Fm of the movable manual contact point 7 as shown in
The switch substrate 1 is connected to an ECU of an automobile, and outputs manual signals to the ECU when the manual switch 10 is in the ON state and outputs automatic signals when the automatic switch 14 is in the ON state. The ECU operates the power window of the automobile on the basis of the manual signals and the automatic signals transmitted from the switch substrate 1, that is, the ECU operates the power window as long as the manual signals are detected when only the manual signals are detected, and operates the power window to an allowable position regardless of the detecting period of the automatic signals when the automatic signals are detected.
The switch case 4 includes a tubular knob base 15 as shown in
A knob 19 is mounted on the knob base 15 so as to pivot on a shaft 20 as shown in
If the knob 19 is operated in the direction of the arrow in
L
ms
·F
s
>L
mo
*F
o (1)
F
m
+F
o
=F
s (2)
Here, Fs represents an operating force exerted on the pusher 16 from the knob 19, Lms represents the distance from the operating point Ps of the pusher 16 to the operating point Pm of the manual switch 10, and Lmo represents the distance from the operating point Pm of the manual switch 10 to the operating point Po of the automatic switch 14.
Expression (3) is obtained by inputting Expression (2) into Expression (1). Expression (3) expresses the condition that the pusher 16 pivots clockwise in
L
ms
/L
mo
>F
o/(Fm+Fo) (3)
F
m
/F
o>{1/(Lms/Lmo)}−1 (4)
L
s
·F
s·cos θ=F·L (5)
L
s
·F
s·cos θ+ΔH·μ·Fs=F·L (6)
Here, Ls represents the distance from the pivoting center of the knob 19 to the operating point Ps, F represents the operating force directly exerted on the knob 19, L represents the distance from the operating point of the operating force directly exerted on the knob 19 to the pivoting center of the knob 19, ΔH represents the vertical displacement of the pusher 16, and μ represents the coefficient of friction.
Expression (7) shows the force balance between the automatic switch 14 and the pusher 16 when the manual switch 10 alone remains in the ON state. Expression (7) is extracted without consideration of the influence of friction, and if the influence of friction is taken into account, Expression (8) is obtained. Expression (9) is obtained by changing Expression (8), and if specific values such as ‘Lms=7.03 mm’ and ‘μ=0.1’ are inputted to Expression (9), Expression (10) is obtained.
F
s
·L
ms
=F
o
·L
mo (7)
F
s·(Lms−H·μ)=Fo·Lmo (8)
F
s
=F
o
·L
ms/(Lms−H·μ) (9)
F
s
=F
o
·L
mo/(7.03−0.1·H) (10)
Here, H represents the height of the pusher 16.
If ‘Fs=23.1604’ is inputted to Expression (10), Expression (11) is obtained, and Expression (11) can be changed into Expression (12).
23.1604=Fo·Lmo/(7.03−0.1·H) (11)
F
o=−2.316H/Lmo+162.82/Lmo (12)
According to the embodiment, the following effects can be obtained.
Since the height H of the pusher 16 is set to be ‘0.9 times’ or more of the distance Lmo between the operating point Pm of the manual switch 10 and the operating point Po of the automatic switch 14, the pusher 16 has a vertically long shape. Therefore, the operating force F of the knob 19 is influenced by the friction when the automatic switch 10 is pushed and turned on, consequently, the manual switch 10 and the automatic switch 14 can be pushed and turned on sequentially while using the automatic switch 14 having small self-holding force Fo.
The self-holding force Fm of the manual switch 10 is set to have a relatively large value, and the self-holding force Fo of the automatic switch 14 is set to have a relatively small value. Then, the distance between the operating point Ps of the pusher 16 and the operating point Pm of the manual switch 10 is set shorter than the distance between the operating point Ps of the pusher 16 and the operating point Po of the automatic switch 14. Therefore, it is possible to strengthen the operating force that pushes and turns on the manual switch 10, and to weaken the operating force that pushes and turns on the automatic switch 14, consequently, both of the manual switch 10 and the automatic switch 14 can be operated with proper operating force.
According to the embodiment, even though the movable manual contact point 7 and the movable automatic contact point 11 are made of conductive rubber, the movable manual contact point 7 and the movable automatic contact point 11 are not limited thereto and may be made of non-conductive rubber. In this case, it is possible to mount conductive movable contactors on the contact point part 8 of the movable manual contact point 7 and the contact point part 12 of the movable automatic contact point 11.
Number | Date | Country | Kind |
---|---|---|---|
2005-015640 | Jan 2005 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/JP06/01383 | 1/24/2006 | WO | 00 | 7/23/2007 |