The present invention relates to a switch device and, in particular, to a switch device provided with a seesaw-type operation knob.
One example of switch device for vehicle such as car is a switch device provided with, e.g., a push button switch operated by swinging a seesaw-type operation knob (see, e.g., PTL 1).
The conventional switch device described in PTL 1 is applied to a power window switch mounted in a vehicle. This conventional switch device is provided with a shaft swingably supporting an operation knob, a first push button switch provided on one side of a substrate substantially parallel to the shaft, a second push button switch provided on another side of the substrate, and a third push button switch provided on the substrate at a position near the center between the first push button switch and the second push button switch.
In the neutral state in which a user is not operating the operation knob, any of the buttons is not depressed. The first push button switch is conducted or interrupted through a first operating bar by tilting the operation knob in one direction, and the third push button switch is conducted or interrupted through a third operating bar by further tilting the operation knob in this one direction. The second push button switch is conducted or interrupted through a second operating bar by tilting the operation knob in another direction, and the third push button switch is conducted or interrupted through the third operating bar by further tilting the operation knob in the other direction.
[PTL 1]
JP-A-2012-195057
In the meantime, depending on the circuit configuration of the circuit board, it may be desired to adapt an operation knob structure in which one of plural opposing switch contacts is conducted or interrupted and another opposing switch contact interrupted or conducted at the neutral position of the operation knob.
However, the conventional switch device described in PTL 1 has a seesaw-type operation knob structure in which plural push button switches are conducted or interrupted all together at the neutral position of the operation knob, and it is not applicable to a circuit configuration in which one of plural push button switches is maintained in a conducted or interrupted state and another push button switch in a interrupted or conducted state at the neutral position of the operation knob.
Thus, it is an object of the invention to provide a switch device that is provided with a seesaw-type operation knob capable of maintaining, at the neutral position of the operation knob, plural opposing switch contacts in mutually opposite ON/OFF states.
According to an embodiment of the invention, provided is a switch device that comprises: an operation knob supported to be swingable relative to a substrate; at least first and second cam surfaces formed along a swinging direction on a substrate-facing side of the operation knob; and first and second switch contacts disposed on the substrate corresponding to the first and second cam surfaces, wherein, at a neutral position of the operation knob, the first switch contact and the second switch contact are maintained in mutually opposite ON/OFF states by a cam action of the first cam surface and the second cam surface allows.
In the switch device defined by [1], the first switch contact is configured to be alternately switchable between an ON or OFF position in one direction from the neutral position and an OFF or ON position in another direction from the neutral position by the cam action of the first cam surface based on a swinging motion of the operation knob, and wherein the second switch contact is configured to be alternately switchable between an OFF and ON position in the one direction from the neutral position and an OFF and ON position in the other direction from the neutral position by the cam action of the second cam surface based on swinging motion of the operation knob.
In the switch device defined by [1] or [2], the device further comprises: a third cam surface formed parallel to the first cam surface; a fourth cam surface formed parallel to the second cam surface; and third and fourth switch contacts that are disposed corresponding to the third cam surface and the fourth cam surface, wherein, at the neutral position of the operation knob, the third switch contact and the fourth switch contact are maintained in an opposite contact state to that of the first switch contact and the second switch contact by a cam action of the third cam surface and the fourth cam surface.
In the switch device defined by [3], the third switch contact is configured to be alternately switchable between an ON or OFF position in one direction from the neutral position and an OFF or OFF position in another direction from the neutral position by the cam action of the third cam surface based on a swinging motion of the operation knob, and wherein the fourth switch contact is configured to be alternately switchable between an OFF or ON position in the one direction from the neutral position and an ON or OFF position in the other direction from the neutral position by the cam action of the fourth cam surface based on the swinging motion of the operation knob.
In the switch device defined by any one of [1] to [4], the first to fourth switch contacts each comprise a fixed contact arranged on the substrate and a movable contact facing the fixed contact, and wherein the movable contact is provided on an inner surface of an elastically deformable rubber dome that applies a force in a direction of moving the operation knob away from the substrate.
In the switch device described in [5], the rubber dome is formed integrally with a rubber sheet that covers a front surface and side surfaces of the substrate.
According to an embodiment of the invention, a switch device can be provided that is provided with a seesaw-type operation knob structure capable of maintaining, at the neutral position of the operation knob, plural opposing switch contacts in mutually opposite ON/OFF states.
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Preferred embodiments of the invention will be specifically described below in conjunction with the appended drawings.
(Configuration of the Front of Automobile Driver'S Seat)
In
The switch device 1 is an electric parking brake switch (EPB switch) allowing a driver etc. to order the activation or deactivation of an electric parking brake (EPB). The electric parking brake is configured that a parking brake is electrically activated or deactivated based on an operation performed on the EPB switch.
(General Configuration of the Switch Device)
The switch device 1 of which outer appearance is shown in
As shown in
Then, a substrate 6 is arranged on an upper case-facing surface of the lower case 4, as shown in
Four (first to fourth) fixed contacts 8a to 8d are provided on the front surface of the substrate 6, as shown in
As shown in
As shown in
As shown in
As shown in
As shown in
When the operation end of the operation knob 20 is operated, the operation knob 20 rotates about the shaft bearing hole 22a, as shown in
(Configuration of the Operation Knob)
As shown in
As shown in
(Configuration of the Cam Portion of the Operation Knob)
As shown in
As shown in
This cam surface shape of the first cam portion 23a is configured to satisfy a relation of D1>D2=D3, where D1 is a distance between the rotational axis C of the shaft bearing hole 22a of the operation knob 20 and the center of the tip of the pusher 16 at the depressed position, D2 is a distance between the rotational axis C of the shaft bearing hole 22a of the operation knob 20 and the center of the tip of the pusher 16 at the neutral position, and D3 is a distance between the rotational axis C of the shaft bearing hole 22a of the operation knob 20 and the center of the tip of the pusher 16 at the pull-up position.
Thus, the first fixed contact 8a is electrically conducted to the first movable contact 14a at the depressed position of the operation knob 20, and the first fixed contact 8a is not electrically conducted to the first movable contact 14a at the neutral position and pull-up position of the operation knob 20.
Meanwhile, as shown in
This cam surface shape of the second cam portion 23b is configured to satisfy a relation of D5=D6>D4, where D4 is a distance between the rotational axis C of the shaft bearing hole 22a of the operation knob 20 and the center of the tip of the pusher 16 at the depressed position, D5 is a distance between the rotational axis C of the shaft bearing hole 22a of the operation knob 20 and the center of the tip of the pusher 16 at the neutral position, and D6 is a distance between the rotational axis C of the shaft bearing hole 22a of the operation knob 20 and the center of the tip of the pusher 16 at the pull-up position.
Thus, the second fixed contact 8b is not electrically conducted to the second movable contact 14b at the depressed position of the operation knob 20, and the second fixed contact 8b is electrically conducted to the second movable contact 14b at the neutral position and pull-up position of the operation knob 20.
As shown in
This cam surface shape of the third cam portion 23c is configured to satisfy a relation of D7=D8>D9, where D7 is a distance between the rotational axis C of the shaft bearing hole 22a of the operation knob 20 and the center of the tip of the pusher 16 at the depressed position, D8 is a distance between the rotational axis C of the shaft bearing hole 22a of the operation knob 20 and the center of the tip of the pusher 16 at the neutral position, and D9 is a distance between the rotational axis C of the shaft bearing hole 22a of the operation knob 20 and the center of the tip of the pusher 16 at the pull-up position.
Thus, the third fixed contact 8c is electrically conducted to the third movable contact 14c at the depressed position and neutral position of the operation knob 20, and the third fixed contact 8c is not electrically conducted to the third movable contact 14c at the pull-up position of the operation knob 20.
Meanwhile, as shown in
This cam surface shape of the fourth cam portion 23d is configured to satisfy a relation of D12>D10=D11, where D10 is a distance between the rotational axis C of the shaft bearing hole 22a of the operation knob 20 and the center of the tip of the pusher 16 at the depressed position, D11 is a distance between the rotational axis C of the shaft bearing hole 22a of the operation knob 20 and the center of the tip of the pusher 16 at the neutral position, and D12 is a distance between the rotational axis C of the shaft bearing hole 22a of the operation knob 20 and the center of the tip of the pusher 16 at the pull-up position.
Thus, the fourth fixed contact 8d is not electrically conducted to the fourth movable contact 14d at the depressed position and neutral position of the operation knob 20, and the fourth fixed contact 8d is electrically conducted to the fourth movable contact 14d at the pull-up position of the operation knob 20.
(Circuit Configuration of the Switch Device)
As shown in
The ECU 60 is formed of, e.g., a microcomputer having a CPU (Central Processing Unit) performing calculation and processing, etc., of the acquired data according to a stored program, and various components such as RAM and ROM, etc., which are semiconductor memories. The ECU 60 activates a parking brake actuator (not shown) to apply a braking force to wheels based on a signal sent from the switch circuit 50.
The operation performed on the operation knob 20 is transmitted to the switch circuit 50, as shown in
In the first switch circuit 51, a first switch contact 51a composed of the first fixed contact 8a and the first movable contact 14a is arranged parallel to a second switch contact 51b composed of the second fixed contact 8b and the second movable contact 14b, as shown in
Meanwhile, in the second switch circuit 52, a third switch contact 52a composed of the third fixed contact 8c and the third movable contact 14c is arranged parallel to a fourth switch contact 52b composed of the fourth fixed contact 8d and the fourth movable contact 14d, as shown in
At the neutral (normal) position at which the operation knob 20 is not operated by a driver, the second switch contact 51b of the first switch circuit 51 and the third switch contact 52a of the second switch circuit 52 are both maintained in the ON state, as shown in
That is, the switch circuit 50 is formed as a normally-closed circuit in which one of the switch contacts 51a, 51b, 52a and 52b is ON at the neutral position of the operation knob 20 and the first switch circuit 51 or the second switch circuit 52 is thereby a closed circuit.
When the driver selects a depressing operation (push operation) of the operation knob 20, the first switch contact 51a of the first switch circuit 51 is turned on and the third switch contact 52a of the second switch circuit 52 is maintained in the ON state, as shown in
When the driver selects a pull-up operation (pull operation) of the operation knob 20, the first switch contact 51a of the first switch circuit 51 is maintained in the OFF state and the third switch contact 52a of the second switch circuit 52 is turned off, as shown in
The circuit configuration of the switch device 1 described above allows the ECU 60 to detect the ON/OFF state of the first to fourth switch contacts 51a, 51b, 52a and 52b and to detect failure or malfunction of the first switch circuit 51 or the second switch circuit 52.
Table 1 below summarizes the operation of the switch device 1 which changes in response to the operated state of the operation knob 20.
(Effects of the First Embodiment)
By using the switch device 1 configured as described above, the following effects are obtained in addition to the above-described effects.
(1) It is possible to effectively obtain an opposing switch contact structure in which one of the switch contacts 51a and 51b is in a conducting or non-conducting state while one of the switch contacts 52a and 52b is in a non-conducting or conducting state at the neutral position of the operation knob 20.
(2) It is possible to adapt the opposing switch contact structure for the normally-closed circuit.
(3) An unbalanced force applied to the pushers 16 can be reduced by providing plural opposing switch contacts composed of the fixed contacts 8a to 8d and the movable contacts 14a to 14d, which allows the operation knob 20 to be reliably operated.
(4) The configuration is simple and adaptable to the switch circuit 50 having plural opposing switch contacts.
(5) The simple component structure allows constituent components to be reduced and it is thereby possible to reduce the manufacturing cost and the assembly cost, etc.
Referring to
In the first embodiment, the seesaw-type operation knob 20 has the cam portions 23a to 23d arranged in two rows (two in each row) along the swinging direction of the operation knob 20 and is applied to the four-contact circuit configuration. The second embodiment is different from the first embodiment in that the seesaw-type operation knob 20 has the cam portions 23c and 23d arranged in a row along the swinging direction of the operation knob 20 and is applied to the two-contact circuit configuration.
The remaining configuration is the same as that in the first embodiment. Therefore, the same reference numerals as those used in the first embodiment will be used and the detailed explanation thereof will be omitted.
The third and fourth switch contacts 52a and 52b arranged to respectively correspond to the third and fourth cam portions 23c and 23d in the first embodiment are now referred to as first and second switch contacts in the second embodiment.
(General Configuration of the Switch Device)
As shown in
As shown in
(Circuit Configuration of the Switch Device)
As shown in
At the neutral (normal) position at which the operation knob 20 is not operated by a driver, one of the switch contacts 52a and 52b is in a non-conducting and the other of the switch contacts 52a and 52b is in a conducting state, as shown in
In the illustrated example, the switch contact 52a is maintained in the ON state at the neutral (normal) position at which the operation knob 20 is not operated by a driver, as shown in
When the driver selects a depressing operation (push operation) of the operation knob 20, the switch contact 52a is turned off while the switch contact 52b is turned on, as shown in
When the driver selects a pull-up operation (pull operation) of the operation knob 20, the switch contact 52a is maintained in the ON state. On the other hand, the switch contact 52b is maintained in the OFF state, as shown in
Table 2 below summarizes the operation of the switch device 1 which changes in response to the operated state of the operation knob 20.
(Effects of the First Embodiment)
By using the switch device 1 configured as described above, the following effects are obtained in addition to the above-described effects.
The seesaw-type operation knob 20 having the cam portion 23c and 23d arranged in a row along the swinging direction of the operation knob 20 can be applied to the normally-closed circuit.
Although the switch device 1 of the invention has been described based on each embodiment and the illustrated examples, the invention is not intended to be limited to each embodiment and the illustrated examples, and the various kinds of embodiments can be implemented without departing from the gist thereof. The following modifications of the invention can be implemented.
(1) For example, the shape of the cam surfaces 23a-1 to 23d-1 may be formed by appropriately combining, e.g., a non-linear shape and a linear shape in which variation in a distance between the rotational axis C of the shaft bearing hole 22a of the operation knob 20 and the cam surface varies in a quadratic curve or varies in a linear manner, by which the amount of movement of the pushers 16 due to cam action of the cam surface based on the swinging motion of the operation knob 20 can be set.
(2) Instead of the configuration in which the opposing switch contacts composed of the fixed contacts 8a to 8d and the movable contacts 14a to 14d are turned on or off by the cam surfaces 23a-1 to 23d-1 and the pushers 16, the opposing switch contacts may be configured to be turned on or off directly by the cam surfaces 23a-1 to 23d-1 without interposition of the pushers 16.
(3) The operation of the switch device 1 which changes in response to the operated state of the operation knob 20 is not limited to those in each embodiment and the illustrated examples, and it is obvious that it is possible to reverse ON/OFF of the opposing switch contacts by appropriately combining the shapes of the cam surfaces 23a-1 to 23d-1.
(4) Although the opposing switch contacts composed of the fixed contacts 8a to 8d of the substrate 6 and the movable contacts 14a to 14d of the rubber domes 10 have been described as an example in each embodiment, it is not limited thereto. It is possible to use various mechanical contact mechanisms such as push switch.
(5) Although the electric parking brake switch has been described as an example in each embodiment, it is not limited thereto. It is applicable to, e.g., a power window switch.
(6) The switch device 1 in each embodiment can be effectively used in various vehicles, e.g., working vehicles such as agricultural machineries, construction machineries and transporting machines, and automobiles.
Although the typical embodiments, modifications and illustrated examples of the invention have been described, it is obvious from the above description that the invention according to claims is not to be limited to the embodiments, modifications and illustrated example described above. Therefore, it should be noted that all combinations of the features described in the embodiment and illustrated example are not necessary to solve the problem of the invention
The invention is applicable to e.g. electric parking brake switches and power window switches.
Number | Date | Country | Kind |
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2013-219087 | Oct 2013 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2014/076703 | 10/6/2014 | WO | 00 |