The present application claims priority to Japanese Patent Application Number 2021-080362, filed May 11, 2021 the entirety of which is hereby incorporated by reference.
The present disclosure relates to an input device that provides a manipulation feeling with large energy to a finger when a manipulation unit having a relatively large mass is manipulated with the finger.
An invention related to an image forming apparatus in which a touch panel has a vibrating means is described in JP 2006-150865 A. This image forming apparatus has a vibration waveform setting means by which different vibration waveforms are set. The image forming apparatus also has a sound output time period setting means, a sound frequency setting means, a vibration start time setting means, and the like. These setting means are set for each key displayed on the touch panel or for all keys. When the touch panel is pressed with a finger or the like and the pressing is detected by a key selection detection means, the touch panel vibrates according to the settings of the setting means.
An invention related to a manipulation device, targeted at an automobile, that has a touch pad is described in Japanese Unexamined Patent Application Publication (Translation of PCT Application) No. 2019-516194. With this manipulation device, when the manipulation surface of the touch pad is manipulated with a finger, an actuator is driven so that a feeling is caused on the manipulation surface. Part of operation on the manipulation surface of the touch pad, which is mechanically supported, is significantly accelerated and then significantly decelerated according to the selection of the intensity, start frequency, frequency profile, and other parameter of a pulse-width modulation (PWM) signal given to the actuator.
Technologies for giving a vibration-caused feeling to a finger that has touched a manipulation surface are described in JP 2006-150865 A and Japanese Unexamined Patent Application Publication (Translation of PCT Application) No. 2019-516194. In these patent documents, however, a technical means for effectively transmitting vibration energy to a manipulation unit is not described. A large manipulation unit such as a vehicle-mounted manipulation unit, for example, has a large mass and thereby undergoes a large inertial force. Therefore, it is difficult to have the manipulation unit generate large acceleration in a short time from the start of vibration. This makes it not possible to provide a clean and sharp feeling to the finger that is manipulating the manipulation unit.
The present disclosure addresses the above conventional problem with the objective of providing an input device that can cause even a large manipulation unit with a relatively large mass to have large acceleration immediately after a start of vibration so that a susceptible manipulation feeling is given to the finger of the manipulator.
One form of an input device according to the present disclosure includes: a manipulation unit having an input detection unit, the manipulation unit configured to be manipulated with a finger; a support device; an elastic support mechanism configured to link the manipulation unit and the support device together; and a vibration generation device configured to vibrate the manipulation unit to provide a manipulation feeling to the finger that is manipulating the manipulation unit. The input device further includes a control unit that is configured to set the cycle of a driving signal to be given to the vibration generation device. The control unit is configured to set the cycle of the driving signal so that a temporary match is made between a direction in which the acceleration of the manipulation unit is exerted, the manipulation unit having started to vibrate in response to the start of the vibration generation device, and a direction in which an excitation force is exerted from the vibration generation device on the manipulation unit.
In some implementations of the present disclosure, a match or a close match is made between the time at which the acceleration of the manipulation unit takes a peak value in the direction in which the acceleration is exerted and the time at which the excitation force exerted from the vibration generation device on the manipulation unit takes another peak value in the direction in which the excitation force is exerted.
Some implementations of the present disclosure can be configured so that the cycle of vibration generated in the vibration generation device is shortened at an intermediate point in time and that when the cycle is shortened, a match is made between the direction in which the acceleration of the manipulation unit is exerted and the direction in which the excitation force is exerted on the manipulation unit.
In some implementations of the present disclosure, a match is made between the direction in which the acceleration of the manipulation unit is exerted and the direction in which the excitation force is exerted on the manipulation unit during an interval between the time at which the acceleration of the manipulation unit takes a third peak value and the time at which the acceleration of the manipulation unit takes a sixth peak value.
In some implementations, the manipulation unit comprises an acceleration sensor, and the control unit is configured to set the cycle of the driving signal with reference to a detection output from the acceleration sensor.
In some other implementations, the control unit is configured to set the cycle of the driving signal may according to the vibration characteristics of the manipulation unit.
In some implementations, the manipulation unit comprises a temperature sensor, and the control unit is configured to correct the cycle of the driving signal with reference to a detection output from the temperature sensor.
Forms of the input device of the present disclosure increases the efficiency of transmitting vibration energy from a vibration generation device to a manipulation unit. Therefore, the input device can provide large acceleration even to a large manipulation unit with a relatively large mass immediately after the start of vibration. As a result, it is possible to give a clear manipulation feeling to the finger with which a manipulation unit is performed.
One form of an input device 1 illustrated in
The input device 1 has a manipulation unit 10 and a support device 20 that supports the manipulation unit 10. The support device 20 is fixed to a support base provided on the instrument panel or dashboard, which is positioned on the Z2 side in the interior of an automobile. The manipulation unit 10 and support device 20 are linked together by an elastic support mechanism 2, as illustrated in
The elastic support mechanism 2 illustrated in
The manipulation unit 10 has a unit case 11 formed from a synthetic resin material or light metal material. A display device 12 is accommodated in the unit case 11. The display device 12 is a color liquid crystal display device. Its display screen 12a appears on the front surface of the unit case 11, the front surface facing in the Z1 direction. The color liquid crystal display device has a transparent liquid crystal display cell. A backlight device facing the back (Z2 side) of the liquid crystal display cell is accommodated in the unit case 11. The backlight device has a light source composed of, for example, light-emitting diodes (LEDs), and also has a light guide member that directs illumination light emitted from the light source to the liquid crystal display cell. The display device 12 may be an electroluminescence display device.
The manipulation unit 10 has a transparent cover panel that covers the front of the display screen 12a, the front being in the Z1 direction. A touch sensor 13, which is a first input detection unit, is provided on the inner surface of the cover panel, the inner surface facing in the Z2 direction. The touch sensor 13 has a transparent substrate attached to the cover panel, and also has a plurality of transparent electrodes formed on a surface of the transparent substrate. When a finger comes into contact with the display screen 12a, a detection output can be obtained according to a change in mutual capacitance detected between transparent electrodes placed close to each other or a change in self-capacitance detected at an individual transparent electrode, the detection output indicating the coordinate positions, in an X-Y plane, of the location at which the finger has touched the display screen 12a.
The support device 20 has a pressing force sensor 5, which is a second input detection unit, as illustrated in
A vibration generation device 30 is provided on the rear surface, facing in the backward direction (Z2 direction), of the manipulation unit 10, as illustrated in
A driving signal, which is an alternate current, is supplied to the coil wound on the vibrator in the vibration generation device 30. When the polarity of magnetization generated around the magnetic core changes, the vibrator is reciprocated in the X1-X2 direction due to a magnetic attractive force and magnetic repulsive force generated between the polarity of the permanent magnet and the polarity that changes in the magnetic core. When the vibrator in the vibration generation device 30 moves in the X1 direction and X2 direction, an excitation force obtained from the mass of the vibrator and the acceleration at the time of the movement is exerted on the manipulation unit 10, by which acceleration is generated in the X1 direction and X2 direction for the manipulation unit 10 having a predetermined mass.
The vibration generation device 30 may have another structure in which a rotational weight having an uneven mass distribution and a motor that rotates the rotational weight. With this type of vibration generation device, when the rotational weight is rotated by the motor, an excitation force component in the X1 direction and an excitation force component in the X2 direction can be exerted on the manipulation unit 10.
The manipulation unit 10 has an acceleration sensor 15 that detects acceleration in the X1-X2 direction, as illustrated in the circuit block diagram in
The support device 20 in the input device 1 has a circuit board on which integrated circuits (ICs) and other electronic devices that constitute an electronic circuit are mounted. A control unit 21 is provided in the electronic circuit as illustrated in the circuit block diagram in
Next, the operation of the input device 1 will be described.
In the control unit 21, image creation signals forming a predetermined image are given to the display driver 24, after which these image signals are given from the display driver 24 to the display device 12. In the manipulation unit 10, the image is displayed on the display screen 12a facing forward in the Z1 direction. This displayed image includes a plurality of menus and images indicating manipulation commanding portions such as a plurality of manipulation keys.
When the manipulator brings a finger closer to or in contact with the display screen 12a while confirming the displayed image as illustrated in
The schematic diagram in
The input device 1 has a free vibration system in which the manipulation unit 10 having the predetermined mass is supported to the support device 20 with the elastic portion 2k and viscous resistance portion 2c intervening between the manipulation unit 10 and the support device 20 so that the manipulation unit 10 can vibrate in the X1-X2 direction, as illustrated in
When the excitation force (i) generated in the vibration generation device 30 is exerted on the manipulation unit 10, the manipulation unit 10 starts to vibrate, and after the vibration generation device 30 stops, the manipulation unit 10 continues to vibrate due to inertia, as illustrated in
The square wave obtained from the pulse generator 22 is modulated in the control unit 21, and the modulated square wave is given to the excitation driver 23. The modulated square wave undergoes analog conversion in the excitation driver 23, and the resulting driving voltage is given to the vibration generation device 30. A shift between the phase of the driving signal and the phase of the excitation force generated in the vibration generation device 30 has been stored in the memory in the control unit 21. The control unit 21 performs control in which the phase of the driving voltage is determined with the shift taken into consideration. Thus, an arbitrary phase can be set for the excitation force (i) exerted from the vibration generation device 30 on the manipulation unit 10.
The characteristic frequency of the vibrator, the frequency being determined by the mass (ma) of the vibrator in the vibration generation device 30 and the elastic coefficient (ka) of the elastic support mechanism 2, and the characteristic frequency of the manipulation unit 10, the frequency being determined by the mass (mm) of the manipulation unit 10 and the elastic coefficient (km) of the elastic portion 2k, have been set so that these frequencies approximate or match each other. The cycle of the driving voltage given to the coil in the vibration generation device 30 is set so as to match either of the characteristic frequency of the vibration generation device 30 and the characteristic frequency of the manipulation unit 10 or to take an intermediate value between the characteristic frequency of the vibration generation device 30 and the characteristic frequency of the manipulation unit 10. When the cycle of the driving voltage approximates or matches the characteristic frequency of the vibrator in the vibration generation device 30, the absolute value of the excitation force generated by the vibration of the vibrator can be increased. When the cycle of the driving voltage approximates or matches the characteristic frequency of the manipulation unit 10, the response of vibration of the manipulation unit 10 that received an excitation force from the vibration generation device 30 is made better.
A mechanical model in which the manipulation unit 10 is elastically supported to the support device 20 and the vibrator is elastically supported in the vibration generation device 30 fixed to the manipulation unit 10 has a multi-stage vibration system in which two free vibration systems are linked, as illustrated in
By performing modulation so that the cycle T0 of the change of the excitation force (i) exerted on the manipulation unit 10 is shortened to the cycle T1, a temporary match is made between a direction in which the acceleration (ii) of the manipulation unit 10 is exerted in the X2 direction and a direction in which the excitation force (i) is exerted on the manipulation unit 10 in the X2 direction, at the time at which the excitation force (i) takes the peak value Pd4. In some implementations, in the example of control in
In the free vibration system, the phase of vibration is shifted by 7C from the phase of acceleration. Therefore, when the acceleration (ii) takes the peak value P4 in the X2 direction, the manipulation unit 10 is displaced in the X1 direction to the position at which the amplitude is maximized. When the excitation force (i) exerted from the vibration generation device 30 on the manipulation unit 10 takes the peak value Pd4 in the X2 direction, the X2-direction acceleration of the vibrator is also maximized. At that time, the vibrator in the vibration generation device 30 is also displaced in the X1 direction to the position at which the amplitude is maximized. That is, when the manipulation unit 10 is placed at the position at which the amplitude is maximized in the X1 direction, the vibrator in the vibration generation device 30 is also placed at the position at which the amplitude is maximized in the X1 direction.
When a match is made in the X2 direction between the direction in which the excitation force (i) is exerted on the manipulation unit 10 and the direction in which the acceleration (ii) of the manipulation unit 10 that is vibrating due to its inertial force is exerted, or when the time at which the excitation force (i) exerted on the manipulation unit 10 takes the peak value Pd4 in the X2 direction temporarily matches the time at which the acceleration (ii) of the manipulation unit 10 takes the peak value P4 in the X2 direction as illustrated in
In the example of driving control in
However, to have the manipulator feel a manipulation feeling on the finger immediately after a manipulation command starts, it is desirable to prevent the length of time from when vibration starts until the direction in which the excitation force (i) exerted on the manipulation unit 10 matches the direction in which the acceleration (ii) of the manipulation unit 10 is exerted from becoming too long. For that purpose, it is desirable for the direction in which the excitation force (i) exerted on the manipulation unit 10 to match the direction in which the acceleration (ii) of the manipulation unit 10 is exerted before the acceleration (ii) of the manipulation unit 10 takes the fifth peak value P5 or sixth peak value P6.
From the above, it is desirable for the direction in which the excitation force (i) exerted on the manipulation unit 10 to match the direction in which the acceleration (ii) of the manipulation unit 10 that has started to vibrate is exerted between the time at which the third peak value P3 appears in the acceleration (ii) of the manipulation unit 10 and the time at which the sixth peak value P6 appears.
With the input device 1 illustrated in
Temperature of the manipulation unit 10 and its vicinity is detected by the temperature sensor 14 disposed in the manipulation unit 10. A detection output from the temperature sensor 14 is given to the control unit 21. The elastic coefficient (km) of the elastic portion 2k in the elastic support mechanism 2, the viscous resistance coefficient (cm) of the viscous resistance portion 2c also in the elastic support mechanism 2, and the vibration characteristics (ka and ca) of the vibrator in the vibration generation device 30 are likely to be affected by temperature. Efficiency with which vibration is transmitted from the vibration generation device 30 to the manipulation unit 10 is also likely to be affected by temperature. In view of this, in the control unit 21, it is desirable to correct modulation of the frequency of the driving signal to be given to the vibration generation device 30 and a timing at which to switch the cycle from T0 to T1, with reference the detection output from the temperature sensor 14.
In the present disclosure, the cycle of the excitation force (i) exerted from the vibration generation device 30 on the manipulation unit 10 and modulation of the cycle (modulation of the driving voltage) may have been set in advance by the control unit 21 so that their settings are close to fixed values, according to the vibration characteristics of the manipulation unit 10, without providing the acceleration sensor 15. In this case as well, it is desirable to correct the modulation setting of the cycle of the excitation force (i), according to changes in temperature, in response to a detection signal from the temperature sensor 14.
In the comparative example in
While there has been illustrated and described what is at present contemplated to be preferred embodiments of the present disclosure, it will be understood by those skilled in the art that various changes and modifications may be made, and equivalents may be substituted for elements thereof without departing from the true scope of the disclosure. In addition, many modifications may be made to adapt a particular situation to the teachings of the disclosure without departing from the central scope thereof. Therefore, it is intended that this disclosure not be limited to the particular embodiments disclosed, but that the disclosure will include all embodiments falling within the scope of the appended claims.
Number | Date | Country | Kind |
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2021-080362 | May 2021 | JP | national |