The present invention relates to an operator control apparatus.
An operator control apparatus of this kind can be used as a touch pad, for example, in particular, in a motor vehicle. As such, an operator control apparatus of this kind may be arranged in the central console of a motor vehicle, for example, and can be used for controlling a screen in the motor vehicle. An operator control apparatus of this kind can also be used as a part of a screen in the style of a touchscreen.
An operator control apparatus of this kind has an operating surface for manual action by means of an element. The element may be the finger of a human hand, so as to control a cursor on the screen, for example, as a result of appropriate action on the operating surface by means of the finger of the user. The element may also be a stylus, however. A sensor interacts with the operating surface such that the sensor generates a signal when the element approaches the operating surface and/or when the operating surface is touched by means of the element and/or when pressure is applied to the operating surface by means of the element. The signal is then used for switching and/or triggering a function in the style of a switching signal. Additionally, an actuator is operatively connected to the operating surface, such that the operating surface is movable by operation of the actuator so as to produce a haptic sense for the operating surface. In other words, a tactile haptic sense is producible for the operating surface by means of actuation of the actuator, in order thereby to provide the user with palpable feedback for his action on the operating surface.
However, this involves a simple movement of the operating surface, which means that the previous palpable feedback is often criticized by the user as inadequate. Moreover, the actuator is actuated with a square-wave signal or with a change-change signal in the style of an on/off switching process, for example, just to prompt a vibration for the operating surface, which, following termination of the actuation, settles and decays freely in accordance with its fixed spring-mass-damper system. If required, discrete mechanical, hydraulic or the like vibration dampers can then additionally be used for damping the decay behavior of the vibration, this firstly not being very flexible and secondly giving rise to increased costs.
The present invention is based on the object of developing the operator control apparatus further such that the diversity for the haptic sense is increased and/or the functionality for the haptic sense is improved.
In the operator control apparatus according to the present invention, the actuator is driven electrically. The actuator is operable by means of a PWM (pulse width modulation) actuation signal, such that the operating surface is movable in a preselectable manner. In particular, this means that the operating surface is movable within a preselectable displacement and/or a preselectable time and/or preselectable pattern. Advantageously, using an appropriately chosen shape and/or style for the PWM actuation signal, the tactile haptic sense respectively desired by the user is producible for the operating surface in a simple manner. The multiplicity of producible different haptic senses mean that the user can be provided with specific feedback according to the respective control of the operator control apparatus.
In a simple configuration, the electrically driven actuator may be an electromagnet, an electric motor, a piezo element or the like. If an electrode magnet is used as the actuator, then it is possible to use a solenoid therefor, as a result of which a particularly compact configuration of the operator control apparatus is attainable.
The actuator is used, as already mentioned, for appropriately moving the operating surface. If desired, the actuator can alternatively and/or additionally be used for slowing down the movement of the operating surface. In this case, the actuator is operatable by means of the PWM actuation signal so as to preselectably damp the movement of the operating surface. By way of example, this provides a simple way of preventing undesirable post-impulse oscillation of the operating surface at the conclusion of the haptic output.
For a tactile haptic sense that the user perceives as particularly ergonomic, the signal shape of the PWM actuation signal can comprise a frequency modulation with decaying signal strength. To produce the preselected movement for the operating surface in a simple manner, the parameters of the PWM actuation signal, in particular the starting frequency, end frequency, intensity profile, modulation signal shape, or the like, thereof, may be variable. In order to produce a particularly prominent haptic sense, it is possible for at least two PWM actuation signals, in particular in the form of frequency-modulated actuation signals, to be overlaid on one another. As a result, portions of the movement of the operating surface such as the initial impulse, period of vibration, vibration damping or the like, thereof, may be boosted and/or attenuated.
In a simple and inexpensive configuration, the actuator may be electrically connected by means of a switching transistor to a voltage source for operating the actuator. In addition, a control circuit in the style of a controller may be provided for actuating the switching transistor by means of the PWM actuation signal. This advantageously provides electrically simple, operationally reliable and inexpensive PWM actuation for the actuator and/or the switching transistor.
The present invention additionally provides a method for operating an operator control apparatus, in particular, one suitable for a motor vehicle. The operator control apparatus has an operating surface for manual action by means of an element, wherein, in particular, the element is the finger of a human hand, and a sensor interacting with the operating surface, such that the sensor generates a signal used for switching and/or triggering a function, in particular in the style of a switching signal, when the element approaches the operating surface and/or when the operating surface is touched by means of the element and/or when pressure is applied to the operating surface by means of the element. An electrically driven actuator is operatively connected to the operating surface, such that the operating surface is moved by operation of the actuator so as to produce a haptic sense for the operating surface. In other words, a tactile haptic sense is produced for the operating surface by means of actuation of the actuator. The actuator is operated, according to the present invention, by means of an actuation signal, which is different than a change-change signal in the style of a switching-on and/or switching-off process. Preferably, this actuation signal different than a change-change signal is a PWM (pulse width modulation) signal, which means that the actuator is operated by means of a PWM (pulse width modulation) signal. Specifically, it is operated such that the operating surface moves in a preselectable manner, in particular, within a preselectable displacement and/or a preselectable time and/or a preselectable pattern.
In a further configuration of the method for operating the operator control apparatus, the actuator can be operated by means of the PWM actuation signal such that the operating surface is moved in preselectably damped fashion. Undesirable post-impulse oscillation of the operating surface following the tactile feedback thereof can thus be prevented effectively. In addition, the parameters for the PWM actuation signal, in particular, the starting frequency, end frequency, intensity profile, modulation signal shape, or the like, thereof, can be adjusted such that the preselected movement of the operating surface is produced. Finally, at least two PWM actuation signals, in particular in the form of frequency-modulated actuation signals, can be overlaid on one another. As a result, it is a simple matter for portions of the movement of the operating surface, such as the initial impulse, period of vibration, vibration damping, or the like, thereof, to be boosted and/or attenuated.
For a particularly preferred configuration of the operator control apparatus according to the present invention, the following can be established.
The operating surface, for example, corresponding to the function of a computer mousepad, of an operator control assembly needs to be provided with an active haptic sense in order to be able to convey different kinds of haptic events to the user. The system with active haptic feedback is supposed to provide the most impulse-faithful reproduction of the haptic feedback possible, which is supposed to come close to a mechanical switch, for example. The active haptic sense is produced by an electrically driven actuator whose deflection is controllable electrically, for example, in the specific case a solenoid. Therefore, the actuation of an electrically driven actuator is provided to produce haptic events.
The aim of the different kinds of haptic events is, inter alia, to provide the user with tactile feedback. By way of example, this feedback can result in the user having the impression conveyed to him that he is operating mechanical operator control elements, such as operating a conventional short-stroke key or rotating a computer mouse wheel with latching changes, for example.
Depending on the desired effect, this requires the operating surface to be moved in a quite particular manner within a particular time and/or a particular displacement. The challenge in this case is to greatly speed up and bring to rest again the operating surface as an assembly of prescribed mechanical design with its specific property as a spring-mass-damper system in a very short time. Variations are meant to be possible in this case in order to depict different patterns of movement.
In order to produce the different demanded patterns of movement to be generated in the same device in optimum fashion, simple electrical actuation signals with a mechanical and/or other discrete damper for vibration damping would not suffice. To produce the respective pattern of movement for the operating surface in optimum fashion, the actuation of the actuator can thus also be jointly used to produce the damping. In particular, the mechanical vibrations can be damped effectively by means of appropriate actuation signal shapes for actuating the actuator in phase opposition. As such, the optimum damping in each case can be produced for each pattern of movement.
The actuator is actuated with different PWM signals. In an extension, the solution according to the present invention is the particular shaping of the PWM signals, in particular, by virtue of the signal shape of the actuator actuation signal corresponding to a frequency modulation with decaying signal strength. The stimulation with a frequency-modulated and/or damped harmonic vibration matched to the natural-frequency vibration allows the mass of the haptic system to be greatly speeded up and/or subsequently greatly damped. All of the parameters of the actuation signal, in particular the starting frequency, the end frequency, the intensity profile, the modulation signal shape, or the like, can be changed or varied to depict the desired pattern of movement of the operating surface. For the purpose of interpreting the haptic effect in optimum fashion and/or as desired, in particular, the following optimization parameters for the actuation signal are therefore available:
In order to boost part-properties, for example, the initial impulse, the period of vibration of the driven system, the vibration damping, or the like, in a specific manner, two and/or more of these frequency -modulated signals can be overlaid on one another.
The advantages attained by means of the present invention are, in particular, the following:
An exemplary embodiment of the present invention with different developments and configurations is depicted in the drawings and is described in more detail below.
In
The operator control apparatus 1 is provided with a sensor 7 interacting with the operating surface 2, as can be seen in
The operating surface 2 of the operator control apparatus 1 is mounted in the housing 13 so as to be movable in direction 3. For this purpose, according to
The actuator 9 is operable by means of an actuation signal that is different than a change-change signal, the actuation signal advantageously and also preferably being an electrical PWM (pulse width modulation) actuation signal 18 (for example, see
By contrast, the previous actuation of the actuator 9, as a result of simple switching-on and switching-off of the electrical supply voltage thereof or of the coil current for the electromagnet 9, that is to say in accordance with a change-change signal 23 or a square-wave signal 23 as shown in
To produce the respective preselected movement for the operating surface 2, the parameters of the control signal 18′ or of the PWM actuation signal 18 can be varied as appropriate. These parameters are, in particular, the starting frequency, the end frequency, the intensity profile, the modulation signal shape, or the like, of the control signal 18′ or of the PWM actuation signal 18. Examples of control signals 18′ of this kind can be seen in
Appropriately combined and optimized parameters allow the mass of the haptic system, comprising the operating surface 2 and the actuator 9, to be speeded up in optimum fashion and subsequently quickly brought to rest again, with vibrations and post-impulse oscillations being suppressed. By way of example, a control signal 18′ of this kind can consist of damped and frequency -modulated actuation. Finally, it is also possible for two and/or more control signals 18′ or PWM actuation signals 18, specifically in particular frequency -modulated actuation signals, to be overlaid on one another. This allows portions of the movement of the operating surface 2, such as the initial impulse, period of vibration, vibration damping, or the like, to be boosted and/or attenuated in specific fashion.
The PWM actuation signal 18 for generating the control signal 18′ causes variable-intensity actuation for the coil of the electromagnet 9, the intensity being controlled by the duty ratio of the PWM signal 18. The coil of the electromagnet 9 forms a low-pass filter that smooths the PWM signal 18, so that an appropriate DC component 22 is obtained, the DC component 22 in turn serving as a control signal 18′ for operating the electromagnet 9. An example of such a PWM signal 18 with a DC converter 22 after the low-pass filtering is shown in
In summary, it can therefore be established that the operator control apparatus 1 is operated as follows. The actuator 9 operatively connected to the operating surface 2 is driven electrically. In addition, the actuator 9 is operated by means of an actuation signal that is different from a step-change or square-wave signal 23, in particular by means of a PWM (pulse width modulation) actuation signal 18, such that the operating surface 2 moves in a preselectable manner, in particular within a preselectable displacement and/or a preselectable time and/or a preselectable pattern of movement, so as to produce a tactile haptic sense for the operating surface 2.
The present invention is not restricted to the exemplary embodiments described and depicted. Rather, it also comprises all developments familiar to a person skilled in the art within the framework of the invention defined by the patent claims. As such, the operator control apparatus 1 according to the present invention can be used not only as a touch pad for motor vehicles but also as a pad and/or screen in computers and also in domestic appliances, audio appliances, video appliances, telecommunication devices, games consoles, or the like.
Number | Date | Country | Kind |
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10 2016 005 427.1 | May 2016 | DE | national |
This application is a continuation of International Application No. PCT/EP2017/060734 filed May 5, 2017, which designated the United States, and claims the benefit under 35 USC § 119(a)-(d) of German Application No. 10 2016 005 427.1 filed May 6, 2016, 2015, the entireties of which are incorporated herein by reference.
Number | Date | Country | |
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Parent | PCT/EP2017/060734 | May 2017 | US |
Child | 16180343 | US |