The invention relates to an operating unit for a device which particularly is a vehicle component. Particularly, the invention relates to operating units with force compensation in active haptic feedback occurring by mechanical excitation of an operating element of the operating units, so that vibrations of the operating element caused by the active haptic feedback are compensated or at least dampened and thus will have no effect or merely a reduced effect on the environment of the operating unit (e.g. instrument panel).
Display assemblies in vehicles are often provided with an active haptic feedback so that the user will receive a—particularly tactile—confirmation of an operating input. In this respect, it is not desired that the actuation of the feedback could generate an inadmissible dynamic force transmission into the environment of the operating unit such as e.g. an instrument panel or a vehicle because, depending on the installation situation, this force transmission may lead to parasitic noise or vibration within the vehicle. Such a mechanical decoupling is all the more important, the larger the mass of the mechanically excited operating element is.
Further, the haptic feedback shall be largely independent from the elasticity of the mounting in the vehicle.
A device provided with an active haptic feedback substantially consists of an operating element with an operating field (e.g. touchscreen or display) that, via a spring system, is elastically mounted to the device housing, an actuator for deflection of the operating element, and a housing that is fixedly installed in the vehicle. In
For generating the haptic feedback, the display will be deflected from its rest position with a specific course of path x1(t). The display acceleration a1(t) herein can assume values of more than 30 m/s2, which, with a moved display mass m1 of more than 0.5 kg and a normally small housing mass m2, will result in a non-negligible dynamic force F2(t) acting on the housing fastening structure in the vehicle.
In case of a “stiff” housing support or fastening structure e.g. on the instrument panel (stiff spring system c2, d2), this temporally fast-changing force may happen to cause inadmissible noises or vibrations in the vehicle.
In case of a “soft” fastening of the housing (soft spring system c2, d2), however, compliance with the mounting tolerances of the device in the vehicle will pose difficulties. Further, due to the presence of a further degree of freedom, namely the housing movement x2(t) and thus also additional natural frequencies in the system, the adjusting of the required actuator force development FAkt(t) will, depending on the circumstances, not be possible.
From US-A-2004/0075676, there is known a laptop with haptic feedback for the touchpad of the laptop. Herein, the touchpad is mechanically excited by a piezo actuator and itself is resiliently supported on the housing of the laptop. The piezo actuator has a counterweight suspended on it which, as a result of the expansion of the piezo actuator when the latter is driven, will be displaced oppositely to the movement of the touchpad. By way of this approach, however, it is not all too easily possible to realize a pulse compensation and a compensation of the dynamic forces within the housing of the laptop.
It is an object of the invention to provide a concept for an operating unit with active haptic feedback that is improved with respect to the generation of parasitic noises and vibrations, respectively.
For achieving the above object, there is proposed, according to the invention, an operating unit for a device, e.g. for a vehicle component, particularly a man-machine interface (MMI or HMI), said operating unit being provided with
Thus, according to the invention, the compensating weight is elastically fastened to the housing. The compensating weight is moved either by the actuator exciting the operating element or by a separate actuator assigned to the compensating weight.
It is suitable of if the compensating weight is designed as a part of the actuator mechanically exciting the operating element, e.g. as an integral component of the stator of a tie-rod or plunger-coil electromagnet actuator. Instead of being designed as such an electromagnet actuator, the actuator can also be designed as a piezo actuator. However, the compensating weight can also be provided as an element separate from said actuator. In each case, the compensating weight is elastically supported on the housing and thus is elastically propped relative to the housing.
Particularly, it is of advantage if the compensating weight is movable with a phase shift of substantially 180° and thus in the opposite direction to the excitation movement of the operating element wherein the movement stroke of the compensating weight is selected under consideration of at least the relation of the mass of the operating element to the mass of the compensating weight. If, for instance, the mass of the compensating weight is half the mass of the operating element, the movement stroke of the compensating weight is twice as large as the movement stroke of the operating element. In practice, the operating element is deflected e.g. by 0.1 mm or by a few 1/10 mm. If the mass of the operating element is e.g. 0.5 kg, it would be possible, for the inventive compensation of forces acting from the operating unit toward the outside, to use e.g. a compensating weight having a mass of 50 g and a movement stroke of 1 mm or a few mm.
Further, it is of advantage for a largest possible compensation of forces if the natural frequencies of the spring-mass damping system of the elastic coupling of the operating element to the housing and the natural frequency of the spring-mass damping system of the elastic coupling of the compensating weight to the housing or to the operating element are equal or substantially equal. Herein, in the framework of the invention, the phrase “substantially equal” is to be understood as denoting a deviation from the natural frequency of 50%, particularly 40%, preferably 30% and most preferably 20% or 10%.
The operating unit of the invention can be designed as display and operating unit.
The invention will be described hereunder in greater detail and with reference to the drawing. In the individual Figures, the following is shown:
According to the invention as shown in
In case of a corresponding design of the additional spring-mass damping system 22 and c3, d3, m3, respectively, the resulting force F2(t) acting on the vehicle can be eliminated. (The static forces generated by gravitation do not play a role in the generating of noises or vibrations).
For a randomly predetermined display deflection x1(t), the deflection x2(t)/motion of the device housing and thus also the force F2(t) acting on the device fastening structure can be eliminated under the following conditions:
From this, there results the deflection of the countermass 20:
Under these conditions, also the elasticity of the device fastening structure 18 will have no influence on the haptic feedback. The countermass 20 and m3, respectively, is normally restricted by the demands posed on the installation space and is smaller than the display mass m1. In the ideal case, it can be realized as a part of the actuator 16.
The present invention makes it possible
In
In the illustrated example, the actuator 20 is designed as a tie-rod electromagnet and comprises a stack of stator laminations, elastically supported on housing 10 and having an actuator coil, i.e. a stator 26 and an armature core tightly coupled to the operating element 12, i.e. an armature 28. The stator 26 forms a movable countermass 20 or comprises the same. When setting the air gap, shown at 30, in the tie-rod electromagnet, the maximum deflection of the display 10 and of the countermass 20 relative to each other has to be considered. The stator 26 is supported elastically (spring-mass damping system 22) on the housing 10 but alternatively can also be elastically coupled to the operating element 12. The operating element guide means is schematically represented at 32. The housing 10 is fastened to the vehicle 24 (e.g. at the instrument panel of the vehicle).
The invention has been described above by way of an operating unit for use in a vehicle but, as initially mentioned, is also applicable quite generally for operating units all of types of devices or systems. In devices that comprise more than one operating surface with haptic feedback, each operating surface can be mechanically excited independently from the at least one other operating surface in the manner provided by the invention. Thus, each operating surface comprises its own dedicated balance mass so as to be able to compensate for device forces and movements acting toward the outside, which are induced by mechanical excitation of any one of the operating surfaces.
Number | Date | Country | Kind |
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10 2016 204 875.9 | Mar 2016 | DE | national |
This application is a continuation of copending U.S. patent application Ser. No. 16/082,806, filed Sep. 6, 2018 (published as US 2019/0084423A1) to Pankratz et al., entitled “Operating Unit for a Device, in Particular for a Vehicle Component,” which is a national stage filing of PCT application PCT/EP2017/056555, filed Mar. 20, 2017, which claims priority to German Patent Application No. DE 10 2016 204 875.9 filed on Mar. 23, 2016, all of which are incorporated herein by reference.
Number | Date | Country | |
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Parent | 16082806 | Sep 2018 | US |
Child | 17092544 | US |