DIAPHRAGM ELEMENT ARRANGEMENT AND RELATED METHOD
20190149926 ยท 2019-05-16
Inventors
- Alfons Dehe (Villingen Schwenningen, DE)
- Manuel Dorfmeister (Wien, AT)
- Ulrich Schmid (Wien, AT)
- Michael Schneider (Wien, AT)
Cpc classification
H04R17/10
ELECTRICITY
H04R17/00
ELECTRICITY
International classification
H04R17/10
ELECTRICITY
Abstract
Diaphragm element arrangements including at least one bistable diaphragm element, which has a first stable state and a second stable state, and corresponding methods are provided. The bistable diaphragm element can be activated above a changeover threshold in order to change over between the first and the second stable state or below the changeover threshold.
Claims
1. A diaphragm element arrangement, comprising: at least one bistable diaphragm element having a first stable state and a second stable state, and a control system for activating the at least one diaphragm element, wherein the control system is configured to activate a diaphragm element of the at least one bistable diaphragm element with a control signal above a changeover threshold in order to change over between the first stable state and the second stable state, and to activate the diaphragm element or a further diaphragm element of the at least one bistable diaphragm element with an activation signal below the changeover threshold.
2. The diaphragm element arrangement as claimed in claim 1, wherein the control system is configured to carry out the activation below the changeover threshold in order to increase a dynamic range and/or a modulation depth.
3. The diaphragm element arrangement as claimed in claim 1, wherein the at least one bistable diaphragm element comprises a multiplicity of bistable diaphragm elements, which are grouped into a multiplicity of groups, wherein each of the groups is assigned to a bit, wherein the control system is configured to activate a first part of the groups above the changeover threshold and to activate a second part of the groups below the changeover threshold.
4. The diaphragm element arrangement as claimed in claim 3, wherein the control system is configured to activate the second part of the groups to compensate the overswings produced by activating the first part of the groups above the changeover threshold.
5. A diaphragm element arrangement, comprising: a bistable diaphragm element having a first stable state and a second stable state, and a control system for activating the diaphragm element, wherein the control system is configured to activate the diaphragm element to excite a self-resonant vibration, and to activate the diaphragm element with a control signal below a changeover threshold which, without the resonant vibration, would be necessary to change over between the stable states, in order to change over between the stable states.
6. The diaphragm element arrangement as claimed in claim 5, wherein the activation to change over between the stable states comprises applying voltage pulses to a piezoelectric element coupled to the diaphragm.
7. The diaphragm element arrangement as claimed in claim 5, wherein the control system is configured to activate a further diaphragm element in anti-phase to the diaphragm element in order to excite a self-resonant vibration.
8. A method, comprising: activating a bistable diaphragm element having a first stable state and a second stable state above a changeover threshold in order to change over between the first and second stable state, and activating the bistable diaphragm element or a further bistable diaphragm element below the changeover threshold.
9. The method as claimed in claim 8, wherein the bistable diaphragm element and the further bistable diaphragm element are provided in a diaphragm element arrangement, wherein diaphragm elements of the diaphragm element arrangement are activated in groups, wherein each group is assigned to a bit, wherein at least one group assigned to a higher-value bit is activated above the changeover threshold, and at least one group assigned to a lower-value bit is activated below the changeover threshold.
10. The method as claimed in claim 8, wherein the activation below the changeover threshold compensates overswings which are produced by the activation above the changeover threshold.
11. The method as claimed in claim 8, wherein the activation below the changeover threshold increases a dynamic range and/or a modulation depth.
12. A method, comprising: setting a diaphragm of a bistable diaphragm element vibrating at a self-resonant frequency of the diaphragm, and changing over the bistable diaphragm element between two stable states by activation below a changeover threshold which, without the excitation to vibrate at the self-resonance, is necessary for the changeover.
13. The method as claimed in claim 12, wherein the activation below the changeover threshold comprises applying voltage pulses to a piezoelectric element coupled to the diaphragm.
14. The method as claimed in claim 12, further comprising setting a further diaphragm of a further bistable diaphragm element vibrating at a natural frequency of the further diaphragm in anti-phase to the vibrations of the diaphragm.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
DETAILED DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
[0020] In the following text, various exemplary embodiments will be explained in detail. It should be noted that these exemplary embodiments serve merely for illustration and are not to be interpreted as restrictive. For example, components illustrated in the figures can be adapted or modified. In addition to the components illustrated, further components can be used, in particular in conventional devices for generating sound such as, for example, corresponding microelectromechanical systems.
[0021] Features or components of various exemplary embodiments can be combined with one another in order to form further exemplary embodiments. Variants and adaptations which are described for one of the exemplary embodiments can also be applied to other exemplary embodiments.
[0022]
[0023] The mechanical preloading can be achieved, for example, by additional layers having a defined tension being applied to a basic diaphragm, or by tension being introduced into the diaphragm directly, e.g. by implantation of a material, or by appropriate stressing of the diaphragm being carried out in the surroundings (e.g. on carrier 10). The diaphragm can likewise comprise a semiconductor material such as silicon or other layer materials, for example silicon nitride, silicon carbon compounds or the like, and can have one or more layers. Thus, in a multilayer system, for example a mechanical stress can also be produced by materials of different lattice constants.
[0024] Changing over between the bistable states can be carried out by a piezoelectric actuator.
[0025] Activation of this type, which effects the changeover of the diaphragm 11 between the two stable states, will also be designated within the context of the present invention as activation above a changeover threshold or digital activation (since it changes over between two states, similar to digital values 0 and 1).
[0026] It should be noted that the actuator with the piezoelectric element 20 does not necessarily have to be arranged on the diaphragm, as illustrated in
[0027] In exemplary embodiments, in addition to the aforementioned digital activation, activation below the changeover threshold, also designated as analog activation below, is used. In some exemplary embodiments, a single diaphragm element as illustrated in
[0028]
[0029]
[0030] In exemplary embodiments, as explained, both digital activation and analog activation are used. In some exemplary embodiments, a single diaphragm element (as illustrated in
[0031] In some exemplary embodiments, digital generation of sound by digital activation of one or more bistable diaphragm elements can have an analog activation signal superimposed, in order as a result to achieve more dynamics and sound level or to increase the modulation depth. In this way, in particular, the total harmonic distortion (THD) which, in an arrangement of multiple diaphragms, arises for example as a result of a finite value of a digitization step width, can be reduced. In other words, in such an arrangement with pure digital activation, only specific sound pressures can be generated, since each individual bistable diaphragm element can either be changed over or not during a switching operation. By additional analog activation, intermediate values can be generated here.
[0032]
[0033] In the exemplary embodiment of
[0034] In the exemplary embodiment of
[0035] As explained with reference to
[0036] In exemplary embodiments, these overswings can be compensated by an analog signal which runs in anti-phase relative to the overswings of curve 60 being applied to analog-activated diaphragm elements (for example diaphragm elements 50A, 50B of
[0037] The curve 62 of
[0038] A further possible use of excitation below the changeover threshold is a changeover between the two stable states by resonance. This is illustrated in
[0039] A curve 70 in
[0040] By amplitude modulation, i.e. additional pulses, which are superimposed on the pulses of curve 71, with which the resonance is increased, the changeover operation can then be triggered, wherein a voltage is needed which actually lies below the changeover threshold and, because of the resonant excitation, nevertheless suffices to change over between the stable states. One example of this is illustrated by a curve 74 of
[0041]
[0042] In
[0043] At 81, the diaphragm element or else a further diaphragm element of a diaphragm element arrangement like the arrangement shown in
[0044] Details of the activation above the changeover threshold and below the changeover threshold can be carried out as explained above with reference to
[0045]
[0046] At least some exemplary embodiments are defined in the following examples:
Example 1
[0047] Diaphragm element arrangement, comprising: at least one bistable diaphragm element having a first stable state and a second stable state, and a control system for activating the at least one diaphragm element, wherein the control system is configured to activate a diaphragm element of the at least one bistable diaphragm element with a control signal above a changeover threshold in order to change over between the first stable state and the second stable state, and to activate the diaphragm element or a further diaphragm element of the at least one bistable element with an activation signal below the changeover threshold.
Example 2
[0048] Diaphragm element arrangement according to example 1, wherein the control system is configured to carry out the activation below the changeover threshold in order to increase a dynamic range and/or a modulation depth.
Example 3
[0049] Diaphragm element arrangement according to example 1, wherein the at least one bistable diaphragm element comprises a multiplicity of bistable diaphragm elements, which are grouped into a multiplicity of groups, wherein each of the groups is assigned to a bit, wherein the control system is configured to activate a first part of the groups above the changeover threshold and to activate a second part of the groups below the changeover threshold.
Example 4
[0050] Diaphragm element arrangement according to example 3, wherein the control system is configured to activate the second part of the groups to compensate the overswings produced by activating the first part of the groups above the changeover threshold.
Example 5
[0051] Diaphragm element arrangement, comprising: a bistable diaphragm element having a first stable state and a second stable state, and a control system for activating the diaphragm element, wherein the control system is configured to activate the diaphragm element to excite a self-resonant vibration, and to activate the diaphragm element with a control signal below a changeover threshold which, without the resonant vibration, would be necessary to change over between the stable states, in order to change over between the stable states.
Example 6
[0052] Diaphragm element arrangement according to example 5, wherein the activation to change over between the stable states comprises applying voltage pulses to a piezoelectric element coupled to the diaphragm.
Example 7
[0053] Diaphragm element arrangement according to example 5, wherein the control system is configured to activate a further diaphragm element in anti-phase to the diaphragm element in order to excite a self-resonant vibration.
Example 8
[0054] Diaphragm element arrangement according to example 5, wherein the diaphragm element arrangement is configured in accordance with example 1.
Example 9
[0055] Method, comprising: activating a bistable diaphragm element having a first stable state and a second stable state above a changeover threshold in order to change over between the first and second stable state, and activating the bistable diaphragm element or a further bistable diaphragm element below the changeover threshold.
Example 10
[0056] Method according to example 9, wherein the bistable diaphragm element and the further bistable diaphragm element are provided in a diaphragm element arrangement, wherein diaphragm elements of the diaphragm element arrangement are activated in groups, wherein each group is assigned to a bit, wherein at least one group assigned to a higher-value bit is activated above the changeover threshold, and at least one group assigned to a lower-value bit is activated below the changeover threshold.
Example 11
[0057] Method according to example 9, wherein the activation below the changeover threshold compensates overswings which are produced by the activation above the changeover threshold.
Example 12
[0058] Method according to example 9, wherein the activation below the changeover threshold increases a dynamic range and/or a modulation depth.
Example 13
[0059] Method, comprising: setting a diaphragm of a bistable diaphragm element vibrating at a self-resonant frequency of the diaphragm, and changing over the bistable diaphragm element between two stable states by activation below a changeover threshold which, without the excitation to vibrate at the self-resonance, is necessary for the changeover.
Example 14
[0060] Method according to example 13, wherein the activation below the changeover threshold comprises applying voltage pulses to a piezoelectric element coupled to the diaphragm.
Example 15
[0061] Method according to example 13, further comprising setting a further diaphragm of a further bistable diaphragm element vibrating at a natural frequency of the further diaphragm in anti-phase to the vibrations of the diaphragm.
Example 16
[0062] Method according to example 13, wherein the method is carried out according to example 9.
[0063] In view of the variations and adaptations explained above, it can be seen that the exemplary embodiments illustrated serve merely for illustration and are not to be interpreted as restrictive.