ADJUSTABLE MAGNETIC SPRING FOR ACTUATOR
20220232326 · 2022-07-21
Inventors
- Franz Heidinger (Unterwaltersdorf, AT)
- Manuel Mefleh (Vienna, AT)
- Gustav Otto (Vienna, AT)
- Friedrich Reining (Vienna, AT)
- Michael Schoffmann (Baden, AT)
Cpc classification
H02K33/16
ELECTRICITY
H04R2440/05
ELECTRICITY
International classification
Abstract
An electrodynamic actuator (1a, 1b) is disclosed, which is designed to be connected to a plate like structure (2) and which comprises a coil arrangement (3a, 3b) with at least one voice coil (4a, 4b), a magnet system (5) with a movable magnetic circuit part (7, 7a . . . 7f) and a static magnetic circuit part (6a . . . 6F) and a spring arrangement (12) coupling the static magnetic circuit part (6a . . . 6F) to the movable magnetic circuit part (7, 7a . . . 7f) and allowing a relative movement between the same. Both the spring arrangement (12) and the magnet system (5) provide a total restoring force (F.sub.T) directed towards an idle position (P.sub.0) of the movable magnetic circuit part (7, 7a . . . 7f). A part of a total restoring force gradient (ΔF.sub.T/Δz) caused by the magnet system (5) is at least 10% of the total restoring force gradient (ΔF.sub.T/Δz) in said idle position (P.sub.0) of the movable magnetic circuit part (7, 7a . . . 7f). In addition, an output device (17) with the electromagnetic actuator (1a, 1b) mounted to a plate like structure (2) is disclosed.
Claims
1. An electrodynamic actuator (1a, 1b), which is designed to be connected to a backside of a plate like structure (2) opposite to a sound emanating surface (S) of the plate like structure (2), and which comprises: a coil arrangement (3a, 3b) with at least one voice coil (4a, 4b), which has an electrical conductor in the shape of loops running around a coil axis (C) in a loop section; a magnet system (5), comprising a static magnetic circuit part (6a . . . 6F), which is arranged in fixed relation to the coil arrangement (3a, 3b), and a movable magnetic circuit part (7, 7a . . . 7f), wherein the magnet system (5) is designed to generate a magnetic field (B1, B2) transverse to the conductor in the loop section; and a spring arrangement (12) coupling the static magnetic circuit part (6a . . . 6F) to the movable magnetic circuit part (7, 7a . . . 7f) and allowing a relative movement between the static magnetic circuit part (6a . . . 6F) and said movable magnetic circuit part (7, 7a . . . 7f) in an excursion direction (z) parallel to the coil axis (C), wherein both the spring arrangement (12) and the magnet system (5) provide a total restoring force (F.sub.T) directed towards an idle position (P.sub.0) of the movable magnetic circuit part (7, 7a . . . 7f), which idle position (P.sub.0) is defined as the position of the movable magnetic circuit part (7, 7a . . . 7f) when no current (I) flows through the at least one voice coil (4a, 4b), wherein a ratio between a differential total restoring force (ΔF.sub.T) and a differential excursion (Δz) of the movable magnetic circuit part (7, 7a . . . 7f) is defined as a total restoring force gradient (ΔF.sub.T/Δz), and wherein a part of the total restoring force gradient (ΔF.sub.T/Δz) caused by the magnet system (5) is at least 10% of the total restoring force gradient (ΔF.sub.T/Δz) in said idle position (P.sub.0) of the movable magnetic circuit part (7, 7a . . . 7f).
2. The electrodynamic actuator (1a, 1b) as claimed in claim 1, wherein a part of the total restoring force gradient (ΔF.sub.T/Δz) caused by the magnet system (5) is at least 10% of the total restoring force gradient (ΔF.sub.T/Δz) in the maximum excursion position of the movable magnetic circuit part (7, 7a . . . 7f).
3. The electrodynamic actuator (1a, 1b) as claimed in claim 1, wherein the part of the total restoring force gradient (ΔF.sub.T/Δz) caused by the magnet system (5) in said idle position (P.sub.0) of the movable magnetic circuit part (7, 7a . . . 7f) is smaller than in a position of the movable magnetic circuit part (7, 7a . . . 7f) displaced from said idle position (P.sub.0).
4. The electrodynamic actuator (1a, 1b) as claimed in claim 1, wherein the part of the total restoring force gradient (ΔF.sub.T/Δz) caused by the magnet system (5) in said idle position (P.sub.0) of the movable magnetic circuit part (7, 7a . . . 7f) is higher than in a position of the movable magnetic circuit part (7, 7a . . . 7f) displaced from said idle position (P.sub.0).
5. The electrodynamic actuator (1a, 1b) as claimed in claim 1, wherein a width (b) of an airgap between the static magnetic circuit part (6a . . . 6F) and the movable magnetic circuit part (7, 7a . . . 7f) in a cross sectional plane comprising the coil axis (C) measured in a direction perpendicular to said coil axis (C) is constant along a direction parallel to said coil axis (C).
6. The electrodynamic actuator (1a, 1b) as claimed in claim 1, wherein a width (b) of an airgap between the static magnetic circuit part (6a . . . 6F) and the movable magnetic circuit part (7, 7a . . . 7f) in a cross sectional plane comprising the coil axis (C) measured in a direction perpendicular to said coil axis (C) changes or varies along a direction parallel to said coil axis (C).
7. The electrodynamic actuator (1a, 1b) as claimed in claim 1, wherein a profile contour of an airgap between the static magnetic circuit part (6a . . . 6F) and the movable magnetic circuit part (7, 7a . . . 7f) in a cross sectional plane comprising the coil axis (C) changes stepwise in a direction parallel to said coil axis (C).
8. The electrodynamic actuator (1a, 1b) as claimed in claim 1, wherein a profile contour of an airgap between the static magnetic circuit part (6a . . . 6F) and the movable magnetic circuit part (7, 7a . . . 7f) in a cross sectional plane comprising the coil axis (C) changes continuously in a direction parallel to said coil axis (C).
9. The electrodynamic actuator (1a, 1b) as claimed in claim 1, wherein a profile contour of an airgap between the static magnetic circuit part (6a . . . 6F) and the movable magnetic circuit part (7, 7a . . . 7f) in cross sectional planes comprising the coil axis (C) stays the same along an annular course of the airgap around the coil axis (C).
10. The electrodynamic actuator (1a, 1b) as claimed in claim 1, wherein a profile contour of an airgap between the static magnetic circuit part (6a . . . 6F) and the movable magnetic circuit part (7, 7a . . . 7f) in cross sectional planes comprising the coil axis (C) changes or varies along an annular course of the airgap around the coil axis (C).
11. The electrodynamic actuator (1a, 1b) as claimed in claim 1, wherein a width (d) of the at least one voice coil (4a, 4b) in a cross sectional plane comprising the coil axis (C) measured in a direction perpendicular to said coil axis (C) is constant along a direction parallel to said coil axis (C).
12. The electrodynamic actuator (1a, 1b) as claimed in claim 1, wherein a width (d) of the at least one voice coil (4a, 4b) in a cross sectional plane comprising the coil axis (C) measured in a direction perpendicular to said coil axis (C) changes or varies along a direction parallel to said coil axis (C).
13. The electrodynamic actuator (1a, 1b) as claimed in claim 1, wherein a profile contour of the at least one voice coil (4a, 4b) in a cross sectional plane comprising the coil axis (C) changes stepwise in a direction parallel to said coil axis (C).
14. The electrodynamic actuator (1a, 1b) as claimed in claim 1, wherein a profile contour of the at least one voice coil (4a, 4b) in a cross sectional plane comprising the coil axis (C) changes continuously in a direction parallel to said coil axis (C).
15. The electrodynamic actuator (1a, 1b) as claimed in claim 1, wherein the magnet system (5) comprises a center magnet (8, 8a . . . 8c), a bottom plate (9, 9a . . . 9c) arranged adjacent to said center magnet (8, 8a . . . 8c), a top plate (10, 10a . . . 10c) arranged adjacent to said center magnet (8, 8a . . . 8c) and opposite of the bottom plate (9, 9a . . . 9c) and an outer plate arrangement (6a . . . 6F) surrounding the top plate (10, 10a . . . 10c), wherein the outer plate arrangement (6a . . . 6F) comprises a groove (18a, 18b) facing the top plate (10, 10a . . . 10c).
16. The electrodynamic actuator (1a, 1b) as claimed in claim 1, wherein the magnet system (5) comprises a center magnet (8, 8a . . . 8c), a bottom plate (9, 9a . . . 9c) arranged adjacent to said center magnet (8, 8a . . . 8c), a top plate (10, 10a . . . 10c) arranged adjacent to said center magnet (8, 8a . . . 8c) and opposite of the bottom plate (9, 9a . . . 9c) and an outer plate arrangement (6a . . . 6F) surrounding the top plate (10, 10a . . . 10c), wherein the outer plate arrangement (6a . . . 6F) comprises a ridge (19a, 19b) facing the top plate (10, 10a . . . 10c).
17. The electrodynamic actuator (1a, 1b) as claimed in claim 1, wherein the magnet system (5) comprises a center magnet (8, 8a . . . 8c), a bottom plate (9, 9a . . . 9c) arranged adjacent to said center magnet (8, 8a . . . 8c), a top plate (10, 10a . . . 10c) arranged adjacent to said center magnet (8, 8a . . . 8c) and opposite of the bottom plate (9, 9a . . . 9c) and an outer plate arrangement (6a . . . 6F) surrounding the top plate (10, 10a . . . 10c), wherein the outer plate arrangement (6a . . . 6F) comprises holes (20a, 20b) facing the top plate (10, 10a . . . 10c).
18. The electrodynamic actuator (1a, 1b) as claimed in claim 1, wherein the magnet system (5) comprises a center magnet (8, 8a . . . 8c), a bottom plate (9, 9a . . . 9c) arranged adjacent to said center magnet (8, 8a . . . 8c), a top plate (10, 10a . . . 10c) arranged adjacent to said center magnet (8, 8a . . . 8c) and opposite of the bottom plate (9, 9a . . . 9c) and an outer plate arrangement (6a . . . 6F) surrounding the top plate (10, 10a . . . 10c), wherein an airgap between the top plate (10, 10a . . . 10c) and the outer plate arrangement (6a . . . 6F) is larger than besides thereof.
19. The electrodynamic actuator (1a, 1b) as claimed in claim 1, wherein the magnet system (5) comprises a center magnet (8, 8a . . . 8c), a bottom plate (9, 9a . . . 9c) arranged adjacent to said center magnet (8, 8a . . . 8c), a top plate (10, 10a . . . 10c) arranged adjacent to said center magnet (8, 8a . . . 8c) and opposite of the bottom plate (9, 9a . . . 9c) and an outer plate arrangement (6a . . . 6F) surrounding the top plate (10, 10a . . . 10c), wherein an airgap between the top plate (10, 10a . . . 10c) and the outer plate arrangement (6a . . . 6F) is smaller than besides thereof.
20. The electrodynamic actuator (1a, 1b) as claimed in claim 1, wherein a profile contour of an airgap between the static magnetic circuit part (6a . . . 6F) and the movable magnetic circuit part (7, 7a . . . 7f) in a cross sectional plane comprising the coil axis (C) is symmetric with respect to an axis (E) perpendicular to the coil axis (C) at the idle position (P.sub.0) of the movable magnetic circuit part (7, 7a . . . 7f).
21. The electrodynamic actuator (1a, 1b) as claimed in claim 1, wherein a profile contour of an airgap between the static magnetic circuit part (6a . . . 6F) and the movable magnetic circuit part (7, 7a . . . 7f) in a cross sectional plane comprising the coil axis (C) is asymmetric with respect to an axis (E) perpendicular to the coil axis (C) at the idle position (P.sub.0) of the movable magnetic circuit part (7, 7a . . . 7f).
22. An output device (17), comprising a plate like structure (2) with a sound emanating surface (S) and a backside opposite to the sound emanating surface (S) and comprising an electromagnetic actuator (1a, 1b) connected to said backside, characterized in that the electromagnetic actuator (1a, 1b) is designed according to claim 1.
23. The output device (17) as claimed in claim 22 characterized in that the plate like structure (2) is embodied as a display and that the electromagnetic actuator (1a, 1b) is connected to the backside of the display.
24. The output device (17) as claimed in claim 22 characterized in that an average sound pressure level of the output device (17) measured in an orthogonal distance of 10 cm from the sound emanating surface (S) is at least 50 dB_SPL in a frequency range from 100 Hz to 15 kHz.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0038] These and other aspects, features, details, utilities, and advantages of the invention will become more fully apparent from the following detailed description, appended claims, and accompanying drawings, wherein the drawings illustrate features in accordance with exemplary embodiments of the invention, and wherein:
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[0067] Like reference numbers refer to like or equivalent parts in the several views.
DETAILED DESCRIPTION OF EMBODIMENTS
[0068] Various embodiments are described herein to various apparatuses. Numerous specific details are set forth to provide a thorough understanding of the overall structure, function, manufacture, and use of the embodiments as described in the specification and illustrated in the accompanying drawings. It will be understood by those skilled in the art, however, that the embodiments may be practiced without such specific details. In other instances, well-known operations, components, and elements have not been described in detail so as not to obscure the embodiments described in the specification. Those of ordinary skill in the art will understand that the embodiments described and illustrated herein are non-limiting examples, and thus it can be appreciated that the specific structural and functional details disclosed herein may be representative and do not necessarily limit the scope of the embodiments, the scope of which is defined solely by the appended claims.
[0069] Reference throughout the specification to “various embodiments,” “some embodiments,” “one embodiment,” or “an embodiment,” or the like, means that a particular feature, structure, or characteristic described in connection with the embodiment is included in at least one embodiment. Thus, appearances of the phrases “in various embodiments,” “in some embodiments,” “in one embodiment,” or “in an embodiment,” or the like, in places throughout the specification are not necessarily all referring to the same embodiment. Furthermore, the particular features, structures, or characteristics may be combined in any suitable manner in one or more embodiments. Thus, the particular features, structures, or characteristics illustrated or described in connection with one embodiment may be combined, in whole or in part, with the features, structures, or characteristics of one or more other embodiments without limitation given that such combination is not illogical or non-functional.
[0070] It must be noted that, as used in this specification and the appended claims, the singular forms “a,” “an” and “the” include plural referents unless the content clearly dictates otherwise.
[0071] The terms “first,” “second,” and the like in the description and in the claims, if any, are used for distinguishing between similar elements and not necessarily for describing a particular sequential or chronological order. It is to be understood that the terms so used are interchangeable under appropriate circumstances such that the embodiments of the invention described herein are, for example, capable of operation in sequences other than those illustrated or otherwise described herein. Furthermore, the terms “include,” “have,” and any variations thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements is not necessarily limited to those elements, but may include other elements not expressly listed or inherent to such process, method, article, or apparatus.
[0072] All directional references (e.g., “plus,” “minus,” “upper,” “lower,” “upward,” “down-ward,” “left,” “right,” “leftward,” “rightward,” “front,” “rear,” “top,” “bottom,” “over,” “under,” “above,” “below,” “vertical,” “horizontal,” “clockwise,” and “counterclockwise”) are only used for identification purposes to aid the reader's understanding of the present disclosure, and do not create limitations, particularly as to the position, orientation, or use of the any aspect of the disclosure. It is to be understood that the terms so used are interchangeable under appropriate circumstances such that the embodiments of the invention described herein are, for example, capable of operation in other orientations than those illustrated or otherwise described herein.
[0073] As used herein, the phrased “configured to,” “configured for,” and similar phrases indicate that the subject device, apparatus, or system is designed and/or constructed (e.g., through appropriate hardware, software, and/or components) to fulfill one or more specific object purposes, not that the subject device, apparatus, or system is merely capable of performing the object purpose.
[0074] Joinder references (e.g., “attached,” “coupled,” “connected,” and the like) are to be construed broadly and may include intermediate members between a connection of elements and relative movement between elements. As such, joinder references do not necessarily infer that two elements are directly connected and in fixed relation to each other. It is intended that all matter contained in the above description or shown in the accompanying drawings shall be interpreted as illustrative only and not limiting. Changes in detail or structure may be made without departing from the spirit of the invention as defined in the appended claims.
[0075] All numbers expressing measurements and so forth used in the specification and claims are to be understood as being modified in all instances by the term “about” or “substantially,” which particularly means a deviation of ±10% from a reference value.
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[0077] The electrodynamic actuator 1a comprises a coil arrangement 3a with two voice coils 4a, 4b, which have electrical conductors in the shape of loops running around a coil axis C in a loop section. In addition, the electrodynamic actuator 1a comprises a magnet system 5 with a static magnetic circuit part 6a, which is arranged in fixed relation to the coil arrangement 3a, and a movable magnetic circuit part 7, which is movable in relation to the static magnetic circuit part 6a and the coil arrangement 3a. The magnet system 5 is designed to generate a magnetic field B1, B2 transverse to the conductors of the voice coils 4a, 4b in the loop section and in this example comprises a center magnet 8, a bottom plate 9 and a top plate 10. The bottom plate 9 is arranged adjacent to said center magnet 8, and the top plate 10 is arranged adjacent to said center magnet 8 and opposite of the bottom plate 9. The static magnetic circuit part 6a is formed by an outer plate arrangement, which surrounds the movable magnetic circuit part 7 and which in this example comprises four separate outer plates 11a . . . 11d.
[0078] Further on, the electrodynamic actuator 1a comprises a spring arrangement 12, which couples the static magnetic circuit part 6a to the movable magnetic circuit part 7 and allows a relative movement between the static magnetic circuit part 6a and said movable magnetic circuit part 7 in an excursion direction z parallel to the coil axis C. In this example, the spring arrangement 12 comprises two springs 13a, 13b, each having spring legs 14, an (annular) outer holder 15 and a center holder 16. The outer holders 15 of the two springs 13a, 13b are connected to the outer plate arrangement 6a (static magnetic circuit part). The center holder 16 of the first spring 13a is connected to the top plate 10, which belongs to the movable magnetic circuit part 7, and the center holder 16 of the second spring 13b is connected to the bottom plate 9, which belongs to the movable magnetic circuit part 7 as well. The spring legs 14 each connect the outer holder 15 and the center holder 16 and allow a relative movement between the same and thus also between the static magnetic circuit part 6a and the movable magnetic circuit part 7.
[0079] The electrodynamic actuator 1a together with the plate like structure 2 forms an output device 17. In particular, the plate like structure 2 may be embodied as a display. In this case, the output device 17 can output both audio and video data.
[0080] Beneficially, an average sound pressure level of the output device 17 measured in an orthogonal distance of 10 cm from the sound emanating surface S is at least 50 dB_SPL in a frequency range from 100 Hz to 15 kHz.
[0081] To obtain a long life connection between the electromagnetic actuator 1a and the plate like structure 2, the at least one voice coil 4a, 4b or the magnet system 5 (here its static magnetic circuit part 6a) can comprise a flat mounting surface, which is intended to be connected to the backside the plate like structure 2 opposite to the sound emanating surface S.
[0082] With regards to the sound emanating surface S, one should note that sound can also emanate from the backside of the plate like structure 2, i.e. the plate side opposite of the sound emanating surface S. However, this backside usually faces an interior space of a device (e.g. a mobile phone), which the output device 2 is built into. Hence, the plate like 2 structure may be considered to have the main sound emanating surface S and a secondary sound emanating surface (i.e. said backside). Sound waves emanated by the main sound emanating surface S directly reach the user's ear, whereas sound waves emanated by the a secondary sound emanating surface do not directly reach the user's ear, but only indirectly via reflection or excitation of other surfaces of a housing the device, which the output device 2 is built into.
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[0088] Both the spring arrangement 12 and the magnet system 5 provide a total restoring force F.sub.T directed towards the idle position P.sub.0 of the movable magnetic circuit part 7, when the movable magnetic circuit part 7 is excursed. Accordingly, the total restoring force F.sub.T is zero in the state shown in
[0089] In the example shown in
[0090] However, this is not the only possibility.
[0091] Generally, changing or varying the width b of the airgap is a possibility to substantially influence the course of the restoring force F.sub.T. Moreover, a continuous change of a profile contour of the airgap generally leads to a very smooth course of the restoring force F.sub.T.
[0092] In yet another embodiment, which is shown in
[0093] It should also be noted that a width d of the voice coils 4a, 4b in a cross sectional plane comprising the coil axis C measured in a direction perpendicular to said coil axis C can change or vary along a direction parallel to said coil axis C, too, as this is the case for the embodiments shown in
[0094] Generally, voice coils 4a, 4b with constant width d are easy to manufacture. Changing or varying the width d of the voice coils 4a, 4b on the other hand is a possibility to control or influence the driving force and its course over the excursion z. If the profile contour of the at least one voice coil 4a, 4b changes stepwise, the voice coils 4a, 4b are still comparably easy to produce. On the other hand, a continuous change of the profile contour of the at least one voice coil 4a, 4b leads to a very smooth course of the driving force.
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[0096] When the magnet system 5 causes a degressive restoring force F.sub.M, a part of the total restoring force gradient ΔF.sub.T/Δz caused by the magnet system 5 in said idle position P.sub.0 of the movable magnetic circuit part 7 is higher than in a position of the movable magnetic circuit part 7 displaced from said idle position P.sub.0. In contrast, a part of the total restoring force gradient ΔF.sub.T/Δz caused by the magnet system 5 in said idle position P.sub.0 of the movable magnetic circuit part 7 is lower than in a position of the movable magnetic circuit part 7 displaced from said idle position P.sub.0 if the magnet system 5 causes a progressive restoring force F.sub.M,
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[0098] In general, an airgap, which closes upon a movement of the movable magnetic circuit part 7 out of its idle position P.sub.0 or grooves 18a, 18b vis-a-vis of the bottom plate 9 and the top plate 10 lead to a degressive behavior of the restoring force F.sub.M caused by magnet system 5, and an airgap, which opens upon a movement of the movable magnetic circuit part 7 out of its idle position P.sub.0 or ridges 19a, 19b vis-a-vis of the bottom plate 9 and the top plate 10 lead to a progressive behavior of the magnetic restoring force F.sub.M.
[0099] Moreover, a degressive behavior of the total restoring force F.sub.T leads to a resonant frequency of the electrodynamic actuator 1a, 1b or the output device 17, which is lower than the resonant frequency of the electrodynamic actuator 1a, 1b or the output device 17 having a linear course of the total restoring force F.sub.T. In turn, progressive behavior of the total restoring force F.sub.T leads to a resonant frequency of the electrodynamic actuator 1a, 1b or the output device 17, which is higher than the resonant frequency of the electrodynamic actuator 1a, 1b or the output device 17 having a linear course of the total restoring force F.sub.T.
[0100] Accordingly, the magnet system 5 can be used to influence the resonant frequency of the electrodynamic actuator 1a, 1b or the output device 17. An airgap, which closes upon a movement of the movable magnetic circuit part 7 out of its idle position P.sub.0, or grooves 18a, 18b vis-a-vis of the bottom plate 9 and the top plate 10 can be used to lower the resonant frequency of the electrodynamic actuator 1a, 1b or the output device 17. On the other hand, an airgap, which opens upon a movement of the movable magnetic circuit part 7 out of its idle position P.sub.0, or ridges 19a, 19b vis-a-vis of the bottom plate 9 and the top plate 10 can be used to increase the resonant frequency of the electrodynamic actuator 1a, 1b or the output device 17. In other words, the acoustic characteristics of the electrodynamic actuator 1a, 1b or the output device 17 can be influenced by choosing an appropriate shape of the airgap.
[0101] Generally, a part of the total restoring force gradient ΔF.sub.T/Δz caused by the magnet system 5 is at least 10% of the total restoring force gradient ΔF.sub.T/Δz in the idle position P.sub.0 of the movable magnetic circuit part 7. Additionally, a part of the total restoring force gradient ΔF.sub.T/Δz caused by the magnet system 5 can be at least 10% of the total restoring force gradient ΔF.sub.T/Δz in the maximum excursion position of the movable magnetic circuit part 7. The maximum excursion position of the movable magnetic circuit part 7 is the excursion, which occurs when the nominal current I of the electrodynamic actuator 1a, 1b or the output device 17 flows through the voice coils 4a, 4b at the resonance frequency of the electrodynamic actuator 1a, 1b. By the proposed measures, the magnet system 5 has a substantial influence on the total restoring force F.sub.T and on its gradient. Further preferred shares of the total restoring force gradient ΔF.sub.T/Δz caused by the magnet system 5 are 30% or even 50%.
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[0105] However, this is not the only possibility, and the holes 20a, 20b may also be circular holes like this is the case for the embodiment shown in
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[0107] Generally, a profile contour of an airgap between the static magnetic circuit part 6a . . . 6m and the movable magnetic circuit part 7 in cross sectional planes comprising the coil axis C can stay the same along an annular course of the airgap around the coil axis C. However, the profile contour of an airgap may also change or vary along an annular course of the airgap around the coil axis C like this is shown in
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[0109] As is visible from the examples shown in the
[0110] Note that this axis E is shown only in
[0111] In the examples of
[0112] The embodiment of
[0113] So, alternatively or in addition to the profile contour of an airgap being situated in the static magnetic circuit part/outer plate arrangement 6a . . . 6F, also the movable magnetic circuit part 7, 7a . . . 7f may be profiled. In particular, the movable magnetic circuit part 7, 7a . . . 7f may comprise grooves 18a . . . 18c, ridges 19a, 19b, holes 19a, 19b or any other profile so as to influence the restoring force F.sub.M caused by the magnet system 5. It is also possible, that both the static magnetic circuit part 6a . . . 6F and the movable magnetic circuit part 7, 7a . . . 7f are profiled.
[0114] It is also possible that the static magnetic circuit part 6a . . . 6F and/or the movable magnetic circuit part 7, 7a . . . 7f comprises different profiles or different kind of profile influencing means. In other words, this in particular means that the static magnet circuit part 6a . . . 6F and/or the movable magnetic circuit part 7, 7a . . . 7f may comprise grooves 18a . . . 18c as well as ridges 19a, 19b as well as holes 19a, 19b.
[0115] It is also understandable from the Figs. that grooves 18a . . . 18c and ridges 19a, 19b often appear in combination. A ridge 19a, 19b often has adjacent grooves 18a . . . 18c and vice versa.
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[0117] By the proposed measures, the total restoring force F.sub.T is substantially influenced by the magnet system 5. Accordingly, limitations of the spring arrangement 12 can be overcome or can be compensated. In total, the proposed solution offers more design freedom in terms of reaching a desired output power, a desired sound quality and a desired lifetime for the electromagnetic actuator 1a, 1b and the output device 17.
[0118] Finally, one should note that the invention is not limited to the above-mentioned embodiments and exemplary working examples. Further developments, modifications and combinations are also within the scope of the patent claims and are placed in the possession of the person skilled in the art from the above disclosure. Accordingly, the techniques and structures described and illustrated herein should be understood to be illustrative and exemplary, and not limiting upon the scope of the present invention. The scope of the present invention is defined by the appended claims, including known equivalents and unforeseeable equivalents at the time of filing of this application. Although numerous embodiments of this invention have been described above with a certain degree of particularity, those skilled in the art could make numerous alterations to the disclosed embodiments without departing from the spirit or scope of this disclosure.
LIST OF REFERENCES
[0119] 1a, 1b electromagnetic actuator [0120] 2 plate like structure (e.g. display) [0121] 3a, 3b (annular) coil arrangement [0122] 4a, 4b voice coil [0123] 5 magnet system [0124] 6a . . . 6F static magnetic circuit part/outer plate arrangement [0125] 7, 7a . . . 7f movable magnetic circuit part [0126] 8, 8a . . . 8c center magnet [0127] 9, 9a . . . 9c bottom plate [0128] 10, 10a . . . 10c top plate [0129] 11, 11a . . . 11d outer plate [0130] 12 spring arrangement [0131] 13a . . . 13k spring [0132] 14 spring leg [0133] 15 (annular) outer holder [0134] 16 center holder [0135] 17 output device [0136] 18a . . . 18c groove [0137] 19a, 19b ridge [0138] 19a, 19b hole [0139] b airgap width [0140] B1, B2 magnetic field [0141] C coil axis (actuator axis) [0142] D groove axis [0143] d voice coil width [0144] E axis through idle position [0145] F force [0146] F.sub.M restoring force caused by magnet system [0147] F.sub.S restoring force caused by spring arrangement [0148] F.sub.T total restoring force [0149] ΔF.sub.T differential total restoring force [0150] ΔF.sub.T/Δz total restoring force gradient [0151] I current [0152] M magnetic flux [0153] P.sub.0 idle position [0154] S (main) sound emanating surface [0155] z excursion [0156] Δz differential excursion