ACOUSTIC TRANSDUCER UNIT
20240187771 ยท 2024-06-06
Inventors
- Andrea Rusconi Clerici Beltrami (Wien, AT)
- Ferruccio Bottoni (Graz, AT)
- Jakob SPOETL (Wien, AT)
- Christian Novotny (Wien, AT)
Cpc classification
H04R2499/15
ELECTRICITY
H04R2499/11
ELECTRICITY
H04R17/00
ELECTRICITY
H04R2205/022
ELECTRICITY
H04R1/10
ELECTRICITY
H04R1/24
ELECTRICITY
International classification
Abstract
The invention relates to an acoustic transducer unit (1), in particular for in-ear headphones, having an electrodynamic acoustic transducer (2) comprising a first membrane (10), preferably with a membrane perforation (42), and having at least one MEMS sound transducer (3) comprising a second membrane (30). According to the invention, the acoustic transducer unit (1) comprises a sound-guiding element (16), by means of which sound waves generated by the MEMS acoustic transducer (3) can be guided past the electrodynamic acoustic transducer (2), in particular guided past the first membrane (10) of the electrodynamic acoustic transducer (2).
Claims
1. An acoustic transducer unit (1), in particular for an in-ear headphones, with an electrodynamic acoustic transducer (2) comprising a first membrane (10), preferably with a membrane perforation (42), and comprising at least one MEMS acoustic transducer (3) comprising a second membrane (30), characterized in that the acoustic transducer unit (1) comprises an acoustic-guiding element (16) by means of which the acoustic waves generated by the MEMS acoustic transducer (3) on the electrodynamic acoustic transducer (2) can in particular be guided past the first membrane (10) of the electrodynamic acoustic transducer (2).
2. The acoustic transducer unit according to claim 1, characterized in that the MEMS acoustic transducer (3) is integrated into the electrodynamic acoustic transducer (2) such that the acoustic waves that can be generated by the second membrane (30) can be emitted from the acoustic transducer unit (1) through the membrane perforation (42).
3. The acoustic transducer unit according to claim 1, characterized in that the electrodynamic transducer (2) is arranged around the at least one MEMS acoustic transducer (3).
4. The acoustic transducer unit according to claim 1, characterized in that the first membrane (10) is annular.
5. The acoustic transducer unit according to claim 1, characterized in that the electrodynamic acoustic transducer (2) is annular.
6. The acoustic transducer unit according to claim 1, characterized in that the MEMS acoustic transducer (3) is arranged in a through-hole of the torus.
7. The acoustic transducer unit according to claim 1, characterized in that the acoustic-guiding element (16) is an acoustic-guiding tube and/or in that the acoustic-guiding element (16) extends through the electrodynamic acoustic transducer (2) and/or the membrane perforation (42).
8. The acoustic transducer unit according to claim 1, characterized in that the acoustic-guiding element (16) projects beyond the first membrane (10) and/or is adapted as an extension that projects beyond the first membrane (10).
9. The acoustic transducer unit according to claim 1, characterized in that the acoustic-guiding element (16) is straight or curved.
10. The acoustic transducer unit according to claim 1, characterized in that at least one spacer (40) is arranged on an exterior (62) of the acoustic-guiding element (16) in order to space the acoustic-guiding element (16) at a distance from a surrounding housing part of the electronic component when the acoustic transducer unit (1) is arranged as specified in an electronic component, in particular in-ear headphones (34).
11. The acoustic transducer unit according to claim 10, characterized in that the at least one spacer (40) is labyrinth-shaped and/or helix-shaped.
12. The acoustic transducer unit according to claim 10, characterized in that a damping material (69) is arranged on the exterior (68) of the acoustic guiding element (16) and/or on the spacer (40).
13. The acoustic transducer unit according to claim 5, characterized in that the acoustic transducer unit (1) comprises a transducer cavity (41), in which the MEMS acoustic transducer (3) and/or an electronics unit (18) is arranged, wherein the transducer cavity (41) is preferably formed at least partially by the through-hole of the annular electrodynamic transducer.
14. The acoustic transducer unit according to claim 13, characterized in that the transducer cavity (41) is surrounded by a magnet unit (52), in particular a magnet (7), of the electrodynamic acoustic transducer (2), and/or in that the MEMS acoustic transducer (3) and/or the electronics unit (18) is arranged in axial direction of the transducer unit (1) at the height of the magnet unit (52), in particular of the magnet (7).
15. The acoustic transducer unit according to claim 13, characterized in that the MEMS acoustic transducer (3), the electronics unit (18), a holder (15), and/or the acoustic-guiding element (16) in axial direction (21) of the acoustic transducer unit (1) have an overlap region with a magnet unit (52), in particular a magnet (7), of the electrodynamic acoustic transducer (2), a coil (8) of the electrodynamic acoustic transducer (2) and/or a transducer housing (4) of the acoustic transducer unit (1).
16. The acoustic transducer unit according to claim 15, characterized in that the MEMS acoustic transducer (3) is arranged on the holder (15) of the acoustic transducer unit (1) and/or on the magnet unit (52) of the electrodynamic acoustic transducer (2) and/or has a contact surface with these.
17. The acoustic transducer unit according to claim 13, characterized in that the electronics unit (18) comprises an electronics feed-through (19) that adjoins a MEMS cavity (54) of the MEMS acoustic transducer (3).
18. The acoustic transducer unit according to claim 1, characterized in that an acoustic propagation axis of the electrodynamic acoustic transducer (2) and an acoustic propagation axis of the MEMS acoustic transducer (3) are coaxially arranged in relation to one another, in particular in axial direction of the acoustic transducer unit (1).
19. The acoustic transducer unit according to claim 1, characterized in that the transducer unit (1) comprises at least one sealing element (53), which is preferably arranged on a contact side of the transducer unit (1).
20. The acoustic transducer unit according to claim 1, characterized in that the acoustic transducer unit (1) comprises at least one connection (67), wherein the at least one connection (67) is preferably adapted as a flexible connection section and/or as a plug.
21. The acoustic transducer unit according to claim 1, characterized in that the acoustic transducer unit (1) comprises at least one microphone (62), by means of which at least the acoustic waves and/or ambient noise that can be generated by the electrodynamic acoustic transducer (2) can be detected.
22. An electronic component, in particular in-ear headphones (34), having an acoustic transducer unit (1) according to claim 1.
23. The electronic component according to claim 22, characterized in that the electronic component comprises an outlet opening (43), and/or in that an acoustic-guiding element (16) extends from a membrane perforation (42) to the outlet opening (43).
24. The use of an acoustic transducer unit (1) according to claim 1 in an electronic component.
Description
[0056] Further advantages of the invention are described in the following embodiments. These show in
[0057]
[0058]
[0059]
[0060]
[0061]
[0062]
[0063]
[0064]
[0065]
[0066] The acoustic transducer unit 1 has an axial direction 21 and a radial direction 22.
[0067] The acoustic transducer unit 1 comprises a transducer housing 4. The transducer 2 and/or the MEMS acoustic transducer 3 are at least partially arranged in the transducer housing 4. The electrodynamic acoustic transducer 2 can in this case also be referred to as a woofer because the electrodynamic acoustic transducer 2 or the woofer in the present acoustic transducer unit 1 is primarily provided to generate low-frequency acoustics. Such low-frequency tones for example have a frequency from approx. 20 Hz to 1000 Hz. In the present acoustic transducer unit 1, the electrodynamic acoustic transducer 2 thus serves as a woofer. Conversely, the at least one MEMS acoustic transducer 3 in the present acoustic transducer unit 1 can be referred to as a tweeter. The MEMS acoustic transducer 3 generates acoustic in the acoustic transducer unit 1 with a frequency that is in particular higher than that of the electrodynamic transducer 2 or the woofer. For example, the MEMS acoustic transducer 3 generates acoustic or tones with a frequency between about 500 Hz and 20 kHz. In the present description, the electrodynamic acoustic transducer 2 can therefore also be referred to as a woofer. The MEMS acoustic transducer 3 can in the present description also be referred to as a tweeter.
[0068] The MEMS acoustic transducer 3 is shown in more detail in
[0069] The electrodynamic acoustic transducer 2 or the woofer 2 comprises at least one pole element 5, 6. According to the present exemplary embodiment, the woofer 2 comprises a first and a second pole element 5, 6. A magnet 7, which is preferably a permanent magnet, is arranged between the two pole elements 5, 6. The magnet 7 generates a magnetic field, and the two pole elements 5, 6 guide and/or bundle the magnetic flux of the magnet 7. At least the at least one pole element 5, 6 and the magnet 7 together form a magnet unit 52. The magnet unit 52, in particular the at least one pole element 5, 6 and/or the magnet 7, can be annular.
[0070] The electrodynamic and the MEMS acoustic transducers 2, 3 are arranged coaxially in relation to each other. An acoustic propagation direction of the electrodynamic and the MEMS acoustic transducer 2, 3 can also be coaxial in relation to one another. In the present
[0071] The two pole elements 5, 6 shown here are arranged at a distance from one another in an axial direction 21 of the acoustic transducer unit 1. Additionally or alternatively, the two pole elements 5, 6 are spaced at a distance from one another in a radial direction 22 of the acoustic transducer unit 1. A magnet gap 14 is furthermore arranged between the two pole elements 5, 6 spaced at a distance from one another in radial direction 22. Additionally or alternatively, the magnet gap 14 is arranged in radial direction 22 between the first pole element 5 and the magnet 7. A coil 8 of the woofer 2 is arranged in this magnet gap 14. The coil 8 projects into the magnet gap 14. An electrical signal is applied to the coil 8, which thus has an electrical current flowing through it. The electrical signal corresponds to the acoustics generated by the electrodynamic acoustic transducer 2 or the woofer 2 when the electrodynamic acoustic transducer 2 is operated as a loudspeaker. The electrical current generated by the electrical signal in the coil 8 likewise leads to a magnetic field that cooperates with the magnetic field of the magnet 7 and/or the pole elements 5, 6. The coil 8 moves since the magnet 7 and/or the pole elements 5, 6 are fixed.
[0072] The movement of the coil 8 is transferred to a membrane unit 9, wherein air arranged above the membrane unit 9 oscillates according to the movement of the coil 8. The membrane unit 9 consequently generates the acoustic.
[0073] For acoustic generation, the membrane unit 9 comprises a first membrane 10, which is connected to the coil 8 by means of a coupling unit 11 such that the movement of the coil 8 can be transferred to the first membrane 10. Since the electrodynamic acoustic transducer 2 is mainly used to generate low-frequency acoustics, the first membrane 10 can also be referred to as the woofer membrane. The membrane unit 9 further comprises an inner membrane carrier 12 and an outer membrane carrier 13. The inner membrane carrier 12 is arranged in the interior in radial direction 22 and the outer membrane carrier 13 is arranged on the exterior in radial direction 22. The first membrane 10 is mounted between the two membrane carriers 12, 13. The first membrane 10 and/or the membrane unit 9 thus has the shape of a perforated disc. The membrane unit 9 and/or the first membrane 10 comprises a membrane perforation 42 arranged in a central region, in particular the center, of the first membrane 10 and/or the membrane unit 9. Furthermore, the inner membrane carrier 12 surrounds the membrane perforation 42. The inner and/or the outer membrane carrier 12, 13 can be annular. As a result, the first membrane 10 has a round shape with a round hole in a central area. The outer membrane carrier 13 is arranged on the transducer housing 4. The inner membrane carrier 12 is arranged on the holder 15. The first membrane 10 or the membrane unit 9 can be annular.
[0074] The acoustic transducer unit 1 further comprises a transducer cavity 41, in which the MEMS acoustic transducer 3 is arranged. The woofer 2 can also comprise the transducer cavity 41. The transducer cavity 41 is shown better in
[0075] According to the present exemplary embodiment, the first pole element 5 and/or the magnet 7 or the magnet unit 52 surrounds the transducer cavity 41. The transducer cavity 41 is arranged within the first pole element 5 and/or the magnet 7 or the magnet unit 52.
[0076] According to the present exemplary embodiment, at least the MEMS acoustic transducer 3 and the magnet unit 52, in particular the magnet 7 and/or the first pole element 5, are arranged at the same height in axial direction 21 of the acoustic transducer unit 1. The MEMS acoustic transducer 3 and the magnet unit 52, in particular the magnet 7, have an overlapping region in axial direction 21. The MEMS acoustic transducer 3 and the magnet unit 52, in particular the magnet 7, thus overlap in axial direction 21.
[0077] As shown further in
[0078] The electrodynamic acoustic transducer 2, in particular the magnet unit 52, furthermore has the shape of a torus or is similar to a torus. Alternatively, the electrodynamic acoustic transducer 2, in particular the magnet unit 52, has an annular shape. The electrodynamic acoustic transducer 2 forms an outer layer of the acoustic transducer unit 1 and the MEMS acoustic transducer 3 forms a core. The electrodynamic acoustic transducer 2 can have the shape of a donut. The membrane perforation 42 and/or the transducer cavity 41 and/or the acoustic cavity 17 explained below form the opening or the through-hole of the torus or donut or the electrodynamic acoustic transducer 2. The membrane perforation 42 is shown better in
[0079] The acoustic transducer unit 1 further comprises a holder 15. According to the present exemplary embodiment, the holder 15 is arranged, or rests, on the first pole element 5 or on the magnet unit 52. The inner membrane carrier 12 is furthermore arranged on the holder 15. The holder 15 thus connects the inner membrane carrier 12 to the first pole element 5. The holder 15 supports the inner membrane carrier 12. The MEMS acoustic transducer 3 is furthermore at least partially arranged on the inner membrane carrier 12 and/or on the first pole element 5. The MEMS acoustic transducer 3, the first pole element 5, the inner membrane carrier 12, and/or the acoustic-guiding element 16 (explained below) can be arranged on the holder 15. The holder is preferably made of plastic.
[0080] An acoustic-guiding element 16 is furthermore arranged on the holder 15. For example, the acoustic-guiding element 16 can be glued together with the holder 15. The acoustic generated by the MEMS acoustic transducer 3 can be guided with the aid of the acoustic-guiding element 16. Higher-frequency acoustics are thus guided by means of the acoustic-guiding element 16 in comparison to the acoustic waves of the woofer 2. Using the acoustic-guiding element 16, the acoustic in particular can be guided past the acoustic of the electrodynamic acoustic transducer 2. Interferences or flexions on components are thus avoided. According to
[0081] The acoustic-guiding element 16 is further arranged such that the acoustic waves of the woofer 2 are guided around the acoustic-guiding element 16. By contrast, the acoustic waves of the MEMS acoustic transducer 3 are guided in the acoustic-guiding element 16. The acoustic-guiding element 16 can thus separate the acoustic waves of the electrodynamic acoustic transducer 2 and the acoustic waves of the MEMS acoustic transducer 3 from one another.
[0082] Furthermore, the acoustic-guiding element 16 can be arranged coaxially in relation to the woofer 2 and/or the tweeter 3. The acoustic guiding element 16 extends through the membrane feedthrough 42 through the first membrane 10. The first membrane 10 is arranged around the acoustic-guiding element 16.
[0083] However, the woofer 2 and the tweeter 3 are preferably coaxial in relation to one another. The acoustic-guiding element 16 can furthermore be offset, i.e., be off-center, in radial direction 22 in relation to the tweeter 3 and/or woofer 2. This can be advantageous if the space is required for other components. With the help of the acoustic-guiding element 16, the acoustic of the tweeter 3 can be guided past other components. For this purpose, the acoustic-guiding element 16 can be offset in radial direction such that it is no longer coaxial in relation to the woofer 2 and/or tweeter 3.
[0084] Furthermore, an acoustic cavity 17 can be provided, which is arranged here between the MEMS acoustic transducer 3 and the acoustic-guiding element 16. The latter can also at least partially form a front volume of the tweeter 3.
[0085] The electronics unit 18 preferably comprises an electronics feedthrough 19, which at least partially forms a rear volume of the tweeter 3. In addition, this can result in a pressure equalization.
[0086] In order to achieve pressure equalization, the first pole element 5 can additionally or alternatively comprise at least one pole feedthrough 20, which can be adapted as a hole or bore. Several pole feedthroughs 20a, 20b are shown here.
[0087] As can be seen here, the acoustic transducer unit 1 is adapted to be rotationally symmetrical. In particular the electrodynamic acoustic transducer 2, in particular the magnet unit 52, the magnet 7, the first and/or second pole element 5, 6, the coil 7, the membrane unit 9, the first membrane 10 and/or the inner and/or the outer membrane carrier 12, 13 are round and/or rotationally symmetric. Additionally or alternatively, the holder 15 is round and/or rotationally symmetric. Additionally or alternatively, the body 11 is round and/or rotationally symmetric. Additionally or alternatively, the transducer housing 4 is round and/or rotationally symmetric.
[0088] Furthermore, as can be seen here, a first contact surface 56 is arranged and/or formed between the MEMS acoustic transducer 3 and the magnet unit 52, in particular the first pole element 5. The MEMS acoustic transducer 3 is thus arranged on the magnet unit 52, in particular on the first pole element 5. Additionally or alternatively, a second contact surface 57 can be arranged and/or formed between the MEMS acoustic transducer 3 and the holder 15. The MEMS acoustic transducer 3 is thus arranged on the holder 15.
[0089] The MEMS acoustic transducer 3 can be connected to the magnet unit 52, in particular the first pole element 5, and/or the holder 15, by means of the first and/or second contact surface 56, 57. The first and/or second contact surface 56, 57 can, for example, be an adhesive surface such that the MEMS acoustic transducer 3 is glued to the magnet unit 52, in particular to the first pole element 5, and/or to the holder 15.
[0090] Furthermore, the MEMS acoustic transducer 3 rests on a side facing away from the first membrane 10 on the holder 15 and/or on the magnet unit 52, in particular on the first pole element 5. The first membrane 10 is thus arranged on the one side and the MEMS acoustic transducer 3 on the other side of the holder 15 and/or the magnet unit 52, in particular the first pole element 5.
[0091] For the sake of simplicity, features that are already described in the at least one preceding figure cannot be explained again. Furthermore, features can also only be described in said figure or in at least one of the following figures. Furthermore, the same reference symbols are for the sake of simplicity used for the same features. In addition, for the sake of clarity, not all features in subsequent figures can be shown and/or provided with a reference symbol. However, features shown in one or more of the preceding figures can also be present in said figure or in one or more of the subsequent figures.
[0092] Furthermore, for the sake of clarity, features can also only be shown and/or provided with a reference symbol in said figure or in one or more of the subsequent figures. Nonetheless, features that are only shown in one or more of the subsequent figures can already be present in said figure or a preceding figure.
[0093]
[0094] The at least one piezo layer 25 is deflects according to the applied electrical signal, as a result of which the air is oscillated and the acoustic is thus generated.
[0095] The tweeter 3 further comprises a coupling element 26, which is connected to the at least one piezo layer 25 and/or the carrier layer 24 by at least one spring element 27. The coupling element 26 can transfer the deflection of the at least one piezo layer 25 to a MEMS membrane unit 29. A coupling plate 28 is arranged between the coupling element 26 and the MEMS membrane unit 29 such that the deflection transmitted by the coupling element 26 is transferred to the MEMS membrane unit 29 in a planar manner.
[0096] The MEMS membrane unit 29 comprises at least one second membrane 30 that can oscillate the air such that the acoustic is generated according to the deflection of the at least one piezo layer 25. Furthermore, the MEMS membrane unit 29 can comprise a MEMS membrane frame 31 on which the second membrane 30 is arranged. The MEMS membrane frame 31 can also be round or angular.
[0097] The MEMS acoustic transducer 3 can further comprise a cover 32 arranged on the MEMS membrane unit 29 and/or on the carrier substrate 23. The cover 32 forms a cap for the tweeter 3. The cover 32 comprises a cover feedthrough 33 such that the acoustic generated can exit. The cover feedthrough 33 can likewise at least partially, in particular completely, form the front volume of the tweeter 3.
[0098] The MEMS acoustic transducer 3 further comprises a MEMS cavity 54. As shown in
[0099] The MEMS acoustic transducer 3 further comprises a MEMS printed circuit board 60. This MEMS printed circuit board 60 is assigned to the MEMS acoustic transducer 3. The MEMS printed circuit board 60 can for example feed electrical signals to the piezo layers 24, or the electrical signals can be distributed by means of the MEMS printed circuit board 60. The MEMS circuit board 60 also has a circuit board cavity 61, which can at least partially form a rear volume of the MEMS acoustic transducer 3. The carrier substrate 23 can furthermore be arranged on the MEMS printed circuit board 60.
[0100]
[0101] The in-ear headphones 34 shown here as an electronic component comprise a headphone housing 35, in which the acoustic transducer unit 1 is arranged. According to the present exemplary embodiment, the headphone housing 35 is formed in two parts. The headphone housing 35 comprises an ear part 36, which is inserted into the auditory canal of the user when the in-ear headphone 34 is used and operated as intended. An attachment, for example made of silicone, can also be attached over the ear part 36. The attachment forms an earplug, which is then at least partially inserted into the auditory canal. The attachment can be made of a flexible and skin-friendly material. In addition, it is advantageous if this attachment or earplug is adapted such that it can conform to the auditory canal or such that it already conforms to the auditory canal.
[0102] The ear part 36 further comprises an outlet opening 43 through which the acoustic of the electrodynamic and the MEMS acoustic transducer 2, 3 can exit from the ear part 36 or from the headphone housing 35. The outlet opening 43 is advantageously sealed with a sealing element 38 such that the entry of dirt is prevented. The sealing element 38 can for example be a screen, a net, or a foam such that acoustic can penetrate but dirt is retained.
[0103] Furthermore, the acoustic-guiding element 16 leads to the outlet opening 43 such that the acoustic of the MEMS acoustic transducer 3 can be guided to the outlet opening 43.
[0104] As can also be seen here, the acoustic-guiding element 16 is arranged such that the acoustic of the electrodynamic acoustic transducer 2 is guided past the acoustic-guiding element 16. The acoustic of the MEMS acoustic transducer 3, on the other hand, is guided by the acoustic-guiding element 16. The acoustic is guided within the acoustic-guiding element 16. The acoustic waves of the woofer 2 and the acoustic waves of the tweeter 3 remain separated from one another within the headphone housing 35 by the acoustic-guiding element 16.
[0105] Furthermore, at least one spacer 40 is arranged between the ear part 36 and the acoustic-guiding element 16, wherein two spacers 40a, 40b are shown in this
[0106] The headphone housing 35 further comprises a closure part 37 that closes the in-ear headphone 34. This can prevent moisture or water from entering the acoustic transducer unit 1. The closure part 37 can further comprise a wire feedthrough 39 through which the electrical wire, for example from a battery or other electronic components, can be fed to the acoustic transducer unit 1. The wire feedthrough 39 can be omitted if the acoustic transducer unit 1 is supplied with audio signals, etc., for example over a wireless connection. The closure part 37 can thus be closed such that moisture cannot enter. Alternatively, an opening can nevertheless be advantageous in order to create a pressure equalization for the two acoustic transducers 2, 3 while operating the acoustic transducer unit 1.
[0107] Furthermore, the ear part 36 comprises an ear part cavity 44. The ear part 36 forms a front volume of the woofer 2 and/or the acoustic waves of the woofer 2 are guided through the ear part cavity 44 to the outlet opening 43 and/or past the acoustic-guiding element 16. In addition, the closure part 37 comprises a closure part cavity 45, which can form a rear volume of the tweeter 3 and/or the woofer 2.
[0108] The ear part 36 further surrounds the transducer housing 4 and/or the outer membrane carrier 13. For example, an adhesive bond can be formed between the transducer housing 4 and/or the outer membrane carrier 13 and the ear part 36 and/or the closure part 37. It is advantageous if the acoustic transducer unit 1 comprises a protective element not shown here, which is arranged around the transducer housing 4 and extends over the first membrane 10 at least partially from the outside in radial direction 22. The first membrane 10 is thus protected, wherein the protective element is spaced at a distance from the first membrane 10 in axial direction. Said adhesive bond can then be present between the protective element and the ear part 36 and/or the closure part 37.
[0109] Furthermore, in this exemplary embodiment, a damping material 69 is arranged on the acoustic-guiding element 16 and/or on the at least one spacer 40. As can further be seen here, the damping material 69 is arranged such that when the acoustic transducer unit 1 is arranged in the electronics component as specified, for example the in-ear headphones 34 shown here, the damping material 69 is arranged between the acoustic-guiding element 16 and the surrounding housing, section of the electronics component or the ear part 36 shown here. The acoustic waves emitted by the electrodynamic acoustic transducer 2 consequently pass through the damping material 69 on their path to the outlet opening 43. This can improve the audio quality by influencing the acoustic with the damping material. The damping material 69 can for example be a foam or a mesh.
[0110]
[0111] The transducer cavity 41, which is arranged in the center of the woofer 2, is shown here. The first pole element 5 extends around the transducer cavity 41 and forms the boundary thereof. The MEMS acoustic transducer 3 is arranged in the converter cavity 41. The acoustic cavity, into which the tweeter 3 emits the acoustic, is further arranged in the first pole element 5. According to
[0112] The woofer 2 further comprises an oscillation cavity 46, in which the coil 8 and/or the first membrane 10 can oscillate in axial direction 21. Using the oscillation cavity 46, the first membrane 10 can move in the direction of the first pole element 5 and/or in the direction of the tweeter 3 when the first membrane 10 oscillates. In the region of the coil 8, the oscillation cavity 46 transitions into the magnet gap 14.
[0113] The membrane perforation 42 is also shown here. Together with the acoustic cavity 17, the transducer cavity 41 and/or at least partially with the oscillation cavity 46, the membrane perforation 42 forms the opening of the electrodynamic acoustic transducer 2. The acoustic-guiding element 16 is also guided through the membrane perforation 42.
[0114]
[0115] Furthermore, the surface of the second membrane 30 is at least as large as a surface of the cover feedthrough 33 and/or the acoustic cavity 17. Furthermore, as can be seen in
[0116] Preferably, the cover feedthrough 33 and the acoustic cavity 17 in the magnet unit 52, in particular in the first pole element 5, are congruent and/or flush in relation to one another.
[0117]
[0118]
[0119] In this case, the acoustic transducer unit 1 comprises at least one sealing element 53, by which the acoustic transducer unit 1 can be inserted into the headphone housing 35 to form a seal. As can be seen here, the sealing element 53 is arranged on the transducer housing 4. If the sealing element 53 is arranged on the transducer housing 4, it can according to
[0120] Furthermore, an exemplary embodiment of the spacer 40 is shown here. The at least one spacer 40 is arranged on an outer side 68 of the acoustic-guiding channel 16.
[0121] The at least one spacer 40 is adapted and/or arranged here such that the acoustic generated by the electrodynamic acoustic transducer 2 is guided to the outlet opening 43. Here, the spacer 40 has the shape of a helix arranged around the acoustic-guiding element 16 and extends along the acoustic-guiding element 16 in the axial direction 21. This prevents the acoustic of the electrodynamic acoustic transducer 2 from reaching the outlet opening 43 directly, in particular by the shortest path. The path for the acoustic is thereby lengthened or modified, wherein the acoustic changes, therefore allowing the acoustic to be adjusted. Additionally or alternatively, a plurality of spacers 40 can also be arranged spaced at a distance from one another in axial and radial direction 21, 22 such that the acoustic reaches the outlet opening 43 by a zigzag path.
[0122] The at least one spacer 40 can thus be adapted such that it forms a labyrinth for the acoustic generated by the electrodynamic acoustic transducer 2. With the help of the labyrinth, the acoustic can be deflected on the path to the outlet opening 43, thus allowing the acoustic to be modified. The labyrinth-shaped spacer 40 is arranged between the acoustic-guiding element 16 and the ear part 36 or a housing part, if the electronic component is not an in-ear headphone 34. In order to form the labyrinth, a plurality of spacers 40 can advantageously be arranged at a distance from one another in axial direction and/or in radial direction 21, 22.
[0123]
[0124] Furthermore, the acoustic transducer unit 1 shown here comprises at least one microphone 62, wherein two microphones 62a, 62b are shown here. The at least one microphone 62 is arranged here in such a way that the acoustic waves emitted by the electrodynamic acoustic transducer 2 reach the at least one microphone 62. In this case, the at least one microphone 62 can face the first membrane 10 such that the acoustic waves reach the at least one microphone 62 directly. The at least one microphone 62 can be a feedback microphone. The audio quality of the acoustic waves emitted by the electrodynamic acoustic transducer 2 can be monitored with the at least one microphone 62. Additionally or alternatively, the at least one microphone 62 can also record ambient noise in an environment of the acoustic transducer unit 1 and/or in the environment of the electronics component, for example of the on-ear headphones, smartphone, tablet, laptop, etc. From the detected ambient noise, an anti-acoustic can be formed, which is generated by the electrodynamic acoustic transducer 2 and/or by the MEMS acoustic transducer 3. This allows the ambient noise to be cancelled. This can be used to implement an active noise canceling method. A further microphone 62 can also be present on the electronic component, for example on the in-ear headphones 34, as shown in
[0125] The at least one microphone 62 is arranged here on the ear part 36, which is partially shown here. The ear part 36 here is a special embodiment of a housing part 66. The acoustic transducer unit 1 comprises the housing part 66 or is arranged in the housing part 66. The housing part 66 can be part of the electronics component. If the electronics component is the in-ear headphones 34, the housing part 66 is the ear part 36.
[0126] Additionally or alternatively, the at least one microphone 62 can also be arranged on an enclosure, in particular a protective enclosure, for the acoustic transducer unit 1, wherein the enclosure serves as protection for the acoustic transducer unit 1 and in particular for the first membrane 10 of the electrodynamic acoustic transducer 2. The housing part 66 and/or the ear part 36 shown here can serve as the enclosure, or the enclosure can be formed by the housing part 66 and/or the ear part 36.
[0127] In addition, several wires 63a-63d are shown schematically in this exemplary embodiment. The wires 63a-63d can in particular be multi-strand cables or wires 63a-63d. The electrical signals provided for the operation of the acoustic transducer unit 1 can be distributed with the aid of the wires 63a-63d. A first wire 63a for the electronic unit 18 and/or the MEMS acoustic transducer 3. A second wire 63b leads to the coil 8 of the electrodynamic acoustic transducer 2. A third wire 63c leads to the first microphone 62a shown here, and a fourth wire 63d leads to the second microphone 62b shown here. The wires 63a-63d are here coupled to the circuit board 58. As can further be seen here, the wires 63a-63d are coupled to the circuit board 58 on a rear side 64 of the latter.
[0128] The wires 63a-63d can here be arranged in suitable channels. As can be seen here, the two wires 63c, 63d are arranged between the transducer housing 4 and the ear part 36 or the housing part 66.
[0129] The printed circuit board 58 can further comprise a connection 67 by which electrical signals are conducted from an external unit to the acoustic transducer unit 1. The connector 67 can be adapted as a flexible section, for example as a flex PCB such that the connector 67 can be rotated or bent to facilitate the connection to the connector 67 from different directions. The connection 67 is arranged here on a rear side 64 of the printed circuit board 58. The connection 67 can also comprise a plug and/or be adapted as a plug. The plug can in this case be a flat plug and/or can be soldered onto the circuit board 58.
[0130] Furthermore, the plug can also be arranged on a front side 65 of the printed circuit board 58, in particular as a flat plug. Here, the front side 65 is connected to the MEMS acoustic transducer 3 and/or the electronics unit 18. The plug is then passed through the printed circuit board 58, for example through a printed circuit board feedthrough 59.
[0131] The flat plug can for example be adapted as a flexible circuit board such that the plug or the flat plug can be arranged flat on the circuit board 58. The plug or the flat plug can thus also be arranged between the printed circuit board 58 and the MEMS acoustic transducer 3 and/or the electronics unit 18, in particular on the front side 65 of the printed circuit board 58. Additionally or alternatively, the plug can thus also be coupled to the MEMS acoustic transducer 3 and/or the electronics unit 18.
[0132] The present invention is not limited to the illustrated and described exemplary embodiments. Modifications within the scope of the patent claims are also possible as well as a combination of the features, even if they are shown and described in different exemplary embodiments.
LIST OF REFERENCE SYMBOLS
[0133] 1 Acoustic transducer unit [0134] 2 Electrodynamic acoustic transducer/woofer [0135] 3 MEMS acoustic transducer/tweeter [0136] 4 Transducer housing [0137] First pole element [0138] 6 Second pole element [0139] 7 Magnet [0140] 8 Coil [0141] 9 Membrane unit [0142] First membrane [0143] 11 Coupling unit [0144] 12 Inner membrane carrier [0145] 13 Outer membrane carrier [0146] 14 Magnet gap [0147] Holder [0148] 16 Acoustic-guiding element [0149] 17 Acoustic cavity [0150] 18 Electronic unit [0151] 19 Electronics feedthrough [0152] Pole feedthrough [0153] 21 Axial direction [0154] 22 Radial direction [0155] 23 Carrier substrate [0156] 24 Carrier layer [0157] Piezo layer [0158] 26 Coupling element [0159] 27 Spring element [0160] 28 Coupling plate [0161] 29 MEMS membrane unit [0162] Second membrane [0163] 31 MEMS membrane frame [0164] 32 Cover [0165] 33 Cover feedthrough [0166] 34 In-ear headphones [0167] Headphone housing [0168] 36 Ear part [0169] 37 Closure part [0170] 38 Sealing element [0171] 39 Wire feedthrough [0172] Spacer [0173] 41 Transducer cavity [0174] 42 Membrane perforation [0175] 43 Outlet opening [0176] 44 Ear part cavity [0177] Closure part cavity [0178] 46 Oscillation cavity [0179] 52 Magnet unit [0180] 53 Sealing element [0181] 54 MEMS cavity [0182] 55 Housing groove [0183] 56 First contact surface [0184] 57 Second contact surface [0185] 58 Circuit board [0186] 59 Circuit board feedthrough [0187] 60 MEMS printed circuit board [0188] 61 Circuit board cavity [0189] 62 Microphone [0190] 63 Wire [0191] 64 Rear side [0192] 65 Front side [0193] 66 Housing part [0194] 67 Connection [0195] 68 Exterior [0196] 69 Damping material [0197] 70 Circumferential side