Speaker transducer
11930346 ยท 2024-03-12
Assignee
Inventors
- Timothy Ruben Scheek (Rotterdam, NL)
- Onno Hein Steenhuis (Rotterdam, NL)
- Naphur van Apeldoorn (Amsterdam, NL)
Cpc classification
H04R2400/11
ELECTRICITY
H04R2209/026
ELECTRICITY
H04R2499/11
ELECTRICITY
International classification
Abstract
A speaker transducer, comprising a speaker membrane and two drive members connected to an outer membrane circumference of the speaker membrane for driving the speaker membrane. A substantially rigid support member is connected to each of the two drive members and extends there between, wherein the support member is connected to and extends along the speaker membrane.
Claims
1. A speaker transducer, comprising: a speaker membrane; two drive members connected to an outer membrane circumference of the speaker membrane for driving the speaker membrane; and a substantially rigid support member connected to each of the two drive members and extending there between, wherein the support member is connected to and extends along the speaker membrane, wherein the support member comprises one or more fin portions extending between the two drive members, and wherein each fin portion is attached to the speaker membrane and projects away therefrom substantially perpendicular.
2. The speaker transducer of claim 1, wherein each of the two drive members is a ring shaped drive member, and wherein an outer driver circumference of each ring shaped drive member is connected to the outer membrane circumference of the speaker membrane.
3. The speaker transducer of claim 2, wherein the support member comprises a plurality of the fin portions, and wherein the plurality of the fin portions form a parallel extending arrangement of fin portions.
4. The speaker transducer of claim 3, wherein two fin portions of the plurality of the fin portions are spaced apart at a separation distance which is equal to or larger than a diameter of the outer driver circumference of each drive member.
5. The speaker transducer of claim 1, wherein the two drive members are oppositely arranged along the outer membrane circumference.
6. The speaker transducer of claim 1, wherein the support member extends along one or both sides of the speaker membrane.
7. The speaker transducer of claim 1, wherein each fin portion has a fin height, as measured from the speaker membrane, wherein the fin height is at least three times a thickness of the speaker membrane.
8. The speaker transducer of claim 1, wherein each fin portion is a straight fin portion.
9. The speaker transducer of claim 1, wherein each fin portion extends from a first circumferential part of the outer membrane circumference to a second circumferential part of the outer membrane circumference.
10. The speaker transducer of claim 1, wherein one fin portion of the one or more fin portions extends through a center point of the speaker membrane.
11. The speaker transducer of claim 1, wherein each of the two drive members comprises a voice coil or a permanent magnet for interaction with a complementary voice coil or permanent magnet respectively.
12. The speaker transducer of claim 11, wherein each of the two drive members comprises a voice coil, and wherein the two voice coils are connected through a wired connection extending along the support member.
13. The speaker transducer of claim 1, wherein the support member and the speaker membrane are integrally formed.
14. The speaker transducer of claim 1, wherein the speaker membrane and the two drive members are arranged in a substantially flat shaped volume.
Description
SHORT DESCRIPTION OF DRAWINGS
(1) The present invention will be discussed in more detail below, with reference to the attached drawings, in which
(2)
(3)
(4)
(5)
DESCRIPTION OF EMBODIMENTS
(6)
(7) As depicted, the support member 5 attaches to and extends along the speaker membrane 2, so that rigidity of the speaker membrane 2 is increased. In particular, because the speaker membrane 2 is driven only at its outer membrane circumference 4 during operation, this tends to deform the speaker membrane due to driving forces being concentrated and localised at the outer membrane circumference 4. However, the support member 5 allows drive forces (e.g. push/pull) acting on the outer membrane circumference 4 to be distributed and diffused along the speaker membrane 2. Therefore, the speaker membrane 2 is reinforced by the support member 5 and this increases durability of the speaker membrane 2, improves the performance of membrane break-up frequency, and the chance of rub-and-buzz is reduced.
(8) The support member 5 is particularly advantageous when the speaker membrane 2 is a planar membrane, which may otherwise show too much deformation without the support member 5. Note that the support member 5 is equally advantageous for a conic shaped speaker membrane 2 when requiring structural reinforcement to achieve optimal dynamic behaviour and minimize deformation when the speaker transducer 1 is in use.
(9) In a typical embodiment, each of the two drive members 3 is arranged to interact with a complementary drive member 6, such as a permanent magnet or electronically controlled magnet (e.g. voice coil). So in an embodiment, each of the drive members 3 may comprise a permanent magnet or a voice coil for interaction with a complementary voice coil or permanent magnet respectively. This allows for design flexibility as to whether each of the drive members 3 is an active or passive drive member for driving the speaker membrane 2.
(10) In case each of the drive members 3 comprises a voice coil, then an advantageous embodiment is provided wherein the voice coils are connected through a wired connection extending along the support member 5.
(11) In an embodiment, each of the two drive members 3 is a ring shaped drive member 3, and wherein an outer driver circumference 7 of each ring shaped drive member 3 is connected to the outer membrane circumference 4 of the speaker membrane 2. In this embodiment a fully eccentric arrangement is achieved, see
(12) Let a longitudinal direction be defined in a direction of motion of the speaker membrane 2 during operation, then this embodiment clearly avoids the space consuming coaxial arrangement of a speaker membrane and a membrane driver of the prior art.
(13) As further depicted in e.g.
(14) Coming back the complementary drive member 6, it can be observed from the
(15) As depicted in
(16)
(17) The support member 5 may be implemented in various ways. For example, in an embodiment the support member 5 may comprise one or more fin portions 8 extending between the two drive members 3, and wherein each fin portion 8 is attached to the speaker membrane 2 and projects away therefrom substantially perpendicular.
(18) In this embodiment each of the fin portions 8 may be seen as a relatively thin, flat portion of the support member 5 that attaches to and extends along the speaker membrane 2 between the two drive members 3, and wherein each fin portion 8 projects away from the speaker membrane 2 in longitudinal direction, i.e. a direction parallel to the direction of motion of the speaker membrane 2 during operation. By extending away substantially perpendicular to the speaker membrane 2 maximizes the rigidity that each of the fin portions 8 can provide to the speaker membrane. Furthermore, perpendicularly arranged fin portions 8 on the speaker membrane 2 preserve a maximum surface area S of the speaker membrane 2 for moving air, hence maintaining high performance. Moreover, each of the fin portions 8 minimizes the added weight to a total moving weight of the speaker transducer 1.
(19) In exemplary embodiment, each of the fin portions 8 has a thickness t substantially equal to a thickness of the speaker membrane 2. This maximizes the surface area S of the speaker membrane 2 to displace air whilst still providing sufficient structural rigidity to the speaker membrane 2. Furthermore, thickness t provides favourable dimensions for high quality, high speed manufacturing of the diaphragm.
(20) In a further exemplary embodiment, each of the fin portions 8 has a fin height h, as measured from the speaker membrane 2, wherein the fin height h is at least three time the thickness of the speaker membrane 2. This also ensures sufficient rigidity of the speaker membrane 2 whilst providing a flat speaker transducer 1. It is worth noting that the fin height h may be limited by, for example, a physical object close to the speaker transducer 1 to avoid collision therewith when the speaker transducer 1 is in use. Such a physical object could also be a further speaker transducer 1 as mentioned above to obtain a back to back arrangement of two speaker transducers 1. Such a physical object could also be an object located between two opposing speaker transducers 1 in such a back to back arrangement.
(21) As further depicted in
(22) In a further embodiment, each of the one or more fin portions 8 may extend from a first circumferential part 9 of the outer membrane circumference 4 to a second circumferential part 10 of the outer membrane circumference 4. In this embodiment, which is e.g. depicted in
(23) In an exemplary embodiment, as depicted in
(24) In the embodiment of
(25) Regardless of how the one or more fin portions 8 mentioned above are arranged between the two drive members 3, in case each of the two drive members 3 comprises a voice coil, then these voice coils may be connected through a wired connection extending along one or more of the one or more fin portions 8.
(26) It is worth noting that the support member 5 and the speaker membrane 2 may be integrally formed and thus form a unitary piece for maximum stiffness of the speaker member 2. So in an advantageous embodiment the one or more fin portions 8 may also be integrally formed with the speaker membrane 2 to maximise rigidity and hence improve dynamic performance.
(27) According to the present invention, it is certainly conceivable that more than two drive members 3 can be arranged along and connected to the outer membrane circumference 4 of the speaker membrane 2 (not shown). In such cases the support member 5 may extend in various ways between the more than two drive members 3. For example, in an embodiment the speaker transducer 1 may comprise three drive members 3 connected to and evenly spread along the outer membrane circumference 4 of the speaker membrane 2. The substantially rigid support member 5 may then be connected to a first and a second drive member of the three drive members 3, and to the first and a third drive member of the three drive members 3. In this way a Y-shaped support member 5 is obtained attached to and extending along the speaker membrane 2 for optimal drive force distribution and rigidity of the speaker membrane 2. Then in analogous fashion to the embodiments described above, the Y-shaped support member 5 may comprise one or more fin portions 8 extending between the first and second drive member and the first and third drive member. Likewise, each fin portion 8 is then attached to and extends along the speaker membrane 2 and projects away therefrom substantially perpendicular, i.e. in longitudinal direction.
(28) As will be understood, in an even further embodiment the support member 5 may extend between the first and second drive member, the first and third drive member, and the second and third drive member to further improve force distribution along the speaker membrane 2.
(29) The present invention has been described above with reference to a number of exemplary embodiments as shown in the drawings. Modifications and alternative implementations of some parts or elements are possible, and are included in the scope of protection as defined in the appended claims.