Claims
- 1. An audio transducer comprising:
- (a) a frame;
- (b) a magnet structure attached to the frame, the magnet structure having a central portion with a forward part of a first polarity and a rearward part of a second polarity opposite the first polarity, and an outer portion in circumferential relationship to the central portion, the outer portion having a forward part of the second polarity and a rearward part of the first polarity, the forward parts defining a forward magnet gap between the central and outer portions, and the rearward parts defining a rearward magnet gap between the central and outer portions;
- (c) a voice coil movably positioned within the forward magnet gap and the rearward magnet gap, the voice coil being connectable to a source of electric current so as to allow passage of electric current from the source through the voice coil and thereby cause the voice coil to move relative to the magnet structure, the voice coil comprising a looped electrical conductor having a first portion situated in the forward magnet gap and oriented so as to conduct electric current in a first direction relative to the magnet structure, and a second portion situated in the rearward magnet gap and oriented so as to conduct electric current in a second direction, opposite the first direction, relative to the magnet structure; and
- (d) an acoustic member attached to the voice coil and flexibly attached to the frame so as to enable the acoustic member to move in a manner sufficient to generate sound in response to the electric current passing from the source through the voice coil.
- 2. The transducer of claim 1 wherein the voice coil comprises an electrically insulative sheet layer with etched conductive tracings thereon in a looped configuration so as to form the first and second portions of the electrical conductor, the sheet layer being curved to form a tube circumferentially around which the first and second portions of the electrical conductor extend in opposite directions.
- 3. The transducer of claim 2 wherein the voice coil comprises multiple sheet layers.
- 4. The transducer of claim 1 wherein the acoustic member comprises a diaphragm.
- 5. The transducer of claim 1 wherein the magnet gaps are annular.
- 6. An audio transducer comprising:
- a frame;
- a magnet structure attached to the frame, the magnet structure defining a gap across which a first and a second magnetic flux separately extend in a radial manner, the first magnetic flux being oriented oppositely the second magnetic flux;
- an electrically conductive voice coil positionable within the gap, the voice coil comprising a first coil portion and a second coil portion, the voice coil being connectable to a source of electric current such that the current flows from the source through the first coil portion in a first orbital direction in the first magnetic flux and from the source through the second coil portion in a second orbital direction, oppositely the first orbital direction, in the second magnetic flux; and
- an acoustic member attached to the voice coil and flexibly attached to the frame so as to enable the acoustic member to move in a manner sufficient to generate sound in response to the electric current flowing from the source through the voice coil.
- 7. The transducer of claim 6 wherein the voice coil comprises an electrically insulative sheet layer with etched conductive tracings thereon in a looped configuration so as to form the first and second portions of the electrical conductor, the sheet layer being curved to form a tube circumferentially around which the first and second portions of the electric conductors extend in opposite directions.
- 8. The transducer of claim 7 wherein the voice coil comprises multiple sheet layers.
- 9. An audio transducer comprising:
- a frame;
- a magnet structure attached to the frame, the magnet structure having a central portion with a forward part of a first polarity and a rearward part of a second polarity opposite the first polarity, and an outer portion in circumferential relationship to the central portion, the outer portion having a forward part of the second polarity and a rearward part of the first polarity, the forward parts of the central and outer portions defining an annular forward magnet gap between the central and outer portions and the rearward parts of the central and outer portions defining an annular rearward magnet gap between the central and outer portions;
- a cylindrical voice coil having a forward electrically conductive coil portion positionable within the forward magnet gap and a rearward electrically conductive coil portion positionable within the rearward magnet gap, the voice coil being connectable to a source of electric current so as to allow electric current to flow from the source in a first orbital direction in the forward coil portion and in a second orbital direction, oppositely the first orbital direction, in the rearward coil portion; and
- an acoustic member attached to the voice coil and flexibly attached to the frame so as to enable the acoustic member to move in a manner sufficient to generate sound in response to the electric current flowing from the source through the voice coil.
- 10. The transducer of claim 9 wherein the voice coil comprises an electrically insulative sheet layer with etched conductive tracings thereon forming the forward and rearward electrically conductive portions, the sheet layer being curved to form a tube circumferentially around which the forward and rearward electrically conductive portions extend.
- 11. The transducer of claim 10 wherein the voice coil comprises multiple sheet layers.
- 12. The transducer of claim 9 wherein the acoustic member comprises a cone diaphragm.
- 13. A method of constructing an audio transducer, comprising the steps:
- (a) forming, on a longitudinally extended electrically insulative substrate having opposing ends, an electrically conductive tracing of longitudinally extended concentric spiral loops, the loops being electrically connected in series to each other and collectively comprising a first group of longitudinally extended adjacent loop segments adapted to conduct electric current from a source in a first direction through the first group of loop segments, and a second group of longitudinally extended adjacent loop segments substantially parallel to the first group, the second group being spaced apart from the first group and adapted to conduct electric current from the source in a second direction, oppositely the first direction, through the second group of loop segments, the first and second groups of loop segments being joined together at each end of the substrate by first and second loop ends, respectively;
- (b) forming an electrically conductive voice coil by bending the substrate to substantially form a tube such that the first and second groups of loop segments extend circumferentially around the tube;
- (c) attaching an end of the voice coil to an acoustic member;
- (d) providing a magnetic structure having a first field region producing a radially directed first flux and a second field region producing a second flux, the first flux being oriented oppositely the second flux; and
- (e) placing the voice coil relative to the magnetic structure such that the first group of loop segments resides in the first flux and the second group of loop segments resides in the second flux.
- 14. The method of claim 13 wherein step (b) comprises overlapping the substrate with itself to form a tube having a wall thickness of multiple layers.
- 15. The method of claim 13 wherein step (a) comprises providing a longitudinally extended electrically insulative substrate clad with a conductive layer, and etching a pattern defining the electrically conductive tracing of spiral loops in the conductive layer.
- 16. The method of claim 13 wherein step (a) comprises printing the electrically conductive tracing of spiral loops on the substrate.
- 17. An audio transducer, comprising:
- (a) a magnet structure having a central magnet element and an outer magnet element situated circumferentially relative to the central magnet element and spaced apart from the central magnet element so as to define a gap therebetween, the central and outer magnet elements being magnetically oriented relative to each other so as to define first and second magnetic fluxes radially extending separately across the gap, wherein the first magnetic flux has an orientation opposite to the second magnetic flux;
- (b) a voice coil connectable to a source of electric current so as to allow current to flow from the source through the voice coil, the voice coil comprising first and second electrical conductors each extending so as to conduct the current circumferentially in the gap in opposite directions and cause the first and second electrical conductors to magnetically interact with the first and second magnetic fluxes, respectively, the voice coil being adapted to move in the gap relative to the central and outer magnet elements whenever electric current is passing through the first and second electrical conductors; and
- (c) an acoustic member attached to the voice coil so as to be moved by the voice coil whenever the voice coil is moving relative to the magnet structure.
Parent Case Info
This application is a continuation of application Ser. No. 07/916,038, filed on Jul. 17, 1992, now abandoned.
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Continuations (1)
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Number |
Date |
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Parent |
916038 |
Jul 1992 |
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