Claims
- 1. A loudspeaker comprising a panel capable of supporting bending waves, a low frequency transducer mounted to the panel for exciting bending waves in the panel at frequencies below a predetermined frequency, a high-frequency transducer mounted to the panel for exciting bending waves in the panel at frequencies above the predetermined frequency, and crossover circuitry for supplying a signal to the low-frequency transducer at frequencies below the predetermined frequency and to the high-frequency transducer for frequencies above the predetermined frequency, wherein said predetermined frequency is substantially equal to the coincidence frequency.
- 2. A loudspeaker according to claim 1, wherein the crossover circuitry comprises a low pass filter connected to the low-frequency transducer and a high pass filter connected to the high-frequency transducer.
- 3. A loudspeaker according to claim 2, wherein the high pass filter includes additional attenuation to reduce the response above the coincidence frequency.
- 4. A loudspeaker according to claim 3, wherein the high frequency transducer is a moving coil device adapted for high frequency operation by a small diameter voice coil.
- 5. A loudspeaker according to claim 4, wherein the high-frequency transducer is adapted for high frequency operation by a low mass voice coil.
- 6. A loudspeaker according to claim 5, wherein the low-frequency transducer is located at a position to effectively drive the lowest frequency modes for good low frequency performance.
- 7. A loudspeaker according to claim 5, wherein the high-frequency transducer is located at or close to nodal lines of low frequency modes to minimise the coupling of the high-frequency transducer to those modes and also to reduce the effect of the high-frequency transducer on the lower resonant modes.
- 8. A loudspeaker according to claim 1, wherein the high frequency transducer is a moving coil device adapted for high frequency operation by a small diameter voice coil.
- 9. A loudspeaker according to claim 8, wherein the high-frequency transducer is adapted for high frequency operation by a low mass voice coil.
- 10. A loudspeaker according to claim 9, wherein the high-frequency transducer is located at or close to nodal lines of low frequency modes to minimise the coupling of the high-frequency transducer to those modes and also to reduce the effect of the high-frequency transducer on the lower resonant modes.
- 11. A loudspeaker according to claim 1, wherein the high-frequency transducer is located at or close to nodal lines of low frequency modes to minimise the coupling of the high-frequency transducer to those modes and also to reduce the effect of the high-frequency transducer on the lower resonant modes.
- 12. A loudspeaker according to claim 1, wherein the crossover frequency is at or slightly above the coincidence frequency.
- 13. A loudspeaker according to claim 1, wherein the high frequency transducer is located at a nodal point at the coincidence frequency.
- 14. A loudspeaker according to claim 13, wherein the crossover frequency is below the coincidence frequency.
- 15. A loudspeaker according to claim 1, wherein the transducers are separated by less than half a wavelength at the crossover frequency.
- 16. A loudspeaker according to claim 1, wherein the transducers are separated by several wavelengths at the crossover frequency.
- 17. A method of driving a panel-form loudspeaker with an input signal, the loudspeaker having a panel capable of supporting bending waves and two transducers mounted to the panel for exciting bending waves in the panel, the method comprising:
dividing the input signal into frequencies below a predetermined crossover frequency and frequencies above said crossover frequency; driving one of the transducers with frequencies below said crossover frequency; and driving the other transducer with frequencies above said crossover frequency, wherein said crossover frequency is substantially equal to the coincidence frequency.
- 18. A method according to claim 17, wherein said crossover frequency is at or slightly above the coincidence frequency.
- 19. A method according to claim 17, wherein the high frequency transducer is located at a nodal point at the coincidence frequency.
- 20. A method according to claim 19, wherein said crossover frequency is below the coincidence frequency.
- 21. A method according to claim 17, wherein the transducers are separated by less than half a wavelength at said crossover frequency.
- 22. A method according to claim 17, wherein the transducers are separated by several wavelengths at said crossover frequency.
Priority Claims (1)
| Number |
Date |
Country |
Kind |
| 0018997.7 |
Aug 2000 |
GB |
|
Parent Case Info
[0001] This application claims the benefit of U.S. provisional Ser. No. 60/222,933, filed Aug. 4, 2000.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60222933 |
Aug 2000 |
US |