Claims
- 1. An electromechanical force transducer having an intended operative frequency range, comprising a resonant element having a frequency distribution of modes in the operative frequency range, and a mount on the resonant element for mounting the transducer to a site to which force is to be applied.
- 2. A transducer according to claim 1, wherein the mount is attached to the resonant element at a position which is beneficial for coupling modal activity of the resonant element to the site.
- 3. A transducer according to claim 2, wherein the resonant element is passive and the transducer comprises an active transducer element and a connector by which the resonant element is coupled to the active transducer element.
- 4. A transducer according to claim 3, wherein the connector is attached to the resonant element at a position which is beneficial for enhancing modal activity in the resonant element.
- 5. A transducer according to claim 4, wherein the active transducer element is selected from the group consisting of moving coil, moving magnet, piezoelectric, magnetostrictive, electrostrictive and electret devices.
- 6. A transducer according to claim 5, wherein the resonant element is perforate.
- 7. A transducer according to claim 2, wherein the resonant element is perforate.
- 8. A transducer according to claim 2, wherein the resonant element is active.
- 9. A transducer according to claim 8, wherein the resonant element has an acoustic aperture which is small to moderate acoustic radiation therefrom.
- 10. A transducer according to claim 9, wherein the resonant element is selected from the group consisting of piezoelectric, magnetostrictive, electrostrictive and electret devices.
- 11. A transducer according to claim 10, wherein the resonant element is a pre-stressed piezoelectric device.
- 12. A transducer according to claim 10, wherein the resonant element is a piezoelectric device which is mounted on a plate-like substrate and wherein the width of the substrate is at least twice that of the piezoelectric device.
- 13. A transducer according to claim 8, wherein the resonant element is selected from the group consisting of piezoelectric, magnetostrictive, electrostrictive and electret devices.
- 14. A transducer according to claim 13, wherein the resonant element is a pre-stressed piezoelectric device.
- 15. A transducer according to claim 8, wherein the resonant element is modal along two substantially normal axes.
- 16. A transducer according to claim 8, wherein the size of the mount is comparable with or less than the wavelength of waves in the operative frequency range.
- 17. A transducer according to claim 8, wherein in the operative frequency range the resonant element has a density of modes which is sufficient for the resonant element to provide an effective mean average force which is substantially constant with frequency.
- 18. A transducer according to claim 8, wherein the parameters of the resonant element are selected to enhance the distribution of modes in the resonant element in the operative frequency range.
- 19. A transducer according to claim 18, wherein the parameters of the resonant element are selected from the group consisting of aspect ratio, isotropy of bending stiffness, isotropy of thickness and geometry.
- 20. A transducer according to claim 8, wherein the resonant element is plate-like.
- 21. A transducer according to claim 20, wherein the resonant element is formed with slots or discontinuities to form a multi resonant element system.
- 22. A transducer according to claim 21, wherein the resonant element is generally in the shape of a beam.
- 23. A transducer according to claim 20, wherein the resonant element is generally disc shaped.
- 24. A transducer according to claim 20, wherein the resonant element is generally rectangular.
- 25. A transducer according to claim 20, wherein the resonant element is trapezoidal.
- 26. A transducer according to claim 20, wherein the resonant element has the shape of a trapezium.
- 27. A transducer according to claim 8, wherein the resonant element is curved out of planar.
- 28. A transducer according to claim 8, comprising a plurality of resonant elements each having a distribution of modes, the modes of the resonant elements being arranged to interleave in the operative frequency range, and at least one element link for coupling the resonant elements together.
- 29. A transducer according to claim 28, comprising two resonant elements, each in the form of a beam, having a frequency ratio of 1.27:1.
- 30. A transducer according to claim 28, comprising three resonant elements, each in the form of a beam, having a frequency ratio of 1.315:1.147:1.
- 31. A transducer according to claim 28, comprising two resonant disc-like elements having a frequency ratio of 1.1±0.02 to 1.
- 32. A transducer according to claim 28, comprising two resonant disc-like elements having a frequency ratio of 3.2:1.
- 33. A transducer according to claim 28, comprising at least three disc-like resonant elements.
- 34. A transducer according to claim 33, wherein the three disc-like elements have a frequency ratio of 3.03:1.63:1 or 8.19:3.20:1.
- 35. A transducer according to claim 4, wherein the resonant element has an acoustic aperture which is small to moderate acoustic radiation therefrom.
- 36. A transducer according to claim 35, wherein the resonant element is selected from the group consisting of piezoelectric, magnetostrictive, electrostrictive and electret devices.
- 37. A transducer according to claim 36, wherein the resonant element is a pre-stressed piezoelectric device.
- 38. A transducer according to claim 36, wherein the resonant element is a piezoelectric device which is mounted on a plate-like substrate and wherein the width of the substrate is at least twice that of the piezoelectric device.
- 39. A transducer according to claim 4, wherein the resonant element is selected from the group consisting of piezoelectric, magnetostrictive, electrostrictive and electret devices.
- 40. A transducer according to claim 39, wherein the resonant element is a pre-stressed piezoelectric device.
- 41. A transducer according to claim 4, wherein the resonant element is modal along two substantially normal axes.
- 42. A transducer according to claim 4, wherein the size of the mount is comparable with or less than the wavelength of waves in the operative frequency range.
- 43. A transducer according to claim 4, wherein in the operative frequency range the resonant element has a density of modes which is sufficient for the resonant element to provide an effective mean average force which is substantially constant with frequency.
- 44. A transducer according to claim 4, wherein the parameters of the resonant element are selected to enhance the distribution of modes in the resonant element in the operative frequency range.
- 45. A transducer according to claim 44, wherein the parameters of the resonant element are selected from the group consisting of aspect ratio, isotropy of bending stiffness, isotropy of thickness and geometry.
- 46. A transducer according to claim 4, wherein the resonant element is plate-like.
- 47. A transducer according to claim 46, wherein the resonant element is formed with slots or discontinuities to form a multi resonant element system.
- 48. A transducer according to claim 47, wherein the resonant element is generally in the shape of a beam.
- 49. A transducer according to claim 46, wherein the resonant element is generally disc shaped.
- 50. A transducer according to claim 46, wherein the resonant element is generally rectangular.
- 51. A transducer according to claim 46, wherein the resonant element is trapezoidal.
- 52. A transducer according to claim 46, wherein the resonant element has the shape of a trapezium.
- 53. A transducer according to claim 4, wherein the resonant element is curved out of planar.
- 54. A transducer according to claim 4, comprising a plurality of resonant elements each having a distribution of modes, the modes of the resonant elements being arranged to interleave in the operative frequency range, and at least one element link for coupling the resonant elements together.
- 55. A transducer according to claim 54, comprising two resonant elements, each in the form of a beam, having a frequency ratio of 1.27:1.
- 56. A transducer according to claim 54, comprising three resonant elements, each in the form of a beam, having a frequency ratio of 1.315:1.147:1.
- 57. A transducer according to claim 54, comprising two resonant disc-like elements having a frequency ratio of 1.1±0.02 to 1.
- 58. A transducer according to claim 54, comprising two resonant disc-like elements having a frequency ratio of 3.2:1.
- 59. A transducer according to claim 54, comprising at least three disc-like resonant elements.
- 60. A transducer according to claim 59, wherein the three disc-like elements have a frequency ratio of 3.03:1.63:1 or 8.19:3.20:1.
- 61. An inertial electromechanical force transducer according to claim 2, claim 4 or claim 8.
- 62. A loudspeaker comprising an acoustic radiator, an electromagnetic force transducer having an operative frequency range for exciting the acoustic radiator to produce an acoustic output, and a mount for mounting the transducer to a site on the acoustic radiator to which transducer force is applied, wherein the transducer comprises a resonant element having a frequency distribution of modes in the operative frequency range, and the mount is attached to the resonant element at a position which is beneficial for coupling modal activity of the resonant element to the acoustic radiator.
- 63. A loudspeaker according to claim 62, wherein the resonant element is passive and the transducer comprises an active transducer element and a connector by which the resonant element is coupled to the active transducer element at a position which is beneficial for enhancing modal activity in the resonant element.
- 64. A loudspeaker according to claim 62, wherein the resonant element is active.
- 65. A loudspeaker according to claim 62, claim 63 or claim 64, wherein the parameters of the mount are selected to control the distribution of modes in the resonant element in the operative frequency range.
- 66. A loudspeaker according to claim 62, claim 63 or claim 64, wherein the mount is positioned asymmetrically with respect to the acoustic radiator.
- 67. A loudspeaker according to claim 62, claim 63 or claim 64, wherein the mount forms a line of attachment.
- 68. A loudspeaker according to claim 67, wherein the line of attachment is not coincident with a line of symmetry of the resonant element.
- 69. A loudspeaker according to claim 67, wherein the line of attachment is not parallel to a symmetry axis of the acoustic radiator.
- 70. A loudspeaker according to claim 67, wherein the shape of the resonant element is selected to provide an off-centre line of attachment which is generally at the centre of mass of the element.
- 71. A loudspeaker according to claim 70, wherein the shape of the transducer is trapezoidal.
- 72. A loudspeaker according to claim 62, claim 63 or claim 64, wherein the mount forms a small local area of attachment.
- 73. A loudspeaker according to claim 62, claim 63 or claim 64, wherein the mount is positioned away from the centre of the resonant element.
- 74. A loudspeaker according to claim 73, wherein the mount is positioned at an antinode of the resonant element.
- 75. A loudspeaker according to claim 62, claim 63 or claim 64, wherein the mount comprises more than one coupling point between the resonant element and the acoustic radiator.
- 76. A loudspeaker according to claim 62, claim 63 or claim 64, wherein the acoustic radiator is intendedly pistonic over at least part of its operating frequency range.
- 77. A loudspeaker according to claim 62, claim 63 or claim 64, wherein the acoustic radiator is capable of supporting bending wave vibration and the transducer excites bending wave vibration in the acoustic radiator to produce an acoustic output.
- 78. A loudspeaker according to claim 77, wherein the acoustic radiator supports resonant bending wave modes and the transducer excites the resonant bending wave modes.
- 79. A loudspeaker according to claim 78, wherein the parameters of the acoustic radiator are selected to enhance the distribution of modes in the resonant element in the operative frequency range.
- 80. A loudspeaker according to claim 79, wherein the parameters of the acoustic radiator and the parameters of the resonant element are cooperatively selected to enhance the distribution of modes in the loudspeaker in the operative frequency range.
- 81. A loudspeaker according to claim 62, claim 63 or claim 64, wherein the area of the resonant element is small relative to that of the acoustic radiator.
- 82. A method of making a loudspeaker comprising a resonant acoustic radiator and transducer mounted to the acoustic radiator and having an operative frequency range for exciting the acoustic radiator to produce an acoustic output, wherein the transducer comprises a resonant element having a frequency distribution of modes in the operative frequency range, the method comprising the steps of analysing the mechanical impedances of the resonant element and the acoustic radiator, selecting and/or adjusting the parameters of the acoustic radiator and/or the element to achieve the required modality of the resonant element and/or the acoustic radiator and to achieve a required power transfer between the element and the acoustic radiator.
- 83. A method of making a loudspeaker comprising a resonant acoustic radiator and transducer mounted to the acoustic radiator and having an operative frequency range for exciting the acoustic radiator to produce an acoustic output, wherein the transducer comprises a resonant element having a frequency distribution of modes in the operative frequency range, the method comprising the steps of analysing and/or comparing the variation of velocity and force for a given modally actuated acoustic system, and selecting a combination of values of velocity and force to achieve a chosen power transfer.
- 84. A microphone comprising a member capable of supporting audio input and a transducer coupled to the member via a mount to provide an electrical output in response to incident acoustic energy on the member, wherein the transducer comprises a resonant element having a frequency distribution of modes in an operative frequency range, and the mount is attached to the resonant element at a position which is beneficial for coupling to modal activity of the resonant element.
- 85. A microphone according to claim 84, wherein the resonant element is perforate.
- 86. A microphone according to claim 84, wherein the resonant element is selected from the group consisting of piezoelectric, magnetostrictive, electrostrictive and electret devices.
- 87. A microphone according to claim 84, wherein the resonant element is modal along two substantially normal axes.
- 88. A microphone according to claim 84, wherein the size of the mount is comparable with or less than the wavelength of waves in the operative frequency range.
- 89. A microphone according to claim 84, wherein the parameters of the resonant element are selected to enhance the distribution of modes in the resonant element in the operative frequency range.
- 90. A microphone according to claim 89, wherein the parameters of the resonant element are selected from the group consisting of aspect ratio, isotropy of bending stiffness, isotropy of thickness and geometry.
- 91. A microphone according to claim 84, wherein the resonant element is plate-like.
- 92. A microphone according to claim 91, wherein the resonant element is formed with slots or discontinuities to form a multi resonant element system.
- 93. A microphone according to claim 92, wherein the resonant element is generally in the shape of a beam.
- 94. A microphone according to claim 91, wherein the resonant element is generally disc shaped.
- 95. A microphone according to claim 91, wherein the resonant element is generally rectangular.
- 96. A microphone according to claim 91, wherein the resonant element is trapezoidal.
- 97. A microphone according to claim 91, wherein the resonant element has the shape of a trapezium.
- 98. A microphone according to claim 84, wherein the resonant element is curved out of planar.
- 99. A microphone according to claim 84, comprising a plurality of resonant elements each having a distribution of modes, the modes of the resonant elements being arranged to interleave in the operative frequency range, and at least one element link for coupling the resonant elements together.
- 100. A microphone according to claim 99, comprising two resonant elements, each in the form of a beam, having a frequency ratio of 1.27:1.
- 101. A microphone according to claim 99, comprising three resonant elements, each in the form of a beam, having a frequency ratio of 1.315:1.147:1.
- 102. A microphone according to claim 99, comprising two resonant disc-like elements having a frequency ratio of 1.1±0.02 to 1.
- 103. A microphone according to claim 99, comprising two resonant disc-like elements having a frequency ratio of 3.2:1.
- 104. A microphone according to claim 99, comprising at least three disc-like resonant elements.
- 105. A microphone according to claim 104, wherein the three disc-like elements have a frequency ratio of 3.03:1.63:1 or 8.19:3.20:1.
Priority Claims (3)
Number |
Date |
Country |
Kind |
0001492.8 |
Jan 2000 |
GB |
|
0009705.5 |
Apr 2000 |
GB |
|
0011602.0 |
May 2000 |
GB |
|
Parent Case Info
[0001] This application claims the benefit of provisional application Nos. 60/178,315, filed Jan. 27, 2000; 60/205,465, filed May 19, 2000; and 60/218,062, filed Jul. 13, 2000.
Provisional Applications (3)
|
Number |
Date |
Country |
|
60178315 |
Jan 2000 |
US |
|
60218062 |
Jul 2000 |
US |
|
60205465 |
May 2000 |
US |