Claims
- 1. A method of making an acoustical member capable of supporting bending wave vibration comprising the steps of:
providing a panel to form an acoustic radiator; identifying a position on the panel for mounting a vibration transducer to excite bending waves in the panel; and securing a stiffening member to the panel at the position for mounting the transducer to stiffen the panel locally.
- 2. A method according to claim 1, wherein the step of securing the stiffening member to the panel comprises forming a cavity in the panel at the position for mounting the transducer and inserting the stiffening member in the cavity.
- 3. A method according to claim 2, wherein the step of securing the stiffening member to the panel further comprises inserting adhesive between the stiffening member and the panel, the adhesive acting to form a bond between the panel and the stiffening member.
- 4. A method according to claim 3, wherein the cavity is formed centrally of the transducer position.
- 5. A method according to claim 2, wherein the cavity is formed centrally of the transducer position.
- 6. A method according to claim 1, wherein the panel is a composite comprising a core layer sandwiched between skin layers, and the step of securing the stiffening member to the panel comprises arranging the stiffening member to extend completely through the panel to increase the shear and/or compression moduli of the panel at the transducer position.
- 7. A method according to claim 6, wherein the step of securing the stiffening member to the panel comprises forming a cavity in the panel at the position for mounting the transducer and inserting the stiffening member in the cavity.
- 8. A method according to claim 7, wherein the step of securing the stiffening member to the panel further comprises inserting adhesive between the stiffening member and the panel, the adhesive acting to form a bond between the panel and the stiffening member.
- 9. A method according to claim 8, wherein the cavity is formed centrally of the transducer position.
- 10. A method according to claim 1, wherein the step of securing the stiffening member to the panel further comprises inserting adhesive between the stiffening member and the panel, the adhesive acting to form a bond between the panel and the stiffening member.
- 11. A method of making an acoustical member capable of supporting bending wave vibration comprising the steps of:
providing a panel to form an acoustic radiator, the panel comprising a core layer sandwiched between skin layers; identifying a position on the panel for mounting a vibration transducer to excite bending waves in the panel; forming a cavity in the panel centrally of the position for mounting the transducer, the cavity extending completely through the panel; bonding a substantially cylindrical stiffening member to the panel in the cavity with adhesive, the stiffening member extending completely through the panel, to increase the shear and/or compression moduli of the panel at the transducer position.
- 12. A method according to claim 11, wherein the stiffening member has a substantially circular cross-section.
- 13. A method according to claim 12, wherein the stiffening member is coextensive with the transducer footprint.
- 14. A method according to claim 12, wherein the stiffening member lies wholly within the transducer footprint.
- 15. A method according to claim 12, wherein the stiffening member lies wholly outside of the transducer footprint.
- 16. A method of making an acoustical member capable of supporting bending wave vibration comprising the steps of:
providing a panel to form an acoustic radiator; identifying a position on the panel for mounting a vibration transducer to excite bending waves in the panel; and securing a stiffening member to the panel at the position for mounting the transducer to stiffen the panel locally, the stiffening member being formed from a plurality of discrete components.
- 17. A method according to claim 16, wherein the components are contiguous.
- 18. A method according to claim 17, wherein the step of securing the stiffening member to the panel comprises forming a cavity in the panel at the position for mounting the transducer and inserting the stiffening member components in the cavity with adhesive between the stiffening member components and the panel, the adhesive acting to form a bond between the panel and the stiffening member components.
- 19. A method according to claim 18, wherein the cavity is formed centrally of the transducer position.
- 20. A method according to claim 19, wherein the panel is a composite comprising a core layer sandwiched between skin layers, and the step of securing the stiffening member to the panel comprises arranging the stiffening member components to extend completely through the panel to increase the shear and/or compression moduli of the panel at the transducer position.
- 21. A method according to claim 17, wherein the panel is a composite comprising a core layer sandwiched between skin layers, and the step of securing the stiffening member to the panel comprises arranging the stiffening member components to extend completely through the panel to increase the shear and/or compression moduli of the panel at the transducer position.
- 22. A method according to claim 16, wherein the components are spaced apart.
- 23. A method according to claim 22, wherein the step of securing the stiffening member to the panel comprises forming a plurality of cavities in the panel at the position for mounting the transducer and inserting the stiffening member components in the cavities with adhesive between the stiffening member components and the panel, the adhesive acting to form a bond between the panel and the stiffening member components.
- 24. A method according to claim 23, wherein the cavities are formed in an array arranged centrally of the transducer position.
- 25. A method according to claim 24, wherein the panel is a composite comprising a core layer sandwiched between skin layers, and the step of securing the stiffening member to the panel comprises arranging the stiffening member components to extend completely through the panel to increase the shear and/or compression moduli of the panel at the transducer position.
- 26. A method according to claim 22, wherein the panel is a composite comprising a core layer sandwiched between skin layers, and the step of securing the stiffening member to the panel comprises arranging the stiffening member components to extend completely through the panel to increase the shear and/or compression moduli of the panel at the transducer position.
- 27. A method according to claim 22, wherein the components lie within and extend beyond the transducer footprint.
- 28. A method according to claim 17, wherein the components lie within and extend beyond the transducer footprint.
- 29. A method according to claim 17, wherein the components lie wholly within the transducer footprint.
- 30. A method according to claim 16, wherein the components are preferentially arranged in relation to the principal axes of the panel.
- 31. A loudspeaker comprising:
a bending wave panel-form acoustic radiator; a vibration transducer mounted to the panel to excite bending wave vibration in the panel; and a stiffening member secured to the panel locally of the transducer.
- 32. A loudspeaker according to claim 31, wherein the stiffening member is mounted in a cavity in the panel.
- 33. A loudspeaker according to claim 32, wherein the stiffening member is mounted centrally of the transducer position.
- 34. A loudspeaker according to claim 32, wherein the panel is a composite comprising a core layer sandwiched between skin layers, and wherein the stiffening member extends completely through the panel to increase the shear and/or compression moduli of the panel at the transducer position.
- 35. A loudspeaker according to claim 34, wherein the stiffening member is mounted centrally of the transducer position.
- 36. A loudspeaker according to claim 34, wherein the stiffening member is made of a material with a higher bending stiffness than the panel material.
- 37. A loudspeaker according to claim 36, wherein the stiffening member is made of a material selected from the group consisting of carbon, metal, plastics and fibre reinforced plastics.
- 38. A loudspeaker according to claim 31, wherein the shape of the stiffening member is selected from the group consisting of cruciform shapes, star shapes and circular shapes.
- 39. A loudspeaker according to claim 38, wherein the stiffening member is coextensive with the transducer footprint.
- 40. A loudspeaker according to claim 38, wherein the stiffening member lies wholly within the transducer footprint.
- 41. A loudspeaker according to claim 38, wherein the stiffening member lies wholly outside of the transducer footprint.
- 42. A loudspeaker according to claim 31, wherein the stiffening member comprises two spaced, divergent, generally hyperbolic components.
- 43. A loudspeaker according to claim 42, wherein the hyperbolic components lie within and extend beyond the transducer footprint.
- 44. A loudspeaker according to claim 31, wherein the stiffening member comprises two contiguous, divergent, generally parabolic components and a straight component that bisects the parabolic components.
- 45. A loudspeaker according to claim 44, wherein the parabolic and straight components lie within and extend beyond the transducer footprint.
- 46. A loudspeaker according to claim 31, wherein the stiffening member comprises two spaced, parallel, straight components.
- 47. A loudspeaker according to claim 46, wherein the straight components lie within and extend beyond the transducer footprint.
- 48. A loudspeaker according to claim 31, wherein the panel is a resonant panel and the transducer is adapted to excite resonant bending waves in the panel.
- 49. A loudspeaker comprising:
a bending wave panel-form acoustic radiator comprising a core layer sandwiched between skin layers; a vibration transducer mounted to the panel to excite bending wave vibration in the panel; and a stiffening member secured to the panel locally of the transducer, the stiffening member extending completely through the panel and bonded thereto to increase the shear and/or compression moduli of the panel at the transducer position.
- 50. A loudspeaker according to claim 49, wherein the shape of the stiffening member is selected from the group consisting of cruciform shapes, star shapes and circular shapes.
- 51. A loudspeaker according to claim 50, wherein the stiffening member is coextensive with the transducer footprint.
- 52. A loudspeaker according to claim 50, wherein the stiffening member lies wholly within the transducer footprint.
- 53. A loudspeaker according to claim 50, wherein the stiffening member lies wholly outside of the transducer footprint.
- 54. A loudspeaker according to claim 49, wherein the stiffening member comprises two spaced, divergent, generally hyperbolic components.
- 55. A loudspeaker according to claim 54, wherein the hyperbolic components lie within and extend beyond the transducer footprint.
- 56. A loudspeaker according to claim 49, wherein the stiffening member comprises two contiguous, divergent, generally parabolic components and a straight component that bisects the parabolic components.
- 57. A loudspeaker according to claim 56, wherein the parabolic and straight components lie within and extend beyond the transducer footprint.
- 58. A loudspeaker according to claim 49, wherein the stiffening member comprises two spaced, parallel, straight components.
- 59. A loudspeaker according to claim 58, wherein the straight components lie within and extend beyond the transducer footprint.
- 60. A loudspeaker according to claim 49, wherein the panel is a resonant panel and the transducer is adapted to excite resonant bending waves in the panel.
- 61. A loudspeaker comprising:
a bending wave panel-form acoustic radiator; a vibration transducer mounted to the panel to excite bending wave vibration in the panel; and a stiffening member secured to the panel locally of the transducer, the stiffening member being formed from a plurality of discrete components.
- 62. A loudspeaker according to claim 60, wherein the shape of the stiffening member is selected from the group consisting of cruciform shapes and star shapes.
- 63. A loudspeaker according to claim 62, wherein the stiffening member lies wholly within the transducer footprint.
- 64. A loudspeaker according to claim 63, wherein the components are contiguous.
- 65. A loudspeaker according to claim 62, wherein the components lie within and extend beyond the transducer footprint.
- 66. A loudspeaker according to claim 65, wherein the components are contiguous.
- 67. A loudspeaker according to claim 65, wherein the components are spaced apart.
- 68. A loudspeaker according to claim 61, wherein the stiffening member comprises two spaced, divergent, generally hyperbolic components.
- 69. A loudspeaker according to claim 68, wherein the hyperbolic components lie within and extend beyond the transducer footprint.
- 70. A loudspeaker according to claim 61, wherein the stiffening member comprises two contiguous, divergent, generally parabolic components and a straight component that bisects the parabolic components.
- 71. A loudspeaker according to claim 70, wherein the parabolic and straight components lie within and extend beyond the transducer footprint.
- 72. A loudspeaker according to claim 61, wherein the stiffening member comprises two spaced, parallel, straight components.
- 73. A loudspeaker according to claim 72, wherein the straight components lie within and extend beyond the transducer footprint.
- 74. A loudspeaker according to claim 61, wherein the panel is a resonant panel and the transducer is adapted to excite resonant bending waves in the panel.
Priority Claims (1)
Number |
Date |
Country |
Kind |
0007025.0 |
Mar 2000 |
GB |
|
Parent Case Info
[0001] This application claims the benefit of provisional application No. 60/191,485, filed Mar. 23, 2000.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60191485 |
Mar 2000 |
US |