Nova Patents
EP1752016A1

Acoustic element

Abstract

This record has no abstract on file.

Term

Term ended

Projected expiry passed 22 April 2025, 1.4 years ago.

  1. Priority
  2. Filed
  3. Published
  4. Projected expiry
  5. Today

1 claim: 1 independent, 0 dependent

  1. 1
    Claims of equivalent WO 2005104617 A1 C L A I M S 1. Loudspeaker element, characterized in that it is constituted by a motor driven rotor provided with wings or blades, which wings or blades are adjustable to their pitch (angling/bending of wing), so that transported air volume and achieved air pressure respectively at rotation of the rotor can be modulated corresponding to a desired sound signal. 2. Loudspeaker element in accordance with claim 1, characterized in that the pivoting of blades or wings is done electromechanically. 3. Loudspeaker device according to claim 2, characterized in that permanent magnets are arranged on or integrated with blades or wings and that a fixed coil or coils, are arranged for the influencing of the magnets for pivoting of wings or blades. Alternatively the wings have integrated coils. 4. Loudspeaker element according to claim 1, characterized in that the altering of the pitch of the wings or blades is done by means of piezoelectric effect. 5. Loudspeaker element according to any of the preceding claims, characterized in that the pivot axle of each wing or blade extends approximately through the pressure center or slightly in front of this seen in the direction of the rotation. 6. Loudspeaker element according to any of the proceeding claims, characterized in that load dependent speed variations caused by signal modulated wing angles is compensated by a flywheel or active speed control. 7. Loudspeaker element according to any of the proceeding claims, characterized in that the wing angle is controlled with active feedback. 8. Loudspeaker element according to claim 1, characterized in that it is constituted by a circular rotor provided with one or several wings. 9. Loudspeaker element according to any of the proceeding claims, characterized in that it also can work as a fan by superimposing an essentially constant pitch over the sound generating varying adjustment of the pitch angles of the rotor wings. 10. Method for generating a sound/airflow that can be. modulated, characterized in that for a rotor provided with adjustable wings or blades the angles of the wings or blades are so adjusted that the degree of pitch (angling/bending of wing), is controlled so that transported air volume and achieved air pressure respectively can be modulated corresponding to a desired sound signal/pressure way. 11. Microphone/flowmeter, characterized in that it is constituted by a rotor provided with— wings- or- bladesr-wMc -HΛάngs-τjr ~ M pitch so that transported air volume and achieved air pressure can be measured. 12. Microphone/flowmeter, according to claim 11, characterized in that the sensing of the pivoting of blades and wings is electromechanical. 13. Microphone/flowmeter, according to claim 12, characterized in that permanent magnets are arranged on or integrated with blades or wings and that a fixed coil or coils are arranged for measuring of the magnets for pivoting of wings or blades. Alternatively the wings have integrated coils. 14. Microphone/flowmeter, according to claim 11, characterized in that the sensing of the pitch of the wings or blades is by means of optic or piezoelectric effect. 15. Microphone/flowmeter, according to claim 11, characterized in that it is constituted by a circular rotor provided with one or several wings were the wing angle is read. 16. Method for the measuring of modulated sound or air flow, characterized in that the air or other medium is led through a rotating rotor with easily moveable wings or blades and that a transported volume can be measured via the angle deflections of the wings or blades. 17. Loudspeaker or microphone according to any of the preceding claims, characterized in that the wings are adjustable for driving air alternatively sensing air flow or pressure via the angle of the wings in air or other medium. 18. Loudspeaker according to claims 1, 2, characterized in that the momentary power delivered to the motor is proportional to the power delivered to control of the wings. 19. Method for reproduction of sound, characterized in that at a motor driven loudspeaker rotor with to their pitch adjustable wings or blades the wing adjustment is momentarily controlled in accordance with the momentary sound pressure of the sound that is to be delivered. 20. Acoustic element according to any of the preceding claims, characterized in that the wing area essentially covers the entire flow through area of the loudspeaker element or microphone element. 21. Loudspeaker element according to claim 1, characterized in the rotor being surrounded by a spherical sealing wing area for the surrounding housing with center on the spherical surface in the center of the rotor so that the distance between the housing and the wings remain constant independent of the pivoting of the wings of the rotor. 22. Loudspeaker element according to claim 1 , characterized in that between the wings and the center of the rotor a rotationally symmetric advantageously spherical sealing slit is arranged between rotor center and wing, the rotationally symmetric surface having its axle coinciding with the pivot axle of the wing so that the distance between the wings and the rotor remain constant independent of the pivoting of the wings of the rotor. 23. Loudspeaker element according to claim 1, characterized in that between rotor center and the inner end of the wing a bellow device is arranged for sealing. 24. Loudspeaker element according to claim 1, characterized in that the wings are provided with balance weights preferably arranged perpendicularly against the wing surface so that with the pitch angle varying centrifugal forces on the wings are compensated. 25. Loudspeaker element according to claim 1 , characterized in that the pivot axle of each wing or blade goes behind the pressure center seen in the direction of rotation so that with the pitch angle varying centrifugal forces on the wings are compensated. 26. Loudspeaker element according to claim 1, characterized in that the pivoting center for change of pitch for the wings is placed somewhat in front of the symmetry wing of the wings so that the rear area of the wings become slightly larger and thereby provide increasing resistance against increasing pitch so that improved linearity is obtained for pressure and air transport as a response to a controlling signal. 27. Loudspeaker element according to claim 1, characterized in that the loudspeaker element comprise several rotors mounted after each other or layers of blades for increased pressure/flow. 28. Loudspeaker element according to claim 1, characterized in that the loudspeaker element comprise several rotors mounted after each other or layers with blades with alternating direction of rotation for increased pressure/flow. 29. Loudspeaker element according to claim 1, characterized in that the length of the blades is less than 80% of the radius of the rotor for increased pressure. 30. Loudspeaker including loud speaker element according to claim 1 , characterized in that the element is included as a part component in a turbine or fan. 31. Loudspeaker including loudspeaker element in accordance with claim 1, characterized in that it includes a loudspeaker box that in addition to an opening in which the loudspeaker element is mounted includes one or several restricted or air flow damped so that the flow through the rotor can be optimized for pressure optimizing and that stall can be prevented.