Claims
- 1. A manifold for delivering acoustic power to the throat end of a horn of a horn loudspeaker, said manifold comprisingan input end having at least one input port for receiving acoustic power from at least one acoustic driver, an output end for delivering acoustic power to the throat end of the horn, said output end having at least two aligned output ports, and an acoustic power waveguide associated with each of the aligned output ports and connecting said output ports to said at least one input port, such that acoustic power received by said input port is divided between said acoustic waveguides, and such that the acoustic power divided between said acoustic power waveguides is delivered to said aligned output ports to simulate a line array of acoustic power sources, the acoustic path lengths of said acoustic power waveguides from said at least one input port to said aligned output ports being relatively short in relation to the wavelength of the acoustic power passing through the manifold at the highest operating frequency range of the horn loudspeaker.
- 2. The manifold of claim 1 wherein the acoustic path lengths of said acoustic power waveguides from said at least one input port to said aligned output ports are approximately equal such that acoustic power divided at said at least one input port arrives at the aligned output ports approximately in phase.
- 3. The manifold of claim 1 wherein the length of the manifold from the input end to the output end is less than three wavelengths at the highest operating frequency range of the horn loudspeaker for which the manifold is used.
- 4. The manifold of claim 1 wherein the length of the manifold from the input end to the output end is less than approximately 3 inches.
- 5. The manifold of claim 1 wherein the length of the manifold from the input end to the output end is approximately 3 inches.
- 6. The manifold of claim 1 wherein each of said acoustic power waveguides have a defined cross-sectional area and wherein said cross-sectional area increases from said input port to the output port associated with each said waveguide.
- 7. The manifold of claim 6 wherein the cross-sectional area of each said acoustic power waveguides approximately doubles from said input port to the output port associated with each said waveguide.
- 8. The manifold of claim 1 wherein said output end includes four aligned output ports, wherein four acoustic power waveguides connect said four aligned output ports to said at least one input port, and wherein the four acoustic waveguides connected said output ports to said input port such that the acoustic power received by said input port is divided approximately equally between said four waveguides.
- 9. The manifold of claim 8 wherein said input port is circular and wherein said acoustic power waveguides meet at said circular input port and have quarter circle cross-sectional shapes for receiving approximately one quarter of the acoustic power delivered to said input port.
- 10. The manifold of claim 9 wherein each said acoustic power waveguide transitions from a quarter circle cross-sectional shape at said input port to a rectangular cross-sectional shape at the output port associated with the waveguide.
- 11. The manifold of claim 8 wherein the lengths of the four acoustic power waveguides from said input port to the aligned output ports are approximately equal such that acoustic power divided between said four waveguides at said input port arrives at the aligned output ports approximately in phase.
- 12. The manifold of claim 11 wherein said four aligned output ports form a line array of output ports having two outer ports and two inner ports, and wherein the acoustic power waveguides include substantially straight outer waveguides connecting the outer ports of said line array of output ports with said input port and two inner waveguides connecting the inner ports of said line array of output ports with said input port, each of said inner waveguides having a curved waveguide path to approximately equalize the length the interior waveguides with the straight outer waveguides.
- 13. The manifold of claim 12, wherein the length of the manifold from the input end to the output end is less than approximately 3 inches.
- 14. The manifold of claim 12, wherein the length of the manifold from the input end to the output end is approximately 3 inches.
- 15. The manifold of claim 1 wherein multiple aligned output ports are provided and said aligned output ports form a line array of ports having two outer ports and at least one inner port between said outer ports, wherein the acoustic power waveguides include substantially straight outer waveguides connecting the outer ports of said line array of output ports with said input port, and wherein the acoustic power waveguides further include inner waveguides connecting the inner ports of said line array of output ports with said input port, said inner waveguide having a curved waveguide path to approximately equalize the length the inner waveguides with the straight outer waveguides.
- 16. The manifold of claim 1 wherein said input end has at least two input ports for receiving acoustic power from at least two acoustic drivers, wherein said output end has at least four aligned output ports, and wherein an acoustic power waveguide is provided for each of said aligned output ports for connecting each of said output ports to one of said input ports, such that acoustic power received by said input ports is divided between said acoustic waveguides and such that the acoustic power divided between said acoustic power waveguides is delivered to said aligned output ports to simulate a line array of at least four acoustic power sources.
- 17. The manifold of claim 1 wherein said input end has at least two input ports for receiving acoustic power from at least two acoustic drivers, wherein said output end has at least eight aligned output ports, and wherein an acoustic power waveguide is provided for each of said aligned output ports and connects each of said output ports to one of said input ports, such that acoustic power received by said input ports is divided between said acoustic waveguides and such that the acoustic power divided between said acoustic power waveguides is delivered to said aligned output ports to simulate a line array of at least eight acoustic power sources.
- 18. A manifold for delivering acoustic power to the throat end of a horn of a horn loudspeaker, said manifold comprisingan input end having at least one input port for receiving acoustic power from at least one acoustic driver, an output end for delivering acoustic power to the throat end of the horn, said output end having multiple aligned output ports, and an acoustic power waveguide associated with each of the aligned output ports and connecting said output ports to said at least one input port, such that acoustic power received by said input port is divided between said acoustic waveguides and such that the acoustic power divided between said acoustic power waveguides is delivered to said aligned output ports to simulate a line array of acoustic power sources, the acoustic path lengths of said acoustic power waveguides from said at least one input port to said aligned output ports being relatively short in relation to the wavelength of the acoustic power passing through the manifold at the highest operating frequency range of the horn loudspeaker and being approximately equal such that acoustic power divided at said at least one input port arrives at the aligned output ports approximately in phase, and each of said approximately equal length waveguides having a defined cross-sectional area which increases from said input port to the output port associated with each said waveguide.
- 19. The manifold of claim 18 wherein the length of the manifold from the input end to the output end is less than approximately 3 inches.
- 20. The manifold of claim 18 wherein the length of the manifold from the input end to the output end is approximately 3 inches.
- 21. A manifold for delivering acoustic power to the throat end of a horn of a horn loudspeaker, said manifold comprisingan input end having at least one circular input port for receiving acoustic power from at least one acoustic driver, an output end for delivering acoustic power to the throat end of the horn, said output end having multiple aligned rectangular output ports, and acoustic power waveguides for connecting said aligned rectangular output ports to said at least one circular input port, the acoustic path lengths of said acoustic power waveguides from said at least one input port to said aligned output ports being relatively short in relation to the wavelength of the acoustic power passing through the manifold at the highest operating frequency range of the horn loudspeaker, and each of said acoustic power waveguides transitioning from a partially circular first end to a rectangular second end which has a cross-sectional area larger than the cross-sectional area of said first end, the second end of each said acoustic power waveguides forming one of said aligned rectangular output ports and the partially circular first ends of said acoustic power waveguides meeting at the input end of the manifold to form said at least one circular input port and permitting acoustic power received by said circular input port to be divided approximately equally between said acoustic power waveguides, wherein the approximately equally divided acoustic power is delivered through said waveguides to said aligned rectangular output ports to simulate a line array of acoustic power sources which simulates a ribbon driver.
- 22. The manifold of claim 21, wherein the acoustic path lengths of said acoustic power waveguides from said at least one input port to said aligned output ports are approximately equal such that acoustic power divided at said at least one input port arrives at the aligned output ports approximately in phase.
- 23. The manifold of claim 21 wherein said output end includes at least four aligned output ports, wherein four acoustic power waveguides connect said input port to said four aligned output ports, and wherein the partially circular first ends of said acoustic power waveguides are quarter circles at the input end of the manifold to form said at least one circular input port.
- 24. The manifold of claim 21 wherein said input end has at least two circular input ports for receiving acoustic power from at least two acoustic drivers, wherein said output end has at least four aligned rectangular output ports, and wherein an acoustic power waveguide is provided for each of said aligned output ports for connecting each of said rectangular output ports to one of said circular input ports such that acoustic power received by said input ports is divided between said acoustic waveguides and such that the acoustic power divided between said acoustic power waveguides is delivered to said aligned rectangular output ports to simulate a line array of at least four acoustic power sources.
- 25. The manifold of claim 21 wherein said input end has at least two circular input ports for receiving acoustic power from at least two acoustic drivers, wherein said output end has at least two sets of four aligned rectangular output ports, and wherein an acoustic power waveguide is provided for each output port of said two sets of aligned output ports and connects each set of said rectangular output ports to one of said two input ports, such that acoustic power received by said input ports is divided between said acoustic waveguides and such that the acoustic power divided between said acoustic power waveguides is delivered to said two sets of aligned rectangular output ports to simulate a line array of at least eight acoustic power sources.
- 26. A manifold for delivering acoustic power to the throat end of a horn of a horn loudspeaker, said manifold comprisingan input end having at least one circular input port for receiving acoustic power from at least one acoustic driver, an output end for delivering acoustic power to the throat end of the horn, said output end having multiple aligned rectangular output ports, including two outer ports and at least one inner port, which form a line array of rectangular output ports, two outer acoustic power waveguides for connecting the outer ports of said line array of rectangular output ports to said at least one circular input port, said two outer waveguides having substantially straight and approximately equal length acoustical paths and transitioning from a partially circular first end to a rectangular second end, and at least one inner acoustic power waveguide for connecting the at least one inner port of said line array of rectangular output ports to said at least one circular input port, said inner waveguide having a curved acoustical path approximately equal in length to the straight acoustical path lengths of said outer waveguides, and transitioning from a partially circular first end to a rectangular second end, the rectangular second ends of said outer acoustic power waveguides forming the outer ports of said line array of output ports, the rectangular second end of said inner acoustic power waveguides forming the at least one inner port of said line array of output ports, the partially circular first ends of said acoustic power waveguides meeting at the input end of the manifold to form said at least one circular input port, and the acoustic path lengths of said acoustic rower wave guides from said at least one input port to said multiple aligned rectangular output ports being relatively short in relation to the wavelength of the acoustic power passing through the manifold at the highest operating frequency range of the horn loudspeaker.
- 27. The manifold of claim 26 wherein said line array of output ports includes two inner ports and wherein two inner acoustic waveguides are provided to connect the inner ports of said line array of output ports to said at least one circular input port.
- 28. The manifold of claim 26 wherein the length of the manifold from the input end to the output end is less than approximately 3 inches.
- 29. The manifold of claim 26 wherein the length of the manifold from the input end to the output end is approximately 3 inches.
- 30. The manifold of claim 26wherein said input end has at least two circular input ports for receiving acoustic power from at least two acoustic drivers, wherein said line array of rectangular output ports includes two outer ports and at least one inner port associated with each circular input port, wherein two outer acoustic power waveguides are provided for each input port for connecting the outer ports of said line array of rectangular output ports to the circular input port with which said outer ports are associated, said outer waveguides having substantially straight and approximately equal length acoustical paths and transitioning from a partially circular first end to a rectangular second end, and wherein at least one inner acoustic power waveguide is provided for each input port for connecting the at least one inner port of said line array of rectangular output ports to the circular input port with which said inner port is associated, said inner waveguides having a curved acoustical path approximately equal in length to the substantially straight acoustical path lengths of said outer waveguides, and transitioning from a partially circular first end to a rectangular second end.
- 31. A manifold for delivering acoustic power to the throat end of a horn of a horn loudspeaker, said manifold comprisingan input end having at least two input ports for receiving acoustic power from at least two acoustic drivers, an output end for delivering acoustic power to the throat end of the horn, said output end having multiple aligned output ports including two outer ports and at least one inner port associated with each input port, said outer and inner ports forming a line array of output ports, two outer acoustic power waveguides for each input port for connecting the outer ports of said line array of output ports to the input port with which the outer ports are associated, said two outer waveguides having substantially straight and approximately equal length acoustical paths, and at least one inner acoustic power waveguide for connecting the at least one inner port of said line array of rectangular output ports to the input port with which said inner port is associated, said inner waveguide having a curved acoustical path approximately equal in length to the substantially straight acoustical path lengths of said outer waveguides, the acoustic path lengths of said acoustic power waveguides from said at least two input ports to said multiple aligned output ports being relatively short in relation to the wavelength of the acoustic power passing through the manifold at the highest operating frequency range of the horn loudspeaker.
- 32. The manifold of claim 31 wherein the length of the manifold from the input end to the output end is less than approximately 3 inches.
- 33. The manifold of claim 31 wherein the length of the manifold from the input end to the output end is approximately 3 inches.
- 34. A method of providing control over the dispersion characteristics of a horn loudspeaker comprisingproviding loudspeaker horn having an elongated throat opening, providing a source of acoustic power, dividing the acoustic power produced by the acoustic power source between at least two acoustical paths, and propagating the divided acoustic power along the at least two acoustical paths to separate aligned outputs at the elongated throat opening of the horn so as to simulate a line array of acoustic power sources at and in the direction of said elongated throat opening, said acoustical paths being relatively short in relation to the wavelength of the acoustic power delivered to the throat opening of the horn at the highest operating frequency range of the horn loudspeaker.
- 35. The method of claim 34 wherein acoustical paths for the divided acoustic power have approximately equal acoustic path lengths, such that, the divided acoustic power arrives at the separate aligned outputs at the throat end of the horn approximately in phase.
- 36. The method of claim 34 wherein the acoustic power from said acoustic power source is divided approximately equally between the at least two acoustical paths.
- 37. The method of claim 36 wherein the acoustic power from said acoustic power source is divided between multiple acoustical paths extending to multiple aligned outputs at and in the direction of the elongated throat opening of the horn.
- 38. The method of claim 36 wherein the acoustic power from said acoustic power source is divided between four acoustical paths extending to four aligned outputs at the elongated throat opening of the horn.
- 39. The method of claim 36 wherein the acoustic power from said acoustic power source is divided between eight acoustical paths extending to eight aligned outputs at and in the direction of the elongated throat opening of the horn.
- 40. The method of claim 39 wherein said source of acoustic power includes two acoustic drivers and wherein the acoustic power produced by one of said drivers is divided between four of the eight acoustic paths and the acoustic power produced by the other of said drivers is divided between the other four of the eight acoustic paths.
- 41. The method of claim 34 wherein the acoustical paths increase in cross-sectional area in the direction of propagation of the acoustic power.
- 42. The method of claim 41 wherein the cross-sectional area of the acoustical paths approximately double from over the length of the paths.
- 43. A method of providing control over the dispersion characteristics of a horn loudspeaker comprisingproviding loudspeaker horn having an elongated throat opening, providing a source of acoustic power, dividing the acoustic power produced by the acoustic power source between multiple acoustical paths having approximately equal acoustic path lengths, and propagating the divided acoustic power along the multiple acoustical paths to separate aligned outputs at the elongated throat opening of the horn so as to simulate a line array of acoustic power sources at and in the direction of the elongated throat opening, said multiple acoustical paths being relatively short in relation to the wavelength of the acoustic power delivered to the throat opening of the horn at the highest operating frequency range of the horn loudspeaker.
- 44. The method of claim 43 wherein the acoustical paths increase in cross sectional area in the direction of propagation of the acoustic power.
CROSS-REFERENCE TO RELATED APPLICATIONS
Applicants claim the benefit of provisional application No. 261,113, filed Jan. 11, 2001
US Referenced Citations (11)