IP Library Granted Patent US 10,638,216
Granted Patent B2
US 10,638,216 · App. 16/069,797 · Granted Apr 28, 2020

Two-way loudspeaker with floating waveguide

Inventors: Paul Wayne Peace, Jr. (Viejo, CA); Derrick Rodgers (Altadena, CA)
Assignee: HARMAN INTERNATIONAL INDUSTRIES, INCORPORATED
H04R1/24H04R1/025H04R1/22H04R1/2857H04R1/345H04R3/04H04R5/02H04R9/063H04R2201/405
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Quick Facts
Patent No.
US 10,638,216
App. No.
16/069,797
Granted
Apr 28, 2020
Kind
B2
Abstract

One or more embodiments of the present disclosure relate to a two-way loudspeaker design that forces a condensed geometry between low frequency (LF) and high frequency (HF) drivers and then “floats” a midrange waveguide in front of the LF driver. This is a hybrid design meant to benefit from the close proximity of acoustic centers without introducing a central axis obstruction for the LF driver. In addition, the LF and HF waveguides and associated acoustic elements are used to redirect very low frequency energy not supported adequately by the LF waveguide to exit freely using other paths.

Claims (31)

1. A loudspeaker comprising:

a speaker enclosure;

a low-frequency (LF) driver disposed in the speaker enclosure and having a radiating surface adapted to emit LF acoustic energy and a radiating surface opening defined by an outer circumference of the radiating surface;

an LF waveguide defining a first radiation path for LF acoustic energy, the LF waveguide having a proximal opening positioned adjacent to the LF driver and extending away from the LF driver to a distal opening to define the first radiation path therethough, the proximal opening having a proximal opening area that is smaller than a radiating surface opening area to define a second radiation path for the LF acoustic energy around an outer surface of the LF waveguide; and

a high-frequency (HF) driver disposed in front of the radiating surface of the LF driver and at least partially obstructing the LF acoustic energy emitted by the radiating surface.

2. The loudspeaker of claim 1 , wherein the distal opening of the LF waveguide has a distal opening area that is larger than the radiating surface opening area.

3. The loudspeaker of claim 1 , wherein the second radiation path exits the speaker enclosure along a front surface.

4. The loudspeaker of claim 1 , wherein the second radiation path exits the speaker enclosure along at least one of a side surface and a rear surface.

5. The loudspeaker of claim 4 , further comprising a load plate directly in front of a portion of the radiating surface and adjacent the LF waveguide to deflect LF acoustic energy along the second radiation path to a rear acoustic exit located in the rear surface.

6. The loudspeaker of claim 1 , wherein a proximal end of the LF waveguide is not physically connected to the LF driver.

7. The loudspeaker of claim 6 , wherein the proximal end of the LF waveguide includes a lower edge and an upper edge at least partially defining the proximal opening, wherein the lower edge is closer to the radiating surface opening than the upper edge.

8. The loudspeaker of claim 7 , wherein the lower edge is nearer a central radiation axis of the LF driver than the upper edge.

9. The loudspeaker of claim 1 , wherein a central radiation axis of the LF driver and a central radiation axis of the HF driver are at offset angles.

10. The loudspeaker of claim 1 , wherein the HF driver is not coaxial with the LF driver.

11. The loudspeaker of claim 1 , wherein a first distance between an acoustic center of the LF driver and an acoustic center of the HF driver is less than a wavelength at a crossover frequency.

12. The loudspeaker of claim 11 , wherein the first distance is less than 5 inches.

13. The loudspeaker of claim 11 , wherein a second distance from the acoustic center of the HF driver to a central radiation axis of the LF driver is less than a radius of the radiating surface opening.

14. A loudspeaker comprising:

a speaker enclosure;

a low-frequency (LF) driver disposed in the speaker enclosure and having a radiating surface adapted to emit LF acoustic energy and a radiating surface opening defined by an outer circumference of the radiating surface;

a high-frequency (HF) driver disposed in front of the radiating surface of the LF driver and at least partially obstructing the LF acoustic energy emitted by the radiating surface of the LF driver; and

an LF waveguide defining a first radiation path for the LF acoustic energy, the LF waveguide having a proximal opening positioned adjacent to the LF driver and extending away from the LF driver to a distal opening to define the first radiation path therethough, the proximal opening having a proximal opening area that is smaller than a radiating surface opening area to define a second radiation path for the LF acoustic energy around an outer surface of the LF waveguide, the distal opening of the LF waveguide having a distal opening area that is larger than the radiating surface opening area;

wherein the proximal opening is spaced apart from the LF driver by a distance to define an air gap between the radiating surface of the LF driver and the proximal opening of the LF waveguide.

15. The loudspeaker of claim 14 , wherein a central radiation axis of the LF driver and a central radiation axis of the HF driver are at offset angles.

16. The loudspeaker of claim 14 , wherein the second radiation path exits the speaker enclosure along at least one of a side surface and a rear surface.

17. A loudspeaker comprising:

a low-frequency (LF) driver having a radiating surface adapted to emit LF acoustic energy and a radiating surface opening defined by an outer circumference of the radiating surface;

an LF waveguide defining a first radiation path for the LF acoustic energy, the LF waveguide having a proximal opening positioned adjacent to the LF driver and extending away from the LF driver to a distal opening to define the first radiation path therethough, the proximal opening having a proximal opening area that is smaller than a radiating surface opening area to define a second radiation path for the LF acoustic energy around an outer surface of the LF waveguide, the distal opening of the LF waveguide having a distal opening area that is larger than the proximal opening area; and

a high-frequency (HF) driver at least partially obstructing the LF acoustic energy emitted by the LF driver;

wherein an acoustic center of the HF driver is offset from a central radiation axis of the LF driver.

18. The loudspeaker of claim 17 , wherein the LF waveguide is detached from the LF driver to define an air gap between the radiating surface of the LF driver and the proximal opening of the LF waveguide.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 13, 2018
From: PEACE, PAUL WAYNE; RODGERS, DERRICK
To: HARMAN INTERNATIONAL INDUSTRIES, INCORPORATED
Reel/Frame 046341/0620 →
Continuity (3)
Provisional Application 62278959 · Jan 14, 2016
Provisional Application 62278952 · Jan 14, 2016
Related Publication 20190037303A1 · Jan 31, 2019
Cited By (1)
US 12,309,546