IP Library › Granted Patent US 10,100,846
Granted Patent B2
US 10,100,846 · App. 14/009,318 · Granted Oct 16, 2018

Method and apparatus for independently varying airflow and noise generation of a fan

Inventors: Timothy M. Peery (Dripping Springs, TX); David W. Furnace (Dripping Springs, TX); James M. Peden (Dripping Springs, TX)
Assignee: Envision Strategy Group, Inc.
F04D29/666F04D19/002F04D27/002F04D29/052F04D29/384F04D29/665
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Quick Facts
Patent No.
US 10,100,846
App. No.
14/009,318
Granted
Oct 16, 2018
Kind
B2
Abstract

A fan design method and fan structure is described, enabling independent control of the volume of airflow and the amount of noise produced. The noise produced is a close approximation to a pleasing red noise spectrum, and is generated solely by the interaction of the rotating fan blades with a petal assembly or a fan enclosure in several embodiments. A petal assembly may be positioned at varying spacings behind the rotating fan blades to control the level of noise production with minimal effect on the volume of airflow. Various aspects of the fan blade configuration, such as the blade pitch, camber, span, chord, etc., may be manipulated to control the ratio of airflow volume to the amount of noise produced.

Claims (24)

1. A powered fan assembly comprising:

a fan blade for producing airflow when rotated;

a motor for rotating the fan blade;

a moveable proximity element positioned within the airflow field produced when the fan blade is rotated so that noise is generated as the fan blade is rotated past the proximity element and the overall volume of the fan assembly is increased, wherein the position of the proximity element relative to the blade can be adjusted to vary the volume of noise produced during rotation of the fan blade and in which the proximity element is rotated around the fan blade rotational axis during operation of the fan assembly; and

in which adjusting the position of the proximity element relative to the blade causes the volume of noise produced when the fan assembly is operated to vary without varying the airflow produced by the fan assembly by more than 10%.

2. A powered fan assembly comprising:

a fan blade for producing airflow when rotated;

a motor for rotating the fan blade;

a moveable proximity element positioned entirely inside the airflow field produced when the fan blade is rotated so that noise is generated as the fan blade is rotated past the proximity element, wherein the proximity element comprises a plurality of proximity elements arranged coaxially around the fan blade rotational axis, the plurality of proximity elements are rotated around the fan blade rotational axis, and the position of the proximity element relative to the blade can be adjusted to vary the volume of noise produced during rotation of the fan blade; and

in which adjusting the position of the proximity element relative to the blade causes the volume of noise produced when the fan assembly is operated to vary without varying the airflow produced by the fan assembly by more than 10%.

3. The fan assembly of claim 2 in which adjusting the position of the proximity element relative to the blade comprises adjusting the spacing between the proximity element and the fan blade.

4. The fan assembly of claim 2 in which the plurality of proximity elements are rotated around the fan blade rotational axis at a rotational speed that is different than the rotational speed of the fan blade.

5. The fan assembly of claim 2 in which the proximity element is located upstream from the fan blade so that the primary direction of airflow is away from the proximity element.

6. The fan assembly of claim 2 in which the interaction of the pressure wave produced by the rotating fan blades with the proximity element causes the creation of a modified pressure wave resulting in the generation of noise in addition to the noise produce by the rotation of the fan blades alone.

7. The fan assembly of claim 6 in which the modified pressure wave follows a sinusoidal curve.

8. The fan assembly of claim 2 in which the noise produced by the interaction of the airflow produced by the fan blades and the proximity element produces predominately pseudo-red noise.

9. The fan assembly of claim 2 in which the fan assembly comprises a pedestal fan.

10. The fan assembly of claim 2 in which the proximity element is non-motorized.

11. A powered fan assembly comprising:

a rotating fan blade for producing airflow during operation of the fan assembly;

a motor for rotating the fan blade;

a proximity element moveably positioned within the airflow field produced when the fan blade is rotated so that the proximity element interacts with the pressure wave produced by the rotating fan blade to increase the overall sound volume produced during operation of the fan assembly wherein the position of the proximity element relative to the blade can be adjusted to vary the volume of sound produced during rotation of the fan blade by moving the proximity element closer to the fan blade to increase the overall volume of sound produced or moving the proximity element further away from the fan blade to reduce the overall volume of sound produced;

in which adjusting the position of the proximity element relative to the blade causes the overall sound volume when the fan assembly is operated to vary without varying the airflow produced by the fan assembly by more than 10%; and

in which the proximity element is rotated around the fan blade rotational axis during operation of the fan assembly.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 6, 2014
From: PEERY, TIMOTHY M.; FURNACE, DAVID W.; PEDEN, JAMES M.
To: ENVISION STRATEGY GROUP, INC.
Reel/Frame 031892/0951 →
Continuity (2)
Provisional Application 61470484 · Apr 1, 2011
Related Publication 20140086729A1 · Mar 27, 2014
Cited By (1)
US 12,196,214