IP Library › Granted Patent US 9,802,209
Granted Patent B2
US 9,802,209 · App. 15/146,484 · Granted Oct 31, 2017

Fluidic oscillator having decoupled frequency and amplitude control

Inventor: Mehti Koklu (Hampton, VA)
Assignee: THE UNITED STATES OF AMERICA AS REPRESENTED BY NASA
B05B1/08F15C1/22F15D1/003F15D1/009
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Quick Facts
Patent No.
US 9,802,209
App. No.
15/146,484
Granted
Oct 31, 2017
Kind
B2
Abstract

A fluidic oscillator having independent frequency and amplitude control includes a fluidic-oscillator main flow channel having a main flow inlet, a main flow outlet, and first and second control ports disposed at opposing sides thereof. A fluidic-oscillator controller has an inlet and outlet. A volume defined by the main flow channel is greater than the volume defined by the controller. A flow diverter coupled to the outlet of the controller defines a first fluid flow path from the controller's outlet to the first control port and defines a second fluid flow path from the controller's outlet to the second control port.

Claims (28)

1. A fluidic oscillator having independent frequency and amplitude control, comprising:

a fluidic-oscillator main flow channel having a main flow inlet configured to receive an amplitude controlling fluid flow and a main flow outlet, said main flow channel having a first control port and a second control port disposed at opposing sides thereof, said main flow channel defining a first volume between said main flow inlet and said main flow outlet;

a first plenum in fluid communication with said main flow inlet;

a fluidic-oscillator controller having an inlet configured to receive a frequency controlling fluid flow and outlet wherein a second volume is defined between said inlet and said outlet, and wherein said first volume is at least two times greater than said second volume;

a second plenum in fluid communication with said inlet of said controller; and

a flow diverter coupled to said outlet of said controller, said first control port, and said second control port, said flow diverter defining a first fluid flow path from said outlet to said first control port and defining a second fluid flow path from said outlet to said second control port,

wherein said amplitude controlling fluid controls an amplitude of a fluid flow through said main flow channel and said frequency controlling fluid flow controls a frequency of said fluid flow through said main flow channel, and

wherein said amplitude controlling fluid flow is independent of said frequency controlling fluid flow.

2. A fluidic oscillator as in claim 1 , wherein said main flow channel, said flow diverter, and said controller are formed using a layered construction.

3. A fluidic oscillator as in claim 1 , wherein said main flow channel and said first plenum are formed using a first panel and a second panel, wherein said controller and said second plenum are formed using said second panel and a third panel, and wherein said flow diverter is formed using said second panel.

4. A fluidic oscillator having independent frequency and amplitude control, comprising:

a fluidic-oscillator main flow channel having a main flow inlet configured to receive an amplitude controlling fluid flow and a main flow outlet, said main flow channel having a first control port and a second control port disposed at opposing sides thereof, said main flow channel defining a first volume between said main flow inlet and said main flow outlet;

a fluidic-oscillator controller having an inlet configured to receive a frequency controlling fluid flow and an outlet wherein a second volume is defined between said inlet and said outlet, and wherein said first volume is greater than said second volume, said controller adapted to have a fluid flow move from said inlet to said outlet wherein said controller generates an oscillating output at said outlet, said oscillating output having a frequency associated therewith; and

a flow diverter coupled to said outlet of said controller, said first control port, and said second control port, for directing said oscillating output in an alternating fashion in accordance with said frequency thereof to said first control port and said second control port,

wherein said amplitude controlling fluid controls an amplitude of a fluid flow through said main flow channel and said frequency controlling fluid flow controls a frequency of said fluid flow through said main flow channel, and

wherein said amplitude controlling fluid flow is independent of said frequency controlling fluid flow.

5. A fluidic oscillator as in claim 4 , further comprising a first plenum in fluid communication with said main flow inlet and a second plenum in fluid communication with said inlet of said controller.

6. A fluidic oscillator as in claim 4 , wherein said first volume is at least two times greater than said second volume.

7. A fluidic oscillator as in claim 4 , wherein said main flow channel, said flow diverter, and said controller are formed using a layered construction.

8. A fluidic oscillator as in claim 5 , wherein said main flow channel and said first plenum are formed using a first panel and a second panel, wherein said controller and said second plenum are formed using said second panel and a third panel, and wherein said flow diverter is formed using said second panel.

9. A method for independently controlling frequency and amplitude of a fluidic oscillator, comprising:

providing a fluidic-oscillator main flow channel having only a main flow inlet, a main flow outlet, a first control port, and a second control port wherein said first control port and said second control ports are disposed at opposing sides of said main flow channel, said main flow channel defining a first volume between said main flow inlet and said main flow outlet;

providing a fluidic-oscillator controller having an inlet and outlet wherein a second volume is defined between said inlet and said outlet, and wherein said first volume is greater than said second volume;

providing a flow diverter coupled to said outlet of said controller, said flow diverter defining a first fluid flow path from said outlet to said first control port and defining a second fluid flow path from said outlet to said second control port;

delivering a first fluid flow to said main flow inlet;

delivering a second fluid flow to said inlet of said controller; and

selectively changing at least one of said first fluid flow and said second fluid flow, wherein changes in said first fluid flow affect amplitude of an oscillating fluid flow exiting said main flow outlet, and wherein changes in said second fluid flow affect frequency of said oscillating fluid flow.

10. A method according to claim 9 , wherein said first volume is at least two times greater than said second volume.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 8, 2016
From: KOKLU, MEHTI
To: UNITED STATES OF AMERICA AS REPRESENTED BY THE ADMINISTRATOR OF THE NATIONAL AERONAUTICS AND SPACE ADMINISTRATION
Reel/Frame 039370/0052 →
Continuity (2)
Division 13786608 · Mar 6, 2013
Related Publication 20160243562A1 · Aug 25, 2016