IP Library › Granted Patent US 12,613,119
Granted Patent B2
US 12,613,119 · App. 17/822,538 · Granted Apr 28, 2026

Ultrasonic mass fuel flow meter

Inventors: Jordan Loren Loos (Rockford, IL); Gregory Warren Pulley (Loveland, CO); Brian Lynn Swope (Janesville, WI)
Assignee: Woodward, Inc.
G01F1/662G01F1/667G01F1/668G01F1/78G01F1/86
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Quick Facts
Patent No.
US 12,613,119
App. No.
17/822,538
Granted
Apr 28, 2026
Kind
B2
Abstract

The subject matter of this specification can be embodied in, among other things, a method of sensing that includes measuring an acoustic impedance of a fluid, measuring a first time of flight in a first direction through the fluid, measuring a second time of flight in a second direction through the fluid, determining a mass fluid flow rate based on the measured acoustic impedance, the measured first time of flight, and the measured second time of flight, and providing the determined mass fluid flow rate.

Claims (104)

1 . A mass flow sensor system comprising:

a fluid housing defining a fluid flow conduit and comprising:

a first fluid housing portion defining a first axial fluid housing cavity and comprising a first fluid port in fluidic communication with the first axial fluid housing cavity;

a second fluid housing portion defining a second axial fluid housing cavity and comprising a second fluid port in fluidic communication with the second axial fluid housing cavity; and

a tubular fluid conduit in fluidic communication with the first fluid port at a first end and in fluidic communication with the second fluid port at a second end opposite the first end, and defining a conduit axis;

a first transceiver element arranged within the first axial fluid housing cavity, axially aligned with the conduit axis;

a second transceiver element arranged within the second axial fluid housing cavity, axially aligned with the conduit axis; and

a fluid acoustic impedance sensor arranged in fluidic communication with the fluid flow conduit;

wherein the fluid acoustic impedance sensor comprises:

a sensor housing having an interior surface defining a sensor axis and an axial interior sensor housing cavity comprising:

a first axial sensor housing portion having a first cross-sectional area perpendicular to the sensor axis;

a second axial sensor housing portion arranged adjacent to the first axial sensor housing portion along the sensor axis and having a second cross-sectional area larger than the first cross-sectional area perpendicular to the sensor axis; and

a sensor housing face extending from the interior surface of the first axial sensor housing portion to the interior surface of the second axial sensor housing portion;

a first axial buffer rod arranged within the first axial sensor housing portion and comprising a first axial end and a second axial end;

a second axial buffer rod arranged within the second axial sensor housing portion and

abutting the sensor housing face, and comprising a third axial end and a fourth axial end; and

an acoustic transceiver element acoustically mated to the second axial end and the third axial end.

2 . The mass flow sensor system of claim 1 , further comprising circuitry configured to:

activate the first transceiver element to emit a first incident wave though a fluid in the tubular fluid conduit;

activate the second transceiver element to emit a second incident wave through the fluid in the tubular fluid conduit;

measure, by the fluid acoustic impedance sensor, an acoustic impedance of the fluid;

detect, by the second transceiver element, at least a first portion of the first incident wave;

determine a first time of flight of the first portion;

detect, by the first transceiver element, at least a second portion of the second incident wave;

determine a second time of flight of the second portion; and

determine a mass fluid flow rate based on the measured acoustic impedance, the determined first time of flight, and the determined second time of flight.

3 . The mass flow sensor system of claim 2 , further comprising:

activating, by the circuitry, the acoustic transceiver element of the fluid acoustic impedance sensor to emit an acoustic incident wave;

detecting, by the acoustic transceiver element, a first acoustic echo of the acoustic incident wave;

detecting, by the acoustic transceiver element, a second acoustic echo of the acoustic incident wave; and

comparing, by the circuitry, the first acoustic echo and the second acoustic echo to determine the acoustic impedance of the fluid.

4 . The mass flow sensor system of claim 1 , wherein the acoustic transceiver element is configured to emit a vibration having a predetermined wavelength (λ), and the first axial buffer rod and the second axial buffer rod both have axial lengths of about a round multiple of n/2 λ wherein n represents a natural number.

5 . The mass flow sensor system of claim 1 , wherein the acoustic transceiver element comprises a piezo element.

6 . The mass flow sensor system of claim 1 , further comprising a matching layer affixed to the fourth axial end and having a thickness of about an odd multiple of 1/4 λ, wherein λ represents a predetermined wavelength.

7 . The mass flow sensor system of claim 1 , wherein the first axial end defines an acoustic reflector.

8 . The mass flow sensor system of claim 1 , wherein the first axial end is abutted to a gas or an at least partial vacuum.

9 . A method of sensing, comprising:

measuring an acoustic impedance of a fluid;

measuring a first time of flight in a first direction through the fluid;

measuring a second time of flight in a second direction through the fluid;

determining a mass fluid flow rate based on the measured acoustic impedance, the measured first time of flight, and the measured second time of flight;

providing the determined mass fluid flow rate;

activating an emitter to emit at least a first incident wave in a first direction and emit a second incident wave in a second direction opposite the first direction;

transmitting the first incident wave along a first buffer rod having a first axial end abutted to the emitter and a second axial end opposite the first axial end;

transmitting the second incident wave along a second buffer rod having a third axial end abutted to the emitter and a fourth axial end opposite the third axial end and abutted to the fluid;

reflecting a first echo of the first incident wave by an acoustic reflector defined along a portion of the second axial end;

detecting, by a sensor, the first echo; determining a first amplitude of the first echo;

reflecting a second echo of the second incident wave by the fourth axial end;

detecting, by the sensor, the second echo;

determining a second amplitude of the second echo; and

determining a reflection coefficient based on the first amplitude and the second amplitude.

10 . The method of claim 9 , wherein one or both of the emitter and the sensor are piezo elements.

11 . The method of claim 9 , wherein a piezo element comprises the emitter and the sensor.

12 . The method of claim 9 , wherein the acoustic reflector comprises a matching layer affixed to the second axial end and having a thickness of about (2n−1)λ/4, where n>0 and λ represents a predetermined wavelength.

13 . The method of claim 9 , wherein the fourth axial end is abutted to a gas or an at least partial vacuum.

14 . The method of claim 9 , wherein the mass fluid flow rate is given by the equation:

m

.

fluid

=

(

V

fluid

C

fluid

)

×

C

d

×

A

×

Z

fluid

=

(

t

up

-

t

dn

t

up

+

t

dn

)

×

C

d

×

A

×

Z

fluid

,

wherein:

C fluid =speed of sound in a fluid;

V fluid =velocity of the fluid;

Z fluid =an acoustic impedance of the fluid;

C d =a predetermined discharge coefficient of the fluid;

A=a cross section area of the fluid;

t up =upstream transit time; and

t dn =downstream transit time.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 26, 2022
From: LOOS, JORDAN LOREN; PULLEY, GREGORY WARREN; SWOPE, BRIAN LYNN
To: WOODWARD, INC.
Reel/Frame 060913/0166 →
Continuity (2)
Provisional Application 63237763 · Aug 27, 2021
Related Publication 20230066926A1 · Mar 2, 2023
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