IP Library Granted Patent US 10,391,510
Granted Patent B2
US 10,391,510 · App. 15/886,484 · Granted Aug 27, 2019

Method for nozzle flow detection

Inventors: John Posselius (Ephrata, PA); Tim Stombaugh (Nicholasville, KY)
Assignee: CNH Industrial America LLC
B05B12/082B05B7/32B05B12/1418G01F1/666G01F25/0007B05B1/3053B05B15/50
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Quick Facts
Patent No.
US 10,391,510
App. No.
15/886,484
Granted
Aug 27, 2019
Kind
B2
Abstract

With the use of a low cost microphone mounted at each nozzle, a sound signature of the nozzles may be captured and stored to be used as a continuous indicator of any changes in the flow rate of the nozzles. By measuring changes in sound at each nozzle, it is possible to determine the change in flow before a change in pressure manifests into a problem in the system. The change in sound will oftentimes be significant for plugged nozzles, or nozzles that have excessive wear and flow at too high of a rate. The invention has the advantage of being relatively low cost with ceramic microphones, for example, and with little or no moving parts required. A closed loop control system may be included to compensate for nozzle degradation.

Claims (25)

1. A method for nozzle flow detection comprising:

receiving a first fluid at a first inlet of a nozzle body and a second fluid at a second inlet of the nozzle body, the nozzle body including an outlet; and

interconnecting a mixing body to the nozzle body, the mixing body defining a mixing chamber in communication with the first and second inlets of the nozzle body with the mixing body connected to the nozzle body;

receiving the first and second fluids in the mixing chamber and mixing the first and second fluids in the mixing chamber to provide a mixed fluid;

operatively connecting a control valve to the mixing body;

adjusting the control valve to control a volume of the mixed fluid to be discharged from the outlet of the nozzle body

discharging the mixed fluid at the outlet of nozzle body;

using a microphone positioned proximal to the outlet to communicate acoustic data corresponding to the discharge of the mixed fluid at the outlet;

holding a calibration measurement in a data structure, the calibration measurement corresponding to a discharge of fluid at the outlet, the calibration measurement being derived from acoustic data provided by the microphone; and

receiving a flow measurement corresponding to a discharge of mixed fluid at the outlet, the flow measurement being derived from acoustic data provided by the microphone;

comparing the flow measurement to the calibration measurement to determine an error; and

implement closed loop Proportional-Integral-Derivative controller (PID) control to minimize the error.

2. The method of claim 1 , further comprising generating an alert when the error is greater than a predetermined tolerance.

3. A method for nozzle flow detection comprising:

receiving a first fluid at a first inlet of a nozzle body and a second fluid at a second inlet of the nozzle body, the nozzle body including an outlet; and

interconnecting a mixing body to the nozzle body, the mixing body defining a mixing chamber in communication with the first and second inlets of the nozzle body with the mixing body connected to the nozzle body;

receiving the first and second fluids in the mixing chamber and mixing the first and second fluids in the mixing chamber to provide a mixed fluid;

operatively connecting a control valve to the mixing body;

adjusting the control valve to control a volume of the mixed fluid to be discharged from the outlet of the nozzle body

discharging the mixed fluid at the outlet of nozzle body;

using a microphone positioned proximal to the outlet to communicate acoustic data corresponding to the discharge of the mixed fluid at the outlet;

holding a calibration measurement in a data structure, the calibration measurement corresponding to a discharge of fluid at the outlet, the calibration measurement being derived from acoustic data provided by the microphone; and

receiving a flow measurement corresponding to a discharge of mixed fluid at the outlet, the flow measurement being derived from acoustic data provided by the microphone;

comparing the flow measurement to the calibration measurement to determine an error; and

adjusting the calibration measurement, and the amount of adjustment is made according to a correlation data provided by a second data set of the data structure.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 23, 2019
From: CNH INDUSTRIAL AMERICA LLC
To: BLUE LEAF I.P., INC.
Reel/Frame 050809/0833 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 9, 2019
From: POSSELIUS, JOHN; STROMBAUGH, TIM
To: CNH INDUSTRIAL AMERICA LLC
Reel/Frame 049703/0924 →
Continuity (3)
Division 15267409 · Sep 16, 2016
Provisional Application 62219908 · Sep 17, 2015
Related Publication 20180178237A1 · Jun 28, 2018