IP Library › Granted Patent US 10,962,509
Granted Patent B2
US 10,962,509 · App. 16/405,303 · Granted Mar 30, 2021

System and method for detecting failed electronics using acoustics

Inventors: Russell Shannon (Ocean Gate, NJ); Justin Tallent (Haddon Heights, NJ); Vontrelle Collins (Brick, NJ); John Carswell (Newtown, PA); Gregory Zucaro (Forest Hills, NY)
Assignee: The United States of America as represented by the Secretary of the Navy
G01N29/4427G01N29/04G01N29/265G01N29/40G01N2291/2697
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Quick Facts
Patent No.
US 10,962,509
App. No.
16/405,303
Granted
Mar 30, 2021
Kind
B2
Abstract

An apparatus and method for detecting failed electronics using acoustics. The method comprising directing an acoustic wave toward a circuit component to be tested such that the acoustic wave is reflected off the circuit component, receiving the reflected acoustic wave, amplifying the reflected acoustic wave, and comparing the reflected acoustic wave with known acoustic waves to determine if the circuit component is operating properly. The apparatus comprising a data acquisition system for acquiring data, an X-Y-Z positioner to position two transducers and to hold the circuit component, and software to post-process and analyze the data. The data acquisition system further includes an oscilloscope, a pulser-receiver, two air-coupled transducers, and an amplifier.

Claims (24)

1. A method for detecting failed electronics using acoustics, the method comprising:

moving two acoustic transducers over a test piece;

generating an acoustic wave that is directed towards the test piece;

reflecting the acoustic wave off the test piece;

receiving the reflected acoustic wave, the reflected acoustic wave having an amplitude and a frequency;

adjusting distance of the transducers from the test piece through a range from 120 mils above, to 120 mils below, a default height, in 16 mil increments, using a computer-controlled X-Y-Z positioner, such that the amplitude of the reflected acoustic wave is maximized by automatically returning the transducers to a height where the greatest amplitude was measured;

amplifying the reflected acoustic wave;

sampling the reflected acoustic wave;

digitizing the reflected acoustic wave;

digitally storing data from reflected acoustic wave data;

averaging the reflected acoustic wave data via a built-in oscilloscope function and reading a predetermined sample rate that is saved in header information of each saved waveform file on the oscilloscope;

saving the reflected acoustic wave data and the sample rate to a file;

processing the file to remove data that occurs before and after the acoustic wave in time;

calculating the following from raw waveform data in the file: total energy, average rate of change between two peaks, sample duration in time, difference in amplitude between a smallest peak above noise level and a global maximum peak in a time domain, time to maximum peak from a first peak, total power, center frequency, bandwidth, maximum amplitude of the acoustic wave in a frequency domain and its corresponding frequency;

inputting the calculated features into a neural network that has been trained to compare reflected features of the acoustic wave with features from acoustic wave reflections from “known good” electronics;

making a determination if the test piece is operating properly; and,

alerting a user as to health of the test piece.

2. The method of claim 1 , wherein the distance of the transducers from the test piece was automatically adjusted through a range from 120 mils above, to 120 mils below, the default height, in 16 mil increments, using a computer-controlled X-Y-Z positioner, such that the amplitude of the reflected acoustic wave is maximized by automatically returning the transducers to the height where the greatest amplitude was measured:

moving the acoustic transducers to an initial default distance;

moving the acoustic transducers through a predetermined distance range from above and below the initial default distance;

measuring acoustic reflection amplitude at each distance;

digitally storing the acoustic reflection amplitude found at each distance;

searching distance values to determine maximum reflection amplitude; and,

moving the transducers to a position at which the largest amplitude was measured.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 8, 2019
From: SHANNON, RUSSELL; TALLENT, JUSTIN; COLLINS, VONTRELLE; CARSWELL, JOHN; ZUCARO, GREGORY
To: DEPARTMENT OF THE NAVY
Reel/Frame 049113/0572 →
Continuity (2)
Continuation In Part 15666857 · Aug 2, 2017
Related Publication 20200355649A1 · Nov 12, 2020