IP Library › Granted Patent US 10,386,337
Granted Patent B2
US 10,386,337 · App. 15/444,736 · Granted Aug 20, 2019

Method for fingerprinting and sorting diamonds

Inventor: George Wyatt Rhodes (Corrales, NM)
Assignee: GEMOLOGICAL INSTITUTE OF AMERICA, INC. (GIA)
G01N29/12G01N29/2437G01N29/4454G01N29/46G01N2291/0232G01N2291/102
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Quick Facts
Patent No.
US 10,386,337
App. No.
15/444,736
Granted
Aug 20, 2019
Kind
B2
Abstract

Resonant Ultrasound Spectroscopy (RUS) is applied to diamonds (both cut/polished gemstones and rough diamonds) to yield a digital fingerprint from which the stone may be authenticated and sorted according to the structural quality. Diamonds are mined as rough stones from which they undergo examination to determine their value as being gem, or of two different industrial qualities. Fewer than 25% of mined diamonds are worthy of cutting and polishing to yield gems for jewelry. About 40% of the remaining population still have value as industrial diamonds for machine tools, and the rest is ground into dust to provide coatings for grinding applications. Rough stones exist in two conditions being coated and uncoated. The coated stones have a layer of polycrystalline diamond, different from the predominant crystal structure, rendering them opaque. This interferes with optical inspection, as any cracks, or inclusions can't be seen. RUS provides a reliable sorting and fingerprinting system for both cut/polished stones as well as rough diamonds of sufficient structural quality to yield a spectral signature. As high value items, diamonds are shipped around the world, and but sometimes thefts occur. RUS yields a digital fingerprint allowing the identity of an individual stone to be verified upon recovery.

Claims (32)

1. A method of establishing a resonance fingerprint of a stone comprising the steps of:

by a frequency synthesizer, in communication with a computing device, applying a first resonant ultrasound resonance spectrum through two piezoelectric mechanical transducers mounted to a stone to impart a mechanical driving force to excite a first ultrasonic frequency range in the stone;

by mechanical receiving transducers, in communication with the piezoelectric mechanical transducers and the computing system, sensing a first resonant mechanical response with an inverse process to measure a first resonant ultrasound spectrum due to the stone geometrical shape including dimensions;

by a dynamic signal analyzer in communication with the computing device, receiving the first ultrasound spectrum response of the stone;

by the computing device, causing display of the resulting received first resonance response in from the dynamic signal analyzer;

and by the computing device, recording the first resonance response;

by the frequency synthesizer and two piezoelectric mechanical transducers, applying a second resonant ultrasound resonance spectrum;

by the mechanical receiving transducers, measuring a second resonant ultrasound spectrum of the stone;

by the dynamic signal analyzer, receiving the second ultrasound spectrum response of the stone;

by the computing device, causing display of the resulting second resonance response from the dynamic signal analyzer;

by the computing device, recording the second resonance response;

by the computing device, determining a Q from the first resonance and the second resonance, wherein the Q is full width at half maximum, divided into a center frequency.

2. The method in claim 1 applied to uncut stones where the elastic properties are considered, in addition to the shape and dimensions.

3. The method of claim 2 where a spectra of the stone is recorded, archived, and compared with a new spectra of the same stone to prove, or disprove the original identity.

4. The method in claim 2 wherein the Q is used to grade rough diamonds into different categories solely due to their structural integrity.

5. The method in claim 2 where a number of high Q resonances are counted, and compared to a single crystal cut diamond to determine if more than one single crystal is present in the bulk structure.

6. The non-transitory computer readable media in claim 1 , wherein the method is applied to uncut stones where the elastic properties are considered, in addition to the shape and dimensions.

7. The non-transitory computer readable media in claim 1 , wherein a spectra of the stone is recorded, archived, and compared with a new spectra of the same stone to prove, or disprove the original identity.

8. The non-transitory computer readable media in claim 1 , wherein the Q is used to grade rough diamonds into different categories solely due to their structural integrity.

9. The non-transitory computer readable media in claim 1 , wherein a number of high Q resonances are counted, and compared to a single crystal cut diamond to determine if more than one single crystal is present in the bulk structure.

10. A non-transitory computer-readable medium having computer-executable instructions thereon for a method of establishing a resonance fingerprint of a stone, the method comprising:

by a frequency synthesizer, in communication with a computing device, applying a first resonant ultrasound resonance spectrum through two piezoelectric mechanical transducers mounted to a stone to impart a mechanical driving force to excite a first ultrasonic frequency range in the stone;

by mechanical receiving transducers, in communication with the piezoelectric mechanical transducers and the computing system, sensing a first resonant mechanical response with an inverse process to measure a first resonant ultrasound spectrum due to the stone geometrical shape including dimensions;

by a dynamic signal analyzer in communication with the computing device, receiving the first ultrasound spectrum response of the stone;

by the computing device, causing display of the resulting received first resonance response in-from the dynamic signal analyzer;

and by the computing device, recording that the first resonance response;

by the frequency synthesizer and two piezoelectric mechanical transducers, applying a second resonant ultrasound resonance spectrum;

by the mechanical receiving transducers, measuring a second resonant ultrasound spectrum of the stone;

by the dynamic signal analyzer, receiving the second ultrasound spectrum response of the stone;

by the computing device, causing display of the resulting second resonance response from the dynamic signal analyzer;

by the computing device, recording the second resonance response;

by the computing device, determining a Q from the first resonance and the second resonance, wherein the Q is full width at half maximum, divided into a center frequency.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 2, 2017
From: RHODES SCIENTIFIC LLC; RHODES, GEORGE WYATT; VOLLMERT-RHODES, SARA
To: GEMOLOGICAL INSTITUTE OF AMERICA, INC.
Reel/Frame 044022/0839 →
Continuity (1)
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