IP Library Granted Patent US 11,592,407
Granted Patent B2
US 11,592,407 · App. 17/056,110 · Granted Feb 28, 2023

Systems, devices, and methods for x-ray fluorescence analysis of geological samples

Inventors: Yannai Z. R. Segal (Calgary, CA); Grant I. Sanden (Calgary, CA)
Assignee: Enersoft Inc.
G01N23/223G01N23/2204G01N23/2206G01N23/2208G01N33/241G01N2223/076G01N2223/507G01N2223/616
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Quick Facts
Patent No.
US 11,592,407
App. No.
17/056,110
Granted
Feb 28, 2023
Kind
B2
Abstract

A geological analysis system, device, and method are provided. The geological analysis system includes sensors, including an X-ray fluorescence (XRF) unit, which detect properties of geological sample materials, a sample tray which holds the geological sample materials therein, and a processor. The XRF unit includes a body and a separable head unit and an output port configured to emit helium onto the geological sample materials within the sample tray. The sample tray includes chambers formed in an upper surface, ports, and passages, each providing communication between an interior of a chamber and an interior of a port. The ports are configured to be attachable to vials. The processor is configured to automatically position at least one of the sensors and the sample tray with respect to the other of the at least one of the sensors and the sample tray and to control the sensors.

Claims (62)

1. A geological analysis system comprising:

at least one frame;

a plurality of sensors, each sensor in the plurality of sensors mounted on the at least one frame, the plurality of sensors comprising an X-ray fluorescence (XRF) sensor comprising an X-ray emitter and an X-ray fluorescence detector;

a sample tray comprising a plurality of concave chambers formed therein, wherein the sample tray is positionable in a first analysis position with respect to the XRF sensor such that a geological sample material disposed in one of the plurality of concave chambers is irradiated by X-ray radiation emitted from the X-ray emitter, and wherein the sample tray is positionable in a second analysis position with respect to a second sensor in the plurality of sensors such that the second sensor in the plurality of sensors may obtain data regarding the geological sample material; and

a processor configured to:

control a position of at least one of the sample tray and the plurality of sensors;

control an operation of the plurality of sensors;

output data received from the plurality of sensors; and

effect semi-automatic or fully-automatic robotic positioning of one or both of the sample tray and the plurality of sensors with respect to the other.

2. The geological analysis system according to claim 1 , wherein the processor is further configured to:

measure a salinity of a plurality of geological sample materials placed within the plurality of concave chambers formed within the sample tray while the sample tray is the first analysis position by:

positioning the sample tray with respect to the X-ray emitter such that a first geological sample material disposed in a first one of the plurality of concave chambers is irradiated by X-ray radiation emitted from the X-ray emitter;

irradiating the first geological sample material with the X-ray radiation emitted from the X-ray emitter;

detecting, with the X-ray fluorescence detector, X-ray fluorescence emitted from the first geological sample material;

positioning the sample tray with respect to the X-ray emitter such that a second geological sample material disposed in a second one of the plurality of concave chambers is irradiated by X-ray radiation emitted from the X-ray emitter;

irradiating the second geological sample material with the X-ray radiation emitted from the X-ray radiation emitter;

detecting, with the X-ray fluorescence detector, X-ray fluorescence emitted from the second geological sample material;

outputting data of the X-ray fluorescence emitted by the first geological sample material and by the second geological sample material to a processor; and

calculating, by the processor, a salinity of the first geological sample material and a salinity of the second geological sample material based on the data of the X-ray fluorescence output to the processor; and

determine a location of recoverable hydrocarbons in a reservoir based on the salinity of the first geological sample material and the salinity of the second geological sample material.

3. The geological analysis system according to claim 2 , wherein the plurality of sensors comprise a second sensor comprising a spectrometer configured to measure a relative absorption of light to determine a presence of hydrocarbons.

4. The geological analysis system according to claim 3 , wherein the processor is further configured to:

measuring an abundance of recoverable hydrocarbons in the plurality of geological sample materials placed within the plurality of concave chambers formed within the sample tray while the sample tray is the second analysis position by:

positioning the sample tray with respect to the spectrometer;

detecting, by the spectrometer, an absorption of light of the first geological sample material and the second geological sample material;

outputting data of the absorption of light of the first geological sample material and the second geological sample material to the processor;

calculating, by the processor, the abundance of recoverable hydrocarbons in the first geological sample material and the second geological sample material based on the data of the absorption of light of the first geological sample material and the second geological sample material;

wherein the processor is configured to determine the location of recoverable hydrocarbons in the reservoir is further based on the abundance of recoverable hydrocarbons in the first geological sample material and the second geological sample material.

5. An X-ray fluorescence (XRF) unit comprising:

a body; and

a head configured to be removably attached to the body, the head comprising:

an X-ray emitter positioned to emit X-ray radiation onto a geological sample material;

an X-ray fluorescence detector configured to detect X-ray fluorescence emitted from the geological sample material; and

an output port through which helium may be emitted onto the geological sample material;

wherein the head is configured such that X-ray radiation emitted from the X-ray emitter is incident directly on the geological sample material without being transmitted through any solid material between the X-ray emitter and the geological sample material.

6. The XRF unit according to claim 5 , further comprising:

an attachment portion mechanically attached to the head;

a first passage formed in the head and a second passage, corresponding to the first passage, formed in the attachment portion, wherein the first passage and the second passage, together, form a conduit for helium to pass therethrough between the output port and the geological sample material.

7. The XRF unit according to claim 5 , wherein the head is configured to detect sodium in the geological sample material.

8. A method of determining a location of recoverable hydrocarbons in a reservoir, the method comprising:

placing a plurality of geological sample materials, obtained within the reservoir, into a plurality of concave chambers formed within a sample tray;

measuring a salinity of the plurality of geological sample materials, the measuring the salinity of the plurality of geological sample materials comprising:

positioning the sample tray with respect to an X-ray emitter such that a first geological sample material disposed in a first one of the plurality of concave chambers is irradiated by X-ray radiation emitted from the X-ray emitter;

irradiating the first geological sample material with the X-ray radiation emitted from the X-ray emitter;

detecting, with an X-ray fluorescence detector, X-ray fluorescence emitted from the first geological sample material;

positioning the sample tray with respect to the X-ray emitter such that a second geological sample material disposed in a second one of the plurality of concave chambers is irradiated by X-ray radiation emitted from the X-ray emitter;

irradiating the second geological sample material with the X-ray radiation emitted from the X-ray emitter;

detecting, with the X-ray fluorescence detector, X-ray fluorescence emitted from the second geological sample material;

outputting data of the X-ray fluorescence emitted by the first geological sample material and by the second geological sample material to a processor; and

calculating, by the processor, a salinity of the first geological sample material and a salinity of the second geological sample material based on the data of the X-ray fluorescence output to the processor; and

determining a location of recoverable hydrocarbons in the reservoir based on the salinity of the first geological sample material and the salinity of the second geological sample material.

9. The method according to claim 8 , further comprising:

measuring an abundance of recoverable hydrocarbons in the plurality of geological sample materials, the measuring an abundance of recoverable hydrocarbons comprising:

positioning the sample tray with respect to a spectrometer configured to measure a relative absorption of light to determine a presence of hydrocarbons;

detecting, by the spectrometer, an absorption of light of the first geological sample material and the second geological sample material;

outputting data of the absorption of light of the first geological sample material and the second geological sample material to the processor;

calculating, by the processor, the abundance of recoverable hydrocarbons in the first geological sample material and the second geological sample material based on the data of the absorption of light of the first geological sample material and the second geological sample material;

wherein the determining the location of recoverable hydrocarbons in the reservoir is further based on the abundance of recoverable hydrocarbons in the first geological sample material and the second geological sample material.

10. The method according to claim 9 , wherein the spectrometer is configured to measure a relative absorption of light in a range of wavelengths of about 1710 nm, about 1910 nm and/or about 2450 nm to determine the presence of hydrocarbons.

11. The method according to claim 10 , wherein the spectrometer is a short-wave infrared (SWIR) spectrometer, a visible-light spectrometer, or a passive gamma spectrometer.

12. The method according to claim 10 , wherein the spectrometer is an imaging spectrometer, a line-scanning spectrometer, or a point spectrometer.

13. The method according to claim 10 , wherein the spectrometer utilizes any one of a prism, a diffraction grating, and an interferometer.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 2, 2021
From: SEGAL, YANNAI Z. R.; SANDEN, GRANT I
To: ENERSOFT INC.
Reel/Frame 055459/0293 →
Continuity (2)
Provisional Application 62673507 · May 18, 2018
Related Publication 20210208089A1 · Jul 8, 2021
Cited By (4)
US 12,339,240 US 12,455,273 US 12,480,896 US 12,584,863