IP Library Granted Patent US 11,914,374
Granted Patent B1
US 11,914,374 · App. 17/065,183 · Granted Feb 27, 2024

Solar mirror soiling and heliostat inspection from a mobile imaging system and mobile platform

Inventor: Julius Yellowhair (Albuquerque, NM)
Assignee: National Technology & Engineering Solutions of Sandia, LLC
G05D1/0094B64C39/024F24S23/74G05D1/101B64U2101/30
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Quick Facts
Patent No.
US 11,914,374
App. No.
17/065,183
Granted
Feb 27, 2024
Kind
B1
Abstract

A system or method for an imaging system is provided for inspecting a heliostat. The imaging system includes a platform and a camera mounted on the platform and a heliostat having a plurality of mirrored facets. The camera is positioned to acquire a first image that serves as a reference image and a second image that is a reflected image from at least one facet. The camera stores image data associated with the first image and the second image, and wirelessly transmits the stored image data to a computing apparatus. The computing apparatus compares the first image with the second image and determines a performance parameter associated with the heliostat.

Claims (67)

1. An imaging system for inspecting a heliostat, comprising:

a platform and a camera mounted on the platform; a heliostat comprising a plurality of mirrored facets;

the camera positioned to acquire a first image comprising a reference image; and a second image comprising a reflected image captured from at least one facet of the plurality of facets; and a computing apparatus;

the camera configured to store image data associated with the first image and the second image, and to wirelessly transmit the stored image data to the computing apparatus; and

the computing apparatus configured to compare the first image with the second image and determine a performance parameter associated with the heliostat;

wherein the performance parameter is one of a facet position or a facet reflectance ratio; and

wherein the first image is an image of the sun directly acquired by the camera; and the reflectance ratio being determined based on the first image having an intensity I direct ; and the second image is a reflected image having an intensity I reflected ; the reflectance estimated by summing intensities for the second image and for the direct image and computing the reflectance ratio ρ, wherein ρ is defined as:

ρ

=

I

reflected

/

I

direct

.

2. The imaging system of claim 1 , wherein the first image is a target heliostat that is disposed facing the plurality of mirrored facets.

3. The imaging system of claim 1 , wherein the platform comprises a mobile platform, the mobile platform comprising an unmanned aerial system, the mobile platform having position coordinates relative to the heliostat, the position coordinates providing an angular reference for determining a reflectance ratio or a facet position.

4. The imaging system of claim 3 , wherein the mobile platform comprises a drone.

5. The imaging system of claim 1 , wherein the platform is a stationary platform mounted on a tower; the stationary platform having fixed position coordinates relative to the heliostat.

6. The imaging system of claim 1 , wherein an angle of incidence of the camera with respect to the second image is determined by photogrammetry using a direct normal irradiance parameter and global positioning system coordinates associated with a position of the camera.

7. A method for inspecting a heliostat comprising:

mounting a camera on a platform;

acquiring with the camera a first image comprising a reference image of an object;

acquiring with the camera a second image comprising a reflected image of the object;

storing the first image and the second image in a memory portion of the camera;

transmitting the stored first image and the second image to a computing apparatus;

comparing the first image with the second image; and

determining a performance parameter associated with the heliostat;

further comprising providing a stationary tower for mounting the platform; and providing fixed position coordinates of the camera relative to the object and to the first heliostat relative to the object; and determining a reflectance ratio or a facet position based on an angular reference derived from the respective position coordinates.

8. The method of claim 7 , wherein the object is a first heliostat.

9. The method of claim 8 , wherein acquiring the first image comprises targeting a second heliostat that is disposed facing the plurality of mirrored facets associated with the first heliostat.

10. The imaging system of claim 8 , wherein the first image is a an image of the sun directly acquired by the camera; and further comprising determining a reflectance ratio based on the first image having an intensity I direct , and the second image having an intensity I reflected ; and estimated the reflectance ratio by summing a plurality of intensity values for the second image and for the first image;

and computing the reflectance ratio ρ, wherein ρ is defined as:

ρ

=

I

reflected

/

I

direct

.

11. The method of claim 10 , further comprising making facet canting corrections in-situ on the heliostat.

12. The method of claim 11 , further comprising determining in advance the 3D coordinates of the camera, the object, and the heliostat.

13. The method of claim 7 , wherein determining the performance parameter comprises determining a facet position or a facet reflectance ratio.

14. A computer-readable storage medium comprising instructions that, when executed by a processor, cause the processor to perform acts comprising:

receiving a first image and a second image acquired from a camera mounted on a platform; the first image comprising a reference image of an object and the second image comprising a reflected image of the object; storing the first image and the second image in a memory portion of a computing apparatus;

comparing the first image with the second image; and

determining a performance parameter associated with the heliostat; wherein the first image comprises an image of a target heliostat in an ideal camera focus, the first image being superimposed on the second image; and the computing apparatus configured to generate a canting error associated with each facet of the plurality of facets based on the superimposed first and second image.

15. An imaging system for inspecting a heliostat, comprising

a platform and a camera mounted on the platform; a heliostat comprising a plurality of mirror facets;

the camera positioned to acquire a first image comprising a reference image and a second image comprising a reflected image captured form at least one facet of the plurality of facets; and a computing apparatus;

the camera configured to store image data associated with the first image and the second image, and to wirelessly transmit the stored image data to the computing apparatus;

the computing apparatus configured to compare the first image with the second image and determine a performance parameter associated with the heliostat;

wherein the first image comprises an image of a target heliostat in an ideal camera focus, the first image being superimposed on the second image; and the computing apparatus configured to generate a canting error associated with each facet of the plurality of facets based on the superimposed first and second image.

16. The imaging system of claim 15 , further comprising a live video feed generated through the computing apparatus configured to generate an instant feedback image of the canting error.

17. A method for inspecting a heliostat comprising:

mounting a camera on a platform;

acquiring with the camera a first image comprising a reference image of an object;

acquiring with the camera a second image comprising a reflected image of the object;

storing the first image and the second image in a memory portion of the camera;

transmitting the stored first image and the second image to a computing apparatus;

comparing the first image with the second image; and

determining a performance parameter associated with the heliostat; further comprising providing a mobile unmanned aerial system for the platform; and transmitting position coordinates of the mobile unmanned aerial system relative to a position of the heliostat and determining the performance parameter based on an angular reference derived from the respective position coordinates.

Assignments (2)
CONFIRMATORY LICENSE Recorded Oct 25, 2023
From: NATIONAL TECHNOLOGY & ENGINEERING SOLUTIONS OF SANDIA, LLC
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 065334/0910 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 5, 2020
From: YELLOWHAIR, JULIUS
To: NATIONAL TECHNOLOGY & ENGINEERING SOLUTIONS OF SANDIA, LLC
Reel/Frame 054280/0730 →