IP Library Granted Patent US 10,161,879
Granted Patent B1
US 10,161,879 · App. 15/662,311 · Granted Dec 25, 2018

Measurement of thickness, surface profile, and optical power of a transparent sheet

Inventor: Eric Hegstrom (Tucson, AZ)
Assignee: LiteSentry Corporation
G01N21/896G01B7/06G01B11/306G01N21/958
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Quick Facts
Patent No.
US 10,161,879
App. No.
15/662,311
Granted
Dec 25, 2018
Kind
B1
Abstract

This present invention relates to an apparatus and method for measuring the profile and reflective optical power of one or more surfaces of transparent sheets and transmissive optical power and thickness of one or more transparent sheets at a plurality of locations over the complete transparent sheet. The measurement results are presented to a user graphically and all data is stored for further processing, process control, and quality assurance.

Claims (44)

1. An improvement of an apparatus for measuring optical distortion in a transparent sheet, the apparatus comprising:

a conveyor receiving and positioning the transparent sheet;

a light source mounted on a first side of the conveyor, the light source projecting a plurality of two-dimensional images across the width of the conveyor wherein the plurality of two-dimensional images appear continuously and simultaneously on the transparent sheet, with each of the plurality of two-dimensional images separated from all others of the plurality of two-dimensional images by a background, with each of the plurality of two-dimensional images regularly spaced from each adjacent one of the plurality of two-dimensional images,

a camera oriented to continuously and simultaneously detect a plurality of reflected two-dimensional images; and

a processing circuit coupled to receive output data from the camera to measure magnification and orientation of each of the plurality of reflected two-dimensional images and compute lens power based on a measurement of magnification of the reflected two-dimensional images, wherein the lens power is indicative of a local curvature of the transparent sheet over the width of the conveyor,

with the improvement being that the plurality of two-dimensional images are not completely filled and the two-dimensional images and the background are of contrasting colors, and with the additional improvement being that the processing circuit will also compute transmissive optical power by computing the optical interaction of the local curvatures of the multiple surfaces wherein each of the plurality of two-dimensional images which are not completely filled, are filled a fraction of an outline thickness of a completely filled two-dimensional image.

2. The improvement of claim 1 wherein the fraction of the outline thickness is less than 10%, less than 5%, less than 1% or less than 0.1% of the completely filled two-dimensional image.

3. An improvement of an apparatus for measuring optical distortion in a transparent sheet, the apparatus comprising:

a conveyor receiving and positioning the transparent sheet;

a light source mounted on a first side of the conveyor, the light source projecting a plurality of two-dimensional images across the width of the conveyor wherein the plurality of two-dimensional images appear continuously and simultaneously on the transparent sheet, with each of the plurality of two-dimensional images separated from all others of the plurality of two-dimensional images by a background, with each of the plurality of two-dimensional images regularly spaced from each adjacent one of the plurality of two-dimensional images,

a camera oriented to continuously and simultaneously detect a plurality of reflected two-dimensional images; and

a processing circuit coupled to receive output data from the camera to measure magnification and orientation of each of the plurality of reflected two-dimensional images and compute lens power based on a measurement of magnification of the reflected two-dimensional images, wherein the lens power is indicative of a local curvature of the transparent sheet over the width of the conveyor,

with the improvement being that the plurality of two-dimensional images are not completely filled and the two-dimensional images and the background are of contrasting colors, and with the additional improvement being that the processing circuit will also compute transmissive optical power by computing the optical interaction of the local curvatures of the multiple surfaces,

wherein each of the plurality of two-dimensional images which are not completely filled are filled less than 60%, less than 50%, less than 40%, less than 30%, less than 20%, less than 10%, less than 5%, less than 2%, less than 1% or less than 0.5% of a completely filled two-dimensional image.

4. An improvement of an apparatus for measuring optical distortion in a transparent sheet, the apparatus comprising:

a conveyor receiving and positioning the transparent sheet;

a light source mounted on a first side of the conveyor, the light source projecting a plurality of two-dimensional images across the width of the conveyor wherein the plurality of two-dimensional images appear continuously and simultaneously on the transparent sheet, with each of the plurality of two-dimensional images separated from all others of the plurality of two-dimensional images by a background, with each of the plurality of two-dimensional images regularly spaced from each adjacent one of the plurality of two-dimensional images,

a camera oriented to continuously and simultaneously detect a plurality of reflected two-dimensional images; and

a processing circuit coupled to receive output data from the camera to measure magnification and orientation of each of the plurality of reflected two-dimensional images and compute lens power based on a measurement of magnification of the reflected two-dimensional images, wherein the lens power is indicative of a local curvature of the transparent sheet over the width of the conveyor,

with the improvement being that the plurality of two-dimensional images are not completely filled and the two-dimensional images and the background are of contrasting colors, and with the additional improvement being that the processing circuit will also compute transmissive optical power by computing the optical interaction of the local curvatures of the multiple surfaces wherein a measured relative location of each of the plurality of reflected not completely filled two-dimensional images from two or more surfaces is used to compute a thickness of the transparent sheet.

5. The improvement of claim 4 wherein the thickness of the transparent sheet is not input from an external thickness sensor and is not input by an operator of the apparatus.

6. The improvement of claim 5 wherein the transparent sheet may be determined to have a thickness between 0.1 mm and 50 mm.

7. An improvement of an apparatus for measuring optical distortion in a transparent sheet, the apparatus comprising:

a conveyor receiving and positioning the transparent sheet;

a light source mounted on a first side of the conveyor, the light source projecting a plurality of two-dimensional images across the width of the conveyor wherein the plurality of two-dimensional images appear continuously and simultaneously on the transparent sheet, with each of the plurality of two-dimensional images separated from all others of the plurality of two-dimensional images by a background, with each of the plurality of two-dimensional images regularly spaced from each adjacent one of the plurality of two-dimensional images,

a camera oriented to continuously and simultaneously detect a plurality of reflected two-dimensional images; and

a processing circuit coupled to receive output data from the camera to measure magnification and orientation of each of the plurality of reflected two-dimensional images and compute lens power based on a measurement of magnification of the reflected two-dimensional images, wherein the lens power is indicative of a local curvature of the transparent sheet over the width of the conveyor,

with the improvement being that the plurality of two-dimensional images are not completely filled and the two-dimensional images and the background are of contrasting colors, and with the additional improvement being that the processing circuit will also compute transmissive optical power by computing the optical interaction of the local curvatures of the multiple surfaces wherein the plurality of reflected two-dimensional images from the transparent sheet at an edge of the transparent sheet are not closed two-dimensional images but are truncated two dimensional images, which may be ignored for computing transmissive optical power and allows reliable distortion measurement up to the edge of the transparent sheet.

8. An improvement of a method measuring optical distortion in a transparent sheet, the method comprising:

receiving and positioning the transparent sheet with a conveyor;

projecting light from a light source mounted on a first side of the conveyor, the light source projecting a plurality of two-dimensional images across the width of the conveyor wherein the plurality of two-dimensional images appear continuously and simultaneously on the transparent sheet, with each of the plurality of two-dimensional images separated from all others of the plurality of two-dimensional images by a background, with each of the plurality of two-dimensional images regularly spaced from each adjacent one of the plurality of two-dimensional images, detecting with a camera the plurality of reflected two-dimensional images continuously and simultaneously; and receiving output data in a processing circuit coupled to the camera and measuring magnification and orientation of each of the plurality of reflected two-dimensional images and computing lens power based on measuring of magnification of the reflected two-dimensional images, wherein the lens power is indicative of a local curvature of the transparent sheet over the width of the conveyor, with the improvement being projecting the plurality of two-dimensional images which are not completely filled and are of a contrasting color with the background and with the additional improvement being computing with the processing circuit the transmissive optical power by computing the optical interaction of the local curvatures of the multiple surfaces

wherein the projecting of the plurality of two-dimensional images which are not completely filled, are filled a fraction of an outline thickness of a completely filled two-dimensional image.

9. The improvement of claim 8 wherein the fraction of the outline thickness is less than 10%, less than 5%, less than 1% or less than 0.1% of the completely filled two-dimensional image.

10. An improvement of a method measuring optical distortion in a transparent sheet, the method comprising:

receiving and positioning the transparent sheet with a conveyor;

projecting light from a light source mounted on a first side of the conveyor, the light source projecting a plurality of two-dimensional images across the width of the conveyor wherein the plurality of two-dimensional images appear continuously and simultaneously on the transparent sheet, with each of the plurality of two-dimensional images separated from all others of the plurality of two-dimensional images by a background, with each of the plurality of two-dimensional images regularly spaced from each adjacent one of the plurality of two-dimensional images, detecting with a camera the plurality of reflected two-dimensional images continuously and simultaneously; and receiving output data in a processing circuit coupled to the camera and measuring magnification and orientation of each of the plurality of reflected two-dimensional images and computing lens power based on measuring of magnification of the reflected two-dimensional images, wherein the lens power is indicative of a local curvature of the transparent sheet over the width of the conveyor, with the improvement being projecting the plurality of two-dimensional images which are not completely filled and are of a contrasting color with the background and with the additional improvement being computing with the processing circuit the transmissive optical power by computing the optical interaction of the local curvatures of the multiple surfaces wherein the projecting of each of the plurality of two-dimensional images which are not completely filled are filled less than 60%, less than 50%, less than 40%, less than 30%, less than 20%, less than 10%, less than 5%, less than 2%, less than 1% or less than 0.5% of a completely filled two-dimensional image.

11. An improvement of a method measuring optical distortion in a transparent sheet, the method comprising:

receiving and positioning the transparent sheet with a conveyor;

projecting light from a light source mounted on a first side of the conveyor, the light source projecting a plurality of two-dimensional images across the width of the conveyor wherein the plurality of two-dimensional images appear continuously and simultaneously on the transparent sheet, with each of the plurality of two-dimensional images separated from all others of the plurality of two-dimensional images by a background, with each of the plurality of two-dimensional images regularly spaced from each adjacent one of the plurality of two-dimensional images, detecting with a camera the plurality of reflected two-dimensional images continuously and simultaneously; and receiving output data in a processing circuit coupled to the camera and measuring magnification and orientation of each of the plurality of reflected two-dimensional images and computing lens power based on measuring of magnification of the reflected two-dimensional images, wherein the lens power is indicative of a local curvature of the transparent sheet over the width of the conveyor, with the improvement being projecting the plurality of two-dimensional images which are not completely filled and are of a contrasting color with the background and with the additional improvement being computing with the processing circuit the transmissive optical power by computing the optical interaction of the local curvatures of the multiple surfaces wherein measuring a relative location of each of the plurality of reflected not completely filled two-dimensional images from two or more surfaces is used to compute a thickness of the transparent sheet.

12. The improvement of claim 11 wherein the defining the thickness of the transparent sheet does not require inputting from an external sensor or inputting by an operator of the apparatus.

13. The improvement of claim 12 wherein the defining the thickness of the transparent sheet may be between a thickness between 0.1 mm and 50 mm.

14. An improvement of a method measuring optical distortion in a transparent sheet, the method comprising:

receiving and positioning the transparent sheet with a conveyor;

projecting light from a light source mounted on a first side of the conveyor, the light source projecting a plurality of two-dimensional images across the width of the conveyor wherein the plurality of two-dimensional images appear continuously and simultaneously on the transparent sheet, with each of the plurality of two-dimensional images separated from all others of the plurality of two-dimensional images by a background, with each of the plurality of two-dimensional images regularly spaced from each adjacent one of the plurality of two-dimensional images, detecting with a camera the plurality of reflected two-dimensional images continuously and simultaneously; and receiving output data in a processing circuit coupled to the camera and measuring magnification and orientation of each of the plurality of reflected two-dimensional images and computing lens power based on measuring of magnification of the reflected two-dimensional images, wherein the lens power is indicative of a local curvature of the transparent sheet over the width of the conveyor, with the improvement being projecting the plurality of two-dimensional images which are not completely filled and are of a contrasting color with the background and with the additional improvement being computing with the processing circuit the transmissive optical power by computing the optical interaction of the local curvatures of the multiple surfaces wherein the measuring the reflected two-dimensional images from the transparent sheet at an edge of the transparent sheet does not show closed two-dimensional images but shows truncated two-dimensional images, which may be ignored for computing transmissive optical power and allows reliable distortion measurement up to the edge of the transparent sheet.

Assignments (3)
CHANGE OF NAME Recorded Nov 23, 2020
From: LITESENTRY CORPORATION
To: LITESENTRY, LLC
Reel/Frame 054440/0360 →
SECURITY INTEREST Recorded Nov 19, 2019
From: LITESENTRY, LLC
To: FIRST MERCHANTS BANK
Reel/Frame 051054/0562 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 30, 2017
From: HEGSTROM, ERIC
To: LITESENTRY CORPORATION
Reel/Frame 043137/0163 →
Cited By (1)
US 12,330,326