IP Library Granted Patent US 12,436,113
Granted Patent B2
US 12,436,113 · App. 18/232,688 · Granted Oct 7, 2025

X-ray device with folded field-of-view

Inventor: Adam P. Damiano (Somerville, MA)
Assignee: Lumafield, Inc.
G01N23/04G01N23/083G06T17/00H04N23/30H04N23/58G01N2223/505
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Quick Facts
Patent No.
US 12,436,113
App. No.
18/232,688
Granted
Oct 7, 2025
Kind
B2
Abstract

An X-ray device includes an X-ray source, a scintillator, a single mirror, and a camera. The camera has a field-of-view around an optical axis of the camera. The single mirror fully contains the field-of-view as the field-of-view is folded by the single mirror toward the scintillator. The single mirror is positioned at an angle with respect to a plane that is normal to the optical axis at a point where the optical axis intersects the single mirror. The angle is decreased from forty-five degrees to reduce a volume of the folded field-of-view of the camera. The angle is greater than or equal to a threshold angle that prevents triple specular reflections of light between the single mirror and the scintillator.

Claims (38)

1. An X-ray device comprising:

an X-ray source configured to emit X-rays;

a scintillator arranged to absorb, on a first side of the scintillator, the X-rays after interaction with an object that has been placed in the X-ray device, the scintillator being configured to emit light from a second side of the scintillator in response to absorption of the X-rays;

a single mirror arranged to reflect the light from the second side of the scintillator toward a camera; and

the camera arranged to receive the light reflected from the single mirror; wherein

the camera has a field-of-view around an optical axis of the camera,

the single mirror is large enough to fully contain the field-of-view as the field-of-view is folded by the single mirror toward the scintillator,

the single mirror is positioned at an angle with respect to a plane that is normal to the optical axis at a point where the optical axis intersects the single mirror,

the angle is decreased from forty-five degrees to reduce a volume of the folded field-of-view of the camera, and

the angle is greater than or equal to a threshold angle that prevents triple specular reflections of light between the single mirror and the scintillator, the threshold angle being set in accordance with (i) a first distance along the optical axis between the camera and the scintillator, (ii) a second distance along the optical axis between the single mirror and the scintillator, and (iii) a size of the scintillator.

2. The X-ray device of claim 1 , wherein the angle of the single mirror with respect to the plane is less than an additional threshold angle that prevents a combination of double specular reflections of light off of the single mirror and a single diffuse reflection of light off of the scintillator.

3. The X-ray device of claim 1 , wherein the angle of the single mirror with respect to the plane is greater than an additional threshold angle that prevents a combination of double specular reflections of light off of the single mirror and a single diffuse reflection of light off of the scintillator.

4. The X-ray device of claim 1 , wherein a field-of-view of the camera is 20 by 31 square degrees.

5. The X-ray device of claim 1 , further comprising a shroud positioned to block stray light from affecting the camera.

6. The X-ray device of claim 5 , wherein the shroud is positioned between the X-ray source and the camera.

7. The X-ray device of claim 1 , further comprising a motion system to move the camera, the object, or both during a scan.

8. A system comprising:

the X-ray device of claim 1 ; and

a computer programmed to execute an algorithm to perform three-dimensional reconstruction of the object using data generated by the light received by the camera.

9. An X-ray device comprising:

an X-ray source configured to emit X-rays;

a scintillator arranged to absorb, on a first side of the scintillator, the X-rays after interaction with an object that has been placed in the X-ray device, the scintillator being configured to emit light from a second side of the scintillator in response to absorption of the X-rays;

a single mirror arranged to reflect the light from the second side of the scintillator toward a camera; and

the camera arranged to receive the light reflected from the single mirror; wherein

the camera has a field-of-view around an optical axis of the camera,

the single mirror is large enough to fully contain the field-of-view as the field-of view is folded by the single mirror toward the scintillator,

the single mirror is positioned at an angle with respect to a plane that is normal to the optical axis at a point where the optical axis intersects the single mirror,

the angle is decreased from forty-five degrees to reduce a volume of the folded field-of-view of the camera,

the angle is greater than or equal to a threshold angle that prevents triple specular reflections of light between the single mirror and the scintillator, the threshold angle being set in accordance with (i) a first distance along the optical axis between the camera and the scintillator, (ii) a second distance along the optical axis between the single mirror and the scintillator, and (iii) a size of the scintillator, and

a bounding box volume of the folded field-of-view of the camera is 78% of a bounding box volume of an unfolded field-of-view of the camera.

10. The X-ray device of claim 9 , wherein the angle of the single mirror with respect to the plane is less than an additional threshold angle that prevents a combination of double specular reflections of light off of the single mirror and a single diffuse reflection of light off of the scintillator.

11. The X-ray device of claim 9 , wherein the angle of the single mirror with respect to the plane is greater than an additional threshold angle that prevents a combination of double specular reflections of light off of the single mirror and a single diffuse reflection of light off of the scintillator.

12. The X-ray device of claim 9 , further comprising a shroud positioned to block stray light from affecting the camera.

13. The X-ray device of claim 12 , wherein the shroud is positioned between the X-ray source and the camera.

14. The X-ray device of claim 9 , further comprising a motion system to move the camera, the object, or both during a scan.

15. A system comprising:

the X-ray device of claim 9 ; and

a computer programmed to execute an algorithm to perform three-dimensional reconstruction of the object using data generated by the light received by the camera.

Assignments (4)
RELEASE OF SECURITY INTEREST Recorded Oct 31, 2025
From: TRIPLEPOINT CAPITAL LLC
To: LUMAFIELD, INC.
Reel/Frame 072749/0241 →
SECURITY INTEREST Recorded Oct 30, 2025
From: LUMAFIELD, INC.
To: FIRST-CITIZENS BANK & TRUST COMPANY
Reel/Frame 072728/0826 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 24, 2025
From: DAMIANO, ADAM P.
To: LUMAFIELD, INC.
Reel/Frame 070937/0306 →
SECURITY INTEREST Recorded Sep 18, 2024
From: LUMAFIELD, INC.
To: TRIPLEPOINT CAPITAL LLC
Reel/Frame 068626/0049 →
Continuity (1)
Related Publication 20250052698A1 · Feb 13, 2025
References Cited (8)
US 20020031203A1 · Polichar · 2002 [cited by examiner]
US 20100072378A1 · Cannon · 2010 [cited by applicant]
US 20130148787A1 · Campbell · 2013 [cited by applicant]
US 20230148975A1 · Damiano et al. · 2023 [cited by applicant]
CN 112456537 · 2021 [cited by applicant]
WO WO2023091435 · 2023 [cited by applicant]
International Search Report and Written Opinion in International Appln. No. PCT/US2024/040962, mailed on Oct. 16, 2024, 14 pages. [cited by applicant]
Li et al., “Flexible, High Scintillation Yield Cu3Cu215 Film Made of Ball-Milled Powder for High Spatial Resolution X-Ray Imaging,” Advanced Optical Materials, Jan. 2022, 10(5):1-6. [cited by applicant]