IP Library › Granted Patent US 11,752,555
Granted Patent B1
US 11,752,555 · App. 17/820,905 · Granted Sep 12, 2023

Method for making a radiation shield using fused filament deposition

Inventor: Stephen J. Frederick (Melbourne, FL)
Assignee: EAGLE TECHNOLOGY, LLC
B22F10/22B22F5/10B33Y10/00Y10T29/496
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Quick Facts
Patent No.
US 11,752,555
App. No.
17/820,905
Granted
Sep 12, 2023
Kind
B1
Abstract

A method for making a radiation shield includes generating a three-dimensional (3D) model for a metal body to serve as a radiation shield based upon a predetermined radiation stopping thickness for the metal and a predetermined strength based upon the metal and a pattern of voids therein. The method includes performing fused filament deposition to create the metal body having the pattern of voids therein.

Claims (35)

1. A method for making a radiation shield comprising:

generating within a processor a three-dimensional (3D) model for a metal body to serve as a radiation shield based upon a predetermined radiation stopping thickness for the metal and a predetermined strength based upon the metal and a pattern of spherically shaped voids therein, the 3D model being generated within the processor by,

inputting values for a) the radiation environment and radiation tolerance levels for any electronic components and circuits to be protected, b) the dimensional values of the radiation shield to be made, and c) the radiation dose rates for a given period of time in the space environment to which the radiation shield will be subjected; and

based upon the inputted values, calculating for the radiation shield a radiation shielding thickness and material having successive sphere void layers and a sphere void spacing, size and lattice configuration in successive layers where the radius of a sphere wall to the outer diameter of the sphere is constant, and applying the radiation shielding thickness and sphere void spacing, size and lattice configuration in the radiation shield to an extrusion pattern; and

performing fused filament deposition based upon the extrusion pattern to create the metal body having the pattern of spherically shaped voids throughout the metal body in a first section that operates as the radiation shield by extruding an extrusion material in successive layers to produce spherically shaped voids having a predefined size, spacing and density and the pattern of the spherically shaped voids relative to the thickness of the extrusion material to impart the predetermined radiation stopping thickness and predetermined strength.

2. The method of claim 1 , wherein the pattern of spherically shaped voids is in a repeating pattern.

3. The method of claim 1 , wherein the pattern of spherically shaped voids is in a random pattern.

4. The method of claim 1 , wherein the spherically shaped voids have a spherical shape with a same size.

5. The method of claim 1 , wherein the spherically shaped voids have diameters in a range of 0.1 to 5 mm.

6. The method of claim 1 , wherein the predetermined strength comprises a predetermined bending strength.

7. The method of claim 1 , wherein the metal body comprises at least one of steel, aluminum, titanium, vanadium and tungsten.

8. The method of claim 1 , wherein the metal body is devoid of lead.

9. The method of claim 1 , wherein the metal body includes a second section having fewer spherically shaped voids than the first section and operates as a structural support to the radiation shield.

10. A method for making a radiation shield comprising:

generating within a processor a three-dimensional (3D) model for a metal body to serve as a radiation shield based upon a predetermined radiation stopping thickness for the metal and a predetermined strength based upon the metal and a random pattern of spherically shaped voids therein, the 3D model being generated within the processor by,

inputting values for a) the radiation environment and radiation tolerance levels for any electronic components and circuits to be protected, b) the dimensional values of the radiation shield to be made, and c) the radiation dose rates for a given period of time in the space environment to which the radiation shield will be subjected; and

based upon the inputted values, calculating for the radiation shield a radiation shielding thickness and material having successive sphere void layers and a sphere void spacing, size and lattice configuration in successive layers where the radius of a sphere wall to the outer diameter of the sphere is constant, and applying the radiation shielding thickness and sphere void spacing, size and lattice configuration in the radiation shield to an extrusion pattern; and

performing fused filament deposition based upon the extrusion pattern to create the metal body having the random pattern of spherically shaped voids throughout the metal body in a first section that operates as the radiation shield by extruding an extrusion material in successive layers to produce spherically shaped voids having a predefined size, spacing and density and the random pattern of the spherically shaped voids relative to the thickness of the extrusion material to impart the predetermined radiation stopping thickness and predetermined strength.

11. The method of claim 10 , wherein the spherically shaped voids have a spherical shape with a same size.

12. The method of claim 10 , wherein the spherically shaped voids have diameters in a range of 0.1 to 5 mm.

13. The method of claim 10 , wherein the predetermined strength comprises a predetermined bending strength.

14. The method of claim 10 , wherein the metal body comprises at least one of steel, aluminum, titanium, vanadium and tungsten.

15. The method of claim 10 , wherein the metal body is devoid of lead.

16. The method of claim 10 , wherein the metal body includes a second section having fewer spherically shaped voids than the first section and operates as a structural support to the radiation shield.

17. A method for making a radiation shield comprising:

generating within a processor a three-dimensional (3D) model for a metal body to serve as a radiation shield based upon a predetermined radiation stopping thickness for the metal and a predetermined strength based upon the metal and a repeating pattern of spherically shape voids therein, the 3D model being generated within the processor by,

inputting values for a) the radiation environment and radiation tolerance levels for any electronic components and circuits to be protected, b) the dimensional values of the radiation shield to be made, and c) the radiation dose rates for a given period of time in the space environment to which the radiation shield will be subjected; and

based upon the inputted values, calculating for the radiation shield a radiation shielding thickness and material having successive sphere void layers and a sphere void spacing, size and lattice configuration in successive layers where the radius of a sphere wall to the outer diameter of the sphere is constant, and applying the radiation shielding thickness and sphere void spacing, size and lattice configuration in the radiation shield to an extrusion pattern; and

performing fused filament deposition based upon the extrusion pattern to create the metal body having the repeating pattern of spherically shaped voids throughout the metal body in a first section that operates as the radiation shield by extruding an extrusion material in successive layers to produce spherically shaped voids having a predefined size, spacing and density and the repeating pattern of the spherically shaped voids relative to the thickness of the extrusion material to impart the predetermined radiation stopping thickness and predetermined strength.

18. The method of claim 17 , wherein the spherically shaped voids have a spherical shape with a same size.

19. The method of claim 17 , wherein the spherically shaped voids have diameters in a range of 0.1 to 5 mm.

20. The method of claim 17 , wherein the predetermined strength comprises a predetermined bending strength.

21. The method of claim 17 , wherein the metal body comprises at least one of steel, aluminum, titanium, vanadium and tungsten.

22. The method of claim 17 , wherein the metal body is devoid of lead.

23. The method of claim 17 , wherein the metal body includes a second section having fewer spherically shaped voids than the first section and operates as a structural support to the radiation shield.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 22, 2022
From: FREDERICK, STEPHEN J.
To: EAGLE TECHNOLOGY, LLC
Reel/Frame 060857/0704 →
Continuity (1)
Continuation In Part 16842936 · Apr 8, 2020
Cited By (1)
US 12,217,362