IP Library Granted Patent US 9,314,980
Granted Patent B2
US 9,314,980 · App. 13/847,363 · Granted Apr 19, 2016

High correctability deformable mirror

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Quick Facts
Patent No.
US 9,314,980
App. No.
13/847,363
Granted
Apr 19, 2016
Kind
B2
Abstract

A telescope, mirror assembly and method of forming an aspheric mirror is disclosed. The telescope includes the mirror assembly which has a substantially spherical surface contour in a relaxed state. A plurality of actuators distributed substantially along an outer edge of the mirror is configured to apply a load to the mirror assembly to deform the mirror to obtain a substantially aspheric surface contour.

Claims (32)

1. A method of forming an aspheric mirror, comprising:

manufacturing a mirror segment having a substantially spherical surface contour;

attaching actuator assemblies at a plurality of contact points along an outer edge of the mirror segment, wherein an actuator assembly includes a first pair of actuators for controlling a radial force and a tangential moment on the mirror segment at the contact point and a second pair of actuators for controlling an axial force and a radial moment on the mirror segment at the contact point; and

activating the actuator assemblies to apply a load to deform the mirror segment to a substantially aspheric surface contour,

wherein the mirror segment includes a central hole that defines an inner edge of the mirror segment, further comprising attaching actuator assemblies at each of a plurality of contact points along the inner edge of the mirror segment and activating the actuator assemblies along the inner edge of the mirror segment.

2. The method of claim 1 , wherein the load further includes a force.

3. The method of claim 2 , wherein the force includes at least one of a radial force and an axial force and the moment includes at least one of a radial moment and a tangential moment.

4. The method of claim 3 , wherein applying the loads further comprises applying the radial force, the axial force, the radial moment and the tangential moment substantially simultaneously at each of the plurality of contact points along the outer edge of the mirror.

5. The method of claim 4 , further comprising applying the radial force, axial force, radial moment and tangential moment at each of the plurality of contact points via actuator assemblies located at each of the plurality of contact points along the outer edge of the mirror.

6. The method of claim 1 , wherein the load applied at the plurality of contact points along the inner edge of the mirror segment includes at least one of a radial force, an axial force, a radial moment, and a tangential moment.

7. The method of claim 1 , wherein the aspheric surface contour conforms substantially to an off-axis portion of a paraboloid.

8. The method of claim 5 , wherein the manufactured mirror has a substantially cylindrical surface contour.

9. A mirror assembly, comprising:

a mirror segment having a substantially spherical surface contour in a relaxed state;

a plurality of actuator assemblies attached to the mirror segment at a plurality of contact points distributed substantially along an outer edge of the mirror segment, wherein an actuator assembly includes a first pair of actuators for controlling a radial force and a tangential moment on the mirror segment at the contact point and a second pair of actuators for controlling an axial force and a radial moment on the mirror segment at the contact point; and

a processor to activate each of the plurality of actuator assemblies to apply a load to deform the mirror segment to a substantially aspheric surface contour,

wherein the mirror segment includes a central hole that defines an inner edge of the mirror segment and a plurality of actuator assemblies are configured to apply a radial force, axial force, radial moment, and tangential moment substantially simultaneously at each of a plurality of contact points along the inner edge.

10. The mirror assembly of claim 9 , wherein the load further includes a force.

11. The mirror assembly of claim 10 , wherein the force includes at least one of a radial force and an axial force and the moment includes at least one of a radial moment and a tangential moment.

12. The mirror assembly of claim 11 , wherein the plurality of actuators are coupled to a plurality of contact points along the outer edge of the mirror segment and are configured to apply the radial force, the axial force, the radial moment and the tangential moment substantially simultaneously.

13. The mirror assembly of claim 9 , wherein the aspheric surface contour conforms substantially to an off-axis portion of a paraboloid.

14. The mirror assembly of claim 9 , wherein the manufactured mirror segment has a substantially cylindrical surface contour.

15. A telescope, comprising:

a mirror segment having a substantially spherical surface contour in a relaxed state;

a plurality of actuator assemblies attached to the mirror segment at a plurality of contact points distributed substantially along an outer edge of the mirror segment, wherein an actuator assembly includes a first pair of actuators for controlling a radial force and a tangential moment on the mirror segment at the contact point and a second pair of actuators for controlling an axial force and a radial moment on the mirror segment at the contact point; and

a processor to activate each of the plurality of actuator assemblies to apply a load to deform the mirror segment to a substantially aspheric surface contour,

wherein the mirror segment includes a central hole that defines an inner edge of the mirror segment and a plurality of actuator assemblies are configured to apply a radial force, axial force, radial moment, and tangential moment substantially simultaneously at each of a plurality of contact points along the inner edge.

16. The telescope of claim 15 , wherein the applied load further includes a linear force.

17. The telescope of claim 16 , wherein the force includes at least one of a radial force and an axial force and the moment includes at least one of a radial moment and a tangential moment.

18. The telescope of claim 17 , wherein the plurality of actuators are coupled to a plurality of contact points along the outer edge of the mirror and are configured to apply the radial force, the axial force, the radial moment and the tangential moment substantially simultaneously.

19. The telescope of claim 15 , wherein the aspheric surface contour conforms substantially to an off-axis portion of a paraboloid.

20. The telescope of claim 15 , wherein the manufactured mirror has a substantially cylindrical surface contour.

Assignments (3)
ASSIGNMENT AND ASSUMPTION AGREEMENT AND BILL OF SALE Recorded Sep 2, 2020
From: GOODRICH CORPORATION; RAYTHEON TECHNOLOGIES CORPORATION
To: DANBURY MISSION TECHNOLOGIES, LLC (FORMERLY KNOWN AS AMERGINT EO SOLUTIONS, LLC)
Reel/Frame 053680/0799 →
PATENT SECURITY AGREEMENT Recorded Sep 1, 2020
From: DANBURY MISSION TECHNOLOGIES, LLC; TETHERS UNLIMITED, INC.
To: BANK OF AMERICA, N.A.
Reel/Frame 053663/0239 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 19, 2013
From: SOUTHARD, BARI M.
To: GOODRICH CORPORATION
Reel/Frame 030044/0998 →