IP Library Granted Patent US 11,396,974
Granted Patent B2
US 11,396,974 · App. 17/034,133 · Granted Jul 26, 2022

Method and apparatus for implementing ultra-high stability stages with combined degrees of freedom for multiple axes of motion

Inventors: Curt Alfred Preissner (Chicago, IL); Sunil Jeffrey Bean (Bolingbrook, IL); Volker Rose (Downers Grove, IL)
Assignee: Uchicago Argonne, LLC
F16M11/24F16M11/205F16M11/2028F16M11/2071F16M11/2085F16M11/2092
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Quick Facts
Patent No.
US 11,396,974
App. No.
17/034,133
Granted
Jul 26, 2022
Kind
B2
Abstract

A method and apparatus are provided for implementing an ultra-high stability stage with combined degrees of freedom for multiple axes of motion. The ultra-high stability stage includes a base, a driving wedge supported by the base and a following wedge supported by the driving wedge. The base and each wedge are formed of a selected stable material having predefined rigidity and low thermal expansion coefficient. Integrated air bearings, respective driving mechanics associated with each of the wedges and guiding components having selected degrees of freedom enable movement about multiple axes of motion, such as X, Y, Z translation axes, and rotation X and rotation Y axes. Another ultra-high stability stage with combined degrees of freedom for multiple axes of motion includes an intermediate wedge between the driving wedge and the following wedge to enable additional movement about a rotation X axis.

Claims (18)

1. An apparatus for implementing an ultra-high stability stage with combined degrees of freedom for multiple axes of motion comprising:

a base;

a driving wedge supported by the base and supporting a following wedge, the base and each wedge formed of a selected stable material having predefined rigidity and low thermal expansion coefficient; the driving wedge and following wedge having machined surfaces providing predefined flatness;

integrated air bearings, respective driving mechanics, and guiding components associated with the driving wedge and following wedge having selected degrees of freedom and enabling movement with an arbitrary travel range and dynamic and thermal stability about selected ones of the multiple axes of motion including multiple translational axes motions including 25 mm and rotation axes motions including 1-25 degrees with the integrated air bearings lifted and the guiding components allowing for movement of the driving wedge and the following wedge about the selected multiple axes of motion and enables minimizing space required for the ultra-high stability stage to implement the multiple axes of motion without requiring additional air bearing-guided wedges.

2. The apparatus as recited in claim 1 wherein the guiding components having selected degrees of freedom enable maintaining a substantially co-planar interface of the driving wedge and the following wedge during movement and setting with an overall minimized space requirement.

3. The apparatus as recited in claim 1 wherein the guiding components having selected degrees of freedom are provided with the driving wedge ensuring vertical motion of the following wedge motion with an overall minimized space requirement.

4. The apparatus as recited in claim 1 wherein respective driving mechanics are provided with the following wedge for translation X, Y and Z and rotation Z motions with an overall minimized space requirement.

5. The apparatus as recited in claim 1 wherein respective driving mechanics are provided with the driving wedge for translation Y and rotation Y and rotation Z motions with an overall minimized space requirement.

6. The apparatus as recited in claim 1 wherein wedge-to-wedge contact when the ultra-high stability stage is not in motion yields stability and rigidity substantially the same as a solid member and enables carrying a beamline optics carrying stage at a nanometer (nm) level.

7. The apparatus as recited in claim 1 wherein the base and each wedge formed of a selected stable material having predefined rigidity and low thermal expansion coefficient providing rigidity and stability including a selected one of granite, a low thermal expansion glass and a nickel-iron alloy.

8. An apparatus for implementing an ultra-high stability stage with combined degrees of freedom for multiple axes of motion comprising:

a base;

a driving wedge supported by the base, a following wedge, and the driving wedge supporting the following wedge; the base and each wedge formed of a selected stable material having predefined rigidity and low thermal expansion coefficient providing rigidity and stability including a selected one of granite, a low thermal expansion glass and a nickel-iron alloy;

integrated air bearings, respective driving mechanics, and guiding components associated with each of the wedges having selected degrees of freedom and enabling movement about the selected ones of multiple axes of motion with the integrated air bearings lifted and the guiding components allowing for movement of the driving wedge, and the following wedge, about the selected ones of multiple translational axes of motion and rotation axes of motion and minimizing space required to implement the multiple translational and rotation axes of motion including selected X, Y, Z translation axes, and rotation Y and rotation Z axis with the ultra-high stability stage.

9. The apparatus as recited in claim 8 wherein the guiding components having selected degrees of freedom are provided with the driving wedge ensuring vertical motion of the following wedge with an overall minimized space requirement.

10. The apparatus as recited in claim 8 wherein driving mechanics are provided with the following wedge for translation X, Y, Z and rotation Z motions with an overall minimized space requirement.

11. The apparatus as recited in claim 8 wherein driving mechanics are provided with the driving wedge for translation Y and rotation X, rotation Y, and rotation Z motions with an overall minimized space requirement.

12. The apparatus as recited in claim 8 wherein guiding components and driving mechanics are provided with the following wedge for translation X, Y Z and rotation Z motions with an overall minimized space requirement.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 31, 2022
From: PREISSNER, CURT ALFRED; BEAN, SUNIL JEFFREY; ROSE, VOLKER
To: UCHICAGO ARGONNE, LLC
Reel/Frame 060061/0315 →
CONFIRMATORY LICENSE Recorded Mar 24, 2021
From: UCHICAGO ARGONNE, LLC
To: UNITED STATES DEPARTMENT OF ENERGY
Reel/Frame 055698/0605 →
Continuity (1)
Related Publication 20220099244A1 · Mar 31, 2022