IP Library Granted Patent US 8,957,567
Granted Patent B2
US 8,957,567 · App. 13/593,799 · Granted Feb 17, 2015

Mechanical design of deformation compensated flexural pivots structured for linear nanopositioning stages

Inventors: Deming Shu (Darian, IL); Steven P. Kearney (Westchester, IL); Curt A. Preissner (Chicago, IL)
Assignee: UChicago Argonne, LLC
H01L41/083H01L41/09
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 8,957,567
App. No.
13/593,799
Granted
Feb 17, 2015
Kind
B2
Abstract

A method and deformation compensated flexural pivots structured for precision linear nanopositioning stages are provided. A deformation-compensated flexural linear guiding mechanism includes a basic parallel mechanism including a U-shaped member and a pair of parallel bars linked to respective pairs of I-link bars and each of the I-bars coupled by a respective pair of flexural pivots. The basic parallel mechanism includes substantially evenly distributed flexural pivots minimizing center shift dynamic errors.

Claims (27)

1. An deformation compensated flexural pivots structured for a precision linear nanopositioning stage comprising:

a deformation-compensated flexural linear guiding mechanism including

a U-shaped member;

first and second parallel bars;

a respective pair of I-link bars coupled between said U-shaped member and said respective first parallel bar and second parallel bars; and

respective pairs of flexural pivots securing each of said I-link bars to said U-shaped member and said respective first parallel bar and said second parallel bar; said flexural pivots being substantially evenly distributed minimizing center shift dynamic errors.

2. The deformation compensated flexural pivots structured for the precision linear nanopositioning stage as recited in claim 1 wherein center shift dynamic errors of each of said flexural pivots are measured and analyzed before assembly in said deformation-compensated flexural linear guiding mechanism.

3. The deformation compensated flexural pivots structured for the precision linear nanopositioning stage as recited in claim 1 wherein each of said flexural pivots are fine tuned before assembly in said deformation-compensated flexural linear guiding mechanism.

4. The deformation compensated flexural pivots structured for the precision linear nanopositioning stage as recited in claim 1 wherein said flexural pivots are selectively paired before assembly in said deformation-compensated flexural linear guiding mechanism.

5. The deformation compensated flexural pivots structured for the precision linear nanopositioning stage as recited in claim 1 includes optimizing of an orientation of each of said flexural pivots before assembly in said deformation-compensated flexural linear guiding mechanism.

6. The deformation compensated flexural pivots structured for the precision linear nanopositioning stage as recited in claim 1 wherein the precision flexural linear stage enables sub-nanometer positioning resolution, high tilting stiffness, and microradian-level straightness of trajectory repeatability.

7. The deformation compensated flexural pivots structured for the precision linear nanopositioning stage as recited in claim 1 wherein the precision flexural linear stage includes three said deformation-compensated flexural linear guiding mechanisms.

8. The deformation compensated flexural pivots structured for the precision linear nanopositioning stage as recited in claim 7 wherein the precision flexural linear stage includes a stage base and a stage carriage, and wherein two of said deformation-compensated flexural linear guiding mechanisms are mounted vertically between said stage base and said stage carriage to provide vertical load capacity for the precision flexural linear stage.

9. The deformation compensated flexural pivots structured for the precision linear nanopositioning stage as recited in claim 8 wherein one said deformation-compensated flexural linear guiding mechanisms links the stage base and the stage carriage horizontally to enhance linear guiding and provide lateral stiffness for the precision flexural linear stage.

10. The deformation compensated flexural pivots structured for the precision linear nanopositioning stage as recited in claim 7 includes a synchronizing linkage provided between said U-shaped member of said two of said deformation-compensated flexural linear guiding mechanisms mounted vertically between said stage base and said stage carriage.

11. The deformation compensated flexural pivots structured for the precision linear nanopositioning stage as recited in claim 7 includes synchronizing linkages provided between said U-shaped member of said three said deformation-compensated flexural linear guiding mechanisms.

12. The deformation compensated flexural pivots structured for the precision linear nanopositioning stage as recited in claim 1 wherein the precision flexural linear stage includes a stage base and a piezoelectric transducer (PZT)-based nanopositioning motor mounted on said stage base.

13. The deformation compensated flexural pivots structured for the precision linear nanopositioning stage as recited in claim 12 wherein the said PZT motor provides 12-mm travel range with 100-nm resolution.

14. The deformation compensated flexural pivots structured for the precision linear nanopositioning stage as recited in claim 1 wherein the precision flexural linear stage includes a stage base and a stage carriage and a piezoelectric transducer (PZT)-based nanopositioning actuator.

15. The deformation compensated flexural pivots structured for the precision linear nanopositioning stage as recited in claim 14 wherein said PZT actuator drives the stage with sub-nanometer positioning resolution in a 15-micron travel range.

16. The deformation compensated flexural pivots structured for the precision linear nanopositioning stage as recited in claim 1 wherein the precision flexural linear stage includes a stage base, a stage carriage, a piezoelectric transducer (PZT)-based nanopositioning motor mounted on said stage base, a PZT actuator, and a set of compression springs providing a preloading force between said PZT motor and said PZT actuator to minimize the motion backlash.

17. The deformation compensated flexural pivots structured for the precision linear nanopositioning stage as recited in claim 1 wherein the precision flexural linear stage includes a stage base and a stage carriage, and includes an optical encoder measuring a stage carriage position related to said stage base.

18. A method for implementing deformation compensated flexural pivots structured for a precision linear nanopositioning stage comprising:

providing a deformation-compensated flexural linear guiding mechanism including a U-shaped member; first and second parallel bars; a respective pair of I-link bars coupled between said U-shaped member and said respective first parallel bar and second parallel bar; and respective pairs of flexural pivots securing each of said I-link bars to said U-shaped member and said respective first parallel bar and said second parallel bar; and

providing said flexural pivots substantially evenly distributed minimizing center shift dynamic errors.

19. The method as recited in claim 18 wherein providing said flexural pivots includes analyzing center shift dynamic errors of each of said flexural pivots.

20. The method as recited in claim 19 includes fine tuning of each of said flexural pivots, pairing of said flexural pivots, and optimizing of an orientation of each of said flexural pivots.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 10, 2013
From: SHU, DEMING; KEARNEY, STEVEN P.; PREISSNER, CURT A
To: UCHICAGO ARGONNE, LLC
Reel/Frame 029609/0764 →
CONFIRMATORY LICENSE Recorded Sep 19, 2012
From: UCHICAGO ARGONNE, LLC
To: ENERGY, UNITED STATES DEPARTMENT OF
Reel/Frame 029016/0781 →
Continuity (1)
Related Publication 20140055005A1 · Feb 27, 2014