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Frame-by-Frame Video Analysis of Idiosyncratic Reach-to-Grasp Movements in Humans
Published on: January 15, 2018
Development of an automatic approaching trigger measurement system based on macro-micro collaborative motion
Fan Zhang1, Qiangxian Huang2,3, Wei Wang1
1School of Electrical and Information Engineering, Tongling University, Tongling, Anhui, People's Republic of China.
Science Progress
|August 7, 2026
Summary
This study introduces a Fast Automatic Approaching Trigger Measurement System (FAATMS) using macro-micro cooperative motion for high-precision measurements. The system achieves nanoscale triggering with remarkable repeatability, enhancing manufacturing technology.
Area of Science:
- Metrology and Measurement Science
- Precision Engineering
- Nanotechnology
Background:
- The need for high-precision measurement systems capable of large-stroke motion is critical in advanced manufacturing.
- Existing systems face challenges in balancing large movement ranges with nanoscale accuracy.
- Macro-micro cooperative motion offers a potential solution to this contradiction.
Purpose of the Study:
- To develop and validate a novel Fast Automatic Approaching Trigger Measurement System (FAATMS).
- To address the conflict between large-stroke stage movement and high-precision measurement requirements.
- To enable reliable nanoscale triggering for precision measurement tasks.
Main Methods:
- Integration of a large-stroke macrostage (LSMS) with a six-degree-of-freedom microstage (6-DOFMS).
- Implementation of a three-dimensional (3D) motion control and nanoscale triggering strategy with secondary triggering.
- Utilizing laser interferometers for 3D displacement measurement, adhering to the Abbe principle.
Main Results:
- The FAATMS demonstrated excellent repeatability with a peak-to-peak value of 64.9 nm and a standard deviation < 39.1 nm (k=2).
- Micro-nano level measurements on a standard sphere showed a diameter repeatability of 330 nm (k=2).
- The system successfully achieved rapid coarse triggering via LSMS followed by precise secondary triggering via 6-DOFMS.
Conclusions:
- The developed FAATMS effectively solves the contradiction between large-stroke motion and high-precision measurement.
- The system's reliability and accuracy are validated through experimental results on standard spheres.
- FAATMS offers significant advancements for fundamental manufacturing technology and precision measurement applications.
