Performance evaluation of precision nanopositioning devices caused by uncertainties due to tolerances using function approximation moment method
Author(s) -
J. S. Huh,
K. H. Kim,
Dongwoo Kang,
Dae Gab Gweon,
B. M. Kwak
Publication year - 2006
Publication title -
review of scientific instruments
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.605
H-Index - 165
eISSN - 1089-7623
pISSN - 0034-6748
DOI - 10.1063/1.2162750
Subject(s) - moment (physics) , computer science , process (computing) , function (biology) , finite element method , probability density function , experimental data , energy (signal processing) , algorithm , mathematics , physics , statistics , classical mechanics , thermodynamics , evolutionary biology , biology , operating system
Precision nanopositioning is an important technology in industry and requires tight design specifications. Tolerances, although very small, are allocated in all dimensions of structures at devices and are understood as sources of performance variations. In this research, we aim to study detail influence of tolerances on various system response functions of a precision stage, especially parasitic motion and resonant frequencies. A function approximation moment method (FAMM) is developed and applied to study it. The variations are mathematically expressed as their statistical moments and the probabilities of satisfaction are obtained as a result of the FAMM. A finite element model of the target stage, which is nonmonolithic, is generated and verified with basic measurements. The possible initial deformation after assembly is found by the formulation of minimizing strain energy. With this model, the FAMM is used to estimate the statistical moments and probability density functions of the performance function...
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