DocumentCode :
8787
Title :
Assembly of Polymer Microfluidic Components and Modules: Validating Models of Passive Alignment Accuracy
Author :
Byoung Hee You ; Park, Daniel S. ; Rani, Sudheer D. ; Murphy, Michael C.
Author_Institution :
Dept. of Eng. Technol. & the Mater. Sci., Texas State Univ., San Marcos, TX, USA
Volume :
24
Issue :
3
fYear :
2015
fDate :
Jun-15
Firstpage :
634
Lastpage :
650
Abstract :
Low-cost modular polymer microfluidic platforms integrating several different functional units may potentially reduce the cost of molecular and environmental analyses, and enable broader applications. Proper function of such systems depends on well-characterized assembly of the instruments. Passive alignment is one approach to obtaining such assemblies. Model modular devices containing passive alignment features, hemispherical pins in v-grooves, and integrated alignment standards for characterizing the accuracy of the assemblies were replicated in polycarbonate using doubled-sided injection molding. The dimensions and locations of the assembly features and alignment standards were measured. The assemblies had mismatches from 16 ± 4 to 20 ± 6 μm along the x-axis and from 103 ± 7 to 118 ± 11 μm along the y-axis. The vertical variation from the nominal value of 287 μm ranged from -10 ± 4 to 34 ± 7 μm. An assembly tolerance model was used to estimate the accuracy of the assemblies based on the manufacturing variations of the alignment structures. Variation of the alignment structure features were propagated through the assembly using Monte Carlo methods. The estimated distributions matched the measured experimental results well, with differences of 2%-13% due to unmodeled aspects of the variations Accurate assembly of advanced polymer microsystems is feasible and predictable in the design phase.
Keywords :
Monte Carlo methods; assembling; cost reduction; microfluidics; moulding; polymers; Monte Carlo method; advanced polymer microsystem; assembly tolerance model; cost reduction; distribution match estimation; doubled-sided injection molding; environmental analyses; hemispherical pins; integrated alignment standard; modular polymer microfluidic platform; module; molecular analyses; passive alignment accuracy; polycarbonate; v-groove; Accuracy; Assembly; Monte Carlo methods; Polymers; Standards; Tolerance analysis; Vectors; Assembly tolerance analysis; Monte Carlo simulation; double-sided injection molding; modularization; passive kinematic alignment; polymer microfluidic devices; polymer microfluidic devices.;
fLanguage :
English
Journal_Title :
Microelectromechanical Systems, Journal of
Publisher :
ieee
ISSN :
1057-7157
Type :
jour
DOI :
10.1109/JMEMS.2014.2339733
Filename :
6870423
Link To Document :
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