DocumentCode :
23483
Title :
Variable-Length Link-Spring Model of Wire-Bonding Looping Process
Author :
Fuliang Wang ; Weidong Tang ; Lei Han
Author_Institution :
State Key Lab. of High Performance Complex Manuf., Changsha, China
Volume :
3
Issue :
8
fYear :
2013
fDate :
Aug. 2013
Firstpage :
1279
Lastpage :
1285
Abstract :
Looping is a key technology in modern thermosonic wire bonding. To provide insight into the loop formation mechanism, a variable-length link-spring (VLLS) model is proposed. In this model, the wire segments and moment balance equations at the opening end of the wire are dynamically added during the capillary upward movement stage, to simulate the wire feeding and kink formation process. The complete looping process is analyzed by solving nonlinear equations iteratively and using Newton´s method. Using this model, the wire profile evolution process and kink number, position, and deformation during looping are obtained and verified by experimental results. The effects of the upward loop trace parameters (reverse motion and kink height parameters) on the final loop profile are studied. The results show that the VLLS model, which considers the upward loop trace, is more suitable for looping process analysis.
Keywords :
Newton method; nonlinear equations; tape automated bonding; ultrasonic applications; Newton method; capillary upward movement stage; kink formation process; kink height parameter; kink number; loop formation mechanism; moment balance equation; nonlinear equations; thermosonic wire bonding; variable length link-spring model; wire bonding looping process; wire feeding process; wire profile evolution process; wire segment equation; Analytical models; Equations; Force; Gold; Mathematical model; Springs; Wires; Capillary trace; kink formation; loop profile; looping process; variable-length link-spring (VLLS) model; wire bonding;
fLanguage :
English
Journal_Title :
Components, Packaging and Manufacturing Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
2156-3950
Type :
jour
DOI :
10.1109/TCPMT.2013.2237773
Filename :
6417262
Link To Document :
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