DocumentCode :
1524374
Title :
Possible mechanism for observed dynamic resistance
Author :
Malucci, Robert D.
Author_Institution :
Molex Inc., Lisle, IL, USA
Volume :
24
Issue :
3
fYear :
2001
fDate :
9/1/2001 12:00:00 AM
Firstpage :
408
Lastpage :
415
Abstract :
A possible mechanism was proposed to explain the observance of motion induced short-term electrical discontinuities in degraded tin plated contacts (nanosecond). This mechanism requires unique conditions where cold-welded wear particles are stretched and sheared to the fracture limit during sliding. It is speculated that the release of elastic energy during fracture propagates through the surface structure at the speed of sound and causes rapid changes in contact resistance. An analysis of the microstructure was conducted and indicates this mechanism is theoretically possible. Moreover, data are provided that show incremental changes in normal force can cause counter intuitive changes in resistance. This data shows large changes occur during loading and unloading and it´s believed these changes are the result of micro rocking that´s induced by the step loading system. It is estimated the distances covered by rocking range from a few to tens of microns and the large changes in resistance are thought to result from making and breaking cold-welded asperities. In addition, this data suggests that a static contact resistance threshold for discontinuities exist around the 100 mΩ level. This is in agreement with other authors and lends credibility to the use of static contact resistance as a measure of contact stability
Keywords :
contact resistance; electrical contacts; electroplated coatings; tin; wear; Sn; cold-welded asperity; dynamic contact resistance; elastic energy release; electrical discontinuity; fracture; microrocking motion; microstructure; sliding motion; stability; tin plated contact; wear particle; Acoustic propagation; Contact resistance; Counting circuits; Degradation; Electric resistance; Electrical resistance measurement; Microstructure; Stability; Surface structures; Tin;
fLanguage :
English
Journal_Title :
Components and Packaging Technologies, IEEE Transactions on
Publisher :
ieee
ISSN :
1521-3331
Type :
jour
DOI :
10.1109/6144.946487
Filename :
946487
Link To Document :
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