DocumentCode :
2817013
Title :
Simulation of the Current Density Distribution within Electrical Contacts
Author :
Leidner, M. ; Schmidt, H. ; Myers, M.
Author_Institution :
PE GAD EMA, Tyco Electron. AMP GmbH, Bensheim, Germany
fYear :
2010
fDate :
4-7 Oct. 2010
Firstpage :
1
Lastpage :
9
Abstract :
This article focuses on contact interface current density distributions (J) simulated by numerically solving the Laplace equation for multiple realistic engineered surface/coating combinations. As force increases after surface contact initiation, constriction resistance changes can deviate from the theoretical power law; Rc ~ FN-n. It can be shown that this is due to the nature of how the a-spots cluster as they form across the contact area. It will be emphasized that this knee in the log/log plot of constriction resistance versus normal force is not caused by a transition from elastic to plastic deformation of the surface asperities. It will be shown that the distribution of individual current paths for smooth surfaces results in the highest current density level being located within the outer rim of the real contact area; while rougher topographies show a more evenly distributed current density distribution. The influence on J distribution by normal force, contact radii, roughness, and resistivity for the different contact interfaces is calculated. 3-dimensional simulation/visualization using a measured surface x/y-resolution of ~1.5 μm shows the a-spots numbers vary from about 10 to more than 600 at a x/y-grid resolution 128 × 128 mesh points. Very high current loads can cause a-spots to degrade which can trigger the failure of the whole contact system. A numerical approach to simulate these effects is given. The simulation results are compared with an image of a Ag contact subjected to a over current pulse. A test setup to measure the heat dissipation within a contact interface is proposed and the first results are shown..
Keywords :
Laplace equations; cooling; current density; current distribution; electrical contacts; 3-dimensional simulation; Laplace equation; constriction resistance; contact interface current density distribution simulation; contact radii; contact system; elastic deformation; electrical contacts; heat dissipation; plastic deformation; surface contact initiation; theoretical power law; Contacts; Current density; Force; Materials; Mathematical model; Numerical models; Surface topography;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Electrical Contacts (HOLM), 2010 Proceedings of the 56th IEEE Holm Conference on
Conference_Location :
Charleston, SC
ISSN :
1062-6808
Print_ISBN :
978-1-4244-8174-3
Type :
conf
DOI :
10.1109/HOLM.2010.5619467
Filename :
5619467
Link To Document :
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