DocumentCode
3346754
Title
Failure-Envelope Approach to Modeling Shock and Vibration Survivability of Electronic and MEMS Packaging
Author
Lall, Pradeep ; Panchagade, Dhananjay ; Choudhary, Prakriti ; Suhling, Jeff ; Gupte, Sameep
Author_Institution
Dept. of Mech. Eng., Auburn Univ., AL
fYear
2005
fDate
May 31 2005-June 3 2005
Firstpage
480
Lastpage
490
Abstract
Product level assessment of drop and shock reliability relies heavily on experimental test methods. Prediction of drop and shock survivability is largely beyond the state-of-art. However, the use of experimental approach to test out every possible design variation, and identify the one that gives the maximum design margin is often not feasible because of product development cycle time and cost constraints. Presently, one of the primary methodologies for evaluating shock and vibration survivability of electronic packaging is the JEDEC drop test method, JESD22-B111 which tests board-level reliability of packaging. However, packages in electronic products may be subjected to a wide-array of boundary conditions beyond those targeted in the test method. In this paper, a failure-envelope approach based on wavelet transforms and damage proxies has been developed to model drop and shock survivability of electronic packaging. Data on damage progression under transient-shock and vibration in both 95.5Sn4.0Ag0.5Cu and 63Sn37Pb ball-grid arrays has been presented. Component types examined include flex-substrate and rigid substrate ball-grid arrays. Dynamic measurements like acceleration, strain and resistance are measured and analyzed using highspeed data acquisition system capable of capturing in-situ strain, continuity and acceleration data in excess of 5 million samples per second. Ultra high-speed video at 150,000 fps per second has been used to capture the deformation kinematics. The concept of relative damage index has been used to both evaluate and predict damage progression during transient shock. The failure-envelope provides a fundamental basis for development of component integration guidelines to ensure survivability in shock and vibration environments at a user-specified confidence level. The approach is scalable to application at system-level. Explicit finite-element models have been developed for prediction of shock survivability based on the failure envelope. Mo- - del predictions have been correlated with experimental data for both leaded and leadfree ball-grid arrays
Keywords
ball grid arrays; circuit reliability; circuit testing; data acquisition; deformation; failure analysis; finite element analysis; impact testing; micromechanical devices; wavelet transforms; JEDEC drop test; JESD22-B111; MEMS packaging; board-level reliability testing; damage progression; damage proxies; deformation kinematics; electronic packaging; explicit finite-element models; failure-envelope approach; flex-substrate ball-grid arrays; highspeed data acquisition system; relative damage index; rigid substrate ball-grid arrays; shock survivability modeling; transient-shock; ultra high-speed video; vibration survivability modeling; wavelet transforms; Acceleration; Accelerometers; Electric shock; Electrical resistance measurement; Electronic equipment testing; Electronics packaging; Micromechanical devices; Product development; Strain measurement; Time factors;
fLanguage
English
Publisher
ieee
Conference_Titel
Electronic Components and Technology Conference, 2005. Proceedings. 55th
Conference_Location
Lake Buena Vista, FL
ISSN
0569-5503
Print_ISBN
0-7803-8907-7
Type
conf
DOI
10.1109/ECTC.2005.1441309
Filename
1441309
Link To Document