Ibaad Gandikota1, Aniket Bharamgonda1, Arafat Hasnain2, Alireza Khaligh2, Abhijit Dasgupta1, and Patrick McCluskey1
1CALCE, University of Maryland, College Park, MD 20742, USA
2Maryland Power Electronics Laboratory, Department of Electrical and Computer Engineering, Institute for Systems Research, University of Maryland, College Park, MD, 20742
For more information about this article and related research, please contact Prof. Patrick McCluskey.
Abstract:
A single-stage dual-active-bridge DC-AC microinverter prototype with Gallium Nitride (GaN) primary switching devices was assembled and subjected to environmental reliability testing. Testing consisted of an unpowered temperature cycling with an amplitude ranging from -40°C to 105°C. Electrical performance characterization was performed during the accelerated testing at regular intervals until a failure was observed. Non-destructive failure analysis was performed on the board to determine the failure modes and mechanisms, and it revealed that the failure occurred due to solder bump delamination at the gate, source, and drain pads. To better understand the failure mechanism and predict the fatigue life of the assembled GaNFET, thermo-mechanical simulation was performed using finite element analysis (FEA) , where the sub-modeling feature was used to track the location of the GaN device on the board, and the average strain energy accumulation at the critical solder joint for each set of temperature cycles was simulated. Garofalo creep model was used to capture the creep deformation during thermal cycling, and Syed's Energy-based fatigue model for SAC305 solder was used to determine the life of the land grid array (LGA) package. The model constants were calibrated using the experimental failure time. This study was then extended to examine the effects of encapsulation materials on the life of the primary devices. The results reveal that encapsulation significantly increased the fatigue life of the GaNFET for all encapsulation materials.
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