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Sadib Fardin

Publications and source records attributed to Sadib Fardin.

2 recordsLinked to original sources

The Impact of Cooling Rate on the Tensile and Cyclic Stress-Strain Characteristics of Different Solder Alloys at Nanoscale

In recent years, lead-free solder alloys based on tin, silver, or copper have gained popularity over lead-based solder alloys due to their improved mechanical and electrical properties and their non-toxic nature. In our previous studies, we examined the stress-strain behavior of SAC305 under varying cooling rates. This study extends our investigation to various lead-free solder materials, including Sn, Sn-Ag, and SAC305, to compare their relative mechanical and cyclic properties. We employed molecular dynamics to model the atomistic behavior. Initially, the models were melted at a constant rate and then cooled at various rates, including 2.5 K/ps, 10 K/ps, 50 K/ps, and 100 K/ps. Additionally, exponential cooling was used to replicate real-world cooling scenarios.. We utilized a set of modified embedded atomic model (MEAM) interatomic potentials for the tensile test and cyclic loading. The tensile test has been conducted until fracture occurs at a constant strain rate. Furthermore, we investigated the cyclic loading behavior within a strain range of -10% to 10% for 10 cycles. The results indicated that cooling rates significantly influenced mechanical properties, with slower rates (2.5 K/ps and 10 K/ps) showing substantial differences, while the differences between higher rates (50 K/ps and 100 K/ps) were less pronounced. The ultimate strength, Young's modulus, modulus of resilience, and coefficient of thermal expansion exhibited a negative correlation with increasing cooling rates, while the modulus of toughness increased, indicating improved impact resistance. To assess energy dissipation during cyclic loading, we examined the hysteresis loop area and stress amplitude. After a certain number of cycles, the energy lost during each cycle reached a stable level.

cond-mat.mtrl-sci

Atomistic study on cooling rate induced nanoindentation properties of Additively Manufactured Inconel-718

Inconel-718's compatibility with additive manufacturing (AM) has made it a center of attention for researchers. This paper focuses on how cooling rates affect the hardness of AM Inconel-718. To study the AM process, monocrystalline and polycrystalline Inconel-718 layers were added to a pristine substrate and equilibrated at 2000 K before being cooled to 300 K using cooling rates ranging from 5 K/ps to 100 K/ps, as well as an exponential cooling rate. The layers were then subjected to atomistic nanoindentation simulation to analyze the nanomechanical response, including hardness, dislocation density, microstructure, and surface imprints, at different cooling rates. Load-displacement (P-h) curves were plotted for each cooling rate. The findings of this study provide crucial insights into the effect of cooling rate on the nanoindentation-based response of additively manufactured Inconel-718. These insights can aid in the design of high-performance components for various applications

cond-mat.mtrl-sci