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Influence of thermomechanical loads on the energetics of precipitation in magnesium aluminum alloys published in Acta Materialia

Submitted by SwarnavaGhosh on

Dear Colleagues,

Here is the link to a recently published paper in Acta Materialia titled, "Influence of thermomechanical loads on the energetics of precipitation in magnesium aluminum alloys".

Authors: Swarnava Ghosh and Kaushik Bhattacharya

Link: https://doi.org/10.1016/j.actamat.2020.03.007

Sincerely,

Swarnava

 

Nanoindentation processes in full view

Submitted by Daniel Kiener on

The microelectronics revolution is one of the most influential drivers of current industrial developments. To probe the mechanical properties of ever shrinking materials and components, nanoindentation has come to be an omnipresent and indispensable method. In a recent combined experimental and computational approach, an international team of scientists was for the first time able to resolve the dynamic atomistic processes taking place at the elastic-plastic transition during nanoindentation.

Environmentally induced exceptional points in elastodynamics

Submitted by Ramathasan The… on

We study the nature of an environment-induced exceptional point in a non-Hermitian pair of coupled mechanical oscillators. The mechanical oscillators are a pair of pillars carved out of a single isotropic elastodynamic medium made of aluminum and consist of carefully controlled differential losses. The interoscillator coupling originates exclusively from background modes associated with the “environment,” that portion of the structure which, if perfectly rigid, would support the oscillators without coupling.

Independent control of dynamic material properties by exploiting structural hierarchy and intrinsic structural gradients

Submitted by Ramathasan The… on

Achieving high damping and stiffness is challenging in common materials because of their inter-dependent scaling. Controlling extreme mechanical waves requires synergistically enhanced damping and stiffness. We demonstrate superior damping and stiffness in vertically aligned carbon nanotube (VACNT) foams that are also independently controllable by exploiting their synthesis-tailored structural hierarchy and structural gradients. They exhibit frequency- and amplitude-dependent responses with dramatically tunable dynamic stiffness while maintaining constant damping.

Superior Energy Dissipation by Ultrathin Semicrystalline Polymer Films Under Supersonic Microprojectile Impacts

Submitted by Ramathasan The… on

Distinct deformation mechanisms that emerge in nanoscale enable the nanostructured materials to exhibit outstanding specific mechanical properties. Here, we present superior microstructure- and strain-rate-dependent specific penetration energy (up to ∼3.8 MJ/kg) in semicrystalline poly(vinylidene fluoride-co-trifluoroethylene) (P(VDF-TrFE)) thin films subjected to high-velocity (100 m/s to 1 km/s) microprojectile (diameter: 9.2 μm) impacts.

EML Webinar by Prof. Katia Bertoldi on May 13, 2020

Submitted by Teng Li on

 

EML Webinar on May 13, 2020 will be given by Prof. Katia Bertoldi at Harvard University via Zoom meeting. 

Title: Multistable structures - from energy trapping to morphing

Time: 7 am California, 10 am Boston, 3 pm London, 10 pm Beijing on May 13, 2020

Zoom Link: https://harvard.zoom.us/j/271079684 

Zoom ID: 271 079 684

A singularity free approach for Kirchhoff rods having uniformly distributed electrostatic charge

Submitted by Ajeet Kumar on

We present a singularity free formulation and its efficient numerical implementation for the spatial deformation of Kirchhoff rods having uniformly distributed electrostatic charge. Due to the presence of continuously distributed charge, the governing equations of the Kirchhoff rod become a system of integro-differential equations which is singular at every arc-length. We show that this singularity is of removable type which, ones removed, makes the system well defined everywhere. No cutoff length or mollifier is used to remove this singularity.