Group14 Technology
Elaheh (Ella) Ebrahimnia has a diverse work experience in the fields of computational fluid dynamics (CFD) engineering and research. Elaheh (Ella) is currently working as a Senior CFD Engineer at Group14 Technologies since 2023. Prior to this, they spent several years at C-FER Technologies where they worked as a Research Engineer, P.Eng. Elaheh (Ella)'srole involved collaborating with clients in various industries such as oil & gas, hydrogen, and geothermal, to develop customized flow models and address engineering challenges. Ella also has experience in academia, as they worked as a Research and Teaching Assistant at the University of Manitoba from 2011 to 2014. In this role, they focused on developing methodologies for assessing CFD tools in analyzing pipe-flow thermal-hydraulics and heat transfer characteristics, conducted experimental studies, and tutored and directed lab activities for fluid mechanics and HVAC courses.
Elaheh (Ella) Ebrahimnia obtained a Bachelor of Science (B.Sc.) degree in Mechanical Engineering from Ferdowsi University of Mashhad, where they studied from 2007 to 2011. Elaheh (Ella) then pursued a Master of Science (M.Sc.) degree in Mechanical Engineering at the University of Manitoba, from 2011 to 2014. Additionally, Elaheh (Ella) Ebrahimnia has obtained certifications in Abaqus from Dassault Systèmes, OpenFoam from The OpenFOAM Foundation, P.Eng. from The Association of Professional Engineers and Geoscientists of Alberta (APEGA), and has attended short courses on Multiphase Flows from ETH Zürich.
Group14 Technology
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The future is silicon. Anodes must improve and silicon has the most potential. Nano-scale silicon provides the best combination of capacity and power, but still not sufficient cycle life and nano-scale production approaches remain expensive. Group14 has applied deep materials research experience to develop a new, low-cost approach to nano-scale silicon production. Our nano-scale silicon has high purity, high capacity, good power, and good cycle life. We use its unique high performance carbon engineering abilities to create cohesive silicon-carbon nanocomposites that dramatically outperform traditional carbon coated silicons.