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Biomechanics and Modeling in Mechanobiology|January 27, 2016
Analysis of mechanical parameters on the thromboembolism using a patient-specific computational modelFarhan Khodaee, Bahman Vahidi, Nasser Fatouraee
Biomechanics and Modeling in Mechanobiology|May 20, 2016
Mechanical roles of apical constriction, cell elongation, and cell migration during neural tube formation in XenopusYasuhiro Inoue, Makoto Suzuki, Tadashi Watanabe, et al.
Biomechanics and Modeling in Mechanobiology|March 18, 2016
Tissue growth constrained by extracellular matrix drives invagination during optic cup morphogenesisAlina Oltean, Jie Huang, David C Beebe, et al.
Biomechanics and Modeling in Mechanobiology|April 16, 2016
Numerical simulation of a single cell passing through a narrow slitL L Xiao, Y Liu, S Chen, et al.
Biomechanics and Modeling in Mechanobiology|June 4, 2015
Contraction dynamics and function of the muscle-tendon complex depend on the muscle fibre-tendon length ratio: a simulation studyFalk Mörl, Tobias Siebert, Daniel Häufle
Biomechanics and Modeling in Mechanobiology|February 11, 2025
Bridging biomechanics with neuropathological and neuroimaging insights for mTBI understanding through multiscale and multiphysics computational modelingZhibo Du, Jiarui Zhang, Xinghao Wang, et al.
Biomechanics and Modeling in Mechanobiology|February 23, 2025
Microstructural remodeling under single fiber tensional homeostasis recreates distinctive ex vivo mechanical behavior of arteriesRuturaj M Badal, Ryan R Mahutga, Patrick W Alford, et al.
Biomechanics and Modeling in Mechanobiology|January 19, 2025
A multi-modal computational fluid dynamics model of left atrial fibrillation haemodynamics validated with 4D flow MRILouis Parker, Emilie Bollache, Shannon Soulez, et al.
Biomechanics and Modeling in Mechanobiology|January 6, 2025
Fluid-structure-growth modeling in ascending aortic aneurysm: capability to reproduce a patient caseKexin Yan, Wenfeng Ye, Antonio Martínez, et al.
Biomechanics and Modeling in Mechanobiology|November 25, 2024
Biomechanical modelling infers that collagen content within peripheral nerves is a greater indicator of axial Young's modulus than structureEleanor A Doman, Nicholas C Ovenden, James B Phillips, et al.
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