Eric K. W. Poon
University of Melbourne
48 Papers
143 Citations
Eric K. W. Poon is an academic researcher from University of Melbourne. The author has contributed to research in topics: Medicine & Internal medicine. The author has an hindex of 12, co-authored 33 publications. Previous affiliations of Eric K. W. Poon include Institute of High Performance Computing Singapore.
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Papers
Expert recommendations on the assessment of wall shear stress in human coronary arteries: existing methodologies, technical considerations, and clinical applications
Frank J. H. Gijsen,Yuki Katagiri,Peter Barlis,Peter Barlis,Christos V. Bourantas,Christos V. Bourantas,Carlos Collet,Umit Coskun,Joost Daemen,Jouke Dijkstra,Elazer R. Edelman,Elazer R. Edelman,Paul C. Evans,Kim Van der Heiden,Rod Hose,Rod Hose,Bon Kwon Koo,Bon Kwon Koo,Rob Krams,Alison L. Marsden,Francesco Migliavacca,Yoshinobu Onuma,Andrew Ooi,Eric K. W. Poon,Habib Samady,Peter Stone,Kuniaki Takahashi,Dalin Tang,Vikas Thondapu,Vikas Thondapu,Erhan Tenekecioglu,Lucas H. Timmins,Lucas H. Timmins,Ryo Torii,Jolanda J. Wentzel,Patrick W. Serruys,Patrick W. Serruys,Patrick W. Serruys +37 more
TL;DR: In this paper, the authors proposed a method to solve the problem of the problem: this paper ] of "uniformity" of the distribution of data points in the data set.
High spatial endothelial shear stress gradient independently predicts site of acute coronary plaque rupture and erosion.
Vikas Thondapu,Vikas Thondapu,Chris Mamon,Eric K. W. Poon,Osamu Kurihara,Hyung Oh Kim,Michele Russo,Makoto Araki,Hiroki Shinohara,Erika Yamamoto,Jouke Dijkstra,Mark Tacey,Mark Tacey,Hang Lee,Andrew Ooi,Peter Barlis,Ik-Kyung Jang,Ik-Kyung Jang +17 more
TL;DR: It is demonstrated that high endothelial shear stress gradient is independently associated with site of both rupture and erosion, and is significantly higher in rupture than high oscillatory shear index.
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Laminar flow structures from a rotating sphere: Effect of rotating axis angle
TL;DR: In this article, the Fourier-Chebyshev spectral collocation method is used to compute the flow past a steadily rotating sphere subjected to a uniform cross flow, and the effect of varying the rotation axis angle, α, on the laminar flow structures and time-averaged hydrodynamic forces is investigated over a range of non-dimensional rotation rates, Ω∗.
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Endothelial shear stress 5 years after implantation of a coronary bioresorbable scaffold.
Vikas Thondapu,Erhan Tenekecioglu,Eric K. W. Poon,Carlos Collet,Ryo Torii,Christos V. Bourantas,Christos V. Bourantas,Cheng Chin,Yohei Sotomi,Hans Jonker,Jouke Dijkstra,Eve Revalor,Frank J. H. Gijsen,Yoshinobu Onuma,Andrew Ooi,Peter Barlis,Patrick W. Serruys,Patrick W. Serruys +17 more
TL;DR: Immediately after scaffold implantation, coronary arteries demonstrate an alternans of extremely low and high ESS values and localized areas of high blood viscosity, which may trigger fibrin deposition and thrombosis.
Flow past a transversely rotating sphere at Reynolds numbers above the laminar regime
TL;DR: In this paper, the effect of rotation rate on the flow is studied by increasing the dimensionless rotation rate from 0 to 1.20, where Ω∗ is the maximum sphere surface velocity normalised by the free stream velocity.
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