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Xiaohua Wu

Researcher at National Research Council

Publications -  225
Citations -  9528

Xiaohua Wu is an academic researcher from National Research Council. The author has contributed to research in topics: Turbulence & Boundary layer. The author has an hindex of 48, co-authored 211 publications receiving 8361 citations. Previous affiliations of Xiaohua Wu include Defence Research and Development Canada & Center for Turbulence Research.

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Osborne Reynolds pipe flow: Direct simulation from laminar through gradual transition to fully developed turbulence.

TL;DR: The mystery attributed to the breakdown process of the Osborne Reynolds pipe transition can be partially resolved with a direct, spatially evolving simulation that carries weakly but finitely perturbed laminar inflow through gradual rather than abrupt transition arriving at the fully developed turbulent state.
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QTL mapping and epistatic interaction analysis in asparagus bean for several characterized and novel horticulturally important traits

TL;DR: This is the first QTL mapping report using an asparagus bean × asParagus bean intervarietal population and provides marker-trait associations for marker-assisted approaches to selection, and indicates common mechanisms they share among closely related legume species.
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Bright Gradient-Alloyed CdSexS1–x Quantum Dots Exhibiting Cyan-Blue Emission

TL;DR: In this article, high-emissive alloyed CdSeS quantum dots (QDs) with a gradient structure exhibiting photoluminescence (PL) peaking at 490 nm and an absolute quantum yield (QY) of 79% (in toluene with excitation wavelength of 430 nm) were designed and synthesized.
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Highly-photoluminescent ZnSe nanocrystals via a non-injection-based approach with precursor reactivity elevated by a secondary phosphine.

TL;DR: Highly-photoluminescent ZnSe quantum dots with 72% quantum yield and 22 nm full width at half maximum were synthesized with more reactive precursors via a non-injection approach with high synthetic reproducibility and (31)P NMR provided insight into the formation mechanisms of Zn Se monomers.