Zobrazeno 1 - 5
of 5
pro vyhledávání: '"Sebastian Blahout"'
Autor:
Simon Raoul Reinecke, Zihao Zhang, Sebastian Blahout, Edgar Radecki-Mundinger, Jeanette Hussong, Harald Kruggel-Emden
Publikováno v:
Powders, Vol 3, Iss 2, Pp 305-323 (2024)
The fractionation in microchannels is a promising approach for the delivery of microparticles in narrow property distributions. The underlying mechanisms of the channels are however often not completely understood and are therefore subject to current
Externí odkaz:
https://doaj.org/article/7daa7013c1aa4edc9e9b6c06787506b3
Autor:
Jonathan Kottmeier, Maike Wullenweber, Sebastian Blahout, Jeanette Hussong, Ingo Kampen, Arno Kwade, Andreas Dietzel
Publikováno v:
Micromachines, Vol 10, Iss 11, p 768 (2019)
A pressure resistant and optically accessible deterministic lateral displacement (DLD) device was designed and microfabricated from silicon and glass for high-throughput fractionation of particles between 3.0 and 7.0 µm comprising array segments of
Externí odkaz:
https://doaj.org/article/9bd34006ee45488bae706799178d1493
Autor:
Jeanette Hussong, Arno Kwade, Simon R. Reinecke, Harald Kruggel-Emden, B. Kravets, T. Rosemann, Sebastian Blahout, M. Wullenweber
Publikováno v:
Powder Technology. 385:418-433
Fractionation through Deterministic Lateral Displacement (DLD) is a promising microfluidic method, able to address several particle characteristics. The influence of particle density on the fractionation however appears to be negligible at low Stokes
Optical investigations of the dynamics of concentrated suspensions, such as in blood flows (Fitzgibbon et al. in Biophys J 108(10):2601–2608, 2015. http://doi/org/10.1016/j.bpj.2015.04.013) or slurry flows (Li et al. in Ocean Eng 163(October 2017):
Externí odkaz:
https://explore.openaire.eu/search/publication?articleId=doi_dedup___::6e2dd7f25b89aa52ba79ba4bcfe65941
Autor:
Sebastian Blahout, Jeanette Hussong, Simon R. Reinecke, Harald Kruggel-Emden, Hamid Tabaei Kazerooni
Publikováno v:
Microfluidics and Nanofluidics. 24
Suitable methods to realize a multi-dimensional fractionation of microparticles smaller than $${10}\,\upmu \mathrm{{m}}$$10μm diameter are still rare. In the present study, size and density fractionation is investigated for $$3.55\,\upmu \mathrm{{m}