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Statements

Subject Item
n2:RIV%2F00216305%3A26210%2F09%3APU83601%21RIV10-GA0-26210___
rdf:type
skos:Concept n14:Vysledek
dcterms:description
Fibrous materials, such as MMVFs (man-made vitreous fibers), are widely used in thermal and electrical insulation, weatherproofing, and filtration media. These materials can be released as airborne respirable particles during their production and use. Airborne asbestos and other fibers can cause lung diseases including asbestosis, fibrosis and lung cancer. Thus mass production and wide use of these materials has raised concern over the potential health hazard to production employees associated with inhalable aerosolized fibers. A narrow length distribution of fibers was generated using dielectrophoretic classification. Dielectrophoresis is the motion of neutral matter in a nonuniform electric field due to an induced dipole moment. It is sensitive to the conductivity of the matter in the field. A fiber classifier was used to study the influence of atmosphere humidity on the behavior of glass fibers. Physical models of human nasal passages were developed from MRI files by using Gambit and AutoDesk. Fibrous materials, such as MMVFs (man-made vitreous fibers), are widely used in thermal and electrical insulation, weatherproofing, and filtration media. These materials can be released as airborne respirable particles during their production and use. Airborne asbestos and other fibers can cause lung diseases including asbestosis, fibrosis and lung cancer. Thus mass production and wide use of these materials has raised concern over the potential health hazard to production employees associated with inhalable aerosolized fibers. A narrow length distribution of fibers was generated using dielectrophoretic classification. Dielectrophoresis is the motion of neutral matter in a nonuniform electric field due to an induced dipole moment. It is sensitive to the conductivity of the matter in the field. A fiber classifier was used to study the influence of atmosphere humidity on the behavior of glass fibers. Physical models of human nasal passages were developed from MRI files by using Gambit and AutoDesk.
dcterms:title
Fiber Deposition in Realistic Human Nasal Airway Models Fiber Deposition in Realistic Human Nasal Airway Models
skos:prefLabel
Fiber Deposition in Realistic Human Nasal Airway Models Fiber Deposition in Realistic Human Nasal Airway Models
skos:notation
RIV/00216305:26210/09:PU83601!RIV10-GA0-26210___
n4:aktivita
n17:P
n4:aktivity
P(GA101/07/0862)
n4:dodaniDat
n13:2010
n4:domaciTvurceVysledku
n6:6476988
n4:druhVysledku
n12:A
n4:duvernostUdaju
n11:S
n4:entitaPredkladatele
n9:predkladatel
n4:idSjednocenehoVysledku
314891
n4:idVysledku
RIV/00216305:26210/09:PU83601
n4:jazykVysledku
n10:eng
n4:klicovaSlova
Fiber Deposition, Realistic Model, Human Nasal Airway
n4:klicoveSlovo
n8:Fiber%20Deposition n8:Human%20Nasal%20Airway n8:Realistic%20Model
n4:kodPristupu
n7:L
n4:kontrolniKodProRIV
[3408393530EA]
n4:mistoVydani
Brno
n4:nosic
neuvedeno
n4:objednatelVyzkumneZpravy
Neuveden
n4:obor
n18:BK
n4:pocetDomacichTvurcuVysledku
1
n4:pocetTvurcuVysledku
2
n4:projekt
n16:GA101%2F07%2F0862
n4:rokUplatneniVysledku
n13:2009
n4:tvurceVysledku
Hopke, Philip K. Jedelský, Jan
n4:verzeVyzkumneZpravy
1
n15:organizacniJednotka
26210