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(a) Deposition efficiency ( F ) with respect to superficial velocity ( U f ) for lattice columns with four different lattice unit cell geometries. (b) F with respect to interstitial velocity ( U i ) for lattice columns with four different lattice unit cell geometries. Error bars represent mean ± one standard deviation of the deposition efficiency ( n = 3). Aerosol particles used in this study are <t>monodisperse</t> <t>polystyrene</t> <t>latex</t> <t>particles</t> <t>(PSL)</t> with an aerodynamic diameter ( d ae ) of 1 μm. (c) Flow direction relative to unit cell orientations.
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(a) Deposition efficiency ( F ) with respect to superficial velocity ( U f ) for lattice columns with four different lattice unit cell geometries. (b) F with respect to interstitial velocity ( U i ) for lattice columns with four different lattice unit cell geometries. Error bars represent mean ± one standard deviation of the deposition efficiency ( n = 3). Aerosol particles used in this study are <t>monodisperse</t> <t>polystyrene</t> <t>latex</t> <t>particles</t> <t>(PSL)</t> with an aerodynamic diameter ( d ae ) of 1 μm. (c) Flow direction relative to unit cell orientations.
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(a) Deposition efficiency ( F ) with respect to superficial velocity ( U f ) for lattice columns with four different lattice unit cell geometries. (b) F with respect to interstitial velocity ( U i ) for lattice columns with four different lattice unit cell geometries. Error bars represent mean ± one standard deviation of the deposition efficiency ( n = 3). Aerosol particles used in this study are <t>monodisperse</t> <t>polystyrene</t> <t>latex</t> <t>particles</t> <t>(PSL)</t> with an aerodynamic diameter ( d ae ) of 1 μm. (c) Flow direction relative to unit cell orientations.
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Malvern Panalytical polystyrene latex particles
(a) Deposition efficiency ( F ) with respect to superficial velocity ( U f ) for lattice columns with four different lattice unit cell geometries. (b) F with respect to interstitial velocity ( U i ) for lattice columns with four different lattice unit cell geometries. Error bars represent mean ± one standard deviation of the deposition efficiency ( n = 3). Aerosol particles used in this study are <t>monodisperse</t> <t>polystyrene</t> <t>latex</t> <t>particles</t> <t>(PSL)</t> with an aerodynamic diameter ( d ae ) of 1 μm. (c) Flow direction relative to unit cell orientations.
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(a) Deposition efficiency ( F ) with respect to superficial velocity ( U f ) for lattice columns with four different lattice unit cell geometries. (b) F with respect to interstitial velocity ( U i ) for lattice columns with four different lattice unit cell geometries. Error bars represent mean ± one standard deviation of the deposition efficiency ( n = 3). Aerosol particles used in this study are <t>monodisperse</t> <t>polystyrene</t> <t>latex</t> <t>particles</t> <t>(PSL)</t> with an aerodynamic diameter ( d ae ) of 1 μm. (c) Flow direction relative to unit cell orientations.
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Polysciences inc carboxylated polystyrene latex microbeads (ps particles, 6 m diameter)
(a) Deposition efficiency ( F ) with respect to superficial velocity ( U f ) for lattice columns with four different lattice unit cell geometries. (b) F with respect to interstitial velocity ( U i ) for lattice columns with four different lattice unit cell geometries. Error bars represent mean ± one standard deviation of the deposition efficiency ( n = 3). Aerosol particles used in this study are <t>monodisperse</t> <t>polystyrene</t> <t>latex</t> <t>particles</t> <t>(PSL)</t> with an aerodynamic diameter ( d ae ) of 1 μm. (c) Flow direction relative to unit cell orientations.
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(a) Deposition efficiency ( F ) with respect to superficial velocity ( U f ) for lattice columns with four different lattice unit cell geometries. (b) F with respect to interstitial velocity ( U i ) for lattice columns with four different lattice unit cell geometries. Error bars represent mean ± one standard deviation of the deposition efficiency ( n = 3). Aerosol particles used in this study are <t>monodisperse</t> <t>polystyrene</t> <t>latex</t> <t>particles</t> <t>(PSL)</t> with an aerodynamic diameter ( d ae ) of 1 μm. (c) Flow direction relative to unit cell orientations.
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(a) Deposition efficiency ( F ) with respect to superficial velocity ( U f ) for lattice columns with four different lattice unit cell geometries. (b) F with respect to interstitial velocity ( U i ) for lattice columns with four different lattice unit cell geometries. Error bars represent mean ± one standard deviation of the deposition efficiency ( n = 3). Aerosol particles used in this study are <t>monodisperse</t> <t>polystyrene</t> <t>latex</t> <t>particles</t> <t>(PSL)</t> with an aerodynamic diameter ( d ae ) of 1 μm. (c) Flow direction relative to unit cell orientations.
Polystyrene Latex Microsphere, supplied by Malvern Panalytical, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Malvern Panalytical polystyrene latex microspheres
(a) Deposition efficiency ( F ) with respect to superficial velocity ( U f ) for lattice columns with four different lattice unit cell geometries. (b) F with respect to interstitial velocity ( U i ) for lattice columns with four different lattice unit cell geometries. Error bars represent mean ± one standard deviation of the deposition efficiency ( n = 3). Aerosol particles used in this study are <t>monodisperse</t> <t>polystyrene</t> <t>latex</t> <t>particles</t> <t>(PSL)</t> with an aerodynamic diameter ( d ae ) of 1 μm. (c) Flow direction relative to unit cell orientations.
Polystyrene Latex Microspheres, supplied by Malvern Panalytical, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Malvern Panalytical polystyrene latex beads as material
(a) Deposition efficiency ( F ) with respect to superficial velocity ( U f ) for lattice columns with four different lattice unit cell geometries. (b) F with respect to interstitial velocity ( U i ) for lattice columns with four different lattice unit cell geometries. Error bars represent mean ± one standard deviation of the deposition efficiency ( n = 3). Aerosol particles used in this study are <t>monodisperse</t> <t>polystyrene</t> <t>latex</t> <t>particles</t> <t>(PSL)</t> with an aerodynamic diameter ( d ae ) of 1 μm. (c) Flow direction relative to unit cell orientations.
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(a) Deposition efficiency ( F ) with respect to superficial velocity ( U f ) for lattice columns with four different lattice unit cell geometries. (b) F with respect to interstitial velocity ( U i ) for lattice columns with four different lattice unit cell geometries. Error bars represent mean ± one standard deviation of the deposition efficiency ( n = 3). Aerosol particles used in this study are monodisperse polystyrene latex particles (PSL) with an aerodynamic diameter ( d ae ) of 1 μm. (c) Flow direction relative to unit cell orientations.

Journal: ACS Applied Engineering Materials

Article Title: Design and Evaluation of 3D-Printed Lattice Structures as High Flow Rate Aerosol Filters

doi: 10.1021/acsaenm.4c00562

Figure Lengend Snippet: (a) Deposition efficiency ( F ) with respect to superficial velocity ( U f ) for lattice columns with four different lattice unit cell geometries. (b) F with respect to interstitial velocity ( U i ) for lattice columns with four different lattice unit cell geometries. Error bars represent mean ± one standard deviation of the deposition efficiency ( n = 3). Aerosol particles used in this study are monodisperse polystyrene latex particles (PSL) with an aerodynamic diameter ( d ae ) of 1 μm. (c) Flow direction relative to unit cell orientations.

Article Snippet: To generate aerosol particles of controlled sizes, we suspended monodisperse polystyrene latex sphere (PSL) microbeads (Polyscience Polybeads Microspheres) of five different sizes, including 1.06, 2.07, 3.1, 4.78, and 5.93 μm, in methanol and aerosols were generated with a Collison jet nebulizer (CJN).

Techniques: Standard Deviation, Aerosol