fem tool comsol multiphysics 4.3a (COMSOL Inc)
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Fem Tool Comsol Multiphysics 4.3a, supplied by COMSOL Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/fem+tool+comsol+multiphysics+4%2E3a/fem+simulations+comsol+multiphysics+version+5+5/pmc07997331-36-68-70
Average 90 stars, based on 1 article reviews
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1) Product Images from "Design Methodology of Passive In-Line Relays for Molecular Communication in Flow-Induced Microfluidic Channel"
Article Title: Design Methodology of Passive In-Line Relays for Molecular Communication in Flow-Induced Microfluidic Channel
Journal: Biosensors
doi: 10.3390/bios11030065
Figure Legend Snippet: Geometry of ( a ) Straight Channel, ( b ) Inward turn (created using FEM software COMSOL Multiphysics 4.3a).
Techniques Used: Software
Related Articles
Concentration Assay:Article Title: Design Methodology of Passive In-Line Relays for Molecular Communication in Flow-Induced Microfluidic Channel Article Snippet: We analytically show that degradation suffered by a concentration signal in the microfluidic channel is equivalent to the impulse response of the turning microfluidic channel. (2) We model the Wiener filter to design the in-line passive relay for recovering the degraded signal, it is worth noting that this relay does not require any external energy source to restore the signal. (3) Finally, we simulate in-line passive relay, using Article Title: Design Methodology of Passive In-Line Relays for Molecular Communication in Flow-Induced Microfluidic Channel Article Snippet: Next, we present the simulated results obtained using the Article Title: Design Methodology of Passive In-Line Relays for Molecular Communication in Flow-Induced Microfluidic Channel Article Snippet: In order to simulate the effect of a small inward turn placed in the midway of a straight channel, we use commercially available Software:Article Title: Design Methodology of Passive In-Line Relays for Molecular Communication in Flow-Induced Microfluidic Channel Article Snippet: We analytically show that degradation suffered by a concentration signal in the microfluidic channel is equivalent to the impulse response of the turning microfluidic channel. (2) We model the Wiener filter to design the in-line passive relay for recovering the degraded signal, it is worth noting that this relay does not require any external energy source to restore the signal. (3) Finally, we simulate in-line passive relay, using Article Title: Design Methodology of Passive In-Line Relays for Molecular Communication in Flow-Induced Microfluidic Channel Article Snippet: Next, we present the simulated results obtained using the Article Title: Design Methodology of Passive In-Line Relays for Molecular Communication in Flow-Induced Microfluidic Channel Article Snippet: In order to simulate the effect of a small inward turn placed in the midway of a straight channel, we use commercially available |