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- W3202052781 abstract "Given that the surface-area-to-volume ratio scales as the inverse of the characteristic system length scale, surface and interfacial forces typically become increasingly dominant over body forces at the small length scales associated with microfluidic systems. Whilst this can be practically advantageous if these forces can be exploited for improved device performance (e.g., enhanced heat and mass transport), surface effects such as capillary pressure, which scales inversely with the characteristic system dimension, as well as wall slip/shear and disjoining pressure, can also pose significant technical challenges for microfluidic operation. As such, proper consideration of surface and interfacial phenomena is required in the design of microfluidic devices. In this chapter, we first provide a brief discourse on the wetting behavior of fluids, in order to examine how they flow over surfaces and boundaries. Finally, we also consider the reverse case, in which the surface or the boundary, due to its wettability, induces fluid to flow, which is useful for describing passively driven transport in microfluidic systems, such as paper- and thread-based devices." @default.
- W3202052781 created "2021-10-11" @default.
- W3202052781 creator A5017582467 @default.
- W3202052781 date "2022-01-01" @default.
- W3202052781 modified "2023-09-28" @default.
- W3202052781 title "Fluid–substrate interactions" @default.
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- W3202052781 doi "https://doi.org/10.1016/b978-0-444-59432-7.00005-4" @default.
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