Results 241 to 250 of about 3,923,864 (337)
ABSTRACT The objective of the current research is to characterize the thermal performance in micropolar fluid flows on a vertically elongated porous sheet in the presence of buoyancy forces. Thus, the motivation of this study is to improve the understanding of buoyancy‐driven micropolar fluid flows through porous media, which are relevant to advanced ...
T. Venu, MD. Shamshuddin, S. O. Salawu
wiley +1 more source
Beyond Conventional Cooling: Advanced Micro/Nanostructures for Managing Extreme Heat Flux. [PDF]
Zhang Y +7 more
europepmc +1 more source
ABSTRACT The hybrid nanofluid integrated with micropolar fluid shows growing interest due to the enhanced thermal performance in microscale devices. These improved properties are due to their greater thermal conductivity and rotational effects. The proposed study assesses the significance of velocity slip on the flow characteristic of micropolar ...
P. P. Nayak +3 more
wiley +1 more source
Convective dynamics in mantle of tidally-locked exoplanets. [PDF]
Noto D +4 more
europepmc +1 more source
Physics of multiscale convection in Earth's mantle: Evolution of sublithospheric convection
J. Korenaga, T. Jordan
semanticscholar +1 more source
ABSTRACT This study analyzes the influence of Arrhenius activation energy on the chemically reactive, magnetohydrodynamic Casson hybrid nanofluid flow past an exponentially stretching surface embedded in a Darcy–Forchheimer porous medium with a non‐uniform heat source/sink.
Md. Sailanebaba +2 more
wiley +1 more source
Collective Dynamics of Urease-Based Nanomotors in a Chemical Gradient. [PDF]
Lin J +6 more
europepmc +1 more source
Degree-1 convection in the Martian mantle and the origin of the hemispheric dichotomy
J. Roberts, S. Zhong
semanticscholar +1 more source
ABSTRACT Proton exchange membrane fuel cells (PEMFC) are regarded as the best clean energy conversion technology because of their smaller number of emissions and higher efficiency. This numerical investigation used two different flow channel designs—the serpentine flow field (SFF) and the lung serpentine flow field (LSFF)—with active areas of 5 by 5 cm.
Muralikrishna Boni +3 more
wiley +1 more source

