mixing effects
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Fuel ◽  
2021 ◽  
Vol 305 ◽  
pp. 121530
Author(s):  
Jun Chen ◽  
Weidong Fan ◽  
Guanyu Feng ◽  
Xin Wang ◽  
Songlin Liu

2021 ◽  
Vol 333 ◽  
pp. 125216
Author(s):  
Liwei Mao ◽  
To-Hung Tsui ◽  
Jingxin Zhang ◽  
Yanjun Dai ◽  
Yen Wah Tong
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Author(s):  
Talal Asif ◽  
Iqra Naeem ◽  
Zhao-Jun Bu ◽  
Azim Mallik ◽  
Jin-Ze Ma ◽  
...  
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Author(s):  
Luwei Yang ◽  
Maxim Nikurashin ◽  
Andrew McC. Hogg ◽  
Bernadette M. Sloyan

AbstractLee waves play an important role in transferring energy from the geostrophic eddy field to turbulent mixing in the Southern Ocean. As such, lee waves can impact the Southern Ocean circulation and modulate its response to changing climate through their regulation on the eddy field and turbulent mixing. The drag effect of lee waves on the eddy field and the mixing effect of lee waves on the tracer field have been studied separately to show their importance. However, it remains unclear how the drag and mixing effects act together to modify the Southern Ocean circulation. In this study, a lee wave parameterization that includes both lee wave drag and its associated lee-wave-driven mixing is developed and implemented in an eddy-resolving idealized model of the Southern Ocean to simulate and quantify the impacts of lee waves on the Southern Ocean circulation. The results show that lee waves enhance the baroclinic transport of the Antarctic Circumpolar Current (ACC) and strengthen the lower overturning circulation. The impact of lee waves on the large-scale circulation are explained by the control of lee wave drag on isopycnal slopes through their effect on eddies, and by the control of lee-wave-driven mixing on deep stratification and water mass transformation. The results also show that the drag and mixing effects are coupled such that they act to weaken one another. The implication is that the future parameterization of lee waves in global ocean and climate models should take both drag and mixing effects into consideration for a more accurate representation of their impact on the ocean circulation.


Micromachines ◽  
2021 ◽  
Vol 12 (7) ◽  
pp. 758
Author(s):  
Shaofei Shen ◽  
Xin Wang ◽  
Yanbing Niu

Inertial microfluidics enables fluid and particle manipulation for biomedical and clinical applications. Herein, we developed a simple semicircular microchannel with an ultra-low aspect ratio to interrogate the unique formations of the helical vortex and Dean vortex by introducing order micro-obstacles. The purposeful and powerful regulation of dimensional confinement in the microchannel achieved significantly improved fluid mixing effects and fluid and particle manipulation in a high-throughput, highly efficient and easy-to-use way. Together, the results offer insights into the geometry-induced multi-vortex mechanism, which may contribute to simple, passive, continuous operations for biochemical and clinical applications, such as the detection and isolation of circulating tumor cells for cancer diagnostics.


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