sheath flow
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Micromachines ◽  
2021 ◽  
Vol 12 (7) ◽  
pp. 839
Author(s):  
Peter E. Beshay ◽  
Ali M. Ibrahim ◽  
Stefanie S. Jeffrey ◽  
Roger T. Howe ◽  
Yasser H. Anis

In this paper we study the dynamics of single cells encapsulated in water-in-oil emulsions in a microchannel. The flow field of a microfluidic channel is coupled to the internal flow field of a droplet through viscous traction at the interface, resulting in a rotational flow field inside the droplet. An encapsulated single cell being subjected to this flow field responds by undergoing multiple orbits, spins, and deformations that depend on its physical properties. Monitoring the cell dynamics, using a high-speed camera, can lead to the development of new label-free methods for the detection of rare cells, based on their biomechanical properties. A sheath flow microchannel was proposed to strengthen the rotational flow field inside droplets flowing in Poiseuille flow conditions. A numerical model was developed to investigate the effect of various parameters on the rotational flow field inside a droplet. The multi-phase flow model required the tracking of the fluid–fluid interface, which deforms over time due to the applied shear stresses. Experiments confirmed the significant effect of the sheath flow rate on the cell dynamics, where the speed of cell orbiting was doubled. Doubling the cell speed can double the amount of extracted biomechanical information from the encapsulated cell, while it remains within the field of view of the camera used.



2021 ◽  
Vol 14 (6) ◽  
pp. 4507-4516
Author(s):  
Stavros Amanatidis​​​​​​​ ◽  
Yuanlong Huang ◽  
Buddhi Pushpawela ◽  
Benjamin C. Schulze ◽  
Christopher M. Kenseth ◽  
...  

Abstract. Ambient aerosol size distributions obtained with a compact scanning mobility analyzer, the “Spider” differential mobility analyzer (DMA), are compared to those obtained with a conventional mobility analyzer, with specific attention to the effect of mobility resolution on the measured size distribution parameters. The Spider is a 12 cm diameter radial differential mobility analyzer that spans the 10–500 nm size range with 30 s mobility scans. It achieves its compact size by operating at a nominal mobility resolution R=3 (sheath flow = 0.9 L min−1; aerosol flow = 0.3 L min−1) in place of the higher ratio of sheath flow to aerosol flow commonly used. The question addressed here is whether the lower resolution is sufficient to capture key characteristics of ambient aerosol size distributions. The Spider, operated at R=3 with 30 s up- and downscans, was co-located with a TSI 3081 long-column mobility analyzer, operated at R=10 with a 360 s sampling duty cycle. Ambient aerosol data were collected over 26 consecutive days of continuous operation, in Pasadena, CA. Over the 17–500 nm size range, the two instruments exhibit excellent correlation in the total particle number concentrations and geometric mean diameters, with regression slopes of 1.13 and 1.00, respectively. Our results suggest that particle sizing at a lower resolution than typically employed may be sufficient to obtain key properties of ambient size distributions, at least for these two moments of the size distribution. Moreover, it enables better counting statistics, as the wider transfer function for a given aerosol flow rate results in a higher counting rate.



2020 ◽  
Vol 9 (1) ◽  
pp. A0092-A0092
Author(s):  
Kenzo Hiraoka ◽  
Osamu Ariyada ◽  
Dilshadbek T. Usmanov ◽  
Lee C. Chen ◽  
Satoshi Ninomiya ◽  
...  


2020 ◽  
Vol 8 (8) ◽  
pp. 601
Author(s):  
Dingpeng Huang ◽  
Hangzhou Wang ◽  
Xiaoping Wang ◽  
Kan Guo ◽  
Zhuoli Yuan ◽  
...  

Focusing performance is a major concern for systems based on hydrodynamic focusing. In this study, the hydrodynamic focusing subsystem of a microscopic imaging system was analysed and modelled. The theoretical model was used to analyse the velocity and distribution range of sample particles in the focused sample flow in the micro-channel of the hydrodynamic focusing subsystem, when the velocities of the sample and sheath flows were varied. The results were used to optimise the coupling velocities of the sample and sheath flows for the microscopic imaging system, to keep working efficiency and image quality of the system simultaneously. An independent experiment was then conducted for verification, and the results agreed well with the theoretical investigation. The results of this study provide a general framework for adjusting the sample and sheath flow velocities to optimise the hydrodynamic focusing performance.



2020 ◽  
Vol 41 (15) ◽  
Author(s):  
Fabian Sauer ◽  
Constanze Sydow ◽  
Oliver Trapp
Keyword(s):  


2020 ◽  
Vol 88 ◽  
pp. 159-166
Author(s):  
Seongsu Kang ◽  
Bolam Kim ◽  
Se-Jun Yim ◽  
Jin-Oh Kim ◽  
Dong-Pyo Kim ◽  
...  


Micromachines ◽  
2020 ◽  
Vol 11 (6) ◽  
pp. 566 ◽  
Author(s):  
Jiayou Du ◽  
Long Li ◽  
Qiuyi Zhuo ◽  
Ruijin Wang ◽  
Zefei Zhu

The sizes of most prokaryotic cells are several microns. It is very difficult to separate cells with similar sizes. A sorter with a contraction–expansion microchannel and applied magnetic field is designed to sort microparticles with diameters of 3, 4 and 5 microns. To evaluate the sorting efficiency of the designed sorter, numerical simulations for calculating the distributions of microparticles with similar sizes were carried out for various magnetic fields, inlet velocities, sheath flow ratios and structural parameters. The numerical results indicate that micro-particles with diameters of 3, 4 and 5 microns can be sorted efficiently in such a sorter within appropriate parameters. Furthermore, it is shown that a bigger particle size and more powerful magnetic field can result in a greater lateral migration of microparticles. The sorting efficiency of microparticles promotes a lower inlet velocity and greater sheath flow ratios. A smaller contraction–expansion ratio can induce a greater space between particle-bands. Finally, the micro particle image velocity (micro-PIV) experiments were conducted to obtain the bandwidths and spaces between particle-bands. The comparisons between the numerical and experimental results show a good agreement and make the validity of the numerical results certain.



2020 ◽  
Vol 41 (15) ◽  
pp. 1280-1286
Author(s):  
Fabian Sauer ◽  
Constanze Sydow ◽  
Oliver Trapp
Keyword(s):  


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