2020
DOI: 10.1016/j.amc.2019.124682
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Implementation of compressible porous–fluid coupling method in an aerodynamics and aeroacoustics code part I: Laminar flow

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Cited by 12 publications
(2 citation statements)
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“…The flow mode of the electrolyte was simulated with a new model ( Figure 4a) and compared with the simulation of Sun's laminar flow model (Figure 4b) [8][9][10][11]. As shown in Figure 4a, the radial velocity distribution gradually decreases from the inlet position, tends to zero near 90 µm, and maintains a state where the radial velocity tends to zero at 90 µm to 370 µm.…”
Section: Evidence Of Turbulence -Laminar Flow Phenomena and Multichanmentioning
confidence: 99%
See 1 more Smart Citation
“…The flow mode of the electrolyte was simulated with a new model ( Figure 4a) and compared with the simulation of Sun's laminar flow model (Figure 4b) [8][9][10][11]. As shown in Figure 4a, the radial velocity distribution gradually decreases from the inlet position, tends to zero near 90 µm, and maintains a state where the radial velocity tends to zero at 90 µm to 370 µm.…”
Section: Evidence Of Turbulence -Laminar Flow Phenomena and Multichanmentioning
confidence: 99%
“…In previous studies, a laminar flow model was established to study the flow signal of a single-channel electrolyte, and an ideal output signal was used for simulation; however, the impact of the MET multichannel coupling effect in practical applications was not considered [10]. The MET multichannel interaction causes irregular movements in some electrolytes at the inlet and outlet of the channel, which forms a turbulent area with unstable flow field distribution [11].…”
Section: Introductionmentioning
confidence: 99%