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Micro scale pumps that are driven by the thermal transpiration effect are commonly known as Knudsen pumps.
Increasing the Forchheimer parameter reduce velocity profiles, this is caused by the transpiration effect taking place at the surface of the circle.
In this paper, a DSMC-SPH coupled multiscale approach is proposed on the study of the thermal transpiration effect on hydrogen gas multiscale flow behaviors.
And it also successfully put transpiration effect and friction into consideration, which give out a clearer view of the forces inside heat pipe for further research.
Although most researches on heat pipe focus on capillary effect against gravity, transpiration effect is still very important as dragging force occurs when water evaporates.
The improved control performance is obtained due to event-based approach and the inclusion of information about the plant dynamic response for water supply and transpiration effect.
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However, the transpiration effects are dominant and exhibit the cross-flow behavior as well as the dual behavior.
However, so far little literature has discussed the thermal transpiration effects on the flow behaviors under normal boundary conditions.
From Fig. 2a it is clear that, for higher values of θ r, the velocity profile increases near the walls where the transpiration effects are dominant when η ≤ 0.44, η ≤ 0.46, andη ≤ 0.49.
The correction for transpiration effects is applied to our previous theoretical analysis to predict the time-to-complete-dissolution (TCD) of a spherical particle in a diffusion-controlled environment.
The small alternating fluctuations with periods in the 12 hour range as reported by other groups [5], [12], [13] may still be related to transpiration effects but are unlikely to be due to a streaming potential related mechanism because of the exactly negative correlation they exhibit in some of these reports [12], [13].
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