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During the suction phase the saddle point shows a different behavior in the two configurations.
The measured air pressure in the vane segment when the compressor performed suction phase increased when the rotational speed increased up to 800 rpm.
Each suction phase, lasting 2 seconds, is followed by a relaxation phase of the same duration.
During the suction phase, the skin deformation measures, first, the elastic resistance of the skin and then the viscous component, which, taken together, represent firmness.
At the beginning of syringe resuscitation, aortic and vena caval blood was drained slightly during the suction phase and the blood moved to in both directions during the push phase; however, the dye transferred gradually from the vena cavae to arterial side while showing a concomitant to-and-fro movement of its own with the repeated piston movement.
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The valve-retainer is a component that plays a key role in determining the compressor performance, by introducing significant pressure losses, which affect the suction and discharge phases.
The air pressures in the vane segments when the compressor performs suction and compression phases can evaluate the intake effect of the inlet and seal effect of the vane segment of the compressor, respectively.
This study presents a more accurate measurement method for measuring air pressures in the vane segments when a sliding-vane rotary compressor performs suction and compression phases in either stable or unstable rotational speeds.
The high values at 24 h can be explained by increasing capillary suction during the drying phase.
The suction method comprises an elevation phase as well as a retraction phase.
It is shown that high particle mass loading systematically increases the wall fluxes of momentum (shear stress), heat and particle mass, much like the effects associated with "massive suction" in the single-phase LBL theory.
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