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The filter utilizes an ultrasound standing-wave field generated by flexural vibration and removes micro air bubbles from the circulation.
In this paper, the various state-of-the-art approaches of drag-reducing and energy-saving technologies based on the boundary layer control are reviewed, focusing on the polymer drag reduction additives, the micro-morphology, the super-hydrophobic surface, the micro air bubbles, the heating wall, the vibrant flexible wall and the composite drag reduction methods.
This paper presents a mechanism to explain the attachment of solid particles to air bubbles in surfactant-free aqueous solutions where both solids and air bubbles have the same sign of zeta potential via investigating the mechanical properties of micro air bubbles and the adsorption of hydroxide on air bubble surfaces.
In addition, the combined effect of an immediate breathing gas shift from air to either heliox (80 20) or heliox (50 50) (i.e. the Comex CX30 treatment table; James et al. 1986) with recompression to 285 [heliox (80 20) experiments] or 405 kPa [heliox (50 50) experiments] on micro air bubbles injected into spinal white matter subsequently exposed to N2 supersaturation, was also studied.
Based on this reasoning, and in an effort to dispel any remnant concerns about the use of heliox in the treatment of air-DCS, we applied a modification of the previous experimental rat model, where extravascular injected micro air bubbles are studied by direct visualization during isobaric breathing gas shifts at 284 kPa from air to heliox (80 20) in lipid and aqueous tissues.
This behavior was also seen when micro air bubbles are injected into the white substance of the spinal cord (Hyldegaard et al. 1991) as well as in aqueous tissues such as skeletal muscle or tendon (Hyldegaard and Madsen 1994) of decompressed rats.
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Before decompression from the first pressure exposure began, the microscope was focused on the injected micro air bubble and the video recorder started for determination of the pre-decompression bubble size.
Furthermore, HFB1 was able to produce macro and micro stable air bubbles in the liquid due to the presence of hydrophobic patches on its surface.
A complication in measuring protein particulates in many formulations is the simultaneous presence of other particle types such as silicone oil micro-droplets, air bubbles, and extrinsic contaminants.
A complication in measuring protein particulates in many formulations is the simultaneous presence of other particle types such as silicone micro-droplets, air bubbles, and extrinsic contaminants.
Look closely, note out any air bubbles or micro-scratches that may be visible, even with the naked eye.
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