<?xml version="1.0"?>
<rdf:RDF xmlns:rdf="http://www.w3.org/1999/02/22-rdf-syntax-ns#" xmlns:dc="http://purl.org/dc/elements/1.1/"><rdf:Description rdf:about="https://repozitorij.uni-lj.si/IzpisGradiva.php?id=185590"><dc:title>A computational investigation of microjet focusing with secondary fluid and compressible gas</dc:title><dc:creator>Zahoor,	Rizwan	(Avtor)
	</dc:creator><dc:creator>Bajt,	Saša	(Avtor)
	</dc:creator><dc:creator>Šarler,	Božidar	(Avtor)
	</dc:creator><dc:subject>serial crystallography</dc:subject><dc:subject>double-flow-focusing</dc:subject><dc:subject>jet-length</dc:subject><dc:description>Double-flow focusing nozzles (DFFNs) are used to produce liquid microjets for sample delivery in serial femtosecond crystallography (SFX), where crystallized samples are dispersed in a primary liquid jet and delivered into the x-ray beam path. Such jets are generated by focusing a primary liquid jet with a coaxial secondary liquid and outer gas. Precise control of microjet stability and morphology is crucial for efficient sample delivery. This study presents a comprehensive numerical model of double-flow focused liquid jets from a DFFN, where the liquid phase consists of water and ethanol, and the focusing gas is helium. An axisymmetric, Newtonian, compressible, two-phase gas– liquid and two-component water–ethanol model is formulated and solved using the finite-volume method and volume-of-fluid framework. The water–ethanol mixing and resulting changes in density, viscosity, and surface tension as a function of ethanol concentration and tem perature are simulated using the Jouyban–Acree model. The jet characteristics as a function of material mixture properties, focusing-gas compressibility, and temperature are investigated numerically. A parametric analysis is performed over the typical SFX operating range, varying the water and ethanol flow rates from 0 to 20 ▫$\mu$▫l/min and the helium gas flow rate from 0 to 20mg/min. Jet stability, diameter, length, and velocity are analyzed. The influence of local mixture properties, mapped onto the Ca–We plane, reveals transitions between viscous-dominated and inertia-driven jetting regimes. The predicted jet diameters are consistent with the Young–Laplace equation and scal ing expression. The findings provide a physical insight required for the virtual design of DFFNs.</dc:description><dc:date>2026</dc:date><dc:date>2026-08-11 13:14:53</dc:date><dc:type>Članek v reviji</dc:type><dc:identifier>185590</dc:identifier><dc:language>sl</dc:language></rdf:Description></rdf:RDF>
