Numerical Study of the Micro-Jet Formation in Double Flow Focusing Nozzle Geometry Using Different Water-Alcohol Solutions

Author:

Belšak Grega,Bajt SašaORCID,Šarler BožidarORCID

Abstract

The purpose of this work is to determine, based on the computational model, whether a mixture of a binary liquid is capable of producing longer, thinner and faster gas-focused micro-jets, compared to the mono-constituent liquids of its components. Mixtures of water with two different alcohols, water + ethanol and water + 2-propanol, are considered. The numerical study of pre-mixed liquids is performed in the double flow focusing nozzle geometry used in sample delivery in serial femtosecond crystallography experiments. The study reveals that an optimal mixture for maximizing the jet length exists both in a water + ethanol and in a water + 2-propanol system. Additionally, the use of 2-propanol instead of ethanol results in a 34% jet length increase, while the jet diameters and velocities are similar for both mixtures. Pure ethanol and pure 2-propanol are the optimum liquids to achieve the smallest diameter and the fastest jets. However, the overall aim is to find a mixture with the longest, the smallest and the fastest jet. Based on our simulations, it appears that water + 2-propanol mixture might be slightly better than water + ethanol. This study reveals the dominant effect of liquid viscosity on the jet breakup process in a flow focusing nozzles operated under atmospheric conditions.

Funder

Centre of Free Electron Laser

Javna Agencija za Raziskovalno Dejavnost RS

Publisher

MDPI AG

Subject

General Materials Science

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. A numerical study of gas focused non-Newtonian micro-jets;International Journal of Multiphase Flow;2024-01

2. FLUID DYNAMICS OF DOUBLE FLOW-FOCUSING NOZZLES: A NUMERICAL STUDY;Proceeding of 9th Thermal and Fluids Engineering Conference (TFEC);2024

3. 3D Printing and Performance Study of Porous Artificial Bone Based on HA-ZrO2-PVA Composites;Materials;2023-01-27

4. A numerical investigation of micro-jet characteristics in different pressure environments;International Journal of Hydromechatronics;2021

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