Identificador persistente para citar o vincular este elemento: http://hdl.handle.net/10662/13759
Títulos: Transonic flow focusing: stability analysis and jet diameter
Autores/as: Rubio Chaves, Manuel Ángel
Rubio, A.
Cabezas Martín, María Guadalupe
Herrada Gutiérrez, Miguel Ángel
Gañán Calvo, Alfonso Miguel
Montanero Fernández, José María
Palabras clave: Flow focusing;Serial femtosecond crystallography;Global stability;Enfoque de flujo;Estabilidad mundial;Cristalografía de femtosegundos en serie
Fecha de publicación: 2021
Editor/a: Elsevier
Resumen: We study numerically and experimentally the stability of the transonic flow focusing used in serial femtosecond crystallography (SFX) to place complex biochemical species into the beam focus. Both the numerical and experimental results indicate that the minimum flow rate for steady jetting increases slightly with the gas stagnation pressure. There is a remarkable agreement between the stability limit predicted by the global stability analysis and that obtained experimentally. Our simulations show that the steady jetting interruption at the critical flow rate is caused by the growth of a perturbation with a constant phase shift. This result is consistent with the experimental observations, which indicate that both the meniscus tip and the emitted jet collapse almost simultaneously at the stability limit. We derive a scaling law for the jet diameter as a function of the liquid flow rate and gas density/pressure from more than one hundred simulations. The scaling law provides accurate predictions for the jet diameter within the range of values [0.549,10.9] m analyzed in this work.
URI: http://hdl.handle.net/10662/13759
DOI: 10.1016/j.ijmultiphaseflow.2021.103720
Colección:DIMEM - Artículos
ICCAEx - Artículos

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