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Application of Prandtl’s Theory in the Design of an Experimental Chamber for Static Pressure Measurements

Pumping in vacuum chambers is part of the field of environmental electron microscopy. These chambers are separated from each other by a small-diameter aperture that creates a critical flow in the supersonic flow regime. The distribution of pressure and shock waves in the path of the primary electron...

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Autores principales: Šabacká, Pavla, Neděla, Vilém, Maxa, Jiří, Bayer, Robert
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8538980/
https://www.ncbi.nlm.nih.gov/pubmed/34696062
http://dx.doi.org/10.3390/s21206849
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author Šabacká, Pavla
Neděla, Vilém
Maxa, Jiří
Bayer, Robert
author_facet Šabacká, Pavla
Neděla, Vilém
Maxa, Jiří
Bayer, Robert
author_sort Šabacká, Pavla
collection PubMed
description Pumping in vacuum chambers is part of the field of environmental electron microscopy. These chambers are separated from each other by a small-diameter aperture that creates a critical flow in the supersonic flow regime. The distribution of pressure and shock waves in the path of the primary electron beam passing through the differentially pumped chamber has a large influence on the quality of the resulting microscope image. As part of this research, an experimental chamber was constructed to map supersonic flow at low pressures. The shape of this chamber was designed using mathematical–physical analyses, which served not only as a basis for the design of its geometry, but especially for the correct choice of absolute and differential pressure sensors with respect to the cryogenic temperature generated in the supersonic flow. The mathematical and physical analyses presented here map the nature of the supersonic flow with large gradients of state variables at low pressures at the continuum mechanics boundary near the region of free molecule motion in which the Environmental Electron Microscope and its differentially pumped chamber operate, which has a significant impact on the resulting sharpness of the final image obtained by the microscope. The results of this work map the flow in and behind the Laval nozzle in the experimental chamber and are the initial basis that enabled the optimization of the design of the chamber based on Prandtl’s theory for the possibility of fitting it with pressure probes in such a way that they can map the flow in and behind the Laval nozzle.
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spelling pubmed-85389802021-10-24 Application of Prandtl’s Theory in the Design of an Experimental Chamber for Static Pressure Measurements Šabacká, Pavla Neděla, Vilém Maxa, Jiří Bayer, Robert Sensors (Basel) Communication Pumping in vacuum chambers is part of the field of environmental electron microscopy. These chambers are separated from each other by a small-diameter aperture that creates a critical flow in the supersonic flow regime. The distribution of pressure and shock waves in the path of the primary electron beam passing through the differentially pumped chamber has a large influence on the quality of the resulting microscope image. As part of this research, an experimental chamber was constructed to map supersonic flow at low pressures. The shape of this chamber was designed using mathematical–physical analyses, which served not only as a basis for the design of its geometry, but especially for the correct choice of absolute and differential pressure sensors with respect to the cryogenic temperature generated in the supersonic flow. The mathematical and physical analyses presented here map the nature of the supersonic flow with large gradients of state variables at low pressures at the continuum mechanics boundary near the region of free molecule motion in which the Environmental Electron Microscope and its differentially pumped chamber operate, which has a significant impact on the resulting sharpness of the final image obtained by the microscope. The results of this work map the flow in and behind the Laval nozzle in the experimental chamber and are the initial basis that enabled the optimization of the design of the chamber based on Prandtl’s theory for the possibility of fitting it with pressure probes in such a way that they can map the flow in and behind the Laval nozzle. MDPI 2021-10-15 /pmc/articles/PMC8538980/ /pubmed/34696062 http://dx.doi.org/10.3390/s21206849 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Communication
Šabacká, Pavla
Neděla, Vilém
Maxa, Jiří
Bayer, Robert
Application of Prandtl’s Theory in the Design of an Experimental Chamber for Static Pressure Measurements
title Application of Prandtl’s Theory in the Design of an Experimental Chamber for Static Pressure Measurements
title_full Application of Prandtl’s Theory in the Design of an Experimental Chamber for Static Pressure Measurements
title_fullStr Application of Prandtl’s Theory in the Design of an Experimental Chamber for Static Pressure Measurements
title_full_unstemmed Application of Prandtl’s Theory in the Design of an Experimental Chamber for Static Pressure Measurements
title_short Application of Prandtl’s Theory in the Design of an Experimental Chamber for Static Pressure Measurements
title_sort application of prandtl’s theory in the design of an experimental chamber for static pressure measurements
topic Communication
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8538980/
https://www.ncbi.nlm.nih.gov/pubmed/34696062
http://dx.doi.org/10.3390/s21206849
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