Analytical emission model for the design of primary effusive sources

Fuente: arXiv
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Autori principali: Ashkarin, I. N., Cheayto, J., Cheinet, P., Comparat, D., Lepoutre, S.
Natura: Preprint
Pubblicazione: 2026
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author Ashkarin, I. N.
Cheayto, J.
Cheinet, P.
Comparat, D.
Lepoutre, S.
author_facet Ashkarin, I. N.
Cheayto, J.
Cheinet, P.
Comparat, D.
Lepoutre, S.
contents We present an analytical emission model that accurately predicts the properties of effusive sources formed by long collimation tubes. By construction, it captures the full range of molecular flow, from the transparent flux regime, which occurs in highly rarefied gases, to the opaque regime, which arises as the flux increases and interparticle collisions become non-negligible. The model is based on a previously developed secondary-emission-surface approach, improved here to overcome its internal limitations and recover the well-established axial flux intensity. It provides accurate analytical predictions of the angular intensity distribution in the molecular flow regime, offering valuable guidance for the design of efficient primary sources across a broad range of experiments in atomic and molecular physics
format Preprint
id arxiv_https___arxiv_org_abs_2605_12212
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Analytical emission model for the design of primary effusive sources
Ashkarin, I. N.
Cheayto, J.
Cheinet, P.
Comparat, D.
Lepoutre, S.
Atomic Physics
Applied Physics
Atomic and Molecular Clusters
Chemical Physics
We present an analytical emission model that accurately predicts the properties of effusive sources formed by long collimation tubes. By construction, it captures the full range of molecular flow, from the transparent flux regime, which occurs in highly rarefied gases, to the opaque regime, which arises as the flux increases and interparticle collisions become non-negligible. The model is based on a previously developed secondary-emission-surface approach, improved here to overcome its internal limitations and recover the well-established axial flux intensity. It provides accurate analytical predictions of the angular intensity distribution in the molecular flow regime, offering valuable guidance for the design of efficient primary sources across a broad range of experiments in atomic and molecular physics
title Analytical emission model for the design of primary effusive sources
topic Atomic Physics
Applied Physics
Atomic and Molecular Clusters
Chemical Physics
url https://arxiv.org/abs/2605.12212