Drifting mass accommodation coefficients: in situ measurements from a steady state molecular dynamics setup. Issue 1 (2nd January 2021)
- Record Type:
- Journal Article
- Title:
- Drifting mass accommodation coefficients: in situ measurements from a steady state molecular dynamics setup. Issue 1 (2nd January 2021)
- Main Title:
- Drifting mass accommodation coefficients: in situ measurements from a steady state molecular dynamics setup
- Authors:
- Akkus, Yigit
Gurer, Akif Turker
Bellur, Kishan - Abstract:
- ABSTRACT: A fundamental understanding of the evaporation/condensation phenomena is vital to many fields of science and engineering, yet there is many discrepancies in the usage of phase-change models and associated coefficients. First, a brief review of the kinetic theory of phase change is provided, and the mass accommodation coefficient (MAC, α ) and its inconsistent definitions are discussed. The discussion focuses on the departure from equilibrium; represented as a macroscopic "drift" velocity. Then, a continuous flow, phase change driven molecular-dynamics setup is used to investigate steady-state condensation at a flat liquid-vapor interface of argon at various phase-change rates and temperatures to elucidate the effect of equilibrium departure. MAC is computed directly from the kinetic theory-based Hertz–Knudsen (H-K) and Schrage (exact and approximate) expressions without the need for a priori physical definitions, ad-hoc particle injection/removal, or particle counting. MAC values determined from the approximate and exact Schrage expressions ( α a p p S c h r a g e and α e x a c t S c h r a g e ) are between 0.8 and 0.9, while MAC values from the H-K expression ( α H − K ) are above unity for all cases tested. α e x a c t S c h r a g e yield value closest to the results from transition state theory [ J Chem Phys, 118, 1392–1399 (2003)]. The departure from equilibrium does not affect the value of α e x a c t S c h r a g e but causes α H − K to vary drasticallyABSTRACT: A fundamental understanding of the evaporation/condensation phenomena is vital to many fields of science and engineering, yet there is many discrepancies in the usage of phase-change models and associated coefficients. First, a brief review of the kinetic theory of phase change is provided, and the mass accommodation coefficient (MAC, α ) and its inconsistent definitions are discussed. The discussion focuses on the departure from equilibrium; represented as a macroscopic "drift" velocity. Then, a continuous flow, phase change driven molecular-dynamics setup is used to investigate steady-state condensation at a flat liquid-vapor interface of argon at various phase-change rates and temperatures to elucidate the effect of equilibrium departure. MAC is computed directly from the kinetic theory-based Hertz–Knudsen (H-K) and Schrage (exact and approximate) expressions without the need for a priori physical definitions, ad-hoc particle injection/removal, or particle counting. MAC values determined from the approximate and exact Schrage expressions ( α a p p S c h r a g e and α e x a c t S c h r a g e ) are between 0.8 and 0.9, while MAC values from the H-K expression ( α H − K ) are above unity for all cases tested. α e x a c t S c h r a g e yield value closest to the results from transition state theory [ J Chem Phys, 118, 1392–1399 (2003)]. The departure from equilibrium does not affect the value of α e x a c t S c h r a g e but causes α H − K to vary drastically emphasizing the importance of a drift velocity correction. Additionally, equilibrium departure causes a nonuniform distribution in vapor properties. At the condensing interface, a local rise in vapor temperature and a drop in vapor density is observed when compared with the corresponding bulk values. When the deviation from bulk values are taken into account, all values of MAC including α e x a c t S c h r a g e show a small yet noticeable difference that is both temperature and phase-change rate dependent. Graphical abstract: … (more)
- Is Part Of:
- Nanoscale and microscale thermophysical engineering. Volume 25:Issue 1(2021)
- Journal:
- Nanoscale and microscale thermophysical engineering
- Issue:
- Volume 25:Issue 1(2021)
- Issue Display:
- Volume 25, Issue 1 (2021)
- Year:
- 2021
- Volume:
- 25
- Issue:
- 1
- Issue Sort Value:
- 2021-0025-0001-0000
- Page Start:
- 25
- Page End:
- 45
- Publication Date:
- 2021-01-02
- Subjects:
- Mass accommodation coefficient -- kinetic theory of phase change -- Hertz-Knudsen equation -- Schrage relationships -- molecular dynamics
Heat -- Transmission -- Periodicals
Heat -- Transmission
Electronic journals
Periodicals
621.402 - Journal URLs:
- http://www.tandfonline.com/loi/umte20#.VyxRLFL2aic ↗
http://www.journalsonline.tandf.co.uk/openurl.asp?genre=journal&issn=1556-7265 ↗
http://www.journalsonline.tandf.co.uk/openurl.asp?genre=journal&eissn=1556-7273 ↗
http://www.tandfonline.com/ ↗ - DOI:
- 10.1080/15567265.2020.1861139 ↗
- Languages:
- English
- ISSNs:
- 1556-7265
- Deposit Type:
- Legaldeposit
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- Available online (eLD content is only available in our Reading Rooms) ↗
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- British Library DSC - 6015.335534
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