Academic literature on the topic 'Thermomolecular pressure'

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Journal articles on the topic "Thermomolecular pressure"

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Nikolskiy, Yuriy Vasilevich. "EXPERIMENTAL INVESTIGATION OF THERMOMOLECULAR PRESSURE DIFFERENCE ON A THIN PERMEABLE NON-ISOTHERMAL MEMBRANE THERMOMOLECULAR PUMP." TsAGI Science Journal 47, no. 7 (2016): 733–46. http://dx.doi.org/10.1615/tsagiscij.2017019843.

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Takeyama, Naokata, and Kimie Nakashima. "Reformulation of Thermomolecular Pressure Effect toward Thermal Diffusion." Journal of the Physical Society of Japan 57, no. 10 (October 15, 1988): 3332–38. http://dx.doi.org/10.1143/jpsj.57.3332.

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DASH, J. G. "Thermomolecular Pressure in Surface Melting: Motivation for Frost Heave." Science 246, no. 4937 (December 22, 1989): 1591–93. http://dx.doi.org/10.1126/science.246.4937.1591.

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Zhdanov, V. M., V. A. Zaznoba, and I. V. Safonova. "Nonisothermal flow of a polyatomic gas in a channel and the thermomolecular pressure difference effect." Journal of Applied Mechanics and Technical Physics 28, no. 5 (1988): 668–74. http://dx.doi.org/10.1007/bf00912016.

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Dissertations / Theses on the topic "Thermomolecular pressure"

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Fisher, Paul D. "Computer model of the performance of a thermoacoustic generator." Thesis, Monterey, California : Naval Postgraduate School, 1990. http://handle.dtic.mil/100.2/ADA237680.

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Thesis (M.S. in Physics)--Naval Postgraduate School, June 1990.
Thesis Advisor(s): Atchley, A.A. Second Reader: Hofler, T.J. "June 1990." Description based on signature page. DTIC Identifiers: Thermoacoustics, sound generators. Author(s) subject terms: Thermoacoustics. Includes bibliographical references (p. 51). Also available in print.
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Taheri, Bonab Peyman. "Macroscopic description of rarefied gas flows in the transition regime." Thesis, 2010. http://hdl.handle.net/1828/3018.

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The fast-paced growth in microelectromechanical systems (MEMS), microfluidic fabrication, porous media applications, biomedical assemblies, space propulsion, and vacuum technology demands accurate and practical transport equations for rarefied gas flows. It is well-known that in rarefied situations, due to strong deviations from the continuum regime, traditional fluid models such as Navier-Stokes-Fourier (NSF) fail. The shortcoming of continuum models is rooted in nonequilibrium behavior of gas particles in miniaturized and/or low-pressure devices, where the Knudsen number (Kn) is sufficiently large. Since kinetic solutions are computationally very expensive, there has been a great desire to develop macroscopic transport equations for dilute gas flows, and as a result, several sets of extended equations are proposed for gas flow in nonequilibrium states. However, applications of many of these extended equations are limited due to their instabilities and/or the absence of suitable boundary conditions. In this work, we concentrate on regularized 13-moment (R13) equations, which are a set of macroscopic transport equations for flows in the transition regime, i.e., Kn≤1. The R13 system provides a stable set of equations in Super-Burnett order, with a great potential to be a powerful CFD tool for rarefied flow simulations at moderate Knudsen numbers. The goal of this research is to implement the R13 equations for problems of practical interest in arbitrary geometries. This is done by transformation of the R13 equations and boundary conditions into general curvilinear coordinate systems. Next steps include adaptation of the transformed equations in order to solve some of the popular test cases, i.e., shear-driven, force-driven, and temperature-driven flows in both planar and curved flow passages. It is shown that inexpensive analytical solutions of the R13 equations for the considered problems are comparable to expensive numerical solutions of the Boltzmann equation. The new results present a wide range of linear and nonlinear rarefaction effects which alter the classical flow patterns both in the bulk and near boundary regions. Among these, multiple Knudsen boundary layers (mechanocaloric heat flows) and their influence on mass and energy transfer must be highlighted. Furthermore, the phenomenon of temperature dip and Knudsen paradox in Poiseuille flow; Onsager's reciprocity relation, two-way flow pattern, and thermomolecular pressure difference in simultaneous Poiseuille and transpiration flows are described theoretically. Through comparisons it is shown that for Knudsen numbers up to 0.5 the compact R13 solutions exhibit a good agreement with expensive solutions of the Boltzmann equation.
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Book chapters on the topic "Thermomolecular pressure"

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Pavese, Franco, and Gianfranco Molinar Min Beciet. "The Thermomolecular Pressure Difference Effect." In Modern Gas-Based Temperature and Pressure Measurements, 447–62. Boston, MA: Springer US, 2012. http://dx.doi.org/10.1007/978-1-4419-8282-7_10.

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Pavese, Franco, and Gianfranco Molinar. "The Thermomolecular Pressure Difference Effect." In Modern Gas-Based Temperature and Pressure Measurements, 415–29. Boston, MA: Springer US, 1992. http://dx.doi.org/10.1007/978-1-4757-5869-6_10.

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Wettlaufer, J. S. "Crystal Growth, Surface Phase Transitions and Thermomolecular Pressure." In Ice Physics and the Natural Environment, 39–67. Berlin, Heidelberg: Springer Berlin Heidelberg, 1999. http://dx.doi.org/10.1007/978-3-642-60030-2_4.

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Conference papers on the topic "Thermomolecular pressure"

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Alexandrov, Victor Yu. "Numerical and Experimental Investigations of Thermal Stress Effect on Nonlinear Thermomolecular Pressure Difference." In RAREFIED GAS DYNAMICS: 23rd International Symposium. AIP, 2003. http://dx.doi.org/10.1063/1.1581557.

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