On a Scenario of Transition to Turbulence for a Polymer Fluid Flow in a Circular Pipe
Equations describing nonstationary and stationary flows of an incompressible polymer fluid through a pipe are derived based on the rheological mesoscopic Pokrovskii–Vinogradov model. Their exact stationary solutions are obtained and conditions providing their existence are outlined. Numerical simula...
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description | Equations describing nonstationary and stationary flows of an incompressible polymer fluid through a pipe are derived based on the rheological mesoscopic Pokrovskii–Vinogradov model. Their exact stationary solutions are obtained and conditions providing their existence are outlined. Numerical simulation of the stabilization of a nonstationary flow is carried out and the restrictions on the values of parameters that ensure stabilization are computed. In a number of cases these restrictions coincide with the conditions of the existence of stationary solutions. The obtained results enable us to describe constructively the process of destruction of laminar Poiseuille-type flows, which usually initiates the onset of turbulence. The key role in mechanics of this process is played by the size and orientation of macromolecules of the polymer fluid. The mathematical description of the process uses essentially the solutions’ singular points. |
doi_str_mv | 10.1134/S2070048224020145 |
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The key role in mechanics of this process is played by the size and orientation of macromolecules of the polymer fluid. The mathematical description of the process uses essentially the solutions’ singular points.</description><subject>Fluid flow</subject><subject>Incompressible flow</subject><subject>Laminar flow</subject><subject>Macromolecules</subject><subject>Mathematical Modeling and Industrial Mathematics</subject><subject>Mathematical models</subject><subject>Mathematics</subject><subject>Mathematics and Statistics</subject><subject>Pipes</subject><subject>Polymers</subject><subject>Rheological properties</subject><subject>Simulation and Modeling</subject><subject>Stabilization</subject><subject>Turbulence</subject><subject>Turbulent flow</subject><issn>2070-0482</issn><issn>2070-0490</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2024</creationdate><recordtype>article</recordtype><recordid>eNp1kE9LAzEQxYMoWGo_gLeA59XJn02yRylWC4UW2p6XbDaRlO2mJl2k396Uih7EOcwMw--9gYfQPYFHQhh_WlOQAFxRyoEC4eUVGp1PBfAKrn92RW_RJKUd5GJUKqZGaLvsscZrY3sdfcDB4U3UffJHH3p8DHgzxGbobG8sdiFmdBW6095GPOsG3-YePrE_W0x9NEOnI175g71DN053yU6-5xhtZy-b6VuxWL7Op8-LwhDFykKbxhlonSKkEU40pWhLAkRowivj2kppI0Cz1kloqFZSthqEElBaXVJlJBujh4vvIYaPwaZjvQtD7PPLmgHnXPJK8kyRC2ViSClaVx-i3-t4qgnU5wDrPwFmDb1oUmb7dxt_nf8XfQGHRHAB</recordid><startdate>20240401</startdate><enddate>20240401</enddate><creator>Semisalov, B. 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V.</creatorcontrib><collection>CrossRef</collection><jtitle>Mathematical models and computer simulations</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Semisalov, B. V.</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>On a Scenario of Transition to Turbulence for a Polymer Fluid Flow in a Circular Pipe</atitle><jtitle>Mathematical models and computer simulations</jtitle><stitle>Math Models Comput Simul</stitle><date>2024-04-01</date><risdate>2024</risdate><volume>16</volume><issue>2</issue><spage>197</spage><epage>207</epage><pages>197-207</pages><issn>2070-0482</issn><eissn>2070-0490</eissn><abstract>Equations describing nonstationary and stationary flows of an incompressible polymer fluid through a pipe are derived based on the rheological mesoscopic Pokrovskii–Vinogradov model. Their exact stationary solutions are obtained and conditions providing their existence are outlined. Numerical simulation of the stabilization of a nonstationary flow is carried out and the restrictions on the values of parameters that ensure stabilization are computed. In a number of cases these restrictions coincide with the conditions of the existence of stationary solutions. The obtained results enable us to describe constructively the process of destruction of laminar Poiseuille-type flows, which usually initiates the onset of turbulence. The key role in mechanics of this process is played by the size and orientation of macromolecules of the polymer fluid. The mathematical description of the process uses essentially the solutions’ singular points.</abstract><cop>Moscow</cop><pub>Pleiades Publishing</pub><doi>10.1134/S2070048224020145</doi><tpages>11</tpages></addata></record> |
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subjects | Fluid flow Incompressible flow Laminar flow Macromolecules Mathematical Modeling and Industrial Mathematics Mathematical models Mathematics Mathematics and Statistics Pipes Polymers Rheological properties Simulation and Modeling Stabilization Turbulence Turbulent flow |
title | On a Scenario of Transition to Turbulence for a Polymer Fluid Flow in a Circular Pipe |
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