Academic literature on the topic 'Fluid flow in pipes'

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Journal articles on the topic "Fluid flow in pipes"

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HANCOCK, MATTHEW J., and JOHN W. M. BUSH. "Fluid pipes." Journal of Fluid Mechanics 466 (September 10, 2002): 285–304. http://dx.doi.org/10.1017/s0022112002001258.

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We present the results of a combined theoretical and experimental investigation of laminar vertical jets impinging on a deep fluid reservoir. We consider the parameter regime where, in a pure water system, the jet is characterized by a stationary field of capillary waves at its base. When the reservoir is contaminated by surfactant, the base of the jet is void of capillary waves, cylindrical and quiescent: water enters the reservoir as if through a rigid pipe. A theoretical description of the resulting fluid pipe is deduced by matching extensional plug flow upstream of the pipe onto entry pipe
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Ishigaki, Hiroshi. "Analogy between laminar flows in curved pipes and orthogonally rotating pipes." Journal of Fluid Mechanics 268 (June 10, 1994): 133–45. http://dx.doi.org/10.1017/s0022112094001291.

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The secondary flow of a viscous fluid, caused by the Coriolis force, through a straight pipe rotating about an axis perpendicular to the pipe axis is analogous to that of a fluid, caused by the centrifugal force, through a stationary curved pipe. The quantitative analogy between these two fully developed laminar flows will be demonstrated through similarity arguments, computational studies and the use of experimental data. Similarity considerations result in two analogous governing parameters for each flow, which include a new one for the rotating flow. When one of these analogous pairs of par
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Hasnain, A., E. Segura, and K. Alba. "Buoyant displacement flow of immiscible fluids in inclined pipes." Journal of Fluid Mechanics 824 (July 10, 2017): 661–87. http://dx.doi.org/10.1017/jfm.2017.367.

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We experimentally study the iso-viscous displacement flow of two immiscible Newtonian fluids in an inclined pipe. The fluids have the same viscosity but different densities. The displacing fluid is denser than the displaced fluid and is placed above the displaced fluid (i.e. a density-unstable configuration) in a pipe with small diameter-to-length ratio ($\unicode[STIX]{x1D6FF}\ll 1$). In the limit considered, six dimensionless groups describe these flows: the pipe inclination angle, $\unicode[STIX]{x1D6FD}$, an Atwood number, $At$, a Reynolds number, $Re$, a densimetric Froude number, $Fr$, a
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Miliou, Anthi, Spencer J. Sherwin, and J. Michael R. Graham. "Fluid Dynamic Loading on Curved Riser Pipes." Journal of Offshore Mechanics and Arctic Engineering 125, no. 3 (2003): 176–82. http://dx.doi.org/10.1115/1.1576817.

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In order to gain a preliminary understanding of the fluid dynamics developed past a curved riser pipe, a numerical investigation into the flow past curved cylinders at a Reynolds number of 100 has been performed. To approximate the flow conditions on curved riser pipes, different velocity profiles and flow directions were applied and the corresponding results compared. In addition, the fluid dynamic loading and the wake structures for curved cylinder flows were investigated. The fully three-dimensional simulations were computed with a spectral/hp element method. The computational results were
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Sabzi, Peyman, and Saheb Noroozi. "The Effect of Slightly Upward and Downward Inclined Pipes on the Stability of Gas-Oil Two-Phase Flow." ASEAN Journal of Chemical Engineering 14, no. 1 (2014): 13. http://dx.doi.org/10.22146/ajche.49712.

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Pipeline inclination has an important effect on the stability of two-phase flow and flow assurance in the pipeline. This inclination may be intentional; it may be inevitable in pipeline installation; or it may be due to an error in pipeline installation. In this situation, even the slight inclination of the pipe plays an important role in the growth or elimination of the instability of the two-phase flow. In this study using a code designed for the analysis of pipelines’ two-phase flow, the stability of the two-phase flow for Kerosene oil flow along with methane gas has been compared in downwa
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Whitby, Max, Laurent Cagnon, Maya Thanou, and Nick Quirke. "Enhanced Fluid Flow through Nanoscale Carbon Pipes." Nano Letters 8, no. 9 (2008): 2632–37. http://dx.doi.org/10.1021/nl080705f.

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Whitby, Max, Laurent Cagnon, Maya Thanou, and Nick Quirke. "Enhanced Fluid Flow through Nanoscale Carbon Pipes." Nano Letters 9, no. 7 (2009): 2802. http://dx.doi.org/10.1021/nl900746g.

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Ganat, Tarek, and Meftah Hrairi. "Gas–Liquid Two-Phase Upward Flow through a Vertical Pipe: Influence of Pressure Drop on the Measurement of Fluid Flow Rate." Energies 11, no. 11 (2018): 2937. http://dx.doi.org/10.3390/en11112937.

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The accurate estimation of pressure drop during multiphase fluid flow in vertical pipes has been widely recognized as a critical problem in oil wells completion design. The flow of fluids through the vertical tubing strings causes great losses of energy through friction, where the value of this loss depends on fluid flow viscosity and the size of the conduit. A number of friction factor correlations, which have acceptably accurate results in large diameter pipes, are significantly in error when applied to smaller diameter pipes. Normally, the pressure loss occurs due to friction between the fl
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Tarasov, Vasily E. "Poiseuille equation for steady flow of fractal fluid." International Journal of Modern Physics B 30, no. 22 (2016): 1650128. http://dx.doi.org/10.1142/s0217979216501289.

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Fractal fluid is considered in the framework of continuous models with noninteger dimensional spaces (NIDS). A recently proposed vector calculus in NIDS is used to get a description of fractal fluid flow in pipes with circular cross-sections. The Navier–Stokes equations of fractal incompressible viscous fluids are used to derive a generalization of the Poiseuille equation of steady flow of fractal media in pipe.
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Kaminsky, R. D. "Predicting Single-Phase and Two-Phase Non-Newtonian Flow Behavior in Pipes." Journal of Energy Resources Technology 120, no. 1 (1998): 2–7. http://dx.doi.org/10.1115/1.2795006.

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Improved and novel prediction methods are described for single-phase and two-phase flow of non-Newtonian fluids in pipes. Good predictions are achieved for pressure drop, liquid holdup fraction, and two-phase flow regime. The methods are applicable to any visco-inelastic non-Newtonian fluid and include the effect of surface roughness. The methods utilize a reference fluid for which validated models exist. For single-phase flow, the use of Newtonian and power-law reference fluids are illustrated. For two-phase flow, a Newtonian reference fluid is used. Focus is given to shear-thinning fluids. T
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Dissertations / Theses on the topic "Fluid flow in pipes"

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Komonibo, Ebiundu. "Liquid-liquid flow in baffled vessels and pipes." Thesis, University of Nottingham, 2018. http://eprints.nottingham.ac.uk/49135/.

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Oil and water separation processes in primary separators and transportation of these fluids through pipelines for further processing, is very vital but has often proved problematic due to changes in composition of the fluids together with build-up of sand or asphaltenes, in many petroleum industries. These separator vessels are large and cost effective to install together with safety implications due to equipment failure. Hence an understanding of the two-phase flow dynamics and motivation to improve upon their design and performance is necessary. Therefore, the main aim of this research progr
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Emmerson, Stephen. "Modelling of transient dynamics of gas flow in pipes." Thesis, University of Reading, 1991. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.305045.

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Roberts, Paul Anthony. "Two-phase flow at T-junctions." Thesis, University of Nottingham, 1994. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.240490.

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Thorvaldsen, Gary Sven. "The effect of the particle size distribution on non-Newtonian turbulent slurry flow in pipes." Thesis, Cape Technikon, 1996. http://hdl.handle.net/20.500.11838/896.

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Thesis (MTech (Chemical Engineering))--Cape Technikon, Cape Town,1996<br>The handling of solid-liquid suspensions is an important concern within the chemical and processing industries and many theoretical models have been proposed to try and explain and predict turbulent flow behaviour. However, the prediction of turbulent flow from only the viscous properties of non-Newtonian suspensions has over the years been questioned by researchers. This thesis considers theoretical models well established in the literature and the Slatter model, which uses both the rheology of the suspension and th
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Lloyd, S. "Fluid flow and heat transfer characteristics in the entrance regions of circular pipes." Thesis, Cardiff University, 1985. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.370795.

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Watson, Martin James. "Flow regime transitions and associated phenomena." Thesis, Imperial College London, 1999. http://hdl.handle.net/10044/1/8790.

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Al-Jumaily, K. E. J. "Two phase flow pressure drop and void fraction studies in a large diameter horizontal pipeline." Thesis, University of Strathclyde, 1986. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.372062.

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Hussain, Liaqat Ali. "The experimental and theoretical analysis of pipe contraction flow fields." Thesis, Kingston University, 1990. http://eprints.kingston.ac.uk/20538/.

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The accurate prediction of pipe contraction pressure loss is important in the design of pipe system such as heat exchangers, particularly when close control of the flow distribution in a network of pipes is required. The prediction of contraction pressure loss depends heavily on experimental data. Large discrepancies in these predictions are evident in the literature. Experimental results giving pres!? re loss coef fici ents for a range of Reyno 1 ds numbers of 4x 10 -2x 10 and area ratios of 0.135 - 0.692 are presented and compared with predictions from a method developed that allows for velo
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SILVA, IZABEL SOUTO FERREIRA DA. "NUMERICAL SIMULATION OF ANNULAR FLOW IN HORIZONTAL PIPES USING THE TWO FLUID MODEL." PONTIFÍCIA UNIVERSIDADE CATÓLICA DO RIO DE JANEIRO, 2015. http://www.maxwell.vrac.puc-rio.br/Busca_etds.php?strSecao=resultado&nrSeq=26341@1.

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PONTIFÍCIA UNIVERSIDADE CATÓLICA DO RIO DE JANEIRO<br>COORDENAÇÃO DE APERFEIÇOAMENTO DO PESSOAL DE ENSINO SUPERIOR<br>PROGRAMA DE EXCELENCIA ACADEMICA<br>Escoamentos bifásicos no regime anular são caracterizados pela formação de um filme de líquido ao redor das paredes do duto com a fase gasosa escoando na área central do duto. O presente trabalho consiste na simulação numérica de um escoamento anular em tubulação horizontal, com e sem transferência de calor através de um código unidimensional baseado no Modelo de Dois Fluidos. São considerados dois pares de fluidos, sendo o primeiro ar-água,
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Eesa, Muhammad. "CFD studies of complex fluid flows in pipes." Thesis, University of Birmingham, 2009. http://etheses.bham.ac.uk//id/eprint/413/.

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The flow of rheologically complex fluids in industrial equipment poses a number of challenges, not least from a modelling point of view. Research is needed to further understand and be able to predict the flow behaviour of such materials and to investigate ways of improving their processing. This work investigates the numerical modelling of complex fluids in three areas: flow and heat transfer under an externally imposed mechanical vibration, and steady-state solid-liquid flows as a first step in extending the vibration studies to these multiphase systems. Validated CFD simulations were used t
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Books on the topic "Fluid flow in pipes"

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Rennels, Donald C. Pipe flow: A practical and comprehensive guide. Wiley, 2012.

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Govier, George W. The flow of complex mixtures in pipes. 2nd ed. Society of Petroleum Engineers, 2008.

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Govier, George W. The flow of complex mixtures in pipes. 2nd ed. Society of Petroleum Engineers, 2008.

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Transient flow in pipes, open channels, and sewers. Ellis Horwood, 1989.

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All fluid-flow-regimes simulation model for internal flows. Nova Science Publishers, 2011.

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International Conference on Multi-phase Production (7th 1995 Cannes, France). Multiphase 95: Papers presented at the 7th International Conference on Multiphase Production, organized and sponsored by BHR Group Limited, and held in Cannes, France on 7-9 June 1995. Mechanical Engineering Publications, 1995.

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S, Miller Donald. Internal flow systems. 2nd ed. BHRA (Information Services), 1990.

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Fietz, T. R. Sensitivity of pipe flow calculations using the Colbrook-White equation. University of New South Wales, Water Research Laboratory, 1985.

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Wylie, E. Benjamin. Fluid transients in systems. Prentice Hall, 1993.

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Nordquist, Bruce O. The alternative faces of turbulent flow. Lost Creek Publishers, 1994.

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Book chapters on the topic "Fluid flow in pipes"

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Widden, Martin. "Laminar and turbulent flow; flow in pipes." In Fluid Mechanics. Macmillan Education UK, 1996. http://dx.doi.org/10.1007/978-1-349-11334-7_9.

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Boxer, G. "Flow in Pipes of Viscous Incompressible Fluids." In Fluid Mechanics. Macmillan Education UK, 1988. http://dx.doi.org/10.1007/978-1-349-09805-7_6.

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Pereira, G. Moniz, B. Mickan, E. von Lavante, and R. Kramer. "Investigation of Flow Conditioning in Pipes." In Computational Fluid Dynamics 2002. Springer Berlin Heidelberg, 2003. http://dx.doi.org/10.1007/978-3-642-59334-5_122.

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Levenspiel, Octave. "Convection Model for Laminar Flow in Pipes." In Fluid Mechanics and Its Applications. Springer New York, 2011. http://dx.doi.org/10.1007/978-1-4419-8074-8_9.

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Massey, B. S. "Turbulent Flow in Pipes." In Mechanics of Fluids. Springer US, 1989. http://dx.doi.org/10.1007/978-1-4899-3126-9_7.

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Massey, B. S. "Turbulent Flow in Pipes." In Mechanics of Fluids. Springer US, 1989. http://dx.doi.org/10.1007/978-1-4615-7408-8_7.

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Torres, A., F. J. Higuera, and A. Medina. "Super Accelerated Flow in Diverging Conical Pipes." In Fluid Dynamics in Physics, Engineering and Environmental Applications. Springer Berlin Heidelberg, 2012. http://dx.doi.org/10.1007/978-3-642-27723-8_43.

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Hammond, P. S., A. W. Meredith, J. R. A. Pearson, and J. Billingham. "Modelling Gas-Liquid Flow through Pipes of Variable Cross-Section." In Fluid Mechanics and Its Applications. Springer Netherlands, 2000. http://dx.doi.org/10.1007/978-94-017-1996-4_22.

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Shalaby, Ahlam I. "Pipe Flow." In Fluid Mechanics for Civil and Environmental Engineers. CRC Press, 2018. http://dx.doi.org/10.1201/9781315156637-8.

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Levenspiel, Octave. "Flow of Incompressible Newtonian Fluids in Pipes." In Engineering Flow and Heat Exchange. Springer US, 2014. http://dx.doi.org/10.1007/978-1-4899-7454-9_2.

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Conference papers on the topic "Fluid flow in pipes"

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Rao, Sai Sashankh, and Harris Wong. "Fluid Flow in Polygonal Micro Heat Pipes." In ASME 2010 International Mechanical Engineering Congress and Exposition. ASMEDC, 2010. http://dx.doi.org/10.1115/imece2010-37073.

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Micro heat pipes have been used to cool microelectronic devices, but their heat transfer coefficients are low compared with those of conventional heat pipes. A typical micro heat pipe has a long and narrow cavity of polygonal cross section. A long vapor bubble occupies the center of the cavity, while the liquid fills the rest. As one end of the pipe is heated, the liquid evaporates and increases the vapor pressure. The higher pressure drives the vapor to the cold end where the vapor condenses and releases the latent heat. The condensate moves along the liquid-filled corners of the pipe back to
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Smits, Alexander, Michael Shockling, and James Allen. "Turbulent Flow in Smooth and Rough Pipes (invited)." In 4th AIAA Theoretical Fluid Mechanics Meeting. American Institute of Aeronautics and Astronautics, 2005. http://dx.doi.org/10.2514/6.2005-4807.

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Popescu, Mihaela. "Behavior of Flow-Induced Vibration in Corrugated Pipes." In 20th AIAA Computational Fluid Dynamics Conference. American Institute of Aeronautics and Astronautics, 2011. http://dx.doi.org/10.2514/6.2011-3395.

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Lyu, Shan, and Seyed Mohammad Taghavi. "Efficient Fluid-Fluid Displacement of Yield Stress Fluids in Axially Rotating Pipes." In ASME 2019 38th International Conference on Ocean, Offshore and Arctic Engineering. American Society of Mechanical Engineers, 2019. http://dx.doi.org/10.1115/omae2019-95382.

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Abstract Oil and gas well primary cementing operations involve pumping a sequence of fluids into the well, for example, cement along a circular pipe (casing) to remove (displace) in situ drilling mud. Cementing is vital to the implementation of zonal isolation and well integrity in the completion of oil and gas wells. The success of a cementing operation is largely determined by the displacement efficiency. There are several factors, such as rheological properties of fluids, geometrical specifications of the annulus, flow rate, and pipe movement, which can considerably affect the displacement
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Hellstrom, Fredrik, and Laszlo Fuchs. "Numerical computations of steady and unsteady flow in bended pipes." In 37th AIAA Fluid Dynamics Conference and Exhibit. American Institute of Aeronautics and Astronautics, 2007. http://dx.doi.org/10.2514/6.2007-4350.

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Hoang, Triem T., Robert W. Baldauff, Kwok H. Cheung, and Denis R. Mahony. "Non-Intrusive Fluid Flow Measurement Method for Loop Heat Pipes." In 53rd AIAA Aerospace Sciences Meeting. American Institute of Aeronautics and Astronautics, 2015. http://dx.doi.org/10.2514/6.2015-0708.

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Letelier, Mario F., Nicola´s Madariaga, and Dennis A. Siginer. "Unsteady Flow of a Non-Linear Viscoelastic Fluid in Pipes." In ASME 2004 International Mechanical Engineering Congress and Exposition. ASMEDC, 2004. http://dx.doi.org/10.1115/imece2004-59693.

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Flow of a viscoelastic fluid in round pipes is analyzed for the case where the pressure gradient is oscillatory with varying amplitude. The fluid is modelled according to Phan-Thien-Tanner’s constitutive equation. The analysis is carried out by using the perturbation method in which a material parameter is considered small. Velocity field and other kinematic and dynamic variables are evaluated for a range of relevant parameters. The results are compared with the base Newtonian and linear Maxwell flows. The effect of the PTT model in these type of flows is highlighted.
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Song, Fei, Chan Y. Ching, and Dan Ewing. "Fluid flow and heat transfer modeling in rotating heat pipes." In International Heat Transfer Conference 12. Begellhouse, 2002. http://dx.doi.org/10.1615/ihtc12.2730.

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Letelier, Mario F., and Dennis A. Siginer. "Oscillatory Flow of Magnetorheological Fluids in Pipes." In ASME 2006 International Mechanical Engineering Congress and Exposition. ASMEDC, 2006. http://dx.doi.org/10.1115/imece2006-13088.

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In this paper it is analysed the case of an oscillatory flow in a round pipe in which a magnetic flow is applied. In magnetorheological flows (MRF) the fluid develops yield stress, the strength of which depends on the intensity of the magnetic field. The analysis considers an oscillatory pressure gradient and an oscillatory magnetic field of different frequencies. It is investigated the effect of a cyclical yield stress on the frequency and amplitude of the flow velocity, including the phenomenon of resonance. In this study, the MFR is modelled as a Bingham fluid with time- dependent yield str
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Abushammala, Omran, Cécile Lemaître, Rainier Hreiz, and Éric Favre. "Maximizing Mass Transfer Using Highly Curved Helical Pipes: A CFD Investigation." In THE 6th NTERNATIONAL CONFERENCE ON FLUID FLOW, HEAT AND MASS TRANSFER. Avestia Publishing, 2019. http://dx.doi.org/10.11159/ffhmt19.145.

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Reports on the topic "Fluid flow in pipes"

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Homicz, Gregory Francis. Computational Fluid Dynamic simulations of pipe elbow flow. Office of Scientific and Technical Information (OSTI), 2004. http://dx.doi.org/10.2172/919140.

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Banas, A. O., M. B. Carver, and D. Unrau. Predictions of bubbly flows in vertical pipes using two-fluid models in CFDS-FLOW3D code. Office of Scientific and Technical Information (OSTI), 1995. http://dx.doi.org/10.2172/106996.

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Yoda, Minami. Structural Acoustics and Hydroacoustics Phenomena in Finite Fluid-Filled Pipes. Defense Technical Information Center, 1998. http://dx.doi.org/10.21236/ada368450.

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Kirkpatrick, J. R. Fluid flow effects on electroplating. Office of Scientific and Technical Information (OSTI), 1990. http://dx.doi.org/10.2172/6430941.

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Gibson, J. S. Joint Research on Computational Fluid Dynamics and Fluid Flow Control. Defense Technical Information Center, 1995. http://dx.doi.org/10.21236/ada308103.

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Cortez, Ricardo. Impulse-based methods for fluid flow. Office of Scientific and Technical Information (OSTI), 1995. http://dx.doi.org/10.2172/87798.

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Garabedian, Paul R. Computational Fluid Dynamics and Transonic Flow. Defense Technical Information Center, 1994. http://dx.doi.org/10.21236/ada288962.

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Kodres, Cal, and Gene Cooper. Solve Fluid Flow Problems With PHOENICS. Defense Technical Information Center, 1993. http://dx.doi.org/10.21236/ada289702.

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Garabedian, Paul R. Computational Fluid Dynamics and Transonic Flow. Defense Technical Information Center, 1994. http://dx.doi.org/10.21236/ada292797.

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Patnaik, Soumya S., Eugeniya Iskrenova-Ekiert, and Hui Wan. Multiscale Modeling of Multiphase Fluid Flow. Defense Technical Information Center, 2016. http://dx.doi.org/10.21236/ad1016834.

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