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Original Articles

Modified log-wake law for turbulent flow in smooth pipes

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Pages 493-501 | Published online: 02 Feb 2010

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Zbigniew Kamiński. (2017) A simplified lumped parameter model for pneumatic tubes. Mathematical and Computer Modelling of Dynamical Systems 23:5, pages 523-535.
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Junke Guo. (2017) Eddy viscosity and complete log-law for turbulent pipe flow at high Reynolds numbers. Journal of Hydraulic Research 55:1, pages 27-39.
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Junke Guo & Jianmin Zhang. (2016) Velocity distributions in laminar and turbulent vegetated flows. Journal of Hydraulic Research 54:2, pages 117-130.
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Junke Guo. (2014) Modified log-wake-law for smooth rectangular open channel flow. Journal of Hydraulic Research 52:1, pages 121-128.
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Aldo Rona & Marco Grottadaurea. (2010) Generalized Coles' law and outer layer conformal mapping. Journal of Hydraulic Research 48:5, pages 674-679.
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Achanta Ramakrishna Rao & Bimlesh Kumar. (2009) Transition of turbulent pipe flow. Journal of Hydraulic Research 47:4, pages 529-533.
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Junke Guo, Pierre Y. Julien & Robert N. Meroney. (2005) Modified log-wake law for zero-pressure-gradient turbulent boundary layers. Journal of Hydraulic Research 43:4, pages 421-430.
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Panaitep Pongcharoenpit, Duangrudee Kositgittiwong & Chaiwat Ekkawatpanit. (2023) Developed log-wake law and turbulent behaviour of flow along a stepped spillway. Water Practice & Technology 18:11, pages 2705-2725.
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Titas Chattopadhyay & Snehasis Kundu. (2023) Modified Second Log-Wake Law for Mean Velocity Distributions Along Vertical and Transverse Directions in Smooth Open-Channel Turbulent Flows With Application to Natural Rivers. Iranian Journal of Science and Technology, Transactions of Civil Engineering 47:5, pages 3095-3121.
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Sarjati Sahoo, Jnana Ranjan Khuntia, Kamalini Devi, B. Sree Sai Prasad & Kishanjit Kumar Khatua. (2023) Turbulence modelling for depth-averaged velocity and boundary shear stress of a dense rigid grass bed open channel. AQUA — Water Infrastructure, Ecosystems and Society 72:9, pages 1748-1769.
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Feng ShangJonathan B. Burkhardt & Regan Murray. (2023) Random Walk Particle Tracking to Model Dispersion in Steady Laminar and Turbulent Pipe Flow. Journal of Hydraulic Engineering 149:7.
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Junke Guo. (2020) Second Log-Wake Law from Pipe Symmetry and its Applications in Symmetric and Antisymmetric Channel Flows. Journal of Hydraulic Engineering 146:11.
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Manotosh Kumbhakar. (2020) Streamwise velocity profile in open-channel flow based on Tsallis relative entropy. Chaos: An Interdisciplinary Journal of Nonlinear Science 30:7.
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Manotosh Kumbhakar, Koeli Ghoshal & Vijay P. Singh. (2020) Two-dimensional distribution of streamwise velocity in open channel flow using maximum entropy principle: Incorporation of additional constraints based on conservation laws. Computer Methods in Applied Mechanics and Engineering 361, pages 112738.
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Jinyou Lu, Yinjun Zhou, Yonghui Zhu, Junqiang Xia & Li Wei. (2018) Improved formulae of velocity distributions along the vertical and transverse directions in natural rivers with the sidewall effect. Environmental Fluid Mechanics 18:6, pages 1491-1508.
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Pierre Y. Julien. 2018. River Mechanics. River Mechanics.
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Yu Han, Shu-Qing Yang, Muttucumaru Sivakumar & Liu-Chao Qiu. (2017) Investigation of Velocity Distribution in Open Channel Flows Based on Conditional Average of Turbulent Structures. Mathematical Problems in Engineering 2017, pages 1-9.
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Andrea Shmueli, Tor Erling Unander & Ole Jørgen Nydal. (2013) Experimental and Numerical Evaluation and Optimization of a Non Standard Pitot/Sampling Probe. Engineering 05:12, pages 967-974.
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Laurent LassabatereJaan Hui PuHossein BonakdariClaude JoannisFrédérique Larrarte. (2013) Velocity Distribution in Open Channel Flows: Analytical Approach for the Outer Region. Journal of Hydraulic Engineering 139:1, pages 37-43.
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Jonathan Sands, Jonathan Gladin, Brian Kestner & Dimitri Mavris. (2012) Hybrid Wing Body Engine Cycle Design Exploration for Boundary Layer Ingesting (BLI) Propulsion Systems Under Design Uncertainty. Hybrid Wing Body Engine Cycle Design Exploration for Boundary Layer Ingesting (BLI) Propulsion Systems Under Design Uncertainty.
Robert Stieglitz & Volker HeinzelRobert Stieglitz & Volker Heinzel. 2012. Thermische Solarenergie. Thermische Solarenergie 273 386 .
Zbigniew Kamiński. (2011) Mathematical Modeling of Pneumatic Pipes in a Simulation of Heterogeneous Engineering Systems. Journal of Fluids Engineering 133:12.
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F. Aloui, E. Berrich & D. Pierrat. (2011) Experimental and Numerical Investigations of a Turbulent Flow Behavior in Isolated and Nonisolated Conical Diffusers. Journal of Fluids Engineering 133:1.
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Lelio Luzzi, Antonio Cammi, Valentino Di Marcello & Carlo Fiorina. (2010) An approach for the modelling and the analysis of the MSR thermo-hydrodynamic behaviour. Chemical Engineering Science 65:16, pages 4873-4883.
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S.-Q. Yang. (2010) Conditionally averaged turbulent structures in 2D channel flow. Proceedings of the Institution of Civil Engineers - Water Management 163:2, pages 79-88.
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Valentino Di Marcello, Antonio Cammi & Lelio Luzzi. (2010) A generalized approach to heat transfer in pipe flow with internal heat generation. Chemical Engineering Science 65:3, pages 1301-1310.
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Noor AfzalAbu SeenaAfzal Bushra. (2007) Power Law Velocity Profile in Fully Developed Turbulent Pipe and Channel Flows. Journal of Hydraulic Engineering 133:9, pages 1080-1086.
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Ya-kun Liu & Han-gen Ni. (2007) Modified Log-Wake Laws for Turbulent Flow of the Outer and Inner Regions in Smooth Pipes. Journal of Hydrodynamics 19:2, pages 188-194.
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Junke Guo. (2006) Self-Similarity of Mean-Flow in Pipe Turbulence. Self-Similarity of Mean-Flow in Pipe Turbulence.
Junke Guo. (2006) Applied Mathematical Model for Turbulent Boundary Layers. Applied Mathematical Model for Turbulent Boundary Layers.
Junke Guo & Pierre Y. Julien. (2006) Application of Modified Log-Wake Law in Open-Channels. Application of Modified Log-Wake Law in Open-Channels.

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