Mathematical Problems in Engineering

Advances in Numerical Techniques for Modelling Water Flows


Status
Published

Lead Editor

1Manchester Metropolitan University, Manchester, UK

2University of Edinburgh, Edinburgh, UK

3Beijing Normal University, Beijing, China


Advances in Numerical Techniques for Modelling Water Flows

Description

Water occupies about 71% of the earth’s surface area and is encountered in groundwater, reservoirs, channels, lakes, rivers, glaciers, and oceans. Water is essential for the survival and prosperity of human beings, but natural flood and drought disasters pose substantial societal and economic hazards. Understanding water flows and developing mitigation measures against potential negative impacts such as urban flooding and coastal storm surge inundation are important and extremely challenging research topics.

Advances in modern computer technology have meant that computational models have been routinely applied to the study of water flow problems in science and engineering since the late 1980s. Meanwhile, increasingly accurate and robust numerical methods have been developed for the solution of the equations that govern water flows. Typical methods include the conventional schemes, such as the finite difference method, finite volume method, and finite element method, and the relatively new approaches such as the lattice Boltzmann method, smoothed particle hydrodynamics, spectral element method, and discontinuous Galerkin method. However, new mathematical models and reliable numerical solvers have still to be developed for demanding applications to difficult environmental water flow problems involving multiple scales in space and time such as urban flooding in complicated street systems and violent wave impacts on coastal structures. Such models and solvers are being developed at present, and consequently it is timely to report the new and on-going research developments for the purposes of a better understanding of complicated water flows in the natural environment and effective management of the associated risks.

This special issue aims to publish state-of-the-art research on advances in numerical techniques for modelling water flows, including details of verification, validation, and performance tests. Original researches on all aspects of water flow modelling and its applications, including analytical solutions, mathematical models, and numerical techniques, are invited and will be considered for publication in this issue.

Potential topics include but are not limited to the following:

  • Mathematical models and analytical solutions
  • Computational or numerical methods
  • Acceleration techniques including GPU parallel computing
  • Verification and validation of new modelling techniques
  • High speed flows with turbulence
  • Flow-structure/vegetation interaction
  • Two-phase flows
  • Flooding and storm surge
  • High performance computing
  • Large-scale practical simulation
  • Big data analysis and visualization

Articles

  • Special Issue
  • - Volume 2017
  • - Article ID 3537026
  • - Research Article

Comparison of Different Turbulence Models for Numerical Simulation of Pressure Distribution in V-Shaped Stepped Spillway

Zhaoliang Bai | Jianmin Zhang
  • Special Issue
  • - Volume 2017
  • - Article ID 7898647
  • - Research Article

A New Mathematical Method for Solving Cuttings Transport Problem of Horizontal Wells: Ant Colony Algorithm

Liu Yongwang | Liu Yu-ming | ... | Bai Yan-feng
  • Special Issue
  • - Volume 2017
  • - Article ID 8917360
  • - Research Article

Multispeed Lattice Boltzmann Model with Space-Filling Lattice for Transcritical Shallow Water Flows

Y. Peng | J. P. Meng | J. M. Zhang
  • Special Issue
  • - Volume 2017
  • - Article ID 2614943
  • - Research Article

Numerical Study for Near-Bed Variables in Velocity-Skewed Oscillatory Sheet Flow Transport

Xin Chen | Zichao Zhang | ... | Xiaoyan Shi
  • Special Issue
  • - Volume 2017
  • - Article ID 3478158
  • - Research Article

Lattice Boltzmann Method of a Flooding Accident at Gopeng, Perak, Malaysia

Siti Habibah Shafiai | Diana Bazila Shahruzzaman | ... | Mohamed Latheef
  • Special Issue
  • - Volume 2017
  • - Article ID 5013826
  • - Research Article

Comprehensive Numerical Investigations of Unsteady Internal Flows and Cavitation Characteristics in Double-Suction Centrifugal Pump

Xuelin Tang | Mingde Zou | ... | Xiaoyan Shi
  • Special Issue
  • - Volume 2017
  • - Article ID 3252498
  • - Research Article

Shallow-Water-Equation Model for Simulation of Earthquake-Induced Water Waves

Hongzhou Ai | Lingkan Yao | ... | Yiliang Zhou
  • Special Issue
  • - Volume 2017
  • - Article ID 7897614
  • - Research Article

Numerical Investigation of the FSI Characteristics in a Tubular Pump

Shuo Wang | Liaojun Zhang | Guojiang Yin
Mathematical Problems in Engineering
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Acceptance rate11%
Submission to final decision118 days
Acceptance to publication28 days
CiteScore2.600
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