全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...

A Short Review on Computational Hydraulics in the Context of Water Resources Engineering

DOI: 10.4236/ojmsi.2022.101001, PP. 1-31

Keywords: Computational Hydraulics, Finite Difference Method, Finite Element Method, Finite Volume Method

Full-Text   Cite this paper   Add to My Lib

Abstract:

The term hydraulics is concerned with the conveyance of water that can consist of very simple processes to complex physical processes, such as flow in open rivers, flow in pipes, the flow of nutrients/sediments, the flow of groundwater to sea waves. The study of hydraulics is primarily a mixture of theory and experiments. Computational hydraulics is very helpful to quantify and predict flow nature and behavior. The

References

[1]  Çengel, Y.A., Turner, R.H., Cimbala, J.M. and Kanoglu, M. (2008) Fundamentals of Thermal-Fluid Sciences. McGraw-Hill, New York, 703.
[2]  Sarker, S. (2021) Hydraulics Lab Manual. 1-66.
https://doi.org/10.31224/osf.io/mxcvw
[3]  Kumar, M.S.M. (2009) Computational Hydraulics. Lecture of Civil Engineering. Indian Institute of Science, Bengaluru, 1-404.
https://nptel.ac.in/courses/105/108/105108125
[4]  Sarker, S. (2021) A Story on the Wave Spectral Properties of Water Hammer. 1-12.
https://doi.org/10.31224/osf.io/nhuzq
[5]  Sarker, S. (2021) Separation of Flood Plain Flow: 1-D Momentum Equation Solver. 1-7.
https://doi.org/10.31224/osf.io/sjcmv
[6]  Reza, A.A., Sarker, S. and Asha, S.A. (2014) An Application of 1-D Momentum Equation to Calculate Discharge in Tidal River: A Case Study on Kaliganga River. Technical Journal River Research Institute, 2, 77-86.
[7]  Sarker, S. (2021) Pipe Network Design and Analysis: An Example with WaterCAD. 1-10.
https://doi.org/10.31224/osf.io/c3aky
[8]  USACE (2002) Coastal Engineering Manual (CEM). US Army Corps of Engineers.
[9]  Duan, Y.Z. and Liu, G.J. (2016) Water Resource Pricing Study Based on Water Quality Fuzzy Evaluation: A Case Study of Hefei City. Computational Water, Energy, and Environmental Engineering, 5, 99-111.
https://doi.org/10.4236/cweee.2016.54010
[10]  Khan, I., Ahammad, M. and Sarker, S. (2014) A Study on River Bank Erosion of Jamuna River Using GIS and Remote Sensing Technology. International Journal of Engineering Development and Research, 2, 3365-3371.
http://www.ijedr.org/papers/IJEDR1404002.pdf
[11]  Yang, C.T. (2003) Chapter 3: Noncohesive Sediment Transport. In: Sediment Transport: Theory and Practice, Krieger Publishing, Malabar, 1-111.
[12]  Sarker, S. (2021) Investigating Topologic and Geometric Properties of Synthetic and Natural River Networks under Changing Climate. UCF STARS.
[13]  Sarker, S., Veremyev, A., Boginski, V. and Singh, A. (2019) Critical Nodes in River Networks. Scientific Reports, 9, Article No. 11178.
https://doi.org/10.1038/s41598-019-47292-4
[14]  Sarker, S., Veremyev, A., Boginski, V. and Singh, A. (2019) Spectral Properties of River Networks. AGUFM, EP51C-2107.
[15]  Sarker, S., Veremyev, A., Boginski, V. and Singh, A. (2018) On Critical Nodes in River Networks. American Geophysical Union Fall Meeting, EP33D-2446.
[16]  Sarker, S. and Singh, A. (2017) On the Topologic Properties of River Networks. American Geophysical Union Fall Meeting, IN33B-0128.

Full-Text

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133