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
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Sarker, S. (2021) Hydraulics Lab Manual. 1-66. https://doi.org/10.31224/osf.io/mxcvw
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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
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Sarker, S. (2021) Pipe Network Design and Analysis: An Example with WaterCAD. 1-10. https://doi.org/10.31224/osf.io/c3aky
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USACE (2002) Coastal Engineering Manual (CEM). US Army Corps of Engineers.
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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.
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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
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[15]
Sarker, S., Veremyev, A., Boginski, V. and Singh, A. (2018) On Critical Nodes in River Networks. American Geophysical Union Fall Meeting, EP33D-2446.
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Sarker, S. and Singh, A. (2017) On the Topologic Properties of River Networks. American Geophysical Union Fall Meeting, IN33B-0128.