A distributed model for real-time flood forecasting in the Godavari Basin using space inputs

Korada Hari Venkata Durga Rao , Vala Venkateshwar Rao , Vinay Kumar Dadhwal , Gandarbha Behera , Jaswant Raj Sharma

International Journal of Disaster Risk Science ›› 2011, Vol. 2 ›› Issue (3) : 31 -40.

PDF
International Journal of Disaster Risk Science ›› 2011, Vol. 2 ›› Issue (3) : 31 -40. DOI: 10.1007/s13753-011-0014-7
Article

A distributed model for real-time flood forecasting in the Godavari Basin using space inputs

Author information +
History +
PDF

Abstract

Hydrological modelling of large river catchments has become a challenging task for water resources engineers due to its complexity in collecting and handling of both spatial and non-spatial data such as rainfall, gauge-discharge data, and topographic and hydraulic parameters. In this article, a flood forecast model is developed for the Godavari Basin, India through a distributed modelling approach using space inputs. The approach includes rainfall runoff modelling, hydrodynamic flow routing, calibration, and validation of the model with field discharge data. The study basin is divided into 128 subbasins to improve the model accuracy. Topographic and hydraulic parameters of each subbasin and channel are computed using the land use / land cover grid that is derived from the Indian Remote Sensing Satellite (IRS-P6) AWiFS sensor data (56 m resolution), Shuttled Radar Topographic Mission (SRTM) Digital Elevation Model (DEM), and the soil textural grid. The model is calibrated using the field hydrometeorological data of 2000 and validated with the data of 2001. The model was tested during the 2010 floods with real-time 3-hour interval hydrometeorological and daily evapotranspiration data. Accuracy in estimating the peak flood discharge and lag time was found to be very good. Flood forecast lead time is increased by 12 hours compared to conventional methods of forecasting.

Keywords

digital elevation model / distributed hydrological modelling / flood routing / Godavari Basin / real-time flood forecasting

Cite this article

Download citation ▾
Korada Hari Venkata Durga Rao, Vala Venkateshwar Rao, Vinay Kumar Dadhwal, Gandarbha Behera, Jaswant Raj Sharma. A distributed model for real-time flood forecasting in the Godavari Basin using space inputs. International Journal of Disaster Risk Science, 2011, 2(3): 31-40 DOI:10.1007/s13753-011-0014-7

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Bogner K., Kalas M.. Error Correction Methods and Evaluation of an Ensemble Based Hydrological Forecasting System for the Upper Danube Catchment. Atmospheric Science Letters, 2008, 9(2): 95-102 10.1002/asl.180

[2]

CWC Manual on Flood Forecasting, 1989, New Delhi: Central Water Commission

[3]

CWC. Reassessment of Water Resources Potential of India, 1999, New Delhi: Central Water Commission

[4]

De Roo A., Gouweleeuw B., Thielen J., Bates P., Horritt M. Development of European Flood Forecasting System. International Journal of River Basin Management, 2003, 1(1): 49-59 10.1080/15715124.2003.9635192

[5]

Durga Rao K. H. V., Bhanumurthy V., Roy P. S.. Application of Satellite Based Rainfall Products and SRTM DEM in Hydrological Modelling of the Brahmaputra Basin. Journal of Indian Society of Remote Sensing, 2009, 37(4): 539-552 10.1007/s12524-009-0051-5

[6]

Gupta, M. C., V. K. Sharma, L. C. Gupta, and B. K. Tamini, eds. 2001. Manual of Natural Disaster Management in India. National Centre for Disaster Management, Ministry of Agriculture, Government of India.

[7]

Jain M. K., Kothyari U. C., Ranga Raju K. G.. A GIS Based Distributed Rainfall-Runoff Model. Journal of Hydrology, 2004, 299(1–2): 107-135 10.1016/j.jhydrol.2004.04.024

[8]

Jaun S., Ahrens B.. Evaluation of a Probabilistic Hydrometeorological Forecast System. Hydrology and Earth System Sciences, 2009, 13: 1031-1043 10.5194/hess-13-1031-2009

[9]

Jorgensen, G. H., and J. Host-Madsen. 1997. Development of a Flood Forecasting System in Bangladesh. In Proceedings of Conference on Operational Water Management, 137–148. 3–6 September 1997, Copenhagen. AA Balkema.

[10]

Sahoo G. B., Ray C.. Flow Forecasting for a Hawaii Stream using Rating Curves and Neural Networks. Journal of Hydrology, 2006, 340(1–2): 119-121.

[11]

SCS National Engineering Handbook, 1972, Washington, DC: U.S. Department of Agriculture

[12]

Subramanya K.. Engineering Hydrology, 1991, New Delhi: Tata McGraw-Hill Publishing

[13]

Thielen J., Bartholmes J., Ramos M.-H., de Roo A.. The European Flood Alert System—Part 1: Concept and Development. Hydrology and Earth System Sciences, 2009, 13(2): 125-140 10.5194/hess-13-125-2009

[14]

Tsai C. W.. Flood Routing in Mild-Sloped Rivers—Wave Characteristics and Downstream Backwater Effect. Journal of Hydrology, 2005, 308(1–4): 151-167 10.1016/j.jhydrol.2004.10.027

[15]

U.S. Army Corps of Engineers. Hydrological Modelling System HEC-HMS Technical Reference Manual, 2000, Davis, CA: U.S. Army Corps of Engineers, Hydrologic Engineering Centre

[16]

U.S. Army Corps of Engineers Hydrological Modelling System HEC-HMS User’s Manual, 2001, Davis, CA: U.S. Army Corps of Engineers, Hydrologic Engineering Centre

[17]

U.S. Army Corps of Engineers Geospatial Hydrological Modelling Extension HECGeoHMS, User’s Manual, 2003, Davis, CA: U.S. Army Corps of Engineers, Hydrologic Engineering Centre

AI Summary AI Mindmap
PDF

110

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/