FLOODPLAIN DELINEATION IN MUGLA-DALAMAN PLAIN USING GIS BASED RIVER ANALYSIS SYSTEM
|
|
|
- Sydney Butler
- 10 years ago
- Views:
Transcription
1 FLOODPLAIN DELINEATION IN MUGLA-DALAMAN PLAIN USING GIS BASED RIVER ANALYSIS SYSTEM Dr. Murat Ali HATİPOĞLU Fatih KESKİN Kemal SEYREK State Hydraulics Works (DSI), Investigation and Planning Department Ankara, TURKEY ABSTRACT Floodplains are important land features that are highly discriminated from the neighboring uplands in terms of their hydrological and geomorphologic processes. The important step in floodplain studies is the determination of lateral floodplain extent and its variability in the plain. DSI had used traditional methods for the studies of floodplain, in the past years. Traditional method does not satisfy the needs of the real flood plain analysis. Because they do not consider the real topography in the longitudinal cross-section, change of the velocity, the contraction and expansion in the river bed. Use of the new technology is a must for determining floodplains. In this study, an application of HEC-RAS and HEC-GeoRAS model is applied in Mugla-Dalaman Plain. Due to its economic and touristic potential, Dalaman plain is very important. DSI had studied this area before and delineated the floodplain with traditional methods. In the recent years, some touristic hotels were constructed in the plain which are mostly in floodplain. The houses and lands of the local people prices are decreasing because of being in the flood plain. For the determination of floodplain, first, HEC-RAS simulations were performed to generate water surface profiles throughout the system. Floodplain zones for the design storms were reproduced in three dimensions with HEC-GeoRAS by overlaying the integrated terrain model for the region with the corresponding water surface TIN. As a result it was seen that the floodplain extend that was found by GIS based methods gives considerable better results than by traditional methods. Keywords: Dalaman plain, floodplain delineation, GIS, HEC-RAS, HEC- GeoRAS
2 PRACTICES ON RIVER BASIN MANAGEMENT 161 INTRODUCTION Due to its conditions related to geographical location, geology and topography, Turkey often undergoes adverse affects of natural disasters. Flooding is the second important natural hazard after the earthquakes, with 22 floods and 19 deaths per year on average. Floods in Turkey generally occur due to heavy rainfall on the costal areas of the northern, southern and western parts of Anatolia or on account of a sudden increase in air temperature, resulting in snow melt in the eastern and mountainous part of southeastern Anatolia. In the northern and central parts of the country both factors may be prevailed depending on the time of the year. As in most developing countries, in Turkey, there is one more an important factor which has to be considered during flood assessment. These are known as the factors reducing the flood plain capacity, artificially decreasing the available safe wetted area, and increasing the devastating effect of the floods; and the ones of the unauthorized use of the flood plains by the construction of local barriers and settlements, as in the case of the Izmir flood disaster in 1995, of the construction of inappropriate bridges, culverts, and creating new agricultural plots. This is very common application, however, especially in fertile river flood plains. DSI studies on flood protection and mitigating hazards of flooding have been carried on generally as with project activities including structural precautions in frame of duties and responsibilities mentioned in DSI Law. Besides, these include several studies on each process of flooding based on the determinations defined in flood water law and natural disasters legislation. Building protective structures against flood waters and torrents, and management of these structures have been given to DSI by its Establishment Law. DSI prepares with project activities including structural elements aimed at flood protection and mitigating hazards of flooding. Besides, DSI prepares multi-purpose storage structures for flood protection and control in the whole river basin or need for other water development requirements. Furthermore, DSI provides river basin improvement projects for flood protection in a certain restricted part of a basin because of urgency. According to related provisions of Flood Waters Law, areas which have high flood risk in different parts of our country have been announced as forbidden areas for any kind of urbanization. Within this frame work, 32 Government Decrees which have been determined since 1943 were compiled by DSI and published as a book with the name Decrees Related to Flood Protection, Exsiccation and Natural Disasters.
3 162 INTERNATIONAL CONGRESS ON RIVER BASIN MANAGEMENT In the process of preparation of development plans for the municipalities, State Hydraulic Works (DSI) is the main governmental organization that is responsible for identifying the floodplain. Investigations for flood risk of planning areas are conducted in order to be used as data for prepatory period of planning. These investigations are realized considering the demands come from municipalities or other related public agencies. They are also done for the circumstances that if the position of settlement and urbanization is dependent of an upper scale municipal plan or of wider extent regional plans. The results of these investigations are presented to related organizations and institutions that demand. Generally DSI uses a discharge of 500 year return period for the floodplain delineation in case of a dense settlement and urbanization in downstream. By using the traditional methods, identifying the real flood risk is not so easy. Because real dynamism of the river basin can not be shown due to limitations in the traditional methods. In the latest years there is an increasing trend for helping and supporting environmental planning decisions with simulation models because of the development of regulatory and planning tools. For example River basin development plans have a close link between the definition of physical phenomena such as floods and the characteristics of land planning limitations. Generally geomorphologic analyses are used in the definition of river floodplain, but definition of a risk or definition of a flooding of an area for a return period needs to use hydraulic and hydrologic models. Estimation of flood inundation and its risk is increasingly a major task in relevant national and local government bodies in world-wide. When river flow depth is reached in a flood event, water ceases to be contained solely in the main river channel and water spreads onto adjacent floodplains. This consists a 1D hydraulic routing procedure for channel flow, 2D or 3D over floodplain to enable simulation of flood water depth and hence inundation extent. These make the flood prediction a very complex process in both spatial and temporal contexts. Traditional engineering methods are are not easy to apply, and visual representation of the plan for a catchment is very simple. These problems can be partially overcome by the integration of a hydraulic modeling tool such as HEC-RAS with GIS. Thus the outputs from model can be used in GIS along with other spatial data for analysis and visualization. Incorporating HEC-RAS s capabilities with a GIS allow for analysis of the full impacts on flood extents, flood depths. Flood damage assessment from a cost/benefit analysis can also be linked to an optimization module with a graphical user interface(gui). At all stages of the integrated process model results can be presented to decision-makers in a clear and easily understandable formats.
4 PRACTICES ON RIVER BASIN MANAGEMENT 163 STUDY AREA The study area is the Dalaman Plain, which is located in Lower Dalaman river basin. The lower Dalaman river basin is situated at the southwest of Turkey within the Dalaman river basin (Fig1). The catchment area of the lower Dalaman river basin is about 5250 km 2. Dalaman river rises near Güntutan mountain and takes the name of Horzum at the beginning. The main tributaries of the Dalaman river are Cavdır, Aksu, Kocacay streams on the upper basin and Husniye, Kilcan, Gokcay and Cehennem streams on lower basin. The major lakes of the project are Sogut and Golhisar lakes on the upper basin. The mean annual natural flow of the river at the Akkopru dam location is estimated as 1773 million m 3 for the period of Lower Dalaman Basin Figure1 Location of Project site AIM OF THE STUDY Dalaman plain has been used for agricultural purposes for years. But due to latest touristic and business trends in the area makes the area attractive as a settlement place. Construction of touristic hotels in the plain increases the value of the land. In the latest years, there is a big trend for settlement in the floodplain. Due to the limitation of the floodplain which was identified earlier by DSI, people living in those areas have being difficulties to get municipal permission. This was resulted in illegal settlement through the area. The big problem is that touristic hotels constructed in the plain which are mostly in floodplain. Also Dalaman airport which is the center of transportation for the nearby areas is in the plain. The idea of this study is to identify flood risk on the Dalaman plain and define the possible flood water level by applying latest hydrologic / hydraulic modeling tools (HEC-RAS and HEC-GeoRAS) and GIS software.
5 164 INTERNATIONAL CONGRESS ON RIVER BASIN MANAGEMENT HEC-RAS MODELLING The model package River Analysis System (RAS) by the US Army Corps of Engineers Hydrologic Engineering Center (HEC) includes: - a steady flow model - an unsteady flow model - the consideration of a wide range of hydraulic structures - facilities for hydraulic design such as computation of localized scour at the piles of a bridge Because of the capability of defining wide range of physical processes it has proven very helpful in supporting all phases of flood management. In flood simulations with HEC-RAS following input data are required: channel geometry; boundary conditions; tributary inflows if any; and Manning roughness coefficient. The output data is the water level for each cross-section which was found after flood routing. HEC-RAS AND GIS INTEGRATION HEC-GeoRAS has been specifically designed to aid engineers with limited GIS experience in the development and display of hydraulic data for HEC-RAS. Knowledge of ArcGIS is advantageous, but not necessary to use GeoRAS. However, users must have enough experience modeling with HEC-RAS and river hydraulic to properly create and interpret GIS data sets. HEC-GeoRAS is an extension for use with ArcGIS that provides the users with a set of tools, procedures and utilities for the preparation of GIS data for import into Hydraulic Engineer Center s River Analysis System (HEC-RAS) and generation of GIS data from HEC-RAS output. This extension was developed though a Cooperative Research and Development Agreements between the Hydraulic Engineer Center (HEC) and the Environmental System Research Institute, Inc (ESRI). Users must have experience modeling with HEC-RAS and river hydraulics to properly create and interpret GIS data sets. GeoRAS provides the user with environments to manage; create and edit; process; and visualize data sets. Each environment is intended to lead the user through procedures in a clear and logical order. Geometric data for use in performing river analysis can be developed from a TIN of the land surface and four line coverages. The four line coverages are the Main
6 PRACTICES ON RIVER BASIN MANAGEMENT 165 Channel Invert Coverage, Cross Section Cut Line Coverage, Main Channel Banks Coverage, and Flow Paths Coverage. HEC-GeoRAS allows users to create required geometric data from an existing digital terrain model (DTM) and complementary data sets to run HEC-RAS Model. This extension creates an import file (RAS GIS Import File) containing river, reach and station identifiers, cross-sectional cut lines, cross-sectional surface lines, cross sectional bank stations, downstream reach lengths for the left overbank, main channel, and right overbank and cross-sectional roughness coefficient. HEC-RAS is capable of modeling subcritical, supercritical, or mixed flow regimes. Hydraulic calculations are performed at each cross section to compute water surface elevation, critical depth, energy grade elevation, and velocities. A hydraulic model of a river system depends on the development of geometric data that accurately depicts the land surface to be modeled. GIS provides the tools for storing and manipulating a three-dimensional representation of the land surface as a DTM, and more specifically to HEC-GeoRAS, as a TIN. Provided a TIN of the channel and adjacent floodplain area, linear data sets (line) can be created based on terrain features, and used to develop the required HEC-RAS data components by using ArcGIS, 3D Analyst and HEC-GeoRAS. APPLICATION OF THE MODEL In the modeling with HEC-RAS, Manning roughness coefficient (n) is one of the most input important parameter. Roughness coefficients are an indication of the relative channel roughness. Channel roughness is considered for calculating frictional energy loss between cross sections. Considering the features of this river reach, the Manning roughness coefficient for main channel and flood plain is taken as and respectively.. The n values are found from the calibration the flood event which was happened in Since the geometry, surface and river bed is nearly same in the river, same n values are used for each cross-section. The resistance parameter which is known to vary with water level, decreasing with increasing water level by decreasing the effective relative roughness, and then increasing again as the flow spills overbank, since floodplain roughness is usually higher than the channel roughness (Chow, 1959). So floodplain n value is taken as bigger than the river bed. Several simulations were done and tracks of previous big floods are used for the calibration. The other main input for HEC-RAS model is the river cross section. In this study, the contour map of the study areas were digitized from 1:25000 scale topographic maps and 1:5000 scale maps. Also, other features such as rivers, sea and settlements and their information were digitized from those maps. By using ArcGIS and 3D Analyst software, Triangulated Irregular Network (TIN) surface model were created from contour maps. As will be explained in following sections, cross section
7 166 INTERNATIONAL CONGRESS ON RIVER BASIN MANAGEMENT data was derived for each reach from TIN. But in order to increase the accuracy, cross section survey was also done at different river reach ranging between 300 m to 900 m which sometimes extent up to 3 km each side of the river bank (Figure 2). About 56 cross-section data is taken and integrated with the data derived from TIN for the modeling. Normally 56 cross-section is not enough for modeling such a river plain but, due to the constraints in the river bed (obstacles, houses, trees and among others), only 56 cross sections can be taken. To reduce the big transformation effect from one reach to another, cross section data is converted to as 25 meter intervals. This also reduces the formation of critical points in the longitudinal cross-section because of the smoothened passing from one reach to another. Figure 2: Plan view and the locations of the cross-sections Another input parameter is the inflow value from the upstream. Several studies were done to find the inflow in the upper reach. As mentioned above the upstream is restricted with Akkopru Dam. The dam has a gated spillway. There is no other tributary to the main river after the dam, so the outflow from the Dam spillway after flood routing is used for the inflow of the hydraulic modeling. In the feasibility study which was done in 1983 a return period of 100 years was used in the analysis by traditional way considering the situation of the plain at that time. But due to recent
8 PRACTICES ON RIVER BASIN MANAGEMENT 167 urbanization, touristic and economic potential of the plain 500 years return period is selected and used in this study. Boundary conditions are the main inputs in order to make the model to produce accurate results. The downstream of the river is discharging to the sea, so the downstream end boundary condition for the river is given as sea water level. The upstream boundary condition is given as the slope of the river bed where there is no other known value. The simulations were run in both sub-critical and super-critical flow scenarios. After an analysis of the results, it was seen that a sub-critical run is most acceptable where boundary conditions agrees better. The geometric data was imported into HEC-RAS for model completion and simulation. Data imported into HEC-RAS included the stream network and crosssectional geometry. Station-elevation data, bank stations, downstream reach lengths, Manning s n values, and levee information were imported for each cross section. Modification of cross-section and bank stations was accomplished using the graphical cross section editor in HEC-RAS. Flow data and boundary conditions were also input in HEC-RAS before simulating. The resulting longitudinal cross-section of the river is shown in figure 3. As it can be seen from the figure, due to the contraction or expansion in the cross-sections, some critical energy is formed. These can be overcome by adjusting the river bed or adding enough cross section to eliminate rough trespassing. 25 Geom: Imported Geom 01 Flow : Mansap Su Girisi Legend EG PF 1 WS PF 1 Crit PF 1 Ground Elevation (m) Main Channel Distance (m) Figure 3: Longitudinal Cross Section of the river After running various simulations in HEC-RAS, water surface profile results are exported to the GIS.
9 168 INTERNATIONAL CONGRESS ON RIVER BASIN MANAGEMENT FLOODPLAIN DELINEATION Inundation data sets are created from water surface elevation data at each crosssection location in concert with a bounding polygon. The bounding polygon limits the area inundated by water due to such features as levees, bridges and islands, represented in the hydraulic model. Results exported from HEC-RAS were imported into the GIS using GeoRAS. Data exported from HEC-RAS included water surface elevations at each cross section, velocity information at distributed points along each cross section, and bounding polygon information. The bounding polygon information defined the extent of each cross section as modeled in HEC-RAS for the given flow. Floodplain delineation and velocity data were developed which adhered to the bounding criterion. Floodplain delineation for each scenario was performed resulting in an inundation depth grid and floodplain polygon (Fig. 4). The polygon can be used as boundary region and the inundation depth can be used for the determination of the real flood risk. Figure 4 : New Flood Plain found after modeling
10 PRACTICES ON RIVER BASIN MANAGEMENT 169 CONCLUSION In this study, a coupled application of HEC-RAS and HEC-GeoRAS is used to delineate the flood plain and identify the flood risk in Dalaman Plain. HEC-RAS is used for hydraulic modeling and HEC-GeoRAS is used for GIS integration of the results of HEC-RAS. The HEC-GeoRAS is used successfully to illustrate flooding and to delineate floodplains. A floodplain for any simulated storm event can be visualized by utilizing flood elevations obtained from the model and topography. The old flood plain and the new flood plain which is found by modeling with HEC-RAS and HEC-GeoRAS is shown in Figure 5. It can be seen from the figure that the use of new model in delineation of the flood plain reduce the flood plain about 60% which also supports the use of new models in flood plain delineation. Figure 5: Old and New Flood Plains in Dalaman Plain
11 170 INTERNATIONAL CONGRESS ON RIVER BASIN MANAGEMENT The river discharges to the Mediterranean Sea, but none of the possible sea level rise is included in the study. So this study should be developed by including the sea level rise due to inverse wind effect and high sediment load during floods. Models are tools that can be easily used as decision support tools, but the human factor in the models should not be neglected. Also the user of the model should know the uncertainty and errors that can come from the collected data and must use the model with these errors and uncertainty (Keskin, 2006). The accuracy of the hydraulic model is the most important thing to the success of delineating floodplains. The HEC-GeoRAS simply visualize flood inundation results from the model. Therefore, if model accuracy is compromised, the floodplain delineation should be questionable. The accuracy of the topographic information is very critical to identify of delineating floodplains in 3 Dimension. In this study, the 1/5000 and 1/25000 scale maps are used which may not be refined enough for some other types of studies. Stream modeling is typically conducted to higher degree of precision. The extent of the floodplain can be very sensitive to small changes in the Digital Terrain Model. The results of the study indicate that integration of HEC-RAS with HEC- GeoRAS provides an effective environment for both flood risk analysis and mapping. The results showed that traditional methods for delineating flood plain should be replaced with new technological models. REFERENCES Chow, V.T Open Channel Flow. McGraw-Hill Book Company, New York, NY. Keskin F., 2006 : Flood Forecasting System of Turkey, 3rd APHW Conference on Wise Water Resources Management Towards Sustainable Growth and Poverty Reduction, October, Bangkok, Thailand. USACE, Hydrologic Engineering Center, 2000, Hydrologic Modeling System HEC- HMS, Technical Reference Manual, march USACE, Hydrologic Engineering Center, 2002, River Analysis System HEC-RAS, Hydraulic Reference Manual version 3.0,. USACE, Hydrologic Engineering Center, 2005, River Analysis System HEC-RAS, Hydraulic Reference Manual version 3.1.3,. USACE, Hydrologic Engineering Center, 1997 UNET, One Dimensional Unsteady flow through a full network of open channels, User s Manual, Davis, Ca., Lower Dalaman Project Master Plan Report, 1983, DSI, Ankara Cameron T. Ackerman, Thomas A. Evans, Gary W. Brunner, HEC-GeoRAS: Linking GIS to Hydraulic Analysis Using ARC/INFO and HEC-RAS
Environmental Data Management Programs
Hydrologic Engineering Centre (HEC) Software CD Collection of programs, developed by the U.S. Army Corps of Engineers Environmental Data Management Programs Name: HEC-DSS Package Purpose: Data Storage
Using GIS Data With HEC-RAS
C H A P T E R 14 Using GIS Data With HEC-RAS HEC-RAS has the ability to import three-dimensional (3D) river schematic and cross section data created in a GIS or CADD system. While the HEC- RAS software
Appendix 4-C. Open Channel Theory
4-C-1 Appendix 4-C Open Channel Theory 4-C-2 Appendix 4.C - Table of Contents 4.C.1 Open Channel Flow Theory 4-C-3 4.C.2 Concepts 4-C-3 4.C.2.1 Specific Energy 4-C-3 4.C.2.2 Velocity Distribution Coefficient
HEC-RAS. River Analysis System. Applications Guide. Version 4.1 January 2010. US Army Corps of Engineers Hydrologic Engineering Center CPD-70
US Army Corps of Engineers Hydrologic Engineering Center HEC-RAS HEC-RAS River Analysis System Applications Guide Version 4.1 January 2010 Approved for Public Release. Distribution Unlimited CPD-70 REPORT
CHAPTER 9 CHANNELS APPENDIX A. Hydraulic Design Equations for Open Channel Flow
CHAPTER 9 CHANNELS APPENDIX A Hydraulic Design Equations for Open Channel Flow SEPTEMBER 2009 CHAPTER 9 APPENDIX A Hydraulic Design Equations for Open Channel Flow Introduction The Equations presented
MIKE 21 FLOW MODEL HINTS AND RECOMMENDATIONS IN APPLICATIONS WITH SIGNIFICANT FLOODING AND DRYING
1 MIKE 21 FLOW MODEL HINTS AND RECOMMENDATIONS IN APPLICATIONS WITH SIGNIFICANT FLOODING AND DRYING This note is intended as a general guideline to setting up a standard MIKE 21 model for applications
2D Modeling of Urban Flood Vulnerable Areas
2D Modeling of Urban Flood Vulnerable Areas Sameer Dhalla, P.Eng. Dilnesaw Chekol, Ph.D. A.D. Latornell Conservation Symposium November 22, 2013 Outline 1. Toronto and Region 2. Evolution of Flood Management
The Alternatives of Flood Mitigation in The Downstream Area of Mun River Basin
The Alternatives of Flood Mitigation in The Downstream Area of Mun River Basin Dr.Phattaporn Mekpruksawong 1, Thana Suwattana 2 and Narong Meepayoong 3 1 Senior Civil Engineer, Office of Project Management,
USSD Workshop on Dam Break Analysis Applied to Tailings Dams
USSD Workshop on Dam Break Analysis Applied to Tailings Dams Antecedents Newtonian / non-newtonian flows Available models that allow the simulation of non- Newtonian flows (tailings) Other models used
DANIELS RUN STREAM RESTORATION, FAIRFAX, VIRGINIA: FLOODPLAIN ANALYSIS REPORT
DANIELS RUN STREAM RESTORATION, FAIRFAX, VIRGINIA: FLOODPLAIN ANALYSIS REPORT By: Conor C. Shea Stream Habitat Assessment and Restoration Program U.S. Fish and Wildlife Service CBFO-S07-01 Prepared in
Evaluation of Open Channel Flow Equations. Introduction :
Evaluation of Open Channel Flow Equations Introduction : Most common hydraulic equations for open channels relate the section averaged mean velocity (V) to hydraulic radius (R) and hydraulic gradient (S).
USING DETAILED 2D URBAN FLOODPLAIN MODELLING TO INFORM DEVELOPMENT PLANNING IN MISSISSAUGA, ON
22nd Canadian Hydrotechnical Conference 22e Conférence canadienne d hydrotechnique Water for Sustainable Development : Coping with Climate and Environmental Changes L eau pour le développement durable:
Employing Appropriate Software for Dam break Analysis and Flood Line rendering
Employing Appropriate Software for Dam break Analysis and Flood Line rendering 1. Background The specialist field of Dam Safety has been developing in SA since about the 80 s. This has led to a well-developed
Methods for Determination of Safe Yield and Compensation Water from Storage Reservoirs
US Army Corps of Engineers Hydrologic Engineering Center Methods for Determination of Safe Yield and Compensation Water from Storage Reservoirs October 1966 Approved for Public Release. Distribution Unlimited.
Hydrologic Engineering Techniques for Regional Water Resources Planning
US Army Corps of Engineers Hydrologic Engineering Center Hydrologic Engineering Techniques for Regional Water Resources Planning October 1969 Approved for Public Release. Distribution Unlimited. TP-17
Appendix C - Risk Assessment: Technical Details. Appendix C - Risk Assessment: Technical Details
Appendix C - Risk Assessment: Technical Details Page C1 C1 Surface Water Modelling 1. Introduction 1.1 BACKGROUND URS Scott Wilson has constructed 13 TUFLOW hydraulic models across the London Boroughs
ROSE CREEK WATERSHED HYDROLOGIC, HYDRAULIC, SEDIMENT TRANSPORT, AND GEOMORPHIC ANALYSES TASK 1 EXISTING DATA AND INFORMATION SUMMARY REPORT BACKGROUND
ROSE CREEK WATERSHED HYDROLOGIC, HYDRAULIC, SEDIMENT TRANSPORT, AND GEOMORPHIC ANALYSES TASK 1 EXISTING DATA AND INFORMATION SUMMARY REPORT BACKGROUND The Rose Creek Watershed (RCW) consists of three planning
AZ EGER-PATAK HIDROLÓGIAI VIZSGÁLATA, A FELSZÍNI VÍZKÉSZLETEK VÁRHATÓ VÁLTOZÁSÁBÓL ADÓDÓ MÓDOSULÁSOK AZ ÉGHAJLATVÁLTOZÁS HATÁSÁRA
AZ EGER-PATAK HIDROLÓGIAI VIZSGÁLATA, A FELSZÍNI VÍZKÉSZLETEK VÁRHATÓ VÁLTOZÁSÁBÓL ADÓDÓ MÓDOSULÁSOK AZ ÉGHAJLATVÁLTOZÁS HATÁSÁRA GÁBOR KEVE 1, GÉZA HAJNAL 2, KATALIN BENE 3, PÉTER TORMA 4 EXTRAPOLATING
HEC-RAS River Analysis System
Table of Contents US Army Corps of Engineers Hydrologic Engineering Center HEC-RAS River Analysis System Hydraulic Reference Manual Version 4.1 January 010 Approved for Public Release. Distribution Unlimited
Performing a Steady Flow Analysis
C H A P T E R 7 Performing a Steady Flow Analysis This chapter discusses how to calculate steady flow water surface profiles. The chapter is divided into two parts. The first part discusses how to enter
Quality Assurance Reviews of Hydraulic Models Developed for the Central Valley Floodplain Evaluation and Delineation Program
Quality Assurance Reviews of Hydraulic Models Developed for the Central Valley Floodplain Evaluation and Delineation Program Techniques Applied and Lessons Learned Seth Ahrens, P.E., CFM Selena Forman,
Application of Google Earth for flood disaster monitoring in 3D-GIS
Disaster Management and Human Health Risk II 271 Application of Google Earth for flood disaster monitoring in 3D-GIS M. Mori & Y. L. Chan Department of Information and Computer Science, Kinki University,
Estimating Potential Reduction Flood Benefits of Restored Wetlands
Estimating Potential Reduction Flood Benefits of Restored Wetlands Kenneth W. Potter University of Wisconsin Introduction Throughout the summer of 1993 a recurring question was the impact of wetland drainage
Catchment Scale Processes and River Restoration. Dr Jenny Mant [email protected]. The River Restoration Centre therrc.co.uk
Catchment Scale Processes and River Restoration Dr Jenny Mant [email protected] The River Restoration Centre therrc.co.uk 3 Main Catchment Elements Hydrology Energy associated with the flow of water affects
SIMPLIFIED INUNDATION MAPS FOR EMERGENCY ACTION PLANS. National Dam Safety Review Board Emergency Action Plan Workgroup
SIMPLIFIED INUNDATION MAPS FOR EMERGENCY ACTION PLANS National Dam Safety Review Board Emergency Action Plan Workgroup EXECUTIVE SUMMARY Development of Emergency Action Plans (EAPs) for all high and significant
A Method Using ArcMap to Create a Hydrologically conditioned Digital Elevation Model
A Method Using ArcMap to Create a Hydrologically conditioned Digital Elevation Model High resolution topography derived from LiDAR data is becoming more readily available. This new data source of topography
2.0 BASIC CONCEPTS OF OPEN CHANNEL FLOW MEASUREMENT
2.0 BASIC CONCEPTS OF OPEN CHANNEL FLOW MEASUREMENT Open channel flow is defined as flow in any channel where the liquid flows with a free surface. Open channel flow is not under pressure; gravity is the
Impact of water harvesting dam on the Wadi s morphology using digital elevation model Study case: Wadi Al-kanger, Sudan
Impact of water harvesting dam on the Wadi s morphology using digital elevation model Study case: Wadi Al-kanger, Sudan H. S. M. Hilmi 1, M.Y. Mohamed 2, E. S. Ganawa 3 1 Faculty of agriculture, Alzaiem
Topic 8: Open Channel Flow
3.1 Course Number: CE 365K Course Title: Hydraulic Engineering Design Course Instructor: R.J. Charbeneau Subject: Open Channel Hydraulics Topics Covered: 8. Open Channel Flow and Manning Equation 9. Energy,
How To Understand And Understand The Flood Risk Of Hoang Long River In Phuon Vietnam
FLOOD HAZARD AND RISK ASSESSMENT OF HOANG LONG RIVER BASIN, VIETNAM VU Thanh Tu 1, Tawatchai TINGSANCHALI 2 1 Water Resources University, Assistant Professor, 175 Tay Son Street, Dong Da District, Hanoi,
Procedures for No-Rise Certification For Proposed Developments in the Regulatory Floodway
US Department of Homeland Security Region X 130 228 th Street, SW Bothell, WA 98021 Procedures for No-Rise Certification For Proposed Developments in the Regulatory Floodway Section 60.3 (d) (3) of the
HYDROLOGIC/HYDRAULIC MODELING OF WESTMINSTER WATERSHED ORANGE COUNTY, CALIFORNIA
HYDROLOGIC/HYDRAULIC MODELING OF WESTMINSTER WATERSHED ORANGE COUNTY, CALIFORNIA James Chieh, Ph.D., P.E., Senior Hydraulic Engineer, USACE, Los Angeles, California, [email protected]; Jay Pak,
A Flood Warning System for City of Findlay, Ohio
A Flood Warning System for City of Findlay, Ohio Matt Whitehead US Geological Survey, Ohio Water Science Center 6480 Doubletree Avenue Columbus, Ohio 43229 Abstract The U.S. Geological Survey (USGS) and
EFFECTS OF ARUNDO DONAX ON RIVER HYDRAULICS, SEDIMENT TRANSPORT, AND GEOMORPHOLOGY, SANTA MARGARITA RIVER, CALIFORNIA
EFFECTS OF ARUNDO DONAX ON RIVER HYDRAULICS, SEDIMENT TRANSPORT, AND GEOMORPHOLOGY, SANTA MARGARITA RIVER, CALIFORNIA René Leclerc Geomorphologist Robert C. MacArthur, Ph.D., P.E. Principal Headwaters
City of London Climate Change Adaptation Strategy Dealing with Extreme Rainfall Events
City of London Climate Change Adaptation Strategy Dealing with Extreme Rainfall Events May 29, 2014 Presented by: Berta Krichker M.Eng., FEC, P.Eng. Manager of Stormwater Unit Environmental and Engineering
Columbia River Project Water Use Plan. Monitoring Program Terms of Reference
Columbia River Project Water Use Plan Revelstoke Flow Management Plan Monitoring Program Terms of Reference CLBMON-15a Middle Columbia River Physical Habitat Monitoring Revision January 29, 2015 Monitoring
ADDING VALUE TO BOM FLOOD PREDICTIONS (WITHOUT MESSING AROUND WITH MODELS)
ADDING VALUE TO BOM FLOOD PREDICTIONS (WITHOUT MESSING AROUND WITH MODELS) Mark Babister Steve Opper Peter Cinque Matthew Chadwick Belinda Davies Director, Webb McKeown & Associates Director, Emergency
Prepared by. Drew Davidge
Flood Damage Estimation in the Upper Thames River Watershed CFCAS project: Assessment of Water Resources Risk and Vulnerability to Changing Climatic Conditions Project Report VII. August 2005 Prepared
Using the Spatial Database Engine to develop a FEMA friendly Database and Asset Management Tool José Maria Guzmán, PE February 2009 GAFM 4th Annual Technical Conference Columbus, GA Outline Typical Datasets
SIMULATION OF SEDIMENT TRANSPORT AND CHANNEL MORPHOLOGY CHANGE IN LARGE RIVER SYSTEMS. Stephen H. Scott 1 and Yafei Jia 2
US-CHINA WORKSHOP ON ADVANCED COMPUTATIONAL MODELLING IN HYDROSCIENCE & ENGINEERING September 19-21, Oxford, Mississippi, USA SIMULATION OF SEDIMENT TRANSPORT AND CHANNEL MORPHOLOGY CHANGE IN LARGE RIVER
TOPOGRAPHIC DATA AND ROUGHNESS PARAMETERISATION EFFECTS ON 1D FLOOD INUNDATION MODELS. Supervisor: S. Anders Brandt Examinator: Bo Malmström
TOPOGRAPHIC DATA AND ROUGHNESS PARAMETERISATION EFFECTS ON 1D FLOOD INUNDATION MODELS by Nancy Joy Lim Supervisor: S. Anders Brandt Examinator: Bo Malmström 1 OUTLINE I. Introduction II. Study Area III.
Abaya-Chamo Lakes Physical and Water Resources Characteristics, including Scenarios and Impacts
LARS 2007 Catchment and Lake Research Abaya-Chamo Lakes Physical and Water Resources Characteristics, including Scenarios and Impacts Seleshi Bekele Awulachew International Water Management Institute Introduction
How To Develop A Flood Risk Map
Recommended Procedures for Flood Velocity Data Development November 2012 Federal Emergency Management Agency Department of Homeland Security 500 C Street, SW Washington, DC 20472 This document was prepared
Guide To Bridge Planning Tools
Guide To Bridge Planning Tools The following bridge planning and hydrotechnical analysis tools (Excel spreadsheets, some with associated databases and VBA code), and GIS data-sets are available from the
LIDAR and Digital Elevation Data
LIDAR and Digital Elevation Data Light Detection and Ranging (LIDAR) is being used by the North Carolina Floodplain Mapping Program to generate digital elevation data. These highly accurate topographic
1 in 30 year 1 in 75 year 1 in 100 year 1 in 100 year plus climate change (+30%) 1 in 200 year
Appendix C1 Surface Water Modelling 1 Overview 1.1 The Drain London modelling was designed to analyse the impact of heavy rainfall events across each London borough by assessing flow paths, velocities
How to Read a Flood Insurance Rate Map Tutorial. Developed September 2000 Updated June 2003
How to Read a Flood Insurance Rate Map Tutorial Developed September 2000 Updated June 2003 Learning Objectives: The Objectives of the tutorial are: 1. To show the various types of flood maps, 2. To describe
Guidance for Flood Risk Analysis and Mapping. Changes Since Last FIRM
Guidance for Flood Risk Analysis and Mapping Changes Since Last FIRM May 2014 This guidance document supports effective and efficient implementation of flood risk analysis and mapping standards codified
ART Vulnerability and Risk Assessment Report September 2012 Appendix C. ART GIS Exposure Analysis
Adapting to Rising Tides GIS Exposure Analysis The aim of this appendix is to familiarize the reader with the data and methodology that was used to conduct an analysis of shoreline and community asset
CITY UTILITIES DESIGN STANDARDS MANUAL
CITY UTILITIES DESIGN STANDARDS MANUAL Book 2 (SW) SW9 June 2015 SW9.01 Purpose This Chapter provides information for the design of open channels for the conveyance of stormwater in the City of Fort Wayne.
GIS APPLICATIONS IN URBAN DRAINAGE MASTER PLANNING. Robert J. Muir *
GIS APPLICATIONS IN URBAN DRAINAGE MASTER PLANNING Robert J. Muir * ABSTRACT: In recent years, GIS applications in water resources management have become widespread and diverse in the Province of Ontario,
COMPARING DSS-WISE- LITE TO OTHER DAM BREACH SOFTWARE
National Dam Safety Program Technical Seminar No. 22 Dam Breach Modeling and Consequence Assessment National Emergency Training Center February 18-19, 2015 Emmitsburg, MD Brian Shane Cook, PE, LSIT formerly
UNION COUNTY, FLORIDA AND INCORPORATED AREAS
UNION COUNTY, FLORIDA AND INCORPORATED AREAS COMMUNITY NAME COMMUNITY NUMBER LAKE BUTLER, CITY OF 120595 RAIFORD, TOWN OF 120593 UNION COUNTY 120422 (UNINCORPORATED AREAS) WORTHINGTON SPRINGS, CITY OF
06 - NATIONAL PLUVIAL FLOOD MAPPING FOR ALL IRELAND THE MODELLING APPROACH
06 - NATIONAL PLUVIAL FLOOD MAPPING FOR ALL IRELAND THE MODELLING APPROACH Richard Kellagher 1, Mike Panzeri 1, Julien L Homme 1, Yannick Cesses 1, Ben Gouldby 1 John Martin 2, Oliver Nicholson 2, Mark
Section 5 Floodplain Management Tools
5.1 Floodprone Areas One of the major elements of the Master Plan is the updated 100-year floodplain and floodway boundary maps. This information provided the most up-to-date tools to protect homes and
Lower Raritan Watershed Management Area Stormwater & Flooding Subcommittee Strategy Worksheet LRSW-S3C1
Strategy Name: Reduce Existing Potential for Flood Damages LRSW-S3C1. Develop and implement a program to: Minimize flood damages through the use of structural measures. Minimize flood damages through the
Flash Flood Science. Chapter 2. What Is in This Chapter? Flash Flood Processes
Chapter 2 Flash Flood Science A flash flood is generally defined as a rapid onset flood of short duration with a relatively high peak discharge (World Meteorological Organization). The American Meteorological
A disaster occurs at the point of contact between social activities and a natural phenomenon of unusual scale.
Hazard Mapping and Vulnerability Assessment Mr. Toshiaki Udono Senior Project Manager, Kansai Division, PASCO Corporation, Japan Mr. Awadh Kishor Sah Project Manager, Project Implementation Department,
FLOOD PROTECTION AND ECOSYSTEM SERVICES IN THE CHEHALIS RIVER BASIN. May 2010. Prepared by. for the. 2010 by Earth Economics
FLOOD PROTECTION AND ECOSYSTEM SERVICES IN THE CHEHALIS RIVER BASIN May 2010 Prepared by for the Execubve Summary The Chehalis Basin experienced catastrophic flooding in 2007 and 2009. In response, the
3D Model of the City Using LiDAR and Visualization of Flood in Three-Dimension
3D Model of the City Using LiDAR and Visualization of Flood in Three-Dimension R.Queen Suraajini, Department of Civil Engineering, College of Engineering Guindy, Anna University, India, [email protected]
Interactive comment on A simple 2-D inundation model for incorporating flood damage in urban drainage planning by A. Pathirana et al.
Hydrol. Earth Syst. Sci. Discuss., 5, C2756 C2764, 2010 www.hydrol-earth-syst-sci-discuss.net/5/c2756/2010/ Author(s) 2010. This work is distributed under the Creative Commons Attribute 3.0 License. Hydrology
Prattsville Berm Removal Project. 1.0 Project Location
Prattsville Berm Removal Project 1.0 Project Location The project site is located between the New York State Route 23 Bridge over the Schoharie Creek and the Schoharie Reservoir. The restoration plan encompassed
New Brunswick s Flood Risk Reduction Strategy. Province of New Brunswick PO 6000, Fredericton NB E3B 5H1. www.gnb.ca
New Brunswick s Flood Risk Reduction Strategy i New Brunswick s Flood Risk Reduction Strategy Province of New Brunswick PO 6000, Fredericton NB E3B 5H1 2014 www.gnb.ca ISBN 978-1-4605-0533-5 (print edition)
Introduction to GIS (Basics, Data, Analysis) & Case Studies. 13 th May 2004. Content. What is GIS?
Introduction to GIS (Basics, Data, Analysis) & Case Studies 13 th May 2004 Content Introduction to GIS Data concepts Data input Analysis Applications selected examples What is GIS? Geographic Information
Geoprocessing Tools for Surface and Basement Flooding Analysis in SWMM
3 Geoprocessing Tools for Surface and Basement Flooding Analysis in SWMM Eric White, James Knighton, Gary Martens, Matthew Plourde and Rajesh Rajan A geoprocessing routine was used for the development
Sample DEQ Plan Submitter s Checklist for Stormwater Management Plans
APPENDIX IV Version: February 2, 2015 Sample DEQ Plan Submitter s Checklist for Stormwater Management Plans Please fill in all blanks and please reference the plan sheets/pages where the information may
Building & Developing the Environmental
Building & Developing the Environmental Web Explorer for Riyadh City Authors: Engineer Yousef Bin Othman Al-Fariheedi Manager of Environmental Data Unit Environmental Management and Protection Department
The Hydrologic Engineering Center Training Course on
The Hydrologic Engineering Center Training Course on SEDIMENT TRANSPORT ANALYSIS WITH HEC-RAS Davis, California Course Objectives This course is intended to prepare engineers to perform studies using various
DEVELOPING AN INUNDATION MAP STANDARD FOR THE U.S. ARMY CORPS OF ENGINEERS
DEVELOPING AN INUNDATION MAP STANDARD FOR THE U.S. ARMY CORPS OF ENGINEERS Will Breitkreutz, Geographer, U.S. Army Corps of Engineers Kansas City District, Kansas City, Missouri, [email protected]
SEDIMENT TRANSPORT CAPACITY OF PRESSURE FLOW AT BRIDGES
SDIMNT TRANSORT CAACITY OF RSSUR FLOW AT BRIDGS Martin N.R. Jaeggi Consulting river engineer, Bergholzweg 22, 8123 bmatingen, Switzerland phone +41 44 980 36 26, fax +41 44 980 36 30, e-mail: [email protected]
REGIONAL SEDIMENT MANAGEMENT: A GIS APPROACH TO SPATIAL DATA ANALYSIS. Lynn Copeland Hardegree, Jennifer M. Wozencraft 1, Rose Dopsovic 2 INTRODUCTION
REGIONAL SEDIMENT MANAGEMENT: A GIS APPROACH TO SPATIAL DATA ANALYSIS Lynn Copeland Hardegree, Jennifer M. Wozencraft 1, Rose Dopsovic 2 ABSTRACT: Regional sediment management (RSM) requires the capability
CHAPTER 3 STORM DRAINAGE SYSTEMS
CHAPTER 3 STORM DRAINAGE SYSTEMS 3.7 Storm Drains 3.7.1 Introduction After the tentative locations of inlets, drain pipes, and outfalls with tail-waters have been determined and the inlets sized, the next
New challenges of water resources management: Title the future role of CHy
New challenges of water resources management: Title the future role of CHy by Bruce Stewart* Karl Hofius in his article in this issue of the Bulletin entitled Evolving role of WMO in hydrology and water
ANALYSIS OF A ANTROPIC INFLUENCES IN A FLOODPLAN
ANALYSIS OF A ANTROPIC INFLUENCES IN A FLOODPLAN M.C.S. Pereira 1&2 ; J.R.S. Martins 1 ; R.M. Lucci 2 and L.F.O.L, Yazaki 2 1. Escola Politécnica da Universidade de São Paulo, Brazil 2. Fundação Centro
Fort Dodge Stormwater Master Planning. Prepared By: Ralph C. Stark, Jr., P.E., C.F.M. Joel N. Krause, P.E., C.F.M.
Fort Dodge Stormwater Master Planning Prepared By: Ralph C. Stark, Jr., P.E., C.F.M. Joel N. Krause, P.E., C.F.M. Project Location Project Background Flooding History Localized flooding and storm sewer
Floodplain Connectivity in Restoration Design
Floodplain Connectivity in Restoration Design 2015 Symposium on Restoration in a Contaminated Environment: Lessons Learned and Challenges in Moving Forward Part II April 2015 Karin Boyd Applied Geomorphology,
Operational methodology to assess flood damages in Europe
IIASA-DPRI 2008 Operational methodology to assess flood damages in Europe Contributors: Nicola Lugeri, Carlo Lavalle, Elisabetta Genovese 1 Focus of ADAM work on extremes Types Floods, Heat-wave, Drought
Floodplain Mapping Using HEC-RAS and ArcView GIS
CRWR Online Report 99-1 Floodplain Mapping Using HEC-RAS and ArcView GIS by Eric Tate, M.S.E. Graduate Research Assistant and David Maidment, PhD. Principal Investigator May 1999 CENTER FOR RESEARCH IN
Emergency Spillways (Sediment basins)
Emergency Spillways (Sediment basins) DRAINAGE CONTROL TECHNIQUE Low Gradient Velocity Control Short-Term Steep Gradient Channel Lining Medium-Long Term Outlet Control Soil Treatment Permanent [1] [1]
ROLE OF THE MODELING, MAPPING, AND CONSEQUENCES PRODUCTION CENTER
ROLE OF THE MODELING, MAPPING, AND CONSEQUENCES PRODUCTION CENTER Russ Wyckoff, P.E., CFM, MMC Modeling Lead, Tulsa District, USACE, Tulsa, Oklahoma, [email protected] ABSTRACT: The goal of
A HYDROLOGIC NETWORK SUPPORTING SPATIALLY REFERENCED REGRESSION MODELING IN THE CHESAPEAKE BAY WATERSHED
A HYDROLOGIC NETWORK SUPPORTING SPATIALLY REFERENCED REGRESSION MODELING IN THE CHESAPEAKE BAY WATERSHED JOHN W. BRAKEBILL 1* AND STEPHEN D. PRESTON 2 1 U.S. Geological Survey, Baltimore, MD, USA; 2 U.S.
Modeling of Morphou (Güzelyurt) Flood and Remedial Measures 1
Digest 2013, December 2013, 1659-1673 Modeling of Morphou (Güzelyurt) Flood and Remedial Measures 1 Erdal ŞAHİN* Bertuğ AKINTUĞ** A. Melih YANMAZ*** ABSTRACT Flash floods are known to result in excessive
OPEN-CHANNEL FLOW. Free surface. P atm
OPEN-CHANNEL FLOW Open-channel flow is a flow of liquid (basically water) in a conduit with a free surface. That is a surface on which pressure is equal to local atmospheric pressure. P atm Free surface
ECONOMIC ANALYSIS FLOOD DAMAGE REDUCTION. Lower Carmel River Floodplain Restoration and Enhancement Project
ECONOMIC ANALYSIS FLOOD DAMAGE REDUCTION Lower Carmel River Floodplain Restoration and Enhancement Project I. Description of the Project and its Relationship to Other Projects in the Proposal The Lower
Risk and vulnerability assessment of the build environment in a dynamic changing society
Risk and vulnerability assessment of the build environment in a dynamic changing society Limnei Nie SINTEF Building and infrastructure, P.O.Box 124 Blindern, NO-0314 Oslo, Norway. [email protected]
Modelling floods and damage assessment using GIS
HydroGIS 96: Application of Geographic Information Systems in Hydrology and Water Resources Management (Proceedings of the Vienna Conference, April 1996). IAHS Publ. no. 235, 1996. 299 Modelling floods
Plan Plus Volume 1 No 1 2002 (117-123)
Plan Plus Volume 1 No 1 2002 (117-123) APPLICATION OF GIS (GEOGRAPHIC INFORMATION SYSTEM) FOR LANDSLIDE HAZARD ZONATION AND MAPPING DISASTER PRONE AREA: A STUDY OF KULEKHANI WATERSHED, NEPAL Purna Chandra
Town of Elkton & Cecil Soil Conservation District Checklist for Joint Agency Review Stormwater Management / Erosion and Sediment Control
Town of Elkton & Cecil Soil Conservation District Checklist for Joint Agency Review Stormwater Management / Erosion and Sediment Control Project Name: Tax Map Parcel: Acreage: Plat: ADC Map & Grid Engineering
Integrated Water and Sediment Management of Yellow River
Keeping Health Life of Yellow River: Integrated Water and Sediment Management of Yellow River Shang Hongqi Yellow River Conservancy Commission 18 March 2009 Istanbul, Turkey Outline: I. Yellow River Characteristic
Effect of barrages on water level in estuaries
Indian Journal of Geo-Marine Sciences Vol. 43 (7), July 2014, pp. 1364-1369 Effect of barrages on water level in estuaries S S Chavan *, M D Sawant, Prabhat Chandra & T Nagendra Central Water and Power
Post-Flood Assessment
Page 1 of 7 Post-Flood Assessment CHAPTER 4 AGENCY COORDINATION Agency coordination is an essential element for the operation of the flood management systems in the Central Valley. Due to the nature of
Aneeqa Syed [Hatfield Consultants] Vancouver GIS Users Group Meeting December 8, 2010
NEAR-REAL-TIME FLOOD MAPPING AND MONITORING SERVICE Aneeqa Syed [Hatfield Consultants] Vancouver GIS Users Group Meeting December 8, 2010 SLIDE 1 MRC Flood Service Project Partners and Client Hatfield
Innovative Approaches in Flood Damage Reduction
Innovative Approaches in Flood Damage Reduction Solutions for the Stormwater Management High Level Results 3D geospatial model of storm water management pond (GRCA, 2013) Enhanced understanding of storm
Simulating Sedimentation Model in Balarood Dam Reservoir Using CCHE2D Software
Bulletin of Environment, Pharmacology and Life Sciences Bull. Env. Pharmacol. Life Sci., Vol 4 [1] December 2014: 67-72 2014 Academy for Environment and Life Sciences, India Online ISSN 2277-1808 Journal
Technical Standards and Guidelines for Planning and Design DRAFT VOLUME FLOOD CONTROL
DEPARTMENT OF PUBLIC WORKS AND HIGHWAYS JAPAN INTERNATIONAL COOPERATION AGENCY Technical Standards and Guidelines for Planning and Design DRAFT VOLUME FLOOD CONTROL MARCH 2002 Project for the Enhancement
Land Disturbance, Erosion Control and Stormwater Management Checklist. Walworth County Land Conservation Department
Land Disturbance, Erosion Control and Stormwater Management Checklist Walworth County Land Conservation Department The following checklist is designed to assist the applicant in complying with the Walworth
Flood Emergency Response Planning: How to Protect Your Business from a Natural Disaster RIC005
Flood Emergency Response Planning: How to Protect Your Business from a Natural Disaster RIC005 Speakers: Tom Chan, CEO, Global Risk Miyamoto Greg Bates, Principal, Global Risk Consultants Learning Objectives
