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FLOOD ROUTING
Flood routing is the technique of determining the flood hydrograph at a section of
a river by utilizing the data of flood flow at one or more upstream sections. The
hydrologic analysis of problems such as flood forecasting, flood protection,
reservoir design and spillway design invariably include flood routing. In these
applications two broad categories of routing can be recognized. These are:
1. Reservoir routing, and
2. Channel routing
A variety of routing methods are available and they can be broadly classified into
two categories as:
1. Hydrologic routing and
2. hydraulic routing
Hydrologic-routing methods employ essentially the equation of continuity.
Hydraulic methods, on the other hand, employ the continuity equation together
with the equation of motion of unsteady.
BASIC EQUATIONS
The equation of continuity used in all hydrologic routing as the primary equation states
that the difference between the inflow and outflow rate is equal to the rate of change of
storage, i.e.
HYDROLOGIC STORAGE ROUINGT
(Level pool Routing)
As the horizontal water surface is assumed in the reservoir, the storage routing is also
known as Level Pool Routing.
Here ∆t is any chosen interval, approximately 20 to 40% of the time of rise of the
inflow hydrograph.
ATENUATION
The peak of the outflow hydrograph will be smaller than of the inflow
hydrograph. This reduction in the peak value is called attenuation.
TIME LAG
The peak of the outflow occurs after the peak of the inflow; the time
difference between the two peaks is known as lag. The attenuation and
lag of a flood hydrograph at a reservoir are two very important aspects
of a reservoir operating under a flood-control criteria.
HYDROLOGIC CHANNEL ROUTING
Channel routing the storage is a function of both outflow and inflow discharges.
The total volume in storage can be considered under two categories as:
1. Prism storage, and
2. Wedge storage.
The total storage in the channel reach can then be expressed as
......................(i)
......................(ii)
From Eqn (i) and Eqn (ii)
Here,
Hyd important
Hyd important

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Hyd important

  • 1. FLOOD ROUTING Flood routing is the technique of determining the flood hydrograph at a section of a river by utilizing the data of flood flow at one or more upstream sections. The hydrologic analysis of problems such as flood forecasting, flood protection, reservoir design and spillway design invariably include flood routing. In these applications two broad categories of routing can be recognized. These are: 1. Reservoir routing, and 2. Channel routing A variety of routing methods are available and they can be broadly classified into two categories as: 1. Hydrologic routing and 2. hydraulic routing Hydrologic-routing methods employ essentially the equation of continuity. Hydraulic methods, on the other hand, employ the continuity equation together with the equation of motion of unsteady.
  • 2. BASIC EQUATIONS The equation of continuity used in all hydrologic routing as the primary equation states that the difference between the inflow and outflow rate is equal to the rate of change of storage, i.e.
  • 4. As the horizontal water surface is assumed in the reservoir, the storage routing is also known as Level Pool Routing.
  • 5. Here ∆t is any chosen interval, approximately 20 to 40% of the time of rise of the inflow hydrograph.
  • 6.
  • 7.
  • 8.
  • 9.
  • 10.
  • 11. ATENUATION The peak of the outflow hydrograph will be smaller than of the inflow hydrograph. This reduction in the peak value is called attenuation. TIME LAG The peak of the outflow occurs after the peak of the inflow; the time difference between the two peaks is known as lag. The attenuation and lag of a flood hydrograph at a reservoir are two very important aspects of a reservoir operating under a flood-control criteria.
  • 12. HYDROLOGIC CHANNEL ROUTING Channel routing the storage is a function of both outflow and inflow discharges. The total volume in storage can be considered under two categories as: 1. Prism storage, and 2. Wedge storage.
  • 13.
  • 14. The total storage in the channel reach can then be expressed as
  • 15.
  • 16.
  • 17.
  • 18.
  • 19.
  • 21.
  • 22. Here,