Unit Hydrograph and application of unit hydrograph in engineering hydroogy

First proposed by Sherman in 1932 unit hydrograph (UH) is the hypothetical unit response of a watershed (in terms of runoff volume and timing) to a unit input of rainfall.The Unit Hydrograph of a drainage basin is defined as a hydrograph of direct runoff resulting from one unit of effective rainfall which is uniformly distributed over the basin at a uniform rate during the specified period of time known as unit time or unit duration. The unit quantity of effective rainfall is generally taken as 1mm or 1cm and the outflow hydrograph is expressed by the discharge ordinates. The unit duration may be 1 hour, 2 hour, 3 hours or so depending upon the size of the catchment and storm characteristics. However, the unit duration cannot be more than the time of concentration, which is the time that is taken by the water from the furthest point of the catchment to reach the outlet.


Assumptions :
 
The following assumptions are made while using the unit hydrograph principle:
➤Effective rainfall should be uniformly distributed over the basin, that is, if there are ‘N’ rain gauges spread uniformly over the basin, then all the gauges should record almost same amount of rainfall during the specified time.
➤ Effective rainfall is constant over the catchment during the unit time.
➤ The direct runoff hydrograph for a given effective rainfall for a catchment is always the same irrespective of when it occurs. Hence, any previous rainfall event is not considered. This antecedent precipitation is otherwise important because of its effect on soil-infiltration rate, depressional and detention storage, and hence, on the resultant hydrograph.
➤ The ordinates of the unit hydrograph are directly proportional to the effective rainfall hyetograph ordinate. Hence, if a 6-h unit hydrograph due to 1 cm rainfall is given, then a 6-h hydrograph due to 2 cm rainfall would just mean doubling the unit hydrograph ordinates. Hence, the base of the resulting hydrograph (from the start or rise up to the time when discharge becomes zero) also remains the same.
limitations :
 Under the natural conditions of rainfall over drainage basins, the assumptions of the unit hydrograph cannot be satisfied perfectly. However, when the hydrologic data used in the unit hydrograph analysis are carefully selected so that they meet the assumptions closely, the results obtained by the unit hydrograph theory have been found acceptable for all practical purposes.
In theory, the principle of unit hydrograph is applicable to a basin of any size. However, in practice, to meet the basic assumption in the derivation of the unit hydrograph as closely as possible, it is essential to use storms which are uniformly distributed over the basin and producing rainfall excess at uniform rate. Such storms rarely occur over large areas. The size of the catchment is, therefore, limited although detention, valley storage, and infiltration all tend to minimize the effect of rainfall variability. The limit is generally considered to be about 5000 sq. km. beyond which the reliability of the unit hydrograph method diminishes. When the basin area exceeds this limit, it has to be divided into sub-basins and the unit hydrograph is developed for each sub-basin. The flood discharge at the basin outlet is then estimated by combining the sub-basin floods, using flood routing procedures.
Application :

Calculations of direct runoff hydrograph in catchment due to a given rainfall event (with recorded rainfall values), is easy if a unit hydrograph is readily available. Remember that a unit hydrograph is constructed for a unit rainfall falling for a certain T-hours, where T may be any conveniently chosen time duration. The effective rainfall hyetograph, for which the runoff is to be calculated using the unit hydrograph, is obtained by deducting initial and infiltration losses from the recorded rainfall. This effective rainfall hyetograph is divided into blocks of T-hour duration. The runoff generated by the effective rainfall for each T-hour duration is then obtained and summed up to produce the runoff due to the total duration.

Precipitation And Causes of precipitation

Under certain favorable condition when a warm air mass and cold air mass meet,the wormer air mass is lifted over the colder one with the formation of a front.The ascending warmer air cools adiabatically with the consequent formation of clouds and precipitate. 
Precipitation is any form of solid or liquid water that falls from the atmosphere to the earth’s surface. Rain, drizzle, hail and snow are examples of precipitation. In India, rain is the most common form of precipitation.  
Evapotranspiration is the process which returns water to the atmosphere and thus completes the hydrologic cycle. Evapotranspiration consists of two parts, Evaporation and Transpiration. Evaporation is the loss of water molecules from soil masses and water bodies. Transpiration is the loss of water from plants in the form of vapour. We proceed on to discuss precipitation, and its most important component in India context, the rainfall.

Causes of precipitation

For the formation of clouds and subsequent precipitation, it is for necessary that the moist air masses to cool in order to condense. This is generally accomplished by adiabatic cooling of moist air through a process of being lifted to higher altitudes. The precipitation types can be categorized as.
 
Frontal precipitation: This is the precipitation that is caused by the expansion of air on ascent along or near a frontal surface. 
Convective precipitation: Precipitation caused by the upward movement of air which is warmer than its surroundings. This precipitation is generally showery nature with rapid changes of intensities. 
Orographic precipitation: Precipitation caused by the air masses which strike the mountain barriers and rise up, causing condensation and precipitation. The greatest amount of precipitation will fall on the windward side of the barrier and little amount of precipitation will fall on leave ward side.  
For the Indian climate, the south-west monsoon is the principal rainy season when over 75% of the annual rainfall is received over a major portion of the country. Excepting the south-eastern part of the Indian peninsula and Jammu and Kashmir, for the rest of the country the south-west monsoon is the principal source of rain.  
From the point of view of water resources engineering, it is essential to quantify rainfall over space and time and extract necessary analytical information.

Rainfall And Measurement Of Rainfall.

It is a Principal form of precipitation, usually occurs in the form of water drops of sizes larger than 0.5 mm. On the basis of it's intensity, rainfall is classified as:

      Type                                                    Intensity
1.Light rain-                                              2.5mm/h                             
2.Moderate rain-                           
         2.5mm/h to 7.5mm/h
3.Heavy rain-                                            > 7.5mm/h


Measurement Of Rainfall 
Rainfall is usually measured by first collecting it in a rain gauge. These special drums are then used to record the depth of the water inside. Rain gauges are usually about 50 cm tall and are placed on the ground just high enough to avoid splashes.

Types of Rain Gauge.

Type 1 Non-recording gauge
            Rainfall level collected into collecting bottle is measured manually by suitably graduated measuring glass. the circular collecting bottle has standard area with (d=12.7 cm) e.g (Symon's type)

Type 2 Recording Gauge
            These Gauge produce a continuous  plot (graph) of rainfall against time.
  e.g
Tipping Bucket Type- Data can be obtained in digital form.

Weighing Bucket Type- This gives graph of accumulated rainfall against time. (mass curve of rainfall).

Natural Syphon Type (float type)- This is adopted in India as standard recording type rain gauge.

Telemetering Rain Gauge- These are mostly very useful in mountainous and generally inaccessible places.   

Water budget equation

In hydrology, a water budget or balance equation can be used to describe the flow of water in and out of a system.
For a given catchment area in an interval of time Δt, continuity equation is given as:

   Mass inflow ― Mass outflow = Change in mass storage.

                    Vi  ―Vo = ΔS
         
             Where,
                        Vi = Inflow volume
                        Vo = outflow volume
                        ΔS = change in storage

Water Budget Equation in hydrological cycle:
It involves writing the hydrological continuity equation for the lake and determining the evaporation from a knowledge or estimation of other variables.

                          P ―R ―G ―E ―T = ΔS
          or,            P ―(R +G +E +T) = ΔS

             Where,
                         P = precipitation
                         R = surface runoff
                         G = net ground water flow
                         E = evaporation
                         T = transpiration

Rainfall, Evaporation, Surface runoff are expressed in units of depth over the catchment i.e, if annual flow from a 20 square km catchment is 10^8 cubic m. then corresponds to depth of {(10^8)/(20*10^6)}=5m.