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Hydraulic Turbines
Classification,Impulse and Reaction Turbine
For more information, Visit
Hydraulic Turbines
Introduction
Hydraulic turbines are machines which convert hydraulic energy into
mechanical energy.
If the machine transforms mechanical energy into hydraulic energy it is
called a pump.
Thus in turbines, fluid does work on the machine and machine produces
power. but, the pump absorbs the power and work is done on the fluid.
The mechanical energy developed is utilized for running an electric
generator which is directly coupled to the shaft of the turbine.
The electric power developed by the electric generator is known as
hydroelectric power. So, the generation of hydroelectric power is cheaper
than the other resources like coal, oil, etc.
In general, the principal component of a turbine is a rotor.
The rotor is a wheel carrying a number of plates and vanes on its
periphery.
The rotor is housed in a stationary casing and water possess a good
amount of potential energy which is allowed to flow through pipes
and finally discharged through nozzles and thus gaining kinetic
energy.
Whenever the water strikes the runner and causes it to rotate, the
mechanical energy developed is supplied to the generator coupled to
the runner which generates electricity.
Classification of Hydraulic Turbines:
The hydraulic Turbines were classified according to the following
conditions.
1. Action of water
2. The direction of flow of water
3. Available head
4. Specific speed
1.Action of water
Impulse: There is no pressure drop on the runner/rotor. K.E of water coming from
the jet is used to run the runner/rotor.
Ex: Pelton wheel turbine.
Reaction: There is a loss of K.E as well as pressure energy on the runners of the
blade.
Ex: Francis turbine
2.The direction of flow of water
If the water strikes the blades of the runner tangential to the path of rotation called
Tangential flow.
Ex: Pelton wheel turbine.
Radial: If the water strikes the blades of the runner radially and coming out axially
called as Radial flow.
Ex: Francis turbine
Axial: In this flow, the water flows parallel to the axis of the turbine.
Ex: Kaplan turbine
3.Available head
High head: The turbine capable of working under the high potential head of water
above 300m
Medium head: The turbine is capable of working under a medium range of
potential head about 60m to 300m
Ex: Francis turbine.
Low head: The turbine is capable of working under a low range of potential head
less than 60m
4.Specific speed:
Low Specific Speed: Turbine works in the range of 10-50. (Ex: Pelton wheel
turbine)
Medium Specific Speed: Turbine works in the range of 50-350. (Ex: Francis
turbine)
High Specific Speed: Turbine works in the range of 250-850. (Ex: Kaplan turbine)
This is the classification of Hydraulic Turbines in a detailed way.
Impulse Turbine V/S Reaction Turbine:IMPULSE REACTION
Available energy is converted into kinetic
energy
A major part of available energy is
converted to pressure energy
Pressure in the turbine is constant Pressure gradually reduces while
water flows on the turbine blades
The wheel and the blades should have
accesses to free air and must not run
fully.
The blades are always under the
action of pressure, the wheel must
always run fully.
Only one face of the blade is active Both sides
Regulation of flow and power is easier
without loss of energy
Difficult
Used for high heads Low and medium heads
Efficiency is less Efficiency is more
Energy transfer is a change in energy Due to a change in pressure head
This is the explanation of the Impulse
Turbine and Reaction Turbine in a de
For more information, Visit Hydraulic Turbines

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Hydraulic Turbines-Classification,Impulse and Reaction Turbine, Layout of Hydroelectric Power Plant

  • 1. Hydraulic Turbines Classification,Impulse and Reaction Turbine For more information, Visit Hydraulic Turbines
  • 2. Introduction Hydraulic turbines are machines which convert hydraulic energy into mechanical energy. If the machine transforms mechanical energy into hydraulic energy it is called a pump. Thus in turbines, fluid does work on the machine and machine produces power. but, the pump absorbs the power and work is done on the fluid.
  • 3. The mechanical energy developed is utilized for running an electric generator which is directly coupled to the shaft of the turbine. The electric power developed by the electric generator is known as hydroelectric power. So, the generation of hydroelectric power is cheaper than the other resources like coal, oil, etc. In general, the principal component of a turbine is a rotor. The rotor is a wheel carrying a number of plates and vanes on its periphery.
  • 4. The rotor is housed in a stationary casing and water possess a good amount of potential energy which is allowed to flow through pipes and finally discharged through nozzles and thus gaining kinetic energy. Whenever the water strikes the runner and causes it to rotate, the mechanical energy developed is supplied to the generator coupled to the runner which generates electricity.
  • 5. Classification of Hydraulic Turbines: The hydraulic Turbines were classified according to the following conditions. 1. Action of water 2. The direction of flow of water 3. Available head 4. Specific speed
  • 6. 1.Action of water Impulse: There is no pressure drop on the runner/rotor. K.E of water coming from the jet is used to run the runner/rotor. Ex: Pelton wheel turbine. Reaction: There is a loss of K.E as well as pressure energy on the runners of the blade. Ex: Francis turbine
  • 7. 2.The direction of flow of water If the water strikes the blades of the runner tangential to the path of rotation called Tangential flow. Ex: Pelton wheel turbine. Radial: If the water strikes the blades of the runner radially and coming out axially called as Radial flow. Ex: Francis turbine Axial: In this flow, the water flows parallel to the axis of the turbine. Ex: Kaplan turbine
  • 8. 3.Available head High head: The turbine capable of working under the high potential head of water above 300m Medium head: The turbine is capable of working under a medium range of potential head about 60m to 300m Ex: Francis turbine. Low head: The turbine is capable of working under a low range of potential head less than 60m
  • 9. 4.Specific speed: Low Specific Speed: Turbine works in the range of 10-50. (Ex: Pelton wheel turbine) Medium Specific Speed: Turbine works in the range of 50-350. (Ex: Francis turbine) High Specific Speed: Turbine works in the range of 250-850. (Ex: Kaplan turbine) This is the classification of Hydraulic Turbines in a detailed way.
  • 10. Impulse Turbine V/S Reaction Turbine:IMPULSE REACTION Available energy is converted into kinetic energy A major part of available energy is converted to pressure energy Pressure in the turbine is constant Pressure gradually reduces while water flows on the turbine blades The wheel and the blades should have accesses to free air and must not run fully. The blades are always under the action of pressure, the wheel must always run fully. Only one face of the blade is active Both sides Regulation of flow and power is easier without loss of energy Difficult Used for high heads Low and medium heads Efficiency is less Efficiency is more Energy transfer is a change in energy Due to a change in pressure head This is the explanation of the Impulse Turbine and Reaction Turbine in a de
  • 11. For more information, Visit Hydraulic Turbines