PELTON WHEEL
- It is a Tangential flow impulse turbine.
- It is a high head turbine.
- It is a low specific speed turbine.
- It is a low discharge turbine.
- In this Turbine, inlet Pressure = Outlet Pressure = Atmospheric pressure.
- There is no problem of cavitation.
MAIN COMPONENTS: -
Fig.1 | Component of Pelton Wheel |
Nozzle
Spear
Runner
Braking Jet
DESIGN PARAMETER:
-
Jet
Ratio (m) = [Dia. Of Pelton wheel (D) / Dia. of jet (d)]
No
of Vane = 15 + (D/2d) = 15+ 0.5m
Width
of Vane = 5d
Depth
of Vane =1.2d
The
maximum no. of jets generally employed on pelton wheel is 6.
WORK DONE & EFFECIENCY:
-
Work
done per second = ρAV1 [Vw1 +Vw2] x u
Kinetic
Energy of jet per second = 1/2mV12 =1/2 (ρAV1) V12 =1/2
ρAV13
Hydraulic
Efficiency (ηH) =W.D. /K.E. of jet
= [ρAV1 (Vw1 +Vw2)
x u] / (1/2 ρAV13)
ηH = [2(Vw1 +Vw2) x u] / V12
By
putting the value of Vw1 & Vw2 from velocity
triangle-
ηH = [2u(V1-u)(1+cosФ)] / V12
By
differentiating the above equation we will get the condition of maximum
efficiency.
Condition
of Maximum Efficiency – u = V1 /2
Where,
u = velocity of runner
V1
= Velocity of jet.
Maximum
Hydraulic Efficiency (ηMax) = [1 + k cosФ] / 2
Where, K = Vr1/ Vr2
If
K = 1(i.e. blade is smooth) and Ф = 150, ηMax = 98.6%
η is maximum when speed ratio is 0.46.
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