Water stored at high elevation flows through penstock โ drives turbine + alternator โ electrical energy.
Energy Conversion Chain:
Power in Hydroelectric Plants:
Where:
โข $Q$ = Rate of flow (mยณ/s) โข $H$ = Head / height of fall (m) โข $\eta$ = Overall efficiency
Unit Conversions:
Factors Before Constructing:
- 1.Capital cost of plant
- 2.Capital cost of erecting & maintaining transmission line
- 3.Cost of energy generation should be minimum
Elements of Hydroelectric Plants:
๐ Energy Conversion
๐งฎ Hydro Power Calculator
Three Types Based on Pondage/Regulation:
1. Run-off River (No Pondage)
- โธ Low capacity & seasonal
- โธ Water taken directly from river
- โธ No storage possible
- โธ Used only when water available
- โธ Mainly for irrigation
2. Run-off River (With Pondage)
- โธ Pondage = storage at plant
- โธ Copes with hourlyโweekly fluctuations
- โธ Base load OR peak load
- โธ Depends on stream flow
3. Reservoir Plants
- โธ Water stored in big reservoir
- โธ Full control of water flow
- โธ Base or peak load as needed
- โธ Maximum flexibility
Classification by Water Head:
LOW Head ($H < 30\,\text{m}$)
Turbines: Francis, Propeller, Kaplan
MEDIUM Head ($30 < H < 300\,\text{m}$)
Forebay acts as reservoir + surge tank
Turbines: Francis, Propeller, Kaplan
HIGH Head ($H > 300\,\text{m}$)
Surge tank before valve house
Reduces water hammer severity
Turbine: Pelton Wheel
Water Hammer Pressure:
$a$ = wave velocity $= \sqrt{K/\rho}$, $K$ = bulk modulus of water
Surge tank reduces $\Delta P$ by absorbing pressure waves
๐ Plant Type Comparison
๐ Head Classification
<30m
30-300m
>300m
๐ฅ Water Hammer Demo
Full Comparison:
| Parameter | Base Load | Peak Load |
|---|---|---|
| Load curve part | Bottom (constant) | Top (variable) |
| Load factor | High (>0.8) | Low (<0.3) |
| Capacity | Large | Smaller |
| Operation | Nearly continuous | Only during peaks |
| Unit cost | Low | High |
| Examples | Coal, Nuclear, Run-off | Gas, Pumped storage |
| Hydro type | Run-off (no pondage) | Pondage / Reservoir |
Pumped Storage Plant:
Peak (day): Release water DOWN through turbine (generator mode โ produces expensive peak energy)
๐ 24-Hour Load Duration Curve
๐ Pumped Storage Cycle
๐ Load Factor Calculator
๐ Pumped Storage Efficiency
Classification by Type of Flow:
Major Turbine Types:
โ๏ธ Pelton Wheel (Impulse)
Water jets hit cup-shaped buckets. All pressure drop in nozzle (not runner).
๐ Francis Turbine (Reaction)
Water enters radially, exits axially. Pressure drops across runner.
๐ Kaplan Turbine (Reaction)
Adjustable runner blades. Best for large discharge, low head. High efficiency over wide range.
Specific Speed:
$N_s$ = specific speed, $N$ = rpm, $P$ = power (HP), $H$ = net head (m)
Unit Quantities (Turbine Similarity):
Unit Speed
$$ N_u = \frac{N}{\sqrt{H}} $$Unit Discharge
$$ Q_u = \frac{Q}{D^2\sqrt{H}} $$Unit Power
$$ P_u = \frac{P}{D^2 H^{3/2}} $$๐ Turbine Comparison
๐ Head โ Turbine Selector
๐ข Specific Speed Calculator
๐ Pelton Efficiency vs u/vโฑผ
Formula Quick Reference (Click to flip):
Head Classification Summary:
| Classification | Head Range | Turbine Type | Ns Range |
|---|---|---|---|
| Low Head | < 30 m | Kaplan / Francis | 300 โ 900 |
| Medium Head | 30 โ 300 m | Francis | 50 โ 300 |
| High Head | > 300 m | Pelton | 10 โ 50 |
Plant Type Summary:
๐งฎ Master Hydro Calculator
๐ง Plant Type Quiz
Reaction: Water pressure + velocity both act on runner. Pressure drops across runner.
Impulse Turbine:
Reaction Turbine:
Four Turbine Comparison:
| Pelton Wheel | Francis Turbine | Kaplan Turbine | Propeller |
|---|---|---|---|
| Impulse type | Reaction type, inward mixed flow | Reaction type, governing like Francis | Axial flow reaction, fixed blades |
| High head, low flow, tangential | Medium head & flow | Water strikes axially | Low head, large flow |
| Elliptical buckets on periphery | Velocity + pressure difference | High Ns โ low head, large flow | ฮท = 92% at full load only |
| Horizontal shaft mostly | ฮท โ 92% full load; H or V | ฮท โ 90% at all loads | Runner can reverse as pump |
| Not suitable H < 200 m | Higher speed than Pelton | Low cost runner & alternator | No blade adjustment while running |
| ฮทmech up to 90% | ฮท โ 92% | ฮท โ 90% (all loads) | ฮท = 92% (full load) |
Key Efficiencies:
โญ Kaplan Advantage:
Efficiency stays โ 90% over WIDE load range (adjustable blades). Runner can reverse โ pump operation.
โ๏ธ Four-Panel Turbine Comparison
๐ Efficiency vs Load Comparison
๐ง Impulse vs Reaction Pressure Drop
IMPULSE
Full drop in nozzle
100% โ 0% at nozzle exit
REACTION
Gradual drop through runner
Gradual: nozzle โ runner โ exit
Selection of Site for Hydroelectric Plants:
โ Merits of Hydro Power Plant:
โ Demerits of Hydro Power Plant:
Hydro vs Thermal Quick Comparison:
๐ Site Selection Radar Chart
โ๏ธ Merits vs Demerits Balance
๐ Plant Life Comparison
"Efficiency unchanged with age" โ Hydro advantage
Specific Speed (Dimensionless Quantity):
Specific Speed Ranges:
Types of Head:
Gross Head ($H_g$)
Total head available
Net Head ($H_{net}$)
Head used for power
Loss Head ($H_f$)
Friction losses
Frictional Head Loss ($H_f$):
DARCY-WEISBACH
$$ \boxed{H_f = \frac{fLV^2}{2gD}} $$FANNING'S EQUATION
$$ \boxed{H_f = \frac{4f'LV^2}{2gD}} $$$V$ = Water velocity (m/s) ยท $D$ = Penstock diameter (m) ยท $g$ = 9.81 m/sยฒ
โ ๏ธ Always check which friction factor is used!
Net Head for Power:
๐๏ธ Head Diagram
๐งฎ Darcy-Weisbach Hf Calculator
โก Specific Speed Ns Calculator
๐ Darcy vs Fanning Friction Factor
DARCY f
0.020
FANNING f'
0.005
fDarcy = 4 ร fFanning โ Same Hf result!