Module 13A: Cost of Electrical Energy
Three Types of Cost
1. Fixed Cost (a)
Does NOT depend on Maximum Demand AND Energy Output.
Examples: High grade officer salary, Interest on capital cost of land, Equipment install cost.
2. Semi-Fixed Cost (b·kW)
Depends on Maximum Demand but NOT Energy Output.
Examples: Interest on machine investment, Management salary, Building depreciation.
3. Running / Operating Cost (c·kWh)
Depends on Maximum Demand AND Energy Output.
Examples: Fuel cost, Maintenance cost, Operating staff salary.
Total Cost Formula
- $a$ = Fixed cost constant (₹)
- $b$ = Semi-fixed cost per kW of demand
- $c$ = Running cost per kWh of energy
$$ \text{Standing Cost} = a + b(kW) $$
Fixed + Semi-fixed do NOT depend on energy output.
Total Cost Bill Calulator
Module 13B: Depreciation Methods
Depreciation & Salvage
Depreciation: Decrease in value of an asset due to use.
Salvage Value (S): Value of asset at end of useful life ($n$).
1. Straight Line Method
Depreciation is CONSTANT each year.
2. Declining Balance Method
Depreciation is HIGHER in early years and decreases.
3. Sinking Fund Method
Fund grows with compound interest $(r)$. Reaches $P-S$ at year $n$.
| Method | Annual Dep. | Book Value |
|---|---|---|
| Straight Line | Constant | Linear decay |
| Declining Bal. | Decreasing | Exponential |
| Sinking Fund | Increasing | Compound Drop |
Book Value Over Time (n years)
Module 13C: Tariff Types & Formulas
General Tariff Formula (Three Part)
- $z$ = Total Bill (₹)
- $x$ = Maximum demand (kW)
- $y$ = Energy consumed (kWh)
Key Tariff Types
Doherty Rate Builder ($z = ax + by + c$)
Module 13D: Power Factor & Tariff Comparison
Power Factor Penalty
Industries pay for kVA maximum demand instead of kW.
Power Factor Correction
To improve $\cos\phi$, consumer adds Capacitor Banks.
Load Factor (LF) Benefits
High LF means less Maximum Demand for the same Energy = lower cost per unit under a Two Part Tariff (Hopkinson).
Module 13E: Complete Reference Flashcards
Master Formulation Table
| Parameter | Formula / Rule |
|---|---|
| Standing Cost | $a + bkW$ |
| Running Cost | $ckWh$ |
| Energy Conversion | $1\text{ kWh} = 3.6\times10^6\text{ J}$ |
| Straight Line $d$ | $(P-S)/n$ |
| Declining Balance $x$ | $1 - (S/P)^{1/n}$ |
| Sinking Fund $q$ | $(P-S)[r/((1+r)^n-1)]$ |
| Three Part Tariff | $z = ax + by + c$ |
| Two Part / Hopkinson | $z = ax + by$ |
| Capacitor $Q_c$ | $P(\tan\phi_1 - \tan\phi_2)$ |