An industrial-strength BESS sizing, techno-economic, and 20-year dispatch simulation engine. Models lithium chemistry degradation (LFP/NMC), C-rate limits, depth of discharge (DoD), round-trip efficiency (RTE), auxiliary HVAC losses, time-of-day (ToD) tariff arbitrage, demand charge reduction, and project IRR/NPV with multi-currency conversion.
Governing Formulas & Standards
Standards Basis: IEEE 2800 / IEC 62933 / NFPA 855 / UL 9540A
E_{usable} = E_{nameplate} \cdot DoD \cdot (1 - \text{Degradation}(t)) \cdot RTE
Simulates daily charging during off-peak/solar windows and discharging during peak demand hours, factoring calendar and cycling degradation over a 20-year asset horizon.
Worked Engineering Example: 1000 kW / 4000 kWh Industrial Microgrid Peak-Shaving Model
- Usable Daily Stored Energy: E_usable = 4000 × 0.90 = 3600 kWh → 3,600 kWh
- Annual Arbitrage Revenue: Revenue = 3600 kWh × 0.88 RTE × ₹5.20 × 330 days → ₹54.40 Lakhs / yr ($62.8k/yr)
- Peak Demand Charge Reduction: Demand Savings = 600 kW reduced × ₹450/kW/mo × 12 mo → ₹32.40 Lakhs / yr ($37.4k/yr)
Final Solution: Total Annual Value: ₹86.8 Lakhs ($100.2k) | Simple Payback: ~4.6 Years
Frequently Asked Questions
- Why is LFP preferred over NMC in stationary BESS projects?
- LFP offers significantly superior thermal runaway resistance, longer cycle life (6,000+ vs 3,500 cycles), and lower levelized cost of storage, despite NMC having higher volumetric energy density.
Interactive calculation engine and real-time CAD solver available online at https://amithvijayan.in/tools/bess-sizing.