TECHNICAL INSIGHT
Load profileTariffDurationROI

How to Size a Commercial & Industrial Battery Storage System

A practical framework for turning a load profile and a tariff into a defensible battery capacity and power rating.

01Introduction

What this article covers

Sizing storage is not guesswork. It is the disciplined matching of two numbers — energy (kWh) and power (kW) — to a clearly defined objective. This article walks through the process used to scope a behind-the-meter C&I system.

02Technical

Start with the objective

Name the job first. Common C&I objectives are: peak shaving (lower demand charges), backup (ride through outages), PV self-consumption (store midday solar for evening use), and arbitrage (charge off-peak, discharge on-peak). The objective decides which constraint binds: peak shaving is power-limited, backup is energy- and autonomy-limited, PV shifting is generation-limited.

03Technical

Analyse the load profile

Pull interval meter data (typically 15-minute or hourly) for a representative period. The peak demand sets the power the PCS must deliver; the area under the curve during the targeted window sets the energy the battery must supply. Seasonal and day-type variation matters — size for the worst realistic case, not the annual average.

04Technical

Read the tariff

Demand charges are usually triggered by the highest 15-minute average in a billing period, so even a brief peak is expensive. Time-of-use rates set the value of shifting energy between windows. The savings model is only as good as the tariff data behind it; this is where most C&I business cases are won or lost.

05Technical

Capacity, power, and duration

Duration is simply energy divided by power (kWh ÷ kW = hours). A system that shaves a short, sharp peak needs high power and little energy; one that covers overnight backup needs more energy at lower power. A useful rule of thumb: define the target peak reduction in kW, then size energy for the discharge window you want to cover.

06Technical

Efficiency and degradation

Round-trip efficiency (the ratio of energy out to energy in) typically falls in a broad band for lithium systems; losses reduce the effective energy available and the economics. Over the project life, cycling fades capacity, so a modest oversizing protects performance in later years. Treat vendor efficiency and warranty figures as the basis for modelling, not as guarantees.

07Technical

Worked example (illustrative)

Consider a site with a 500 kW demand peak and a $/kW demand charge. If analysis shows a 200 kW, 2-hour shave removes the costly peak window, the target is roughly a 200 kW / 400 kWh system — then adjusted for efficiency, autonomy, and growth. This is illustrative only; every site is modelled from its own data.

08Related Products

Products referenced

Referenced in this article

Commercial & Industrial ESS

Scalable cabinet systems sized from the load and tariff study.

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Related range

Battery Storage Components

PCS and modules for larger or custom plant configurations.

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10Related

Explore by industry & project

These topics connect to the industries and engineering scenarios StorXing serves. Follow the links to see tailored use cases.

11FAQ

Frequently Asked Questions

What is the difference between kW and kWh for storage?

kW is power — how fast the system can charge or discharge. kWh is energy — how much it can store. Both must be sized to the objective.

How long does a 2-hour system last in a backup event?

Roughly two hours at its rated power, before efficiency and depth-of-discharge limits. Autonomy is set by the energy capacity you specify.

Can I add more later?

Often yes. Cabinet systems are frequently designed to accept added capacity as load or PV grows — confirm the PCS and enclosure headroom when scoping.

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