C&I BESS for Peak Shaving

Commercial & Industrial Energy Storage Solution

C&I BESS for Peak Shaving

Reduce peak grid demand, manage high-load periods and improve energy flexibility with scalable commercial and industrial battery energy storage systems designed around actual site load profiles, grid limits and operating requirements.

C&I BESS peak shaving energy storage solution with solar PV utility grid and industrial load
C&I battery energy storage for peak shaving with solar PV, grid power and commercial or industrial loads.
Peak Shaving Demand Management Load Shifting Solar + Storage C&I Energy Management

What Is Peak Shaving with BESS?

Peak shaving uses a Battery Energy Storage System (BESS) to supply part of a facility's power when electrical demand rises above a predefined grid-import limit. Instead of drawing the entire peak load from the utility grid, stored battery energy is discharged to support the site load.

During lower-demand periods, the battery can recharge from the grid or from available on-site solar PV. The Energy Management System (EMS) coordinates battery charging and discharging according to facility demand, battery state of charge, grid limits and the selected operating strategy.

For commercial and industrial facilities, the objective is not simply to install a larger battery. The BESS power rating in kW and usable battery energy in kWh should be matched to the magnitude and duration of the site's actual demand peaks.

How BESS Peak Shaving Works

01

Monitor Facility Load

Site meters and the EMS continuously monitor facility demand, grid import and predefined operating limits.

02

Detect Peak Demand

When site demand approaches or exceeds the configured grid-import target, the EMS determines the required battery response.

03

Discharge the BESS

The PCS converts battery DC power to AC and supports the site load, reducing the amount of power imported from the utility grid.

04

Recharge Off-Peak

The battery can recharge during lower-demand periods or absorb available solar generation in preparation for the next demand peak.

BESS peak shaving load curve showing industrial site demand target grid limit battery discharge off-peak charging and reduced grid peak demand
Example peak shaving load curve: the BESS discharges when site demand exceeds the target grid limit and recharges when operating conditions allow.

Typical C&I Peak Shaving Energy Flow

Solar PV / Utility Grid PCS BESS C&I Load

The BMS manages battery protection and operating limits, while the EMS coordinates the BESS, PCS, site meter, solar generation and grid import according to the configured peak-shaving strategy.

Benefits of BESS for Peak Shaving

Reduce Peak Grid Demand

Use stored energy during high-load periods to reduce the facility's maximum instantaneous grid import.

Demand Charge Management

Support demand-management strategies in markets where commercial electricity tariffs include demand-based charges.

Improve Grid Capacity Flexibility

Support facilities with constrained transformer or grid-connection capacity during temporary high-demand periods.

Improve Solar Self-Consumption

Store available surplus PV generation and use the energy later when facility demand is higher.

Load Shifting

Charge and discharge the battery across different operating or tariff periods according to the site's energy-management strategy.

Multi-Mode Energy Management

Depending on PCS, switchgear and control architecture, the same BESS platform can support additional energy-management functions beyond peak shaving.

Peak Shaving BESS Sizing: kW and kWh Basics

Peak shaving system selection should be based on both required discharge power in kW and usable battery energy in kWh. The correct configuration depends on the site's actual load profile rather than battery capacity alone.

Design Factor Why It Matters
Site Peak Load (kW) Defines the facility's maximum electrical demand that may need to be reduced.
Target Grid Limit (kW) Defines the desired grid-import threshold during peak periods.
Required BESS Power (kW) The difference between site peak demand and target grid limit helps determine required PCS discharge power.
Peak Duration (h) Determines how long the BESS needs to sustain the required discharge power.
Usable Battery Energy (kWh) Primarily determined by required discharge power multiplied by discharge duration.
Operating Reserve Installed capacity should consider DoD, efficiency, auxiliary loads, degradation and project reserve requirements.
Daily Peak Frequency Affects cycling strategy, required state of charge and battery availability throughout the operating day.
Solar PV Profile Determines whether surplus PV energy can contribute to battery charging and later peak reduction.
Electricity Tariff Helps determine whether peak-demand reduction, time-of-use shifting or a combined strategy should be evaluated.
Peak Shaving Example

500kW Site Peak Reduced to a 400kW Grid Limit

Assume an industrial facility normally operates below 400kW but experiences production peaks approaching 500kW for approximately two hours.

Site Peak Load
500kW
Target Grid Limit
400kW
BESS Support
100kW
Peak Duration
2h
Basic usable-energy requirement
100kW × 2h = 200kWh

In this simplified example, the BESS would need to provide approximately 100kW of discharge power for 2 hours, giving a basic usable-energy requirement of approximately 200kWh.

Final installed battery capacity should also consider allowable depth of discharge, PCS efficiency, battery and auxiliary losses, operating reserve, temperature, degradation, peak frequency and required end-of-life performance.

Where C&I Peak Shaving BESS Is Used

Factories & Manufacturing
Industrial Parks
Commercial Buildings
Warehouses & Logistics
EV Charging Stations
Solar + Storage Projects
Microgrids
High-Demand Commercial Loads
Industrial BESS peak shaving system for factory energy management with solar PV battery storage cabinets and electrical distribution equipment
Industrial peak shaving application combining solar PV, BESS cabinets and site electrical infrastructure for factory energy management.
Selected C&I Energy Storage Systems

BESS Configurations for Peak Shaving Projects

The appropriate system depends on required peak-reduction power, discharge duration and available operating reserve. The following configurations are relevant to many medium-scale commercial and industrial peak shaving projects.

FLEXIBLE C&I BESS

80kVA / 128–209kWh High-Voltage C&I BESS

Flexible battery-energy configurations for commercial peak shaving, solar integration and medium-duration energy management.

View 80kVA / 128–209kWh System →
LIQUID-COOLED C&I ESS

125kW / 232.9kWh Liquid-Cooled C&I ESS

Suitable for industrial peak reduction, load management and applications requiring approximately two hours of battery support depending on operating conditions.

View 125kW / 232.9kWh System →
LIQUID-COOLED C&I BESS

125kW / 261.2kWh Liquid-Cooled C&I BESS

Higher battery-energy reserve for industrial peak shaving, solar integration and multi-mode C&I energy management.

View 125kW / 261.2kWh System →

Peak Shaving BESS Engineering Inputs

A commercial peak shaving project should be configured around the actual electrical system, facility load curve and operating objectives. Useful engineering inputs typically include:

  • 15-minute or higher-resolution facility load profile
  • Maximum, average and typical operating demand
  • Required peak-demand reduction in kW
  • Peak duration and number of peak events per day
  • Transformer rating and grid-connection capacity
  • Site voltage and grid frequency
  • Existing or planned PV capacity and generation profile
  • Electricity tariff and demand-charge structure
  • Required operating modes, reserve and backup requirements
  • EMS, PCS, BMS and communication requirements
  • Installation environment, available space and local project requirements

EMS Control for Peak Shaving

Peak shaving is not controlled by battery capacity alone. The EMS uses site-meter data and system status to determine when the BESS should charge, remain idle or discharge.

Site Meter Measures facility power demand and grid import.
EMS Compares actual demand with the configured grid-import target and operating strategy.
BMS Reports battery SOC, voltage, temperature and allowable charge or discharge limits.
PCS Executes the required charge or discharge power command within system limits.
Engineering Resources

C&I BESS Technical Downloads

Access technical documentation for commercial and industrial battery energy storage projects, including BESS datasheets, system architecture, single-line diagrams, installation documents and integration resources.

View C&I BESS Technical Downloads →
Datasheets · System Architecture · SLDs · Installation Documents · EMS / BMS / PCS Integration Resources

Questions About C&I BESS for Peak Shaving

What is the difference between peak shaving and load shifting?

Peak shaving focuses on reducing maximum power demand during high-load periods. Load shifting moves energy use between different time periods, commonly by charging the battery during lower-demand or lower-tariff periods and discharging it later.

How much battery capacity is required for peak shaving?

Required capacity depends on how much peak power must be reduced and how long the peak lasts. As a basic example, reducing grid demand by 100kW for two hours requires approximately 200kWh of usable energy before accounting for depth of discharge, efficiency, reserve margin, degradation and other project factors.

Can a peak shaving BESS work with solar PV?

Yes. Solar PV can supply facility loads and, when surplus generation is available, contribute to battery charging. Stored energy can then be used later when facility demand rises or according to the site's selected energy-management strategy.

Can the same BESS provide backup power?

Backup operation is possible when the selected PCS, switchgear, protection, control system and overall electrical architecture are designed for the required backup or islanded operating mode. Backup requirements should therefore be defined during project design.

How does an EMS control BESS peak shaving?

The EMS monitors site demand, grid-import measurements, battery state of charge and system operating limits. When facility demand approaches the configured grid threshold, the EMS can command the PCS to discharge the battery and support the site load within the permitted battery and system limits.

What information is needed to design a peak shaving BESS?

Useful project information includes the facility load profile, maximum and average demand, target grid limit, duration and frequency of demand peaks, transformer capacity, grid voltage, solar PV profile, electricity tariff, required operating modes, installation environment and available site space.

Commercial & Industrial Energy Storage

Need a Peak Shaving BESS for Your Project?

Send us your facility load profile, peak demand, target grid limit, grid capacity, electricity tariff, PV capacity and required operating strategy. Our team can evaluate an appropriate BESS power and energy configuration for your project.

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