Ventilation Calculator

Generator Room Ventilation Calculator

Enter your generator's rated power and the room temperature rise you will allow. The tool returns the combustion air, cooling air, and total ventilation in m³/h, m³/s, and CFM — plus the louver and opening area you need to deliver it.

Combustion & cooling air
m³/h · m³/s · CFM
Louver & opening area
Calculate Ventilation
Free ventilation sizing tool for indoor generator rooms.
ShanHua Power

Ventilation Design Reference

Proper airflow prevents overheating, derating, and high-temperature shutdown during standby operation.

25+ Years experience
8–4,000 kVA generator range
20+ Countries supplied
Ventilation Design

How the Generator Room Ventilation Calculator Works

The calculator answers one question: how much air does this room need to move? It builds the answer from two parts — combustion air and heat‑rejection air — then adds them to size the inlet and outlet openings.

Combustion Air For Engine Breathing

A diesel engine breathes air to burn fuel. This is small but non‑negotiable: roughly 6–7 m³/h per kilowatt (about 0.10 m³/min per kW), or 7 m³/kWh under the Chinese GB standard.

Heat‑Rejection Air To Carry Away Heat

The engine and alternator shed heat into the room. The calculator estimates the airflow needed using the standard heat‑load formula: V = Q ÷ (Cp × ρ × ΔT).

Total Ventilation Combustion + Cooling

The tool runs both parts, adds them, and converts the total into m³/h, m³/s, and CFM. Then it sizes the inlet and outlet openings from a standard face velocity of about 5 m/s.

From Heat to Airflow

The calculation uses the standard heat-load formula: V = Q ÷ (Cp × ρ × ΔT), where Q is the heat released into the room (kW), Cp is the specific heat of air (1,005 J/kg·K), ρ is air density (1.2 kg/m³), and ΔT is the room temperature rise you allow (typically 10 K). The total ventilation — combustion air plus heat‑rejection air — determines the louver area needed at a standard face velocity of about 5 m/s.

What You Get

Complete Room Ventilation Sizing

01
Combustion Air

The air the engine needs to burn fuel — roughly 6–7 m³/h per kW, non‑negotiable for safe operation.

02
Heat‑Rejection Air

The airflow needed to carry away engine and alternator heat without exceeding your allowed room temperature rise.

03
Total Ventilation

Combustion air plus heat‑rejection air — expressed in m³/h, m³/s, and CFM for easy equipment specification.

04
Louver & Opening Area

The inlet and outlet openings sized from a standard face velocity of about 5 m/s — the area you actually need to build.

Ventilation Sizing Tool

How to Calculate Generator Room Airflow (CFM & m³/h)

Choose Quick Mode for a fast estimate based on generator power, or Advanced Mode for detailed calculations with altitude correction and multiple units. Both methods return total ventilation, combustion air, heat‑rejection air, and louver area.

Quick Ventilation Estimate

Enter your generator's rated power and the allowed room temperature rise. The calculator returns the total airflow in m³/h, m³/s, and CFM.

Enter the generator's rated output in kW
Typical: 8–15 K
Higher values = more heat into the room

Detailed Room Ventilation Calculation

Enter generator power, temperature rise, altitude, and number of units. Includes combustion air and louver area sizing from face velocity.

Air density correction above sea level
Typical louver face velocity: 4–6 m/s
Ventilation Reference

Combustion Air vs Cooling Air: What a Generator Room Needs

A generator room must serve two different air streams, and confusing them is the most common ventilation mistake. Combustion air is the air the engine draws into its cylinders — about 5–7 m³/h per kW. Cooling air removes heat from the radiator and alternator — far larger at 30–50 m³/h per kW.

Component Typical Airflow Purpose
Combustion air 5–7 m³/h per kW Engine intake
Room heat removal 15–25 m³/h per kW Radiated heat from engine + alternator
Cooling (radiator) air 30–50 m³/h per kW Radiator heat rejection (ducted out)
Total ventilation 50–80 m³/h per kW All streams combined
Practical takeaway: If your radiator discharges are ducted out, the room itself only needs to handle combustion air plus radiated heat — roughly 20–32 m³/h per kW. If not, the room must move the full 50–80 m³/h per kW. The calculator's advanced mode asks which applies.
Ventilation Requirements

Diesel Generator Room Ventilation Requirements

A diesel generator room needs a total ventilation rate of roughly 50–80 m³/h per kW (about 29–47 CFM per kW) to stay within a 10 °C maximum room temperature rise. In imperial terms, that is approximately 175–185 CFM per kW of heat rejected.

FACTOR 01

Radiator Ducting

Ducted radiator discharge cuts the room's burden dramatically; un-ducted discharge forces the room to handle the full heat load. The calculator's advanced mode asks which applies.

FACTOR 02

Temperature Rise

Allow a 5 °C rise and you move more air; allow 15 °C and you move less — but the room gets hotter. The calculator lets you adjust ΔT to find the balance.

FACTOR 03

Altitude & Ambient Temperature

Both reduce air density and derate heat rejection. At altitude, the engine produces less power and the radiator rejects less heat — the calculator applies density correction.

FACTOR 04

Multiple Units

Two generators in one plant room do not simply double — they interact. The calculator's multi-unit mode sizes them together, accounting for shared heat load and air distribution.

FORMULA

Heat-Load Formula

For a precise number, use V = Q ÷ (Cp × ρ × ΔT) rather than the rule of thumb. We publish actual heat-rejection data for our Cummins, Perkins, Weichai, and Yuchai engine options, so your calculation matches the unit you are actually buying.

Worked Example

1000 kW Generator — Total Ventilation

Heat load: 300 kW (k = 0.3) · Allowed rise: 12 K. Airflow: 300,000 ÷ (1005 × 1.2 × 12) = 20.7 m³/s. That is ≈ 74,500 m³/h, or ≈ 43,900 CFM. Combustion air adds roughly 6,000 m³/h on top.

Louver & Layout Design

Louver Sizing & Design Parameters for Generator Rooms

Airflow is only useful if you can get it into and out of the room. The formula is simple: free opening area = airflow ÷ face velocity. Use a standard face velocity of about 5 m/s (1,000 ft/min).

01

Free Opening Area

Formula: Free opening area = airflow ÷ face velocity. Using 5 m/s, a 1000 kW generator (20.7 m³/s) needs 4.15 m² of free opening area — roughly 45 ft².

02

Inlet & Outlet Rules

Inlet area should be at least 1.5× the radiator face area (2× in hot climates). Outlet area should be at least 1.25× the radiator face area. Position the inlet low and the outlet high, on opposite walls.

03

Louver Free Area Ratio

A louver's gross area is larger than its free area. A louver rated at 80% free area needs 4.15 ÷ 0.8 = 5.2 m² of physical louver to deliver 4.15 m² of effective opening.

04

Separation & Clearances

Louver separation: minimum 3 m between inlet and outlet. Clearances: 1.0 m on all sides of the generator, 1.5 m on the radiator discharge side. Room height: minimum 3.5 m.

05

Max Room Temp Rise

Maximum room temperature rise: 10 °C above ambient. Air-cooled rooms should not exceed 35 °C. Combustion air intake temperature: no higher than 40 °C.

06

Room Height & Layout

Room height: minimum 3.5 m, with 4.0 m preferred above 500 kW. The calculator reports free opening area so you can apply your louver's free-area ratio and position openings correctly.

Code Standards

Design Parameters, Clearances & Codes by Market

The governing standards vary by market, and a global supplier should design to all of them. We design to the standard your project cites. For an export order, that often means confirming compliance against more than one.

NFPA 110

North America

Combustion air and heat-removal ventilation for emergency and standby power systems. Defines runtime classes, fuel storage requirements, and ventilation criteria for critical facilities and Level 1 systems.

ISO 8528-5

International

Reference conditions, rating definitions, and performance testing for generator sets. The basis for derating, heat-rejection calculations, and nameplate ratings across all markets and applications.

AS 1668.2

Australia

Mechanical ventilation air-change rates for buildings. Specifies minimum ventilation requirements for generator rooms, occupied spaces, and compliance with local building codes.

GB Standard

China

Combustion air at 7 m³/kWh. CO limited to 30 mg/m³ and acrolein to 0.3 mg/m³ in occupied spaces. The standard your project cites determines the design basis.

Multiple Standards

Export Orders

For an export order, compliance often means confirming against more than one standard. We design to the standard your project cites and publish actual heat-rejection data for our engine options — Cummins, Perkins, Weichai, and Yuchai.

Final ventilation design should be checked against the complete load schedule, engine heat-rejection data, site conditions, and applicable codes (NFPA 110, ISO 8528-5, AS 1668.2, GB standards) before construction begins. We publish actual heat-rejection data for our engine options so your calculation matches the unit you are actually buying.

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Get the Right Ventilation — and the Generator to Match

Ventilation is not a bolt-on afterthought; it is part of the generator’s performance envelope. A correctly sized room keeps the engine within its rated temperature range and keeps standby power reliable for its full service life.

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