Free Duct Design Tool

Duct Calculator — Duct Size, Velocity & Static Pressure for Fan Selection

The number most fan buyers skip. Enter the airflow, duct size, length, fittings and any filters or grilles; the calculator returns the system static pressure (Pa and in. w.g.), the air velocity with a noise check, and a duct size that keeps velocity sensible. Use the result to read your fan curve at the right point.

No signup · Works on mobile · Formulas shown below · Updated 2026-08-23

Static Pressure of a Duct Run

Total static = duct friction + fittings + components. Darcy–Weisbach with Swamee–Jain friction factor.

mm
mm
m
Supply + exhaust side, longest run. 1 ft = 0.305 m
Pa
Typical: grille 10–25, louvre 20–50, backdraft damper 15–30, G4 filter 50–100 (dirty ×2), carbon filter 80–150, kitchen hood 100–250, HEPA 250+

Results

Engineering estimate for preliminary sizing. Verify against the fan curve, local codes and your system measurements before purchase. Ask a Longwell engineer to check your duty point free of charge.

How static pressure is calculated

A fan only "sees" resistance: the sum of friction along the duct, the turbulence losses in every fitting, and the pressure drop across components such as filters, grilles and hoods. That total is the static pressure the fan must develop at your airflow — the point on the fan curve you must select against.

Duct friction Δpf = f × (L ÷ Dh) × ½ ρ V² // Darcy–Weisbach
Friction factor f = 0.25 ÷ [ log₁₀( ε/(3.7 Dh) + 5.74/Re0.9 ) ]² // Swamee–Jain (turbulent)
Fittings Δpk = Σ K × ½ ρ V²
Rectangular duct Dh = 1.30 × (a·b)0.625 ÷ (a+b)0.25 // equivalent round diameter for equal friction
Total ps = ( Δpf + Δpk + components ) × safety factor

Velocity pressure ½ρV² is the hidden driver — it doubles when velocity rises 41 %, which is why the quickest fix for a system that "has no airflow" is a bigger duct, not a bigger fan.

Recommended duct velocities & typical component pressure drops

ApplicationMain ductsBranchesWhy
Residential3.5–5 m/s (700–1,000 fpm)2.5–4 m/sNoise in living spaces
Offices, schools, hotels5–7.5 m/s (1,000–1,500 fpm)3–5 m/sNC 30–35
Retail, restaurants7–9 m/s4–6 m/s
Industrial ventilation8–12 m/s (1,500–2,500 fpm)6–9 m/sCost over noise
Kitchen grease exhaust≥ 7.5 m/s (1,500 fpm) by codeKeep grease moving (NFPA 96 / IMC)
Dust / chips (wood, metal)18–23 m/s (3,500–4,500 fpm)Transport velocity
ComponentPressure drop (clean, design velocity)
Supply grille / diffuser10–25 Pa
Exhaust grille10–20 Pa
Weather louvre with bird screen20–50 Pa
Backdraft (gravity) damper15–30 Pa
G4 / MERV 8 panel filter40–70 Pa clean, 150 Pa final
F7 / MERV 13 bag filter80–120 Pa clean, 250 Pa final
HEPA H13250 Pa clean, 500 Pa final
Activated carbon filter (grow tent)80–150 Pa
Kitchen hood with baffle filters100–250 Pa
Heating / cooling coil (4-row)60–150 Pa
Silencer / attenuator30–80 Pa

Worked example: grow-tent exhaust

Given: 600 m³/h through 150 mm flexible duct, 5 m long, two bends, carbon filter (120 Pa), 15 % safety.
  1. Area 0.0177 m², velocity 9.4 m/s, velocity pressure 53 Pa
  2. Flex duct ε = 3 mm → f ≈ 0.049 → friction ≈ 87 Pa for 5 m
  3. Bends 2 × 0.9 × 53 = 95 Pa, entry/exit ≈ 53 Pa
  4. Total ≈ (87 + 148 + 120) × 1.15 ≈ 410 Pa — a "600 m³/h" axial in-line fan will deliver perhaps 250 m³/h here. Use a 150 mm EC mixed-flow or backward-curved duct fan, or step up to 200 mm duct (velocity 5.3 m/s → total ≈ 200 Pa).

Frequently Asked Questions

What is a typical static pressure for a duct system?
Residential exhaust fans: 25–125 Pa (0.1–0.5 in. w.g.). Residential HVAC: 125–250 Pa external. Commercial AHU systems: 250–750 Pa. Kitchen hoods and dust collection: 500–1,500 Pa. If you do not know, measure it or calculate it here — guessing is the most common cause of under-performing fans.
How do I calculate duct friction loss?
Use Darcy–Weisbach: friction = f × (length ÷ hydraulic diameter) × ½ρV². For galvanised duct at 5 m/s this is about 1 Pa per metre in a 250 mm duct, rising to 3 Pa/m in a 100 mm duct; flexible duct is 5–10 times worse.
How much pressure drop does an elbow add?
An elbow adds K × velocity pressure. At 5 m/s velocity pressure is 15 Pa, so a smooth elbow (K 0.3) costs ~5 Pa and a mitred elbow (K 1.2) ~18 Pa. In a flex-duct system at 9 m/s each bend costs 40–50 Pa.
What duct size do I need for a given CFM?
Pick a velocity first (1,000 fpm / 5 m/s residential-commercial), then area = airflow ÷ velocity. 400 CFM at 1,000 fpm needs 0.4 ft² → an 8–9 in duct. The calculator suggests the next standard round size.
Why is my new fan not moving more air than the old one?
Because the system, not the fan, sets the airflow. If the ducting is the bottleneck, a larger fan just moves the operating point up the same steep system curve. Cut the static pressure (bigger or shorter duct, fewer bends, clean filters) before buying a bigger fan.

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