🏛️ Stack Effect & Ventilation
Calculate thermal stack buoyancy draft, neutral pressure level (NPL), wind surface pressure, and natural ventilation airflow through atriums and shafts.
⚡ Fortran 90 Engine
Double Precision (IEEE 754)
✓ ISO / ASME Validated
📊 Solver Telemetry
● ACTIVE
👁️ Consultations
17
⚡ Calculs faits
13
💾 Téléchargements
140
📦 Code Fortran
4.4 KB
📅 Mise en service
Jun 2026
⏱️ Latence
< 1 ms
🏛️ Atrium Thermal Plume Convection & Neutral Pressure Level (NPL)
Real-time visual simulation of buoyancy updraft, inlet louvers & roof exhaust ventilation📝 Configuration & Presets
CIBSE / ASHRAE Stack Formulations:
• Stack Pressure: ΔPstack = ρo · g · H · (Ti − To) / Ti
• Wind Pressure: ΔPwind = ½ · ΔCp · ρo · vw²
• Effective Area: Aeff = (A₁ · A₂) / √(A₁² + A₂²)
• Natural Flow: Q = Cd · Aeff · √[ (2 ΔPtotal) / ρo ]
• Stack Pressure: ΔPstack = ρo · g · H · (Ti − To) / Ti
• Wind Pressure: ΔPwind = ½ · ΔCp · ρo · vw²
• Effective Area: Aeff = (A₁ · A₂) / √(A₁² + A₂²)
• Natural Flow: Q = Cd · Aeff · √[ (2 ΔPtotal) / ρo ]
📊 Natural Ventilation Results
📊 Output Summary
Natural Ventilation Airflow Rate
Q = 31,776 m³/h (18,703 CFM)
Air Change Rate: 2.65 ACH (Building Volume = 12,000 m³)
NPL = 4.4 m
Thermal Stack Head (ΔPstack)
3.55 Pa
ΔT = 10.0 °C (Buoyancy)
Wind Driving Head (ΔPwind)
1.45 Pa
2.0 m/s (ΔCp = 0.6)
Total Driving Pressure
3.84 Pa
Combined Vector Head
Effective Opening Area (Aeff)
5.66 m²
Inlet 8m² / Outlet 8m²
📈 Ventilation Flow Rate (m³/h) vs Stack Height H
📉 Ventilation Flow Rate vs Temperature Difference (ΔT)
================================================================= THERMOFLUIDCALC — NATURAL VENTILATION & STACK EFFECT REPORT ================================================================= Case Title : Industrial Logistics Warehouse Night Flushing Ventilation Stack / Atrium Height (H) : 9.00 m Inlet / Outlet Open Areas : 8.00 m2 (Inlet) / 8.00 m2 (Outlet) Effective Opening Area : 5.66 m2 Indoor / Outdoor Air Temp : 28.0 °C (In) / 18.0 °C (Out) -> ΔT = 10.0 °C Roof Wind Speed & Coeff : 2.00 m/s (ΔCp = 0.60) ----------------------------------------------------------------- Thermal Stack Buoyancy Head: 3.55 Pa Wind Surface Driving Head : 1.45 Pa Combined Total Driving Head: 3.84 Pa Neutral Pressure Level NPL : 4.42 m above base (49.2 % height) NATURAL VENTILATION FLOW : 31,776.2 m3/h (18,703 CFM) Air Change Rate (ACH) : 2.65 h-1 (Building V = 12000 m3) =================================================================
📘 Calculation Methodology & CIBSE Standards
Thermal Buoyancy & Stack Effect
Warm indoor air is less dense than cold outdoor air, creating an upward hydrostatic pressure gradient driving warm air out upper roof openings:
ΔPstack = ρo · g · H · (Ti − To) / Ti
Neutral Pressure Level (NPL)
The NPL is the elevation where indoor and outdoor pressures are equal. Below the NPL, air infiltrates inwards; above the NPL, air exhausts outwards.
Key Engineering Assumptions
- Standard discharge coefficient $C_d = 0.62$ across louver openings.
- Combined stack and wind driving heads summed in quadrature per BS 5925.
- Uniform vertical temperature distribution inside the stack envelope.