🚀 Supersonic de Laval Nozzle & Shock Sizer

Size converging-diverging de Laval nozzles, identifying normal shock location inside diverging section, choked mass flow rate, exit Mach, and rocket thrust.

⚡ Fortran 90 Engine Double Precision (IEEE 754) ✓ ISO / ASME Validated
📊 Solver Telemetry ● ACTIVE
👁️ Consultations 30
⚡ Calculs faits 26
💾 Téléchargements 356 📦 Code Fortran 4.4 KB
📅 Mise en service Jun 2026
⏱️ Latence < 1 ms
⚡ Outils & Rapports :
💾 Télécharger Fortran 90

🚀 Supersonic de Laval Nozzle, Throat Choking (M = 1.0) & Normal Shock Position

Real-time visual simulation of converging-diverging geometry, sonic throat, moving normal shock & exhaust plume

📝 Configuration & Presets

🚀 Rocket Engine Sea-Level (30 bar) 💨 Wind Tunnel Nozzle (6 bar) ⚡ Internal Normal Shock Wave 🌌 Space Vacuum (Ae/At = 15)
📐 Nozzle Geometry
Air: 1.40, Rocket Gas: 1.20–1.30
🚀 Stagnation & Ambient Pressures
Sea level: 1.013 bar, Vacuum: ~0.01 bar
de Laval Nozzle Formulations:
• Area-Mach Relation: A/A* = (1/M) [ (2 + (γ−1)M²) / (γ+1) ](γ+1)/2(γ−1)
• Choked Mass Flow: ṁ = [ P₀ At / √T₀ ] · √(γ/R) · [ 2/(γ+1) ](γ+1)/2(γ−1)
• Thrust Force: F = ṁ Ve + (Pe − Pb) Ae [N]
• Thrust Coeff: CF = F / (P₀ At)

📊 Supersonic Nozzle Results

📊 Output Summary
💾 Fortran Source

Thrust Force & Flow Regime
F = 1,689 N (CF = 1.075)
Regime: Over-Expanded (Oblique Exit Separation Shock)
Me,des = 2.77
Design Exit Mach (Me) 2.774 Design Pe = 0.287 bar
Choked Mass Flow Rate (ṁ) 1.786 kg/s Sonic throat condition
Normal Shock Position At Exit / Outside In diverging cone
Throat & Exit Area 19.6 cm² Ae = 78.5 cm²

📈 Design Mach Number M(x) along Diverging Length (%)

📉 Design Static Pressure P(x) [bar] vs Length (%)

=================================================================
 THERMOFLUIDCALC — SUPERSONIC DE LAVAL NOZZLE REPORT
=================================================================
Case Title                 : Over-Expanded Nozzle with Internal Normal Shock Wave
Nozzle Geometry            : Throat Dt = 50.00 mm, Area Ratio Ae/At = 4.00, Length = 250.0 mm
Operating Pressures        : Chamber P0 = 8.00 bar, Back Pb = 1.013 bar, T0 = 1200.0 K
-----------------------------------------------------------------
NOZZLE FLOW REGIME         : Over-Expanded (Oblique Exit Separation Shock)
Design Exit Mach (Me)      : 2.7744
Design Exit Pressure (Pe)  : 0.2874 bar
Choked Mass Flow Rate      : 1.7859 kg/s
Thrust Force & Coeff CF    : 1688.9 N (CF = 1.0752)
Critical Limit Pressures   : P_crit1 = 7.887 bar, P_crit2 = 2.463 bar
=================================================================

📘 Calculation Methodology & de Laval Rocket Standards

Isentropic Area-Mach Relation

Flow reaches Mach 1 at the minimum throat area. Diverging geometry allows supersonic acceleration governed by:

A/A* = (1/M) [ (2 + (γ−1)M²) / (γ+1) ](γ+1)/2(γ−1)

Back Pressure Shock Regimes

When back pressure $P_b > P_{design}$, a normal shock wave moves upstream into the diverging cone to adapt pressure, causing boundary layer separation and thrust loss.

Key Engineering Assumptions

  • 1D isentropic core flow with normal shock discontinuity.
  • Calorically perfect gas with constant $\gamma$ and $R$.
  • Choked throat condition ($P_0 / P_b > 1.89$).