ORIOLEWRDE FLIGHT LABLoading study…
METHANE / AIR / LIQUID OXYGEN · INITIAL DESIGN STUDY

A small shuttle.
A difficult orbit.

Explore two wobbling-disk engine concepts and a one-person spaceplane. Follow the computed ascent, inspect the CAD, and see where the physics stops supporting the ambition.

Loading feasibility result…

Preliminary numerical study. Sustained engine detonation, flightworthiness, and SSTO feasibility remain unestablished.

01 / FORM & PACKAGING

Inside the concept

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14 m × 9 m · packaging envelopes
Drag to orbit · scroll to zoom · hover to identify
A

Pure air breathing

CH₄ fuel with atmospheric oxygen. Ram compression feeds the chamber; inlet momentum is deducted from gross thrust. Requires an external Mach 2.2 start. No static thrust and no vacuum operation.

H

Air + rocket

CH₄/LOX supplies runway acceleration and high-altitude thrust. A proposed isolation system closes the air path for rocket operation. This is a combined-cycle concept; both propellants are liquids in storage.

A slower mechanical cycle

The previous 844.7 Hz candidate failed its structural screen. This candidate uses 20 Hz wobble, separate from approximately 0.9–1.3 kHz ideal gas-wave circulation. Pressure supports and seals remain unresolved.

02 / ASCENT & ORBIT CLOSURE

Fly the numbers

Ascent ground track

Altitude / km · downrange / km
T + 0 s

Speed / km s⁻¹

Thrust, drag & lift / kN

Propellant remaining / tonnes

Dynamic pressure / kPa

Proper acceleration / g

Nose heating estimate / kW m⁻²

LOSS ACCOUNTING

Lower gravity loss is only one term.

Lift can keep the path shallow, reducing the gravity component along the flight direction. It also costs induced drag; longer atmospheric flight accumulates drag and fuel consumption. Orbit still requires enough horizontal speed and a perigee above the atmosphere.

Signed integrals run from liftoff to the displayed endpoint, including coast. Runway impulse and fuel use are separate. Comparisons use different endpoints and do not establish a universal Δv saving.

LIVE MODEL / FIXED GUIDANCE

Change the assumptions

Runs Python on machine 146. Sensitivity experiments, not validated engine settings. Guidance is not reoptimized.

Flight equations, constraints, optimizer and uncertainty

The model integrates a spherical, rotating Earth, variable gravity, separate propellant inventories and RK4 time stepping. The equatorial eastward launch is favorable; no launch-site restrictions are modeled. Layer atmosphere through 84.852 km geopotential altitude, followed by a simple low-density extension.

ḣ = V sin γ
V̇ = (T cos α − D)/m − (μ/r² − Ω²r) sin γ
γ̇ = (T sin α + L)/(mV) + [V/r − (μ/r² − Ω²r)/V] cos γ + 2Ω
L = q S CL       D = q S (CD₀ + 0.16 CL²)
Tair = ṁair [(1 + f) Ve − V]
Trocket = ṁprop Isp,vac g₀ − pamb Ae
Inertial velocity: Vt = V cos γ + Ωr, Vr = V sin γ.

Assumed methane LHV 50 MJ/kg; air equivalence ratio ≤0.9; inlet total-pressure recovery from 0.82 at Mach 2.2 to 0.20 at Mach 5; combustor pressure multiplier 0.92, with no detonation pressure-gain credit. Averaged hot-gas cp and γ and ideally expanded variable nozzles make this a preliminary cycle map. High-temperature inlet chemistry and installed nozzle losses remain unresolved.

Search limits: 55 kPa dynamic pressure, 4 g proper load, 800 kW/m² nose heat-flux estimate. A 150 km altitude goal accompanies maximum osculating perigee. Penalty optimization is a search aid; violated limits are displayed as failures. No global-optimum claim. Sutton–Graves heating is an estimate, not a TPS or safe-landing analysis.

03 / GAS CHEMISTRY

Detonatable mixture ≠ qualified engine

CANTERA + CALTECH SDTOOLBOX

Ideal CJ speeds and finite-rate planar ZND profiles. ZND uses 1% overdrive to avoid the sonic endpoint singularity. No cell-width, ignition-success or sustained rotating-engine claim is inferred.

Mixture / stateUpstreamCJ speedInduction lengthReaction scaleStatus

Planar temperature profile

Distance behind shock / mm. View focuses on reaction region; raw full profiles remain downloadable.

What remains to make it work

Real refill, mixing and wave survival must be solved in the moving chamber. Methane and oxygen are cryogenic liquids in storage; these chemistry calculations start with gases and do not establish vaporization or injection performance.

Cold methane–air has a much larger computed induction scale than preheated air. The short oxygen-case reaction scale and high shock pressure make the earlier 11.7 mm CFD cells inappropriate for claiming resolved methalox detonation.

A manufacturable load path, cooling, pressure losses, mechanism sensitivity and mesh-resolved sustained operation remain open.

Full chemistry output ↓
04 / PROVENANCE & DELIVERABLES

Evidence you can inspect

RECOVERED / SEPTEMBER 6

The earlier engine

Original files remain at /root/wobble-engine on 146 and D:\work\projects\wrde on TH155. The old candidate produced 100 μs of reactive startup CFD, not established sustained detonation.

The structural screen predicted 28.45 mm displacement and 11.62 GPa elastic extrapolated stress at 844.7 Hz. That invalidated the rigid elastic design; those are not post-yield operating predictions.

Recovered evidence summary ↓
ENGINEERING STATUS

Concept, with explicit limits

No physical engine test, new coupled engine CFD, inlet CFD, six-degree-of-freedom stability, detailed flexible-body analysis, thermal protection design, crew qualification or return-and-landing simulation has been completed for this candidate.

Reaching 100 km is suborbital. This study does not certify a feasible SSTO or detonating hardware.

Detailed findings and next decisions ↓