Within model envelope
Aircraft design, made understandable

AeroForge

Change an aircraft. See what happens. Fly the result.

Start with a working aircraft, adjust one part, and AeroForge shows how that choice changes stability, speed, efficiency, and takeoff. No aerospace background is required.

Browse aircraft
10-second quick testDrag a control
Lift-off speed65 ktTrainer reference: 55–75 kt
Takeoff runway304 mShort runway: under 650 m
HandlingEasy to flyComfort zone: 3–12% margin

How it works

One clear loop from idea to evidence.

  1. 1ChoosePick an aircraft and a focused question.
  2. 2ChangeAdjust one part and see the predicted effect.
  3. 3TestFly it and compare the result with your prediction.
00Aircraft missions

Choose what you want to explore.

0 of 5 missions complete. Each aircraft teaches one different design tradeoff.

01
T-2

Cadet

Stable beginner trainer

Rotation and natural stabilityRotation is the gentle nose-up input used at takeoff speed. Natural stability describes whether the aircraft tends to settle after a disturbance.Make first lift

Fly the baseline Cadet. Rotate gently at Vr and establish a positive climb without exhausting the stall margin.

Why this aircraft works

A straight high wing, moderate dihedral, and forward center of mass make disturbances settle instead of grow. The root stalls first, preserving aileron authority.

Not yet tested
02
R-70

Peregrine

Efficient regional turboprop

Aspect ratio and induced dragAspect ratio compares wing span with area. Induced drag is the drag cost of producing lift, especially at low speed.Stretch for efficiency

Increase the Peregrine wing span by 2 metres. Predict the efficiency change, then test its new takeoff behavior.

Why this aircraft works

A straight, slender high wing is efficient at regional speeds. Large propellers move a large mass of air gently, producing useful thrust without jet-level fuel flow.

Not yet tested
03
PJ-12

Solace

High-speed private jet

Wing sweep and low-speed liftWing sweep helps high-speed flight but reduces the wing’s useful low-speed lift.Trade speed for runway

Reduce the Solace wing sweep by 5°. Compare its rotation speed with the baseline and identify the cruise-speed compromise.

Why this aircraft works

A moderately swept wing balances fast cruise and landing speed. Tail-mounted engines keep the cabin quiet but ask more of the rear structure.

Not yet tested
04
X-17

Vesper

Agile fighter research aircraft

Center of gravity and static marginStatic margin compares the center of gravity with the neutral point. A smaller positive margin feels more responsive; a negative margin is unstable.Move toward agility

Move the Vesper center of mass aft by 2% MAC. Watch the stability feedback, then test the more sensitive aircraft.

Why this aircraft works

Sweep and a low aspect ratio reduce transonic penalties but increase induced drag. A small static margin makes the aircraft agile and demanding.

Not yet tested
05
W-900

Stratos

Long-range wide-body laboratory

Mass, wing loading, and runway lengthWing loading is aircraft mass divided by wing area. More loading usually raises takeoff and landing speed.Load the long-haul flight

Add 10,000 kg of payload to Stratos. Predict the change in rotation speed and runway distance before flying it.

Why this aircraft works

Long wings reduce vortex drag, sweep protects high-speed cruise, and a long tail arm provides stability without an oversized stabilizer.

Not yet tested
Learn the aerodynamics behind the numbersEquations, core ideas, and a plain-language glossary
Calculation model

The visible aircraft and the numbers use the same inputs.

Faster air pushes harder — that’s dynamic pressure, and it grows with the square of speed. The wing turns that motion into lift; its area and shape also determine how much drag the aircraft pays for that lift.

Wing loading

Mass divided by wing area

Higher loading usually means a faster stall and landing, but a steadier ride in turbulence.

Aspect ratio

Span squared divided by area

Long, slender wings reduce induced drag but demand more structural stiffness.

Static margin

CG relative to the neutral point

A forward margin self-corrects pitch. Too much feels heavy; too little can become unstable.

Tail volume

Area multiplied by lever arm

A smaller tail can still be effective when placed farther from the wing.

Glossary

Plain language first.

Angle of attack

The angle between the wing and the air hitting it. People mix this up with the aircraft's pitch, but they're not the same thing.

Aspect ratio

Wing span squared divided by wing area. For a roughly rectangular wing, that is also span divided by mean chord. Long, slender wings usually reduce induced drag.

Dynamic pressure

The air’s motion pressure, ½ρV². Doubling speed produces four times as much dynamic pressure.

Induced drag

The drag cost of making lift. It is largest when an aircraft is slow and working hard.

Lift-to-drag ratio

How much lift the wing produces for each unit of drag. Higher values mean better aerodynamic efficiency.

Static margin

A first-order measure of pitch stability based on center of gravity relative to the neutral point.

Stall

The wing loses lift because the angle of attack got too steep for the air to follow the surface. Nothing to do with the engine.

Wing loading

Aircraft mass divided by wing area. Higher loading generally raises stall and landing speed.