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Thrust-to-Weight Ratio Calculator

The thrust-to-weight ratio of a rocket, aircraft or stage from its thrust and mass — at lift-off and at burnout — with the net acceleration in g and in m/s².

Thrust divided by weight (mass × gravity) says whether a vehicle can climb: below 1 it cannot lift off vertically; rockets launch at 1.

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Results
Thrust-to-weight at lift-off
1.41
Net vertical acceleration at lift-off
Thrust-to-weight at burnout
Reads as
Most mass this thrust can lift here
Reviewed September 2026. Orbital mechanics and optics: identical everywhere, with no market variation of any kind. NASA's JPL Horizons system provides the ephemerides that real orbital work uses in place of the idealized formulas here.
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About thrust-to-weight ratio

How the thrust-to-weight ratio calculator works

Thrust divided by weight (mass × gravity) says whether a vehicle can climb: below 1 it cannot lift off vertically; rockets launch at 1.2–1.6 and finish a stage at 3–6 as propellant burns off; fighters exceed 1, airliners sit near 0.3. Net vertical acceleration is (T − W) ÷ m. On the Moon the same rocket has six times the ratio.

Formula: TWR = T ÷ (m g); a = (T − m g) ÷ m

Worked examples

InputsThrust-to-weight at lift-offNote
7,600 kN on 550 t, burnout at 150 t1.411.41 at lift-off, 5.16 at burnout
An airliner: 2 × 400 kN on 400 t0.20.20 — wings do the lifting
A lunar lander: 45 kN on 15 t on the Moon1.851.85

Frequently asked questions

Why do rockets launch at only about 1.3?

A higher ratio needs bigger, heavier engines that are dead weight later in the flight, while a lower one wastes propellant hovering against gravity. Around 1.2–1.6 at lift-off is the compromize most launchers settle on; the ratio climbs steadily as the tanks empty.

What limits the ratio at burnout?

Crew and payload tolerance — the Space Shuttle throttled down to hold 3 g, and uncrewed rockets throttle or shut engines to keep below 5–6 g so the structure and payload survive.

Does an aircraft need a ratio above 1?

No — wings provide lift, so an airliner flies at 0.25–0.35 and a light aircraft at 0.2. Only a vehicle climbing vertically on thrust alone, or a fighter accelerating straight up, needs more than 1.

How does gravity change it?

Directly: the same rocket on the Moon has a ratio six times higher, on Mars 2.6 times. That is why lunar landers can hover on small engines.

Where these figures come from

Last checked: September 2026. Constants are CODATA 2018 (G, c) and IAU 2015 nominal values (solar and planetary parameters).