Spring strength
90%
The base centring force that pulls the stick back to centre. Every other force stacks on it. Too low and the stick feels limp in normal flight; too high and it fights your hand and masks the smaller cues layered above it.
▲ More: firmer centring that resists your hand at all times.
▼ Less: a limper stick that leans on aerodynamic load alone.
Why here: 90%: a fighter stick centres hard. The Mustang's controls were praised for their centering and self-alignment.
Spring deadband
4%
A small neutral zone around centre where the spring stays quiet, so tiny movements at rest don't chatter. Wider is calmer but looser; narrower is more precise but can twitch around centre.
▲ More: a calmer but looser centre with more free play.
▼ Less: a tighter centre that may chatter at rest.
Why here: Standard small play for a rod-and-cable fighter.
Low-speed spring floor
50%
How much of the spring survives at a standstill, before airspeed can build any aerodynamic force. A high floor keeps the parked stick firm; a low floor gives the loose, cable-slack feel of a parked light aircraft.
▲ More: a firmer stick while parked and taxiing.
▼ Less: a floppier parked stick that only wakes up with airspeed.
Why here: Half strength parked: the stick is alive even before the tail comes up.
QBlend enabled on · QSpring start knots 20 · QSpring full knots 90
Elevator load
105%
The sustained pitch load from elevator deflection and airspeed, balanced independently of roll. This is the main lever behind a type's pitch weight. It does not touch aileron, spring, trim, or buffet forces.
▲ More: heavier sustained pitch forces at speed.
▼ Less: a lighter elevator that takes less muscle to hold.
Elevators considerably heavier — the documented harmony.
Aileron load
80%
The sustained roll load from aileron deflection and airspeed, balanced independently of pitch. Together with the elevator load it sets the control-harmony ratio reviewers talk about.
▲ More: heavier roll forces.
▼ Less: lighter, quicker-feeling ailerons.
Ailerons light and only slightly stiffening with speed.
Overall aerodynamic load
95%
A master scale over both sustained axis loads, applied before their independent balance. Profiles normally leave this alone and tune the two axis loads instead.
▲ More: both axes load up harder.
▼ Less: both axes lighten together.
Why here: 95%: the highest aerodynamic-load multiplier in the fleet. Combined with the 250 kt reference this is where the iron-above-350 feel comes from.
Cruise reference (kt)
250
The indicated airspeed where aerodynamic load reaches its designed full level. It anchors the whole load curve to the aircraft's real speed range: a 172 loads up by 110 knots, a jet much later.
▲ More: loads arrive later; the stick stays light up to a higher speed.
▼ Less: loads arrive earlier and cruise feels heavier.
Why here: 250 kt: escort cruise. The load curve keeps building far beyond it, exactly as the type did.
Airspeed curve
2.0
How sharply stick load builds with airspeed. 1.0 is linear; about 2.0 matches real aerodynamics, where dynamic pressure grows with the square of speed, so controls are much lighter slow and firm up fast. Felt when holding the stick off centre, not at rest.
▲ More: lighter at low speed with a steeper rise toward cruise.
▼ Less: a more linear build that loads up earlier.
Raw hinge moment on a 439 kt envelope — the q-law is what makes 250 kt heavy while approach stays "moderate forces, very effective".
Centre firmness vs speed
10%
How much the centring itself stiffens with speed, on top of the deflection loads. Zero keeps centre feel constant; more makes the stick centre harder at cruise and looser in the pattern.
▲ More: a centre that hardens noticeably as you go faster.
▼ Less: constant centre feel at every speed.
Centering keeps firming above 90 kt (capped ≈1.40×) instead of flat-lining at approach speed.
Spring airspeed stiffen cap 5
Max output force
68%
A cap on each steady pitch or roll force before it reaches the device, guarding against slamming or saturating the hardware in strong maneuvers.
▲ More: stronger peak steady forces before clipping.
▼ Less: a gentler ceiling; hard maneuvers flatten out sooner.
Why here: 68%: high ceiling. A dive-recovery pull should genuinely resist.
Hydraulic load factor
60%
For hydraulically-boosted or fly-by-wire types: how much of the raw aerodynamic load actually reaches the pilot's hand. 1.0 is a fully manual control run; lower values model the artificial-feel systems that isolate the pilot from true surface loads.
▲ More: more raw aerodynamic load reaching your hand.
▼ Less: more isolation, closer to pure artificial feel.
Why here: Inert for a manual control run.