
Why did nature solve this before engineering
The peregrine falcon applies aerodynamics it never studied. We explain why physics works whether we understand it or not, and how changing the point of observation solved the tire bounce.
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Resonance: the force that collapses bridges and the one that keeps you glued to the ground
Resonance destroyed the Tacoma Narrows Bridge in 1940. The same physical principle, in anti-phase, is what keeps your tire glued to the road. Here is how.
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Energy is neither created nor destroyed. That's why your rebound has to go somewhere.
The first law of thermodynamics explains why your tire's bounce doesn't just disappear. We explain how the Gravitational Resonator redirects it toward grip instead of letting it turn into damage.
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The invisible gyroscope: why your motorcycle stays upright on its own (and what makes it unstable)
A spinning wheel is a gyroscope that keeps your bike stable, but only while it’s on the ground. We explain how tire bounce interrupts that effect, and how the Resonator keeps it anchored.
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Impulse and Momentum: Why Not Just How Much Force, but When, Matters
A force at the right moment is worth more than a greater force at the wrong moment. We explain, using the physics of impulse, why the Resonator counteracts rebound where the suspension is too late.
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Your motorcycle's suspension works between 1 and 3 Hz. Tire bounce occurs on a much faster scale. We explain the 2 to 35 Hz range of the Gravitational Resonator and why it doesn't compete with your...
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The thermodynamics of the Gravitational Resonator: how Oversuspension applies the second law and reduces the entropy of the motorcycle-rider system. In the words of Nicola Bragagnolo.
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The physics behind Oversuspension: Preparata and Del Giudice’s coherence domain, and how it applies to your bike’s stability. Science turned into metal.
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Entropy measures the degree of disorder in a system. When the wheel bounces less, we decrease entropy and bring coherence to the motorcycle-rider system. Oversuspension directly applies the second ...
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