A rounded robot looks like a styling choice. It is actually a force management device. When a curved shell meets an obstacle, contact does not happen all at once across a flat area; it starts at a small point, then the contact patch grows as the surface rolls, which stretches the impact duration and, by basic impulse theory, lowers the peak force transmitted into the chassis.
Lowering the center of mass does something just as counterintuitive. It invites motion instead of resistance. With mass concentrated closer to the ground, a horizontal hit produces a larger torque relative to the weight’s support, so the robot tends to pivot and roll rather than stop dead; that rotation redirects linear momentum into angular momentum, cutting the straight-line deceleration that would otherwise spike normal force at the contact zone.
The combination is quietly ruthless. Rounded geometry promotes glancing blows and sliding contact, which reduces normal impulse, while a low center of mass improves static and dynamic stability, so the robot can accept that induced rotation without tipping into a fall that would cause a second, harsher impact. No accelerometers, no feedback loop, just geometry and rigid-body dynamics doing the work.