Sway is not a flaw; it is the price of reach. A long suspension bridge behaves less like a stone arch and more like a calibrated instrument, its main cables and deck sized to keep natural frequencies away from the rhythms of wind and traffic. That tuning, guided by modal analysis and wind tunnel data, decides how many meters the deck may move without losing control of its own motion.
Stability, oddly, comes from letting the bridge move. Aerodynamic box girders, fairings and tuned mass dampers are arranged so that vortex shedding and flutter cannot lock onto the structure the way a steady push drives a playground swing. When gusts arrive, the deck twists and rises within predicted envelopes, while stay cables and hangers redistribute forces so a lone car never feels the violent loads the whole span is quietly absorbing.
Temperature makes the problem harsher, not softer. Steel expands, concrete creeps, cables stretch; so engineers cut the deck into segments, add expansion joints, and seat the ends on bearings that slide and rotate. The global geometry shifts by decimeters, yet local stresses at a single lane line stay within design limits, enforced by safety factors that assume heavier traffic, sharper gusts and wider thermal swings than the bridge will likely ever see.