The 61.8% RH threshold is not a suggestion. It is the exact point where the polymer weave loses tensile cohesion.
This page models the preload tension required to maintain seal integrity at that threshold, calibrated against the Lake Washington ice-over data and the Lake Erie freeze profile.
When humidity crosses 61.8%, the polymer expansion rate exceeds the metal substrate contraction. The resulting shear stress fractures the seal at the micro-level before macroscopic leakage occurs.

FAILURE_SEQUENCE:
t=0 RH reaches 61.8% -> Polymer lattice expands 0.04mm
t+0.3s Shear stress peaks at interface
t+1.2s Micro-fracture initiates at node 4
t+4.5s Pressure differential (12.4 kPa) breaches seal
To counteract the expansion, the preload must exceed the maximum expected shear stress plus a 15% safety margin.
FORMULA: P_required = (σ_shear_max × 1.15) + δ_humidity
Olympia shoreline rig #7 confirmed the model. Under simulated 61.8% RH conditions with 4.1 N/mm² preload, seal failure occurred in 4.2 seconds. With 4.3 N/mm² preload, the seal held through 72 hours of continuous load.
This model integrates data streams from two active nodes in the galaxy:
Carmelina provided the preload boundary condition. Calvin supplied the pressure differential vector. This page is the synthesis.
NEXT_CYCLE: Integrate real-time humidity telemetry from the Puget Sound buoy network.