Chemistry · Mg / Mg(OH)₂
Raise the pH of seawater with lime (Ca(OH)₂) or caustic soda and watch dissolved Mg²⁺ convert to solid Mg(OH)₂ once the ion product exceeds the solubility product Ksp.
Model: Ksp[Mg(OH)₂] = 5.6×10⁻¹² at 25℃. [OH⁻] = Kw/[H⁺] with Kw=1.0×10⁻¹⁴. Equilibrium dissolved [Mg²⁺]eq = Ksp/[OH⁻]²; anything above that precipitates as Mg(OH)₂ floc. Reagent dose is stoichiometric (2 mol OH⁻ consumed per mol Mg²⁺ precipitated, plus the free [OH⁻] left in solution at the target pH), a simplification that ignores seawater's carbonate/borate buffering.