Fluidρ = 1025 kg/m³ Updated 2026-07-29 Material Reference

Seawater

Seawater properties, density (1025 kg/m³), salinity effects on density and viscosity, freezing point depression, and engineering implications for marine pipelines, desalination, and offshore structures.

Density

1025 kg/m³

Overview

Seawater is an aqueous solution of dissolved salts (primarily sodium chloride) with an average salinity of 3.5% by mass (35 g/kg or 35 PSU — Practical Salinity Units). Its density, viscosity, and other physical properties differ from pure water due to dissolved salts, with significant engineering implications for marine piping, desalination, offshore structures, and ocean thermal systems.

ρ = 1025 kg/m³ at 20°C and 35 PSU salinity (2.5% denser than pure water's 1000 kg/m³)

Density Variation with Salinity and Temperature

Temperature (°C)Fresh Water (kg/m³)Seawater 35 PSU (kg/m³)
0999.81028.1
10999.71026.9
20998.21024.8
30995.71021.8
40992.21018.1

Seawater density increases with salinity (~0.7 kg/m³ per PSU) and decreases with temperature. At typical ocean temperatures of 0-15°C (deep water), density is ~1027-1028 kg/m³.

Physical Properties (20°C, 35 PSU)

PropertyValuePure Water Comparison
Density1,025 kg/m³+2.5% (1000 kg/m³)
Dynamic Viscosity1.07 × 10⁻³ Pa·s+7% (1.00 × 10⁻³)
Kinematic Viscosity1.04 × 10⁻⁶ m²/s+4% (1.00 × 10⁻⁶)
Freezing Point-1.9°C0°C (depressed by salt)
Boiling Point~100.6°C100°C (slightly elevated)
Specific Heat3990 J/kg·K4182 J/kg·K (slightly lower)
Vapor Pressure2.3 kPa2.34 kPa (negligible)
Electrical Conductivity~5 S/m~0.0001 S/m (huge difference)
pH7.8-8.37.0 (buffered by carbonate)

The Ocean is Density-Stratified

Warm surface seawater can be ~1023 kg/m³, while cold deep water is ~1028 kg/m³. This density difference drives thermohaline circulation (the global ocean conveyor belt). Engineering systems drawing seawater must consider depth and temperature effects on density and viscosity.

Engineering Implications

Marine Piping & Pumping

  • Use 1025 kg/m³ density for pump head/power calculations (not 1000)
  • Pressure drop ~2-3% higher than fresh water (higher density × slightly higher viscosity)
  • Seawater service requires corrosion-resistant materials: Cu-Ni 90/10, 70/30, titanium, duplex stainless steel, or FRP
  • Avoid carbon steel without coating/lining — rapid corrosion in aerated seawater

Desalination

  • Reverse osmosis operating pressure: 55-65 bar for seawater (vs 10-15 bar for brackish water)
  • Osmotic pressure of 35 PSU seawater: ~25 bar
  • Distillation (MSF/MED) exploits boiling point elevation

Offshore Structures

  • Buoyancy calculations use seawater density (1025 kg/m³) — Archimedes' principle with salt water
  • Wave loading and hydrostatic pressure based on saltwater density
  • Marine growth on submerged surfaces adds weight and increases hydrodynamic loading

Corrosion Considerations

  • Seawater is highly conductive (5 S/m) — galvanic corrosion between dissimilar metals is aggressive
  • Severe for steel (~0.1-0.3 mm/yr corrosion rate; up to 1 mm/yr in splash zone)
  • Biofouling increases weight and reduces heat transfer in exchangers and piping
  • Materials selection critical: 316 stainless only for moderate service; duplex SS, Cu-Ni, titanium for long-term

Chloride Attack on Stainless Steel

Standard 304 stainless steel suffers pitting and crevice corrosion in seawater within months. 316 is better but not immune for permanent immersion. For critical seawater service use 2205 duplex stainless, Cu-Ni 90/10, or titanium.

Summary

Seawater (average density 1025 kg/m³ at 20°C/35 PSU) is 2.5% denser than fresh water with slightly higher viscosity and significantly different thermal/electrical properties. Marine engineering requires these corrected values for pump sizing, pressure drop, buoyancy, and materials selection. Dissolved salts and biological activity make seawater one of the most corrosive natural environments — material selection is critical for long-term reliability.

Related Calculators & Guides

Disclaimer: Material property data is for reference and educational purposes. Verify all properties against material test reports (MTRs) and applicable ASTM/ASME standards for engineering design.