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The Shell and Tube Oil Cooler is constructed using materials chosen for thermal conductivity, corrosion resistance, and mechanical strength. Here’s a breakdown of the typical materials of construction (MOC) for each component:

1. Shell (Outer Casing)

  • Carbon Steel (CS)
    • Pros: Low cost, high strength.
    • Cons: Prone to rust; often lined/coated for wet service.
    • Use Case: Industrial applications with non-corrosive fluids.
  • Stainless Steel (SS 304/316)
    • Pros: Corrosion-resistant, durable.
    • Cons: More expensive than carbon steel.
    • Use Case: Marine, chemical, or high-purity applications.
  • Titanium
    • Pros: Excellent for seawater/saltwater cooling.
    • Cons: Very high cost.
    • Use Case: Offshore, desalination plants.

2. Tubes (Heat Transfer Surface)

  • Copper
    • Pros: High thermal conductivity, easy to fabricate.
    • Cons: Weak against ammonia/sulfide corrosion.
    • Use Case: Low-pressure lube oil cooling.
  • Stainless Steel (SS 316/316L)
    • Pros: Resists chlorides, acids, and scaling.
    • Cons: Lower thermal conductivity than copper.
    • Use Case: Hydraulic oil, chemical processes.
  • Titanium
    • Pros: Unmatched corrosion resistance (seawater, acids).
    • Cons: Extremely expensive.
    • Use Case: Marine, power plants.
  • Admiralty Brass (Cu-Zn-Sn alloy)
    • Pros: Good corrosion resistance in freshwater.
    • Cons: Not for salty/contaminated water.
    • Use Case: HVAC, light industrial.

3. Tube Sheets (Holds Tubes in Place)

  • Carbon Steel + Cladding
  • Clad with SS or titanium for corrosion protection.
  • Stainless Steel (SS 304/316)
    • Common for chemical/food industries.
  • Titanium
    • Used with titanium tubes in aggressive environments.

4. Baffles (Direct Fluid Flow)

  • Carbon Steel (cheap, for non-corrosive fluids).
  • Stainless Steel (corrosive or high-purity systems).

5. Gaskets & Seals

  • Nitrile Rubber (NBR)
    • For standard oils and water.
  • EPDM
    • Resists heat and steam.
  • Viton (FKM)
    • For high-temp/high-chemical resistance.

Material Selection Guide by Application

ApplicationRecommended MaterialReason
Marine/OffshoreShell: CS/SS316, Tubes: TitaniumSaltwater corrosion resistance
Industrial HydraulicsShell: CS, Tubes: SS316Balance of cost & durability
Power PlantsShell: CS, Tubes: Admiralty BrassFreshwater cooling
Chemical ProcessingShell & Tubes: SS316/TitaniumAcid/chemical resistance
AutomotiveShell: CS, Tubes: CopperCost-effective for low pressure

Key Considerations

  1. Corrosion Resistance – Match materials to fluid chemistry (e.g., seawater → titanium).
  2. Thermal Conductivity – Copper > SS > Titanium (but trade-offs with cost/durability).
  3. Pressure/Temperature – Carbon steel for high pressure; SS/titanium for high temp.
  4. Cost – Carbon steel + copper = budget-friendly; titanium = premium.

Comparison Table: Tube Materials

MaterialThermal ConductivityCorrosion ResistanceCost
CopperExcellent (385 W/mK)Poor (ammonia/sulfide)Low
SS 316Moderate (16 W/mK)Good (acids/chlorides)Medium
TitaniumLow (22 W/mK)ExceptionalVery High

Final Recommendation

  • For cost-sensitive, non-corrosive apps → Carbon steel shell + copper tubes.
  • For corrosive/seawater use → SS316 shell + titanium tubes.
  • High-pressure industrial → Carbon steel shell + SS316 tubes.