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Heat Exchanger





Compact Size:
Due to the high efficiency of the brazed plate heat exchangers, these heat exchangers are often half the size of conventional shell & tube heat exchanger. The smaller footprint also makes it easier to be installed on skid systems and portable equipment packages.

High Efficiency:
Due to the turbulent flow of the fluid in the channels, the heat transfer coefficients of our brazed plate heat exchangers are 3-5 times higher than that of a conventional Shell & Tube heat exchanger for a similar application. The embossed pattern of the heat transfer plates promotes high turbulence at low fluid velocities. The high turbulence results in very high heat transfer coefficients.

Rugged Construction:
The brazed plate heat exchanger is brazed using 99.9% copper. The copper provides a strong bond when heated in a special furnace, keeping the plates bonded together. The heat exchangers have a high pressure-temperature rating. All our copper brazed heat exchangers are rated for 450 psig, 428 F degrees.

Closer Approach Temperatures
Close-approach temperatures of 1-2°F (0.5-1.0°C) are possible because of true counter flow and high heat transfer efficiency of the plates. This is an important factor in regeneration and heat recovery processes. The brazed plate heat exchanger can provide a temperature approach of 1 degree F. This allows for maximum utilization of waste heat recovery.

High Temperature andPressure Ratings
Maximum working pressures from 300 psi to 650 psi, and temperature ratings of 350°F.

Releated References:
  • U bend Stainless Steel Tube for Heat Exchanger
  • Heat Exchanger Tube
  • Specification/Standards for Heat Exchanger Tubes
  • Finned Tube and Pipe Heat Exchangers
  • Shell Tube and Pipe Heat Exchangers
  • Select Materials for Heat Exchanger Tubes with Substantial Pressure difference
  • The difference between Stainless Steel Tubing and Copper Tubing in Shell and Tube Heat Exchanger
  • Difference in Counter and Parallel Flow Heat Exchanger
  • Aluminum Corrosion Resistance for Cold Plates and Plate-Fin Heat Exchangers
  • Flow arrangement
  • Heat exchangers - Tubes and Pipes Standards
  • Selecting a Heat Exchanger Cooling Liquid
  • Selecting a Heat Exchanger Cooling Air
  • Selecting A Cold Plate Technology
  • Selecting a Cooling System: Ambient Cooling System | Recirculating Chiller | Liquid-to-Liquid Cooling System | Recirculating Chiller or Liquid-to-Liquid Cooling System
  • Selecting A Cold Plate Technology
  • Selecting A Pump
  • Selecting a Recirculating Chiller
  • Selecting A Modular Cooling System
  • Selecting an Liquid-to-Liquid Cooling System
  • How To Selecting a Heat Exchanger
  • How to Boost the Efficiency of Heat Exchanger
  • Comparison of Heat Exchanger Types
  • Parallel and Counter Flow Design
  • Direct contact heat exchanger



  • Types of heat exchangers
    Shell and tube heat exchanger
    Plate Heat Exchanger - Efficiency and Flexibility
    U Tube heat exchanger
    Regenerative heat exchanger
    Adiabatic wheel heat exchanger
    Plate fin heat exchanger
    Fluid heat exchangers
    Phase-change heat exchanger
    Parallel Flow Heat Exchanger
    Counter Flow Heat Exchanger
    Cross Flow Heat Exchanger
    Spiral heat exchangers
    Shell and Coil Heat Exchangers
    Brazed Heat Exchangers - Advantages | Applications | Specifications
    Titanium Heat Exchanger
    Plate and Shell Heat Exchanger - Applications | Specification
    Block Welded Heat Exchanger - Applications | Specification


    Heat Transfer | Forms | Effects | Conduction | Convection | Radiation | Heat Exchanger
    Metal Glossary | Metals Definitions | Heat Treatment of Metals | Passivation | Annealing | Quenching | Tempering | Heat Treatment of Steel | Heat Treating Definition | Heat Treating Stainless Steel | Technic of Metals Heat Treatment | Elements in Annealed State | Bright Anneaing | ASTM A380 | ASTM A967 | EN 2516 | 304 | 304L | 321 | 316L | 317L | 310S | 410 | 410S


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  • Pre Heater
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