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Steel Compression Members under Simulated Corrosion and Elevated Temperature Effect

Steel Compression Members under Simulated Corrosion and Elevated Temperature Effect

Steel Compression Members under Simulated Corrosion

  • Experimental studies on corroded coupons
  • Experimental studies on behaviour of steel angle and tubular compression members under simulated corrosion
  • Monitoring corrosion using Fiber Bragg Grating (FBG) sensors
Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Alternate wetting and drying

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Electrochemical corrosion

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Monitoring corrosion using FBG sensors

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Unstressed condition

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Stressed condition

Localised simulation of corrosion in compression members

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Angle

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Tube

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Thickness measurement

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Load vs Axial deflection

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Buckling AUC-1

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Buckling AC-2

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Crippling

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

AC-3

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Methodology to quantify corrosion

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Microstructure analysis

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Crack Formation

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Reference Sample

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Corroded Sample

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Stress vs Strain

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Strain vs Time from FBG sensor under unstressed condition

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Test set up & Instrumentation

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Failure profile

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Load vs Axial deflection

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect
Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Outcomes

  • Microstructure analysis reveals that crack formation in intergranular regions of stressed and corroded samples could be possible reason for strength reduction
  • Loss of thickness due to corrosion leads to reduction in resistance area, producing a decreasing effect in structural performance in terms of strength
  • FBG sensors can be used to measure strain due to corrosion
Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Steel Compression Members under Elevated Temperature Effect

Simulation of elevated temperature effect

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Bulging outward

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Reference

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Sample

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Sample subjected

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

elevated temperature

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Temperature distribution  at salient points

Steel Compression Members under Simulated Corrosion  and Elevated Temperature Effect

Axial Load  vs  Axial Displacement

Microstructure analysis reveals that under elevated  temperature, grain size increased from 15μm to 30μm

Strength reduction of 37%, under elevated temperature of 600oC  sustained for a duration of 30 minutes