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EN10219 and EN10210

square/rectangular pipe, hollow section

Overview

Both standards are published by CEN (European Committee for Standardization) and apply to structural hollow sections — covering SHS (Square), RHS (Rectangular), and CHS (Circular Hollow Sections). The critical dividing line is how the steel is formed.


EN 10210 — Hot-formed Structural Hollow Sections

Full title: EN 10210 — Hot finished structural hollow sections of non-alloy and fine grain steels

Manufacturing process:
The steel is heated above its recrystallization temperature (~900–1200 °C) and then formed into the hollow shape — either by hot extrusion or by hot forming a welded tube followed by a full heat treatment that normalises the weld zone. After forming, the section cools naturally to room temperature.

Key characteristics:

  • Large corner radius — hot forming produces a generous rounded corner (typically 1.5× to 3× wall thickness), which is visually distinctive and beneficial for fatigue resistance.
  • Uniform grain structure — because the entire section is formed above the recrystallization temperature, the steel grains are uniform throughout, including at the corners. No cold-working effects remain; the material is essentially stress-relieved.
  • No residual stresses from forming — the hot process eliminates forming-induced locked-in stresses, which can be important for buckling resistance.
  • Better ductility and toughness — hot-formed sections typically exhibit superior Charpy impact values at low temperatures.
  • Seamless or fully normalised welded — EN 10210 can be either seamless (Part 1) or welded with full normalisation (Part 2).

Common steel grades: S235JRH, S275J0H, S355J2H, S420MH, S460NH (the “H” suffix denotes hollow sections).


EN 10219 — Cold-formed Structural Hollow Sections

Full title: EN 10219 — Cold formed welded structural hollow sections of non-alloy and fine grain steels

Manufacturing process:
A flat cold-rolled steel strip (coil) is progressively bent at room temperature through a series of forming rolls into a round, square, or rectangular shape. The longitudinal seam is then joined by ERW (Electric Resistance Welding). A final sizing pass brings the section to its exact dimensions. No post-weld heat treatment is required by the standard.

Key characteristics:

  • Sharp corner radius — cold forming produces a much tighter corner (typically 1.0× to 2× wall thickness), giving a squarer, crisper appearance. This is one of the most visually obvious differences from EN 10210.
  • Work-hardened corners — the plastic deformation at corners during roll-forming increases the yield strength locally (strain hardening), but also introduces residual stresses and may reduce ductility in the corner region.
  • Residual stresses present — locked-in forming stresses may need to be accounted for in buckling design.
  • More economical — cold forming is faster, uses less energy, and produces sections at a lower cost per tonne. EN 10219 sections dominate the market by volume.
  • Tighter dimensional tolerances — cold-formed sections generally achieve better surface finish and dimensional accuracy.

Common steel grades: S235JRH, S275J0H, S355J2H, S420MH, S460MH.


Head-to-head comparison

AspectEN 10210 Hot-formedEN 10219 Cold-formed
Forming temperatureAbove recrystallization (~900–1200 °C)Room temperature
Corner radiusLarge (soft, rounded)Small (sharp, crisp)
Grain structureUniform, recrystallisedElongated, work-hardened at corners
Residual stressEssentially nonePresent from forming
Ductility / toughnessBetterAdequate, but reduced at corners
Dimensional toleranceWiderTighter
Surface finishMill finish (slightly rougher)Better (from cold strip)
CostHigher (more energy, slower)Lower (faster, less energy)
Typical useFatigue-critical, seismic, low-temp serviceGeneral construction, secondary members

Design implications (Eurocode 3 / EN 1993-1-1)

Both standards are recognised by Eurocode 3 and use the same buckling curve classification. However, because EN 10210 is free of forming residual stresses, a design engineer can take advantage of:

  • Slightly higher buckling resistance in some cases (especially for stocky columns).
  • Better fatigue performance due to the smooth corner radius.
  • Greater confidence in low-temperature toughness for outdoor or offshore applications.

For the vast majority of commercial and industrial buildings, EN 10219 cold-formed sections are perfectly adequate and are chosen for their cost advantage and availability.


In short: EN 10210 = hot-formed (large rounded corners, no residual stress, premium performance) and EN 10219 = cold-formed (sharp corners, more economical, dominant in the market). The choice comes down to whether the project’s mechanical demands — fatigue, low-temperature toughness, buckling sensitivity — justify the cost premium of hot-formed sections.

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