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RHS 80×40×4 vs CF RHS 80×60×3

RHS 80×40×4 is an RHS Hot-finished section from the UK Blue Book (SCI P363); CF RHS 80×60×3 is the closest equivalent in the UK Blue Book (SCI P363). RHS 80×40×4 carries more bending: 21.8 cm³ of plastic modulus against 21.2 cm³, 2.8% more. CF RHS 80×60×3 is the lighter of the two at 6.13 kg/m against 6.9 kg/m, a saving of 12.6% on steel weight. Both are about 80 mm deep, so either fits the same construction zone.

Section properties side by side. Bold marks the more favourable value where one is.
PropertyRHS 80×40×4
RHS Hot-finished
CF RHS 80×60×3
RHS Cold-formed
Difference
Mass6.9 kg/m6.1 kg/m+12.6%
Depth80 mm80 mmsame
Width40 mm60 mm-33.3%
Web thickness0 mm0 mmsame
Flange thickness0 mm0 mmsame
Area8.8 cm²7.8 cm²+12.5%
Second moment, major (Iy)68.2 cm⁴70 cm⁴-2.6%
Plastic modulus, major (Wpl,y)21.8 cm³21.2 cm³+2.8%
Elastic modulus, major (Wel,y)17.1 cm³17.5 cm³-2.3%
Second moment, minor (Iz)22.2 cm⁴44.9 cm⁴-50.6%
Plastic modulus, minor (Wpl,z)13.2 cm³17.4 cm³-24.1%
Radius of gyration, minor (iz)1.59 cm2.4 cm-33.8%
Torsion constant (It)55.2 cm⁴88.3 cm⁴-37.5%

RHS 80×40×4 to BS EN 10210-2:2006; CF RHS 80×60×3 to BS EN 10219-2:2006. Difference is expressed relative to CF RHS 80×60×3.

How to choose between them

On stiffness, CF RHS 80×60×3 has the larger second moment of area: 70 cm⁴ against 68.2 cm⁴, a difference of 2.6%. This matters more often than the strength comparison, because on normal floor spans deflection rather than bending capacity sets the beam size - so if the two are close on modulus but apart on inertia, the stiffer one is usually the better answer even when it is not the stronger one.

Measured as bending capacity per kilogram of steel, CF RHS 80×60×3 is the more efficient section: 3.5 against 3.2 cm³ per kg/m, 8.6% better. Over a floor of repeated beams that difference is real tonnage, though it is often outweighed by whichever section the fabricator can actually source.

The two diverge much more about the minor axis: CF RHS 80×60×3 has 17.4 cm³ of minor-axis plastic modulus against 13.2 cm³, 24.1% more. If the member sees any minor-axis bending, or if it is unrestrained over a long length and lateral-torsional buckling governs, that gap decides the comparison even though the major-axis numbers looked equivalent.

In short, RHS 80×40×4 is the stronger section and CF RHS 80×60×3 is the lighter one; where those are the same section, it is the clear choice, and where they are not, decide on whether your design is governed by capacity or by tonnage.

Common questions

RHS 80×40×4 is the stronger of the two in bending, with a plastic modulus of 21.8 cm³ against 21.2 cm³ - 2.8% more. At the same steel grade that translates directly into moment capacity, since M_pl,Rd = W_pl x f_y / gamma_M0.

CF RHS 80×60×3 at 6.13 kg/m, against 6.9 kg/m for the other - a saving of 12.6%. Over a repeated floor beam that is a real cost difference, but check it against the deflection case before taking it.

Structurally it is the closest equivalent we hold: CF RHS 80×60×3 gives 21.2 cm³ of plastic modulus and 70 cm⁴ of inertia against 21.8 cm³ and 68.2 cm⁴. Re-check deflection and the connection details before swapping, since the flange and web thicknesses differ.

CF RHS 80×60×3, with a second moment of area of 70 cm⁴ against 68.2 cm⁴ (2.6% more). Deflection under a uniform load goes as 5wL⁴/384EI, so it is inversely proportional to I - on a span where the deflection limit governs rather than strength, this is the number that decides the section.

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