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AustraliaAS/NZS 4600:2018

Cold-Formed Steel Stud / Column

Run the calc
Link beam reactions from above directly to this column, loads update automatically when the structure changes. Design cold-formed steel studs and columns to AS/NZS 4600:2018 with independently specified strong-axis, weak-axis, and torsional effective lengths. Lining type and nogging spacing set restraint conditions for wall framing.
Design and analyze cold-formed steel studs and columns to AS/NZS 4600:2018 using the Calcs.com cold-formed steel column calculator. With a database of all common Australian light gauge and cold formed sections, the calculator enables the easy modeling of axial loading on a cold-formed steel column with support for variable strong axis, weak axis, and torsional bracing.

Method & scope

Calculation method

The CFS Steel Column calculator designs cold-formed steel studs and columns to AS/NZS 4600:2018. It combines a structural FEA engine for moment and deflection with Direct Strength Method capacity checks for all failure modes.
Structural analysis
The calculator runs FEA on the column as a beam-column, resolving moments and deflections under axial and lateral loads. Supports can be pinned, fixed, or roller at each end. Distributed lateral loads and concentrated axial loads with eccentricity are applied. Self-weight is optionally included.
Compression capacity
Compression member capacity is the governing check for pure axial studs: utilization = N*_c / phiN_c ≤ 1.0 phiN_c is derived using the DSM strength curves for local (N_l), distortional (N_d), and global (flexural and flexural-torsional, N_g) buckling. The elastic buckling loads for local and distortional modes are taken from the section library’s FSM signature curves. Global buckling effective lengths are computed from the structural model, accounting for end fixity, nogging restraint, and lining stiffness contributions.
Bending capacity
Under eccentric loading or lateral loads the column experiences bending. Positive and negative moment member capacities are checked separately: utilization = |M| / phiM_b ≤ 1.0* Lateral-torsional buckling effective lengths in the strong axis, weak axis outer flange, weak axis inner flange, and torsional directions are computed individually, with lining fastener spacing and nogging count setting the sub-span bracing intervals.
Combined bending and compression
When both bending and compression demands are present: utilization = MC_int ≤ 1.0 The interaction check follows AS/NZS 4600:2018 Clause 3.5 (or the equivalent DSM formulation).
Shear and combined actions
Shear capacity follows Clause 3.3.4: utilization = |V| / phiV_v ≤ 1.0* Combined bending and shear interaction is also checked where bending and shear demands are co-incident.
Deflection limits
Short-term (delta_s), long-term (delta_l), and imposed-load (delta_Q) extensions are each compared against span-based limits for interior spans (L/250) and cantilevers (L/150). An absolute hard limit can also be set for each case.

How to use it

1

Open the calculator

Open it from Run calc in the About this calculator panel above. To start from a typical setup, choose one of the presets listed there.
2

Enter your inputs

Work through the input sections from top to bottom. Click any input label to see its reference explanation, clause, conditions and assumptions. See Checks, References, Conditions and Assumptions.
3

Review the results and export

Check the utilization of each governing check in the summary, then export a PDF report. See Views and Export.

Available presets

Each preset opens the calculator with a typical setup already entered.

Common questions

The calculator designs to AS/NZS 4600:2018 using the Direct Strength Method (DSM) from Clause 7 for local and distortional buckling. Appendix slenderness-based methods are not used.
Key inputs include column height, end condition (pinned, fixed, roller), axial load with eccentricity, distributed lateral loads, nogging count and spacing for weak-axis bracing, lining type on each face (which contributes rotational stiffness), and fastener spacing. The section is selected from the Australian CFS library.
The calculator checks compression member capacity (local, distortional, and global buckling via DSM), positive and negative moment member capacity, combined bending and compression interaction, shear capacity, combined bending and shear interaction, and short-term, long-term, and imposed-load deflection limits.
Lining types (e.g. 10mm plasterboard, fiber cement) on the inner and outer faces are entered along with fastener spacing. The calculator derives the partial rotational restraint stiffness these provide for weak-axis and torsional bracing, directly influencing the effective lengths used in DSM buckling calculations.
Yes. Select the Pure Compression connection type. Loads are applied as pure axial at the top with user-defined eccentricity. The calculator will still show moment capacity checks, but they will show zero demand if no lateral loads or eccentricities are applied.

Next steps

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