Design compression load acting on the post.
Used to derive the timber modification factor for compression.
Use the governing buckling length, not just the clear height.
Post width. Smaller side often governs weak-axis buckling.
Post depth. Compare it with the width for the weak axis.
Sets compression strength and stiffness for the buckling check.
Changes timber design resistance through moisture exposure in service.
A timber post carries vertical compression from the member above down into the support below. In many real projects, the critical limit is not crushing of the wood. It is loss of stability by buckling.
This free tool checks one straight timber post under one axial load. It uses the weaker axis automatically and gives you a fast first check for section size, effective length, and timber grade.
A post, sometimes called a column, is a vertical member that moves load from top to bottom. A beam works mainly in bending. A post works mainly in compression.
The usual danger is not that the wood is crushed directly. A slender post often bends sideways first and becomes unstable. That is the buckling problem this tool is built around.
The benefit only holds if the post is sized correctly. Long and slender posts need a stability check, not just a rough strength guess.
A short, stocky post may fail by direct compression. A long, slender post often fails earlier by buckling sideways. The second case is more sudden and usually governs in light timber work.
Practical rule: the longer and thinner the post, the more likely buckling becomes the controlling check.
Effective length is the governing buckling length, not just the visible built height. It depends on the support conditions at the top and bottom and on any reliable restraint along the member.
The section is the width and depth of the post. Common small-scale timber sizes are 10 x 10 cm, 12 x 12 cm, 14 x 14 cm, or larger. The smaller side often governs the weak-axis buckling resistance.
Not all timber performs the same. The strength class sets the compression strength and stiffness used in the check.
These are rough starting values for C24 posts. They are not a final design. Real load, effective length, restraint, and timber grade can move the required section quickly.
| Height | Typical section | Typical use |
|---|---|---|
| up to 2.5 m | 10 x 10 cm | light pergola, fence-like support |
| 2.5 - 3.0 m | 12 x 12 cm | carport, patio roof |
| 3.0 - 3.5 m | 14 x 14 cm | taller canopy, higher open roof |
| above 3.5 m | 16 x 16 cm+ | larger roofs, hall-like structures |
Treat these values as orientation only. The tool result matters more than the table once you know the actual axial load and effective length.
A post rarely stands alone. In a real project, one structural check leads into the next. Beam reactions move into posts, and post loads move into foundations.
Practical order: start with the beam. Its reactions often define the loads for the following checks.