Connection example 9: a welded single unequal angle
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Check a S355 single angle connected by its long leg under dead plus imposed tension, and design the two side welds with Class 42 electrode.
Original source: LectureNotes/Ch 2_Connection.pdf — p. 42. Values tagged given are in the question or diagram; lookup values come from a named table; calculated values follow from the working; assumptions are stated explicitly.
Read the diagram and collect the data
| Input | Origin |
|---|---|
| Given loads | dead and imposed, task text. |
| Given dimensions | angle; source diagram shows and half-heel widths and centroid height. |
| Lookup centroid | from SideX stated from section table in solution and labelled in diagram. Opposite arm . |
| Lookup strengths | S355 thickness → ; S355/Class 42 →. |
| Design choice | fillet, physical lengths (X), (Y), lecturer solution. |
Before calculating: recognition and strategy
First check that the angle itself can carry the force: stronger welds cannot cure a weak angle. With no bolt holes, the gross area is effective, but a single welded connected leg still has the reduction for the unconnected leg. Then balance the two parallel weld forces about the centroid using their opposite lever arms.
1. Factored force and welded-angle resistance
Simple explanation: One connected leg does not load both legs equally
The connected leg receives the pull first; the other leg receives it through the angle.
- Identify connected and outstanding legs from the drawing.
- Use the relevant bolted or welded angle rule.
- Keep the lecturer’s area convention consistent.
Remember: Bolted and welded reduction expressions are not the same rule.
The factor comes from the single welded angle rule on Ch 2 p.14. The bolted value would be a different connection model.
Animation labWhy a connected angle leg matters
Supplement to the original lesson. Enable JavaScript to play, step through calculations and rotate 3D models. The following explanation remains readable offline.
- Locate the connected leg, outstanding leg and centroid before using the table.
- Only the connected leg directly receives the fastener force.
- The outstanding area may not become equally effective at the same section; this motivates the effective-area rule.
- Bolted, welded, single-angle and double-angle details can have different rules. Preserve the formula attached to the original case.
2. Trial weld and balanced required lengths
Simple explanation: Why two weld lengths can be unequal
Two side welds must balance the load about its actual line of action.
- Find the load line and the lever arm to each weld.
- Balance moments as well as the total force.
- Convert each weld’s force into its own required length.
Remember: Equal-looking legs do not justify equal weld forces without equilibrium.
The centroid height is visible in the section but is not the transverse lever arm for sharing these two side-weld forces. The side-to-side /50.6 dimensions are the relevant ones.
Animation labBalance two weld forces
Supplement to the original lesson. Enable JavaScript to play, step through calculations and rotate 3D models. The following explanation remains readable offline.
- The angle centroid/load line is generally not halfway between the two weld runs.
- . Both weld runs contribute to the applied force.
- . The run nearer the load line carries more force.
- For equal throat resistance per length, the required effective lengths follow the same ratio. Add detailing allowances afterwards.
3. Final lengths, capacities and source correction
Simple explanation: Drawn length and useful length differ
The start and end of a weld are not credited as fully effective in this course model.
- Find the effective length required by strength.
- Add the specified end allowance to each separate run.
- Round up, then check minimum size, spacing and returns.
Remember: Strength alone does not prove a weld detail is acceptable.
Both effective lengths exceed , and both physical lengths exceed separation. For the angle edge the maximum leg is , matching the selection. The minimum-size rule depends on the unknown supporting plate thickness; do not assume it from the sketch.
Animation labFrom fillet leg to effective throat
Supplement to the original lesson. Enable JavaScript to play, step through calculations and rotate 3D models. The following explanation remains readable offline.
- An equal-leg fillet between perpendicular plates has an approximately right-triangular section.
- For this geometry, throat . It is shorter than the leg.
- Effective resisting area = . With here, capacity per length is .
- Use the course end allowances, minimum size and length rules; increasing the geometric length alone does not resolve every detailing check.
Compact exam answer
. Welded single-angle capacity. Use fillets with . Required effective X/Y lengths /. Provide / physical lengths (/ effective), giving / against /. Angle and weld strength pass; support-thickness detailing is unprovided.
Mistakes to avoid
- Do not subtract holes from a welded angle with no holes.
- The unconnected leg still needs the reduction.
- For the weld, the source writes “Add 12” (add ) is a textual error; it should be .
- Do not use centroid height in the transverse weld-force split.
Procedure for an unfamiliar variant
- Check angle area and the appropriate welded single-leg resistance.
- Read centroid location from the source/table.
- Select a weld leg permitted by the angle edge.
- Balance side forces, calculate effective lengths, then add to each.
- Verify each rounded side and the detailing conditions.
Independent self-check
Try it yourself. If the imposed load rises to , do the existing / welds still pass?
Reveal answer and reasoning
. SideX demand; SideY. Both weld sides fail although angle capacity 223.437 still passes.
Animation labBalance two weld forces
Supplement to the original lesson. Enable JavaScript to play, step through calculations and rotate 3D models. The following explanation remains readable offline.
- The angle centroid/load line is generally not halfway between the two weld runs.
- . Both weld runs contribute to the applied force.
- . The run nearer the load line carries more force.
- For equal throat resistance per length, the required effective lengths follow the same ratio. Add detailing allowances afterwards.