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Chapter 8 of 8

Industrial Structures & Trusses

In the TGPSC Manager (Civil) syllabus under Steel Structures · 2 parts

📑 Contents (16 sections)

Part 1 of 2

Industrial Buildings & Bracing Systems

Last reviewed 16 Sept 2026 · 5 min read

Industrial buildings

Industrial buildings — factories, workshops, warehouses, hangars, power houses — need large column-free floor areas, overhead cranes, good lighting and ventilation, and quick, economical construction. Steel suits them well.

Planning considerations

  • Floor area and clear height for the process and crane hook height.
  • Bay width (spacing of frames along the length): commonly 6–9 m; span (across the width): 15–40 m or more.
  • Lighting: north-light roofs, monitors, translucent sheets; ventilation: ridge ventilators, louvres.
  • Crane type, capacity and duty; future expansion (end walls designed to be removable).
  • Drainage of large roofs (gutters, downpipes), insulation, fire safety.

Structural framing systems

System Features Suitable spans
Trusses on columns (column pinned to truss) Knee braces or column fixity for lateral stability; simple analysis Small–medium
Portal frames (rigid frames) Columns rigidly connected to rafters; clear, unobstructed space; efficient under gravity and lateral loads; haunches at eaves About 15–50 m
Pre-engineered buildings (PEB) Tapered built-up members sized to moment demand, cold-formed Z/C purlins and girts, factory-fabricated Wide range, fast erection
Lattice girders / space frames Very long spans, hangars 40 m and beyond
Arched and shell roofs Architectural spans Large

Columns in crane buildings

Column Description
Uniform column with bracket Light cranes; gantry girder on a bracket
Stepped column Upper (roof) part narrower; lower part wider to support the gantry directly on its inner leg
Laced / battened column Two legs (roof leg and crane leg) connected by lacing — economical for heavy cranes
Separate (twin) columns Independent crane column tied to the building column

Crane columns carry vertical loads, crane surge, wind and eccentric moments; effective lengths differ for the upper and lower parts and for in-plane and out-of-plane buckling.

Cladding and secondary members

  • Purlins carry roof sheeting; side girts (sheeting rails) carry wall cladding and span between columns.
  • Sag rods reduce purlin/girt spans in the weak direction.
  • Eaves struts at the eaves carry longitudinal forces and support gutter and sheeting.
  • Wind columns in gable ends reduce girt spans on end walls.

Part 2 of 2

Roof Trusses & Purlins

Last reviewed 16 Sept 2026 · 6 min read

Components of a steel roof

  • Roof covering — galvanised iron (GI) or pre-coated steel sheets, asbestos-cement (older), aluminium, polycarbonate for daylight.
  • Purlins — beams spanning between trusses that carry the sheeting.
  • Trusses — principal rafters (top chord), main tie (bottom chord), struts and ties (web members), gusset plates.
  • Bracing — rafter bracing in the roof plane, bottom-chord bracing, vertical bracing between columns — resists wind and provides stability.
  • Eaves girder / gable girder, ridge, bearing plates on columns or walls.

Types of trusses

Truss Span range (typical) Feature
King post up to about 8 m Simple, timber or steel
Queen post about 8–12 m Two vertical posts
Pratt about 6–30 m Diagonals in tension under gravity
Howe about 6–30 m Diagonals in compression under gravity
Fink (French) about 10–40 m Short compression members; economical for pitched roofs
Fan about 10–15 m Top chord divided into more panels
North-light (saw-tooth) factories (bays) Steep glazed face towards north for diffuse light
Quadrangular / Warren large spans Parallel chords
Bowstring, arched 30 m and above Curved top chord

Beyond about 40 m, space frames, portal frames or lattice girders are usually preferred.

Geometry

  • Pitch . Common pitch for GI sheeting: about 1/4 to 1/6 of span (slope roughly 18°–30°); flatter roofs with profiled sheets or built-up roofing.
  • Spacing of trusses: commonly span/4 to span/5, about 3–4.5 m for small sheds, up to 6–9 m for larger ones with heavier purlins.
  • Purlin spacing: decided by the sheeting's safe span, typically 1.2–1.8 m for GI sheets; purlins placed at panel points so the top chord carries no bending (if not, the rafter is designed for bending too).
  • Economical truss depth at the centre commonly about span/4–span/5 for pitched trusses.

Loads on roof trusses

Dead load

Sheeting, fixtures, purlins, bracing and the truss self-weight. An empirical estimate of the self-weight of a steel truss per m² of plan area is often taken as

(or about 0.10–0.15 kN/m² for ordinary spans).

Imposed (live) load on roofs — IS 875 Part 2

Code ProvisionIS 875 Part 2 — imposed load on sloping roofs (key values)
  • Flat, sloping or curved roofs with slopes up to 10°, with access: 1.5 kN/m²; without access (except maintenance): 0.75 kN/m².
  • Sloping roofs with slope greater than 10°: kN/m², but not less than 0.40 kN/m² ( = slope in degrees).
  • Members of roof sheeting and purlins are also checked for a concentrated load (for maintenance) as specified.

Wind load — IS 875 Part 3

  • = basic wind speed for the location (from the wind zone map, 33–55 m/s).
  • = probability (risk) factor; = terrain roughness and height factor; = topography factor; = importance factor for cyclonic regions.
  • , , = directionality, area averaging and combination factors.
  • Force on a roof surface — external pressure coefficients depend on roof slope and wind direction; internal pressure coefficients (commonly ±0.2 for buildings with low permeability, ±0.5 for medium) depend on openings.

For light roofs, wind suction (uplift) often governs, reversing member forces — ties may go into compression, so slenderness limits for reversal apply.

Load combinations

Typical: (DL + LL), (DL + WL), (DL + LL + WL) with IS 800 partial safety factors. For uplift, dead load is taken with factor 0.9.

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