Part 1 of 2
One-Way & Continuous Slabs
Last reviewed 16 Sept 2026 · 6 min read
One-way action
A slab supported on two opposite edges, or on four edges but much longer than it is wide, bends mainly in one direction — the short span.
- Supported on two opposite sides only, or
- Supported on all four sides with (long span / short span).
Main steel runs along the short span; distribution steel runs along the long span.
Typical examples: verandah and corridor slabs, chajjas, slabs spanning between parallel beams, landings.
Effective span
For a simply supported slab: clear span + effective depth, or centre-to-centre of supports, whichever is less. For a cantilever: length to the face of support + . Continuous slabs: centre-to-centre of supports (with IS 456 variations for wide supports).
Loads
- Dead load: self-weight (25 kN/m³ × thickness for RCC) + floor finish (typically 1.0–1.5 kN/m²) + partitions where applicable.
- Imposed load (IS 875 Part 2): e.g. residential floors 2.0 kN/m², office floors 2.5–4.0 kN/m², roofs with access 1.5 kN/m².
- Design load per metre width.
Design a 1 m wide strip as a rectangular beam with = 1000 mm.
Detailing rules for slabs
- Minimum steel (each direction): 0.12% of gross area for HYSD bars; 0.15% for mild steel bars. In slabs this rule replaces the beam minimum .
- Maximum bar diameter: (one-eighth of total slab thickness).
- Maximum spacing of main bars: or 300 mm, whichever is less.
- Maximum spacing of distribution bars: or 450 mm, whichever is less.
- Nominal cover as per exposure (20 mm for mild exposure; 15 mm allowed for bars up to 12 mm in mild exposure).
- At least 50% of the positive steel extends into the support; bars at discontinuous ends may be bent up or provided as top steel to control cracking from partial fixity (commonly 50% of mid-span steel extended over the support for 0.1).
Deflection control
Basic span/effective depth ratios: 20 (simply supported), 26 (continuous), 7 (cantilever) — for spans up to 10 m. Multiply by the modification factor for tension steel (IS 456 Fig. 4), which depends on the steel percentage and the service stress . Lightly reinforced slabs get a factor well above 1 (often 1.4–2.0), allowing thinner slabs.
Shear in slabs
Shear stress is usually low. Check against where = 1.30 for slabs 150 mm or thinner, falling to 1.00 at 300 mm (see Shear & Torsion). Shear reinforcement is almost never provided in ordinary slabs; the depth is increased instead.
Continuous one-way slabs — coefficient method
For slabs continuous over three or more approximately equal spans (variation within 15% of the longest), carrying uniform loads, IS 456 allows bending moments and shears from coefficients (with = effective span; for moments at supports, is the average of the two adjacent spans).
| Type of load | Near middle of end span | At middle of interior span | At support next to end support | At other interior supports |
|---|---|---|---|---|
| Dead load (fixed) | ||||
| Imposed load (not fixed) |
| Type of load | At end support | At support next to end support: outer side | Inner side | At all other interior supports |
|---|---|---|---|---|
| Dead load | 0.40 | 0.60 | 0.55 | 0.50 |
| Imposed load | 0.45 | 0.60 | 0.60 | 0.60 |
Imposed-load coefficients are larger because live load may act on some spans and not others (pattern loading).