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Rebar Calculator

Use this rebar calculator to work out how many lengths a slab grid or footing needs, how much lap steel the splices add, and what the whole lot weighs and costs.

Slab Grid

Centre to centre, both directions. Twelve to eighteen inches is typical for a residential slab.

Concrete between the bar and the edge of the slab. Three inches where concrete is cast against ground.

How to use the Rebar Calculator

For a slab, enter the dimensions, the bar spacing and the edge cover. A grid is two separate runs of bar, one set the long way, one set the short way, and each run is counted on its own, because the number of bars in one direction is set by the slab’s dimension in the other.

For a footing, enter the run length and how many continuous bars sit side by side in the section. The splice laps are added automatically.

Bar comes in 20 ft lengths as standard, so anything longer needs a lap, and lap steel is real steel you have to buy.

Rebar Cost prices by the piece, the linear foot or the pound, which covers how the three kinds of supplier quote. Tie wire is in there too, because a grid needs a tie at every intersection and the count climbs faster than people expect.

Rebar formula

  • usable span = dimension − 2 × cover
  • bars in a run = floor(usable span ÷ spacing) + 1
  • bar length = the other dimension − 2 × cover
  • lap length = lap diameters × bar diameter
  • weight = total linear feet × lb per foot

The + 1 is the same off-by-one that catches stud and fence-post layouts. A grid has it twice.

BarDiameterlb per ft40d laplb per 20 ft length
#3⅜ in0.37615 in7.5
#4½ in0.66820 in13.4
#5⅝ in1.04325 in20.9
#6¾ in1.50230 in30.0
#7⅞ in2.04435 in40.9
#81 in2.67040 in53.4

The bar number is the diameter in eighths of an inch, which is why #4 is a half inch and #8 is one inch.

Worked example

A 30 × 20 ft slab, #4 bar at 18 in centres, 3 in cover, 20 ft stock:

  • Usable: 29.5 ft × 19.5 ft after cover both sides
  • Bars running the 30 ft way: floor(19.5 × 12 ÷ 18) + 1 = 14 bars, each 29.5 ft long
  • Bars running the 20 ft way: floor(29.5 × 12 ÷ 18) + 1 = 20 bars, each 19.5 ft long
  • Steel: 14 × 29.5 + 20 × 19.5 = 413 + 390 = 803 linear feet
  • Laps: the 29.5 ft bars exceed 20 ft stock, so each needs one splice
  • Weight: 803 × 0.668 = 536 lb before laps

Note the crossing count: 14 × 20 = 280 intersections to tie.

What the result means

A grid is two runs, and each is counted off the opposite dimension. The bars running lengthwise are spaced across the width, so it is the width that decides how many there are. Getting that backwards is the most common error on a slab take-off.

Cover is structural, not cosmetic. Three inches where concrete is cast against ground, less where it is formed. Rebar sitting too close to the surface rusts, and rust expands and spalls the slab off.

Rebar has to be up in the slab, not on the ground. Chairs or dobies hold it at mid-depth or in the upper third. Bar lying on the subgrade does nothing at all, a very common and completely wasted expense.

Common mistakes

  • Counting one run and doubling it. The two directions have different bar counts and different bar lengths unless the slab is square.
  • Forgetting the last bar in each run. Spaces plus one, in both directions.
  • Ignoring laps. Anything longer than the stock length needs a splice, and 40 diameters on #4 is 20 inches of extra steel per joint.
  • Laying bar on the ground. It must sit in the concrete, on chairs. On the subgrade it is decoration.
  • Treating this as a design. Bar size, spacing and cover come from an engineer or from code for anything structural.

Frequently asked questions

How much rebar do I need for a 30×20 slab?
What spacing should rebar be in a slab?
How long should a rebar lap be?
How much does rebar weigh per foot?
What does the number on rebar mean?
How much concrete cover does rebar need?

Sources and assumptions