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Rebar Calculator

Enter your slab, footing or wall size, the grid spacing and the edge clearance, and get how many bars run each way, the total linear feet and weight of rebar, the tie-wire intersections and the number of stock bars to buy - in feet or metres, with #-bar or metric sizing.

Rebar grid

What are you reinforcing?

01. Slab or wall size

Length
ft
in
Width
ft
in

02. Bar & supply

Bar layout (plan)
20 ft long13 ft wide12 in grid spacing
Rebar to buy
2720 ft bars

Bars one way (13)

19.50 ft

Bars other way (20)

12.50 ft

Total length

529 ft

Total weight

353 lb

  • Total bars in mat33
  • Tie intersections260
  • Tie wire (approx)256 ft

Tie wire assumes about 1 ft per tie - tie every intersection, or every other one to save wire.

Guide & worked example

How this calculator works

A rebar mat is a grid: one set of bars running the length, a second set running the width, crossing at right angles and tied where they meet. Each set starts one edge clearance (cover) in from the slab edge, then repeats at the grid spacing:

bars one way   = (width  − 2 × clearance) ÷ spacing, rounded DOWN, + 1   (run the length)
bars other way = (length − 2 × clearance) ÷ spacing, rounded DOWN, + 1   (run the width)
grid length    = (bars one way × bar length) + (bars other way × bar length)
total length   = (grid length + lap splices) × waste
stock bars     = total length ÷ stock-bar length, rounded UP to whole bars
weight         = total length × bar mass per foot (or per metre)
intersections  = bars one way × bars other way

The + 1 is the bar sitting on each edge. Any run longer than a single stock bar is spliced, adding one lap length at each joint. The same grid covers a slab, a footing or a wall - a footing is just a long, narrow slab, and a wall is the mat stood on its edge.

Worked example

This example follows the unit system you pick in the calculator above.

A 20 ft × 13 ft slab, a 12 in grid both ways, 3 in edge clearance, #4 bars in 20 ft stock lengths, +5% waste:

  1. Clear span each way: 20 − 2 × 0.25 = 19.5 ft long, 13 − 0.5 = 12.5 ft wide.
  2. Bars one way: 12.5 ÷ 1 = 12, +1 = 13 bars of 19.5 ft.
  3. Bars the other way: 19.5 ÷ 1 = 19, +1 = 20 bars of 12.5 ft.
  4. Grid steel: 13 × 19.5 + 20 × 12.5 = 503.5 ft (no laps - every bar is under 20 ft).
  5. Add 5% waste: 503.5 × 1.05 ≈ 529 ft, so ⌈529 ÷ 20⌉ = 27 stock bars.
  6. Weight: 529 × 0.668 lb/ft ≈ 353 lb; tie points: 13 × 20 = 260 intersections.

Rebar size and weight chart

The bar size sets the weight. This chart lists the common US #-bars and the metric bars side by side, with the weight per foot and per metre - the figures the calculator uses:

BarDiameterWeight (lb/ft)Weight (kg/m)
#33/8 in (9.5 mm)0.3760.560
#41/2 in (12.7 mm)0.6680.994
#55/8 in (15.9 mm)1.0431.552
#63/4 in (19.1 mm)1.5022.235
#77/8 in (22.2 mm)2.0443.042
#81 in (25.4 mm)2.6703.973
10 mm (H10 / N10)10 mm0.410.617
12 mm (H12 / N12)12 mm0.600.888
16 mm (H16 / N16)16 mm1.061.578
20 mm (H20 / N20)20 mm1.662.466
10M (Canada)11.3 mm0.530.785
15M (Canada)16 mm1.051.570
20M (Canada)19.5 mm1.582.355

Metric bar weight follows a tidy rule: mass in kg/m ≈ 0.00617 × (diameter in mm)², from steel at 7,850 kg/m³. Canadian M-bars are sized by area, so their weight is the nominal area in mm² × 0.00785.

Bar sizes and standards where you are

In the United States, reinforcing steel is known as rebar (deformed reinforcing bar). Sizes are imperial bar numbers, where the number is the diameter in eighths of an inch - a #4 bar is 4/8 = 1/2 in (12.7 mm) and a #5 is 5/8 in. Grade 60 (60,000 psi) is the usual structural grade. Pick the bar designation you are actually buying in the calculator above so the weight and the bars-to-buy count match what your supplier quotes.

It is normally supplied in 20 ft most commonly, with 30, 40 and 60 ft also stocked - set the stock length above so the splice and order figures line up with the sticks you can get. For the bar grades, cover and lap detail, see ASTM A615 for the steel, with cover and spacing to ACI 318.

Cover (the clearance from the concrete face to the steel) and lap-splice lengths are set by your design and the code above, not by this estimator - it sizes the mat and the quantity, not the structural reinforcement schedule.

Slab mode vs footing mode

The calculator has two modes, because a footing is not a flat mat:

  • Slab / flat mat - a square or rectangular grid of bars in one layer, on chairs at the cover depth. Use it for slabs, pads, driveways and walls (enter a wall as length × height). Set the length, width and a single grid spacing both ways. A structural wall often carries a mat near each face, so double the steel.
  • Footing / cage - the 3D case. A strip or pad footing is a cage: a set number of longitudinal bars running the length (top and bottom), wrapped by closed stirrups (links) at a spacing. Switch to this mode and enter the footing length, width, depth, the number of longitudinal bars and the stirrup spacing. The calculator splices the long bars, works out each bent stirrup as the cage perimeter at cover plus a hook allowance, and totals the steel.

In footing mode, the longitudinal bars carry the lap splices (the footing is usually longer than a stock bar), and each stirrup is a single closed loop - its length is the section perimeter measured to the cover line, plus roughly 6 in (150 mm) for the hooks and bends. Enter the bars top and bottom as one combined longitudinal count.

Tips for ordering rebar

  • Buy whole stock bars and cut on site - the calculator rounds the order up to whole bars at your stock length.
  • Add laps for any run longer than a stock bar; the lap-splice length comes from your design, with about 40 bar diameters a common starting point.
  • Keep the steel at the right cover with bar chairs and spacers - rebar lying on the ground rusts and does nothing.
  • Order a roll of tie wire sized to the number of intersections, and use bar chairs or a stagger pattern to keep the mat flat while you pour.
  • This tool sizes the quantity and weight, not the structural design. Always take the bar size, spacing and cover from your engineer or local building code.

Frequently asked questions

01

How much rebar do I need for a slab?

Work out how many bars run each way: take the slab dimension, subtract twice the edge clearance, divide by the bar spacing and add one for the bar at each edge. A 20 ft × 13 ft slab on a 12 in grid needs about 13 bars one way and 20 the other - 33 bars, roughly 500 linear feet. Add 5% for waste and divide by your stock-bar length for the number to buy. The calculator does every step from your slab size, spacing and clearance.

02

How do I calculate how much rebar I need?

The grid is two sets of bars crossing at right angles. Bars one way = floor((width − 2 × clearance) ÷ spacing) + 1, each as long as the slab length less two clearances; bars the other way swap length and width. Add the two sets for the total bars, multiply by their lengths for the linear feet, add laps for any run longer than a stock bar, then add waste. The calculator returns the bars each way, total length, weight, tie intersections and stock bars to buy.

03

How much rebar do I need for footings?

Switch the calculator to footing / cage mode. A footing is not a flat mat - it is a cage of a few continuous longitudinal bars running its length (top and bottom) wrapped by closed stirrups at a spacing. Enter the footing length, width, depth, the number of longitudinal bars and the stirrup spacing. The calculator splices the long bars (a footing is usually longer than a stock bar), sizes each bent stirrup as the cage perimeter plus a hook allowance, and totals the steel and weight.

04

What size rebar should I use?

For house slabs, paths and small pads, #3 or #4 (10 mm or 12 mm) bar on a 12 to 18 in (300 to 450 mm) grid is typical. Driveways and footings often step up to #4 or #5 (12 mm or 16 mm). The structural size, spacing and cover come from your design or local code, not from this estimator - set the bar size, spacing and clearance to match the plan and the calculator works out the quantity and weight.

05

How much does rebar weigh?

Rebar weight is its length times the mass per foot or metre, which depends on the bar size. A #3 is 0.376 lb/ft, a #4 is 0.668 lb/ft and a #5 is 1.043 lb/ft; in metric a 10 mm bar is 0.617 kg/m, a 12 mm is 0.888 kg/m and a 16 mm is 1.578 kg/m. The calculator multiplies your total length (with laps and waste) by the figure for the bar you picked, so you get the weight to order and can compare it to a price per ton or tonne.

06

What spacing should rebar be in a slab?

Residential slabs are commonly reinforced on a 12 to 18 in grid (300 to 450 mm), and lighter slabs sometimes use welded mesh instead of loose bars. Closer spacing means more steel and more crack control. Enter your design spacing in the calculator - it assumes a bar at each edge set in by the clearance, then one every spacing across, the same way you would chalk the grid out on the formwork.

07

What is rebar lap splice length?

When a run is longer than a single stock bar, two bars overlap by a lap-splice length so the force transfers through the concrete. A common rule of thumb is about 40 times the bar diameter, but the real figure comes from your code and the concrete strength. The calculator adds one lap length for every joint a run needs, so the total length and the bars to buy already include the overlaps.

08

How much tie wire do I need for rebar?

Tie wire fixes the bars where they cross. Count the intersections - bars one way times bars the other way - and allow roughly a foot (0.3 m) of wire per tie, or half that if you tie every other crossing as is common in slabs. The calculator shows the number of intersections and an approximate tie-wire length so you can buy a roll or two of the right size.

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