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Grade Beam Concrete CalculatorGrade beam concrete quantity estimator

Calculate concrete, steel, and shuttering quantity for a grade (plinth) beam tying the foundation together.

Grade Beam Dimensions

ℹ️Sum of every grade beam run in the building — around the perimeter and any internal ties — not a single span.

ℹ️Commonly matches the wall thickness above it.

Concrete

Reinforcement

ℹ️Commonly 150-200 mm centre-to-centre for a plinth beam.

Lap Splices

Include Lap Splices?

ℹ️Commonly 40-50× diameter depending on the applicable code and concrete grade — a grade beam's total run almost always exceeds one 12m stock length.

Shuttering

Include Side Shuttering?

Cost

Enable Cost Estimation?

For 60.0 m (196.9 ft) of grade beam at 230 × 300 mm, you need approximately 4.35 of concrete and 450.0 kg of reinforcement steel.

Concrete

Concrete volume: 4.35 (153.5 cft)

Cement: 48.2 bags

Sand: 1.67 (59.1 cft)

Aggregate: 3.35 (118.2 cft)

Steel Reinforcement

Top Bars: 2 × 12 mm

Bottom Bars: 2 × 16 mm

Stirrups: 401 × 8 mm

Total steel weight: 450.0 kg

Side Shuttering

Contact area: 36.00 (387.5 sqft)

Bar TypeDiameterCount / SpacingCutting LengthTotal LengthWeight
Top Bars12 mm261.840 m123.68 m109.94 kg
Bottom Bars16 mm262.480 m124.96 m197.47 kg
Stirrups8 mm150 mm c/c (401)0.900 m360.90 m142.58 kg

Assumptions Used

Steel weight: d² ÷ 162 (kg/m) | Stirrup hook allowance: 10 × diameter per end | Concrete dry volume factor: 1.54 | Shuttering (if included) is side-only, since the beam bears on PCC/ground below

Grade Beam (Plinth Level Tie Beam)Plinth levelTotal Run Length: 60 mTypical Cross-SectionWidth: 230 mmDepth: 300 mmDiagram simplified for clarity (not to scale). Column count illustrative only.

Looking for the verification checklist, reference tables, tips, or common mistakes?See the complete Grade Beam Calculator.

Grade beam concrete volume, cement bags, sand, and aggregate

This page is set up for grade beam concrete — wet and dry volume, cement bags, sand, and aggregate — pre-filled with an M25 (1:1:2) mix ratio, a richer mix sometimes used for foundation-level elements.

Edit the mix ratio, total run length, or cross-section and the concrete breakdown and worked example update from the active values — steel and shuttering are still calculated in the same result.

  • Wet volume = Total Length × Width × Depth.
  • Dry volume = wet volume × 1.54, to account for voids between aggregate particles that disappear once mixed and compacted.
  • Wastage is applied once, after the base wet volume is calculated, before converting to cement bags.

How Is the Grade Beam Quantity Calculated?

The calculation happens in three parts — concrete volume, steel reinforcement (with optional lap splices), and shuttering area — then an optional cost estimate on top.

Step 1 — Concrete Volume

Wet Volume = Total Length × Width × Depth

Dry Volume = Wet Volume × 1.54

Cement Bags = Cement Volume ÷ 0.0347 m³/bag (50 kg bags)

Dry volume accounts for the voids between aggregate particles that disappear once the concrete is mixed and compacted. The dry volume is split into cement, sand, and aggregate using the selected mix ratio, and wastage is applied once to the final quantities.

Step 2 — Steel Reinforcement

Effective Length = Total Length − (2 × Concrete Cover)

Splices per Bar (if laps included) = ROUND UP(Effective Length ÷ 12 m) − 1

Cutting Length per Bar = Effective Length + (Splices × Lap Multiplier × Diameter)

Stirrups = ROUND UP(Total Length ÷ Spacing) + 1

Unit Weight (kg/m) = Diameter² ÷ 162

Top and bottom bars run the full length minus end cover; when lap splices are enabled, this calculator estimates how many 12m stock-length splices each bar needs and adds the extra material each splice requires. Stirrups are closed loops sized to the concrete section minus cover, with a hook allowance added at both ends.

Step 3 — Shuttering Area (Optional)

Side Area = 2 × Depth × Total Length

Only the two vertical side faces need formwork — a grade beam typically bears on PCC/blinding at the bottom, the same reasoning used for footing and raft edge shuttering on this site.

Worked Example

This example walks through your current inputs above, using the same steps as the Formula section.

Input Values Used

InputValueWhy it is used
Total plinth beam run length60 mSets concrete volume and every bar's base length
Beam width × depth230mm × 300mmSets the concrete cross-section and the shuttering side area
Mix ratio / wastage1:1:2, 5% wastageConverts wet volume to cement bags and adds a buffer for site losses
Cover / bar diameters / stirrups40 mm cover, 12 mm top × 2, 16 mm bottom × 2, 8 mm @ 150 mmSets bar cutting length and stirrup count/size
Lap multiplier40× diameterAdds splice length for every 12m stock length exceeded

Step 1 — Concrete

CalculationSubstitutionResult
Wet volume60.00 × 230mm × 300mm4.140
With 5% wastage4.140 × 1.054.347 m³ (48.2 bags)

Step 2 — Steel

Bar TypeSubstitutionWeight
Top Bars2 × 61.840 m × 12²÷162109.94 kg
Bottom Bars2 × 62.480 m × 16²÷162197.47 kg
Stirrups401 × 0.900 m × 8²÷162142.58 kg
Total steelSum of all rows449.98 kg

Therefore, 60.0 m of grade beam needs approximately 4.35 of concrete and 450.0 kg of steel, plus 36.0 of side shuttering.

Disclaimer: This calculator provides approximate results for planning and estimation purposes only. Actual requirements may vary based on site conditions, materials, workmanship, and local building regulations. Always consult a qualified engineer, architect, or construction professional before making final decisions.

FAQ

Dry, loose materials (cement, sand, aggregate) have air gaps between particles that disappear once mixed with water and compacted — the standard 1.54 factor accounts for that difference.
M20 (1:1.5:3) is a common general-purpose choice; M25 (1:1:2) — the default on this page — is sometimes used for foundation-level elements given their structural role. Confirm against your project specification.