TryBuildCalc

Driven Pile Calculator Precast driven pile estimator

Calculate concrete and steel quantity for a group of bored or driven cast-in-situ pile shafts.

Pile Dimensions

ℹ️How many identical piles in this group — the final quantity is the sum across all of them.

ℹ️Depth of the pile shaft below cut-off level, from the soil report / structural drawing.

Concrete

ℹ️Pile cover is typically higher than an above-ground column's, since the shaft is cast directly against soil or a casing.

Reinforcement

ℹ️Minimum 6 longitudinal bars for a circular pile cage, per common design practice.

ℹ️Commonly 150-200 mm centre-to-centre along the pile shaft.

ℹ️True Helix is geometrically more accurate and gives a leaner estimate. Practical / BBS Convention matches the common site/BBS shorthand (treats each spiral turn like a discrete stirrup) — pick this to reconcile against a hand-prepared BBS.

Lap Splices

Include Lap Splices?

ℹ️Commonly 40-50× diameter depending on the applicable code and concrete grade — a deep pile's cage routinely exceeds one 12m stock length.

Cost

Enable Cost Estimation?

For 4 piles at 500 mm diameter × 15.0 m long, you need approximately 12.37 of concrete and 986.1 kg of reinforcement steel.

Concrete (all piles)

Concrete volume: 12.37 (436.8 cft)

Cement: 99.8 bags

Sand: 5.20 (183.5 cft)

Aggregate: 10.39 (367.0 cft)

Steel Reinforcement (all piles)

Longitudinal Main Bars: 32 × 16 mm

Helical / Spiral Ties: 400 × 8 mm

Total steel weight: 986.1 kg

Bar TypeDiameterCount / SpacingCutting LengthTotal LengthWeight
Longitudinal Main Bars16 mm3215.540 m497.28 m785.83 kg
Helical / Spiral Ties8 mm150 mm c/c (400)1.267 m506.86 m200.24 kg

Assumptions Used

Steel weight: d² ÷ 162 (kg/m) | Helical tie modelled as a true continuous spiral (turn length = √(circumference² + pitch²)), with one combined 20 × diameter anchorage allowance for the whole spiral, not per turn | Concrete dry volume factor: 1.54 | This estimate covers the pile shafts only — it excludes the pile cap (a separate footing-like element) and shuttering (bored/driven piles are cast against the bore hole or a driven casing, not conventional formwork).

Pile Foundation (Elevation & Cross-Section)Pile CapGround level15 mCross-SectionDiameter: 500 mmMain bars + spiral tie (illustrative count/spacing)Diagram simplified for clarity (not to scale). Pile cap sized separately — not included in this calculator's estimate.

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

Driven (precast) pile concrete and steel estimate

Driven piles are typically cast off-site (or in a casting yard) and then driven into the ground with a hammer or vibratory driver, or cast-in-situ inside a driven casing. The material quantity math is the same circular-shaft calculation used for any pile, which this page is pre-filled to calculate.

Edit diameter, length, count, or reinforcement above and the concrete breakdown, steel schedule, and worked example update from the active values.

  • Concrete volume = π × (Diameter ÷ 2)² × Length, per pile, summed across the count.
  • No shuttering — a precast driven pile is cast off-site, not with on-site panel formwork.
  • Reinforcement (main bars + spiral ties) is typically detailed for handling and driving stresses, not just the final in-service load.

How Is the Pile Foundation Quantity Calculated?

The calculation happens in two parts — concrete volume and steel reinforcement (with optional lap splices) — then an optional cost estimate on top, all multiplied across the pile count.

Step 1 — Concrete Volume (per pile, × count)

Pile Volume = π × (Diameter ÷ 2)² × Length

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 = Pile Length − (2 × Concrete Cover)

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

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

Tie Circumference = π × (Pile Diameter − 2 × Cover)

Turns per Pile = ROUND UP(Pile Length ÷ Pitch)

Helix Turn Length = √(Tie Circumference² + Pitch²)

Unit Weight (kg/m) = Diameter² ÷ 162

Longitudinal main bars run the full pile 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. Helical/spiral ties use the True Helix method: each turn's wire length is the Pythagorean unrolling of the spiral (circumference and pitch as the two legs — always slightly longer than the bare circumference), with one combined hook/anchorage allowance added once for the whole spiral rather than at every turn.

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
Pile count4Multiplies every per-pile quantity to the full group
Pile diameter × length500mm × 15mSets the concrete volume and every bar's base length
Mix ratio / wastage1:1.5:3, 5% wastageConverts wet volume to cement bags and adds a buffer for site losses
Cover / reinforcement50 mm cover, 16 mm main × 8, 8 mm tie @ 150 mmSets bar cutting length and tie turn count/size
Lap multiplier40× diameterAdds splice length for every 12m stock length exceeded

Step 1 — Concrete

CalculationSubstitutionResult
Wet volume (4 piles)π × (500mm÷2)² × 15m × 411.781
With 5% wastage11.781 × 1.0512.370 m³ (99.8 bags)

Step 2 — Steel

Bar TypeSubstitutionWeight
Longitudinal Main Bars32 × 15.540 m × 16²÷162785.83 kg
Helical / Spiral Ties400 × 1.267 m × 8²÷162200.24 kg
Total steelSum of all rows986.07 kg

Therefore, 4 piles of 500mm × 15m need approximately 12.37 of concrete and 986.1 kg of steel.

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

A precast pile is lifted into position and driven into the ground with a hammer (impact) or vibratory driver until it reaches the design depth or a specified driving resistance ('set'). Driving resistance records are typically used to confirm capacity.
Yes, in practice — a driven pile's cage is often detailed to survive handling, lifting, and driving stresses, not just the final service load. Confirm reinforcement from the actual pile design, not just an in-service estimate.