TryBuildCalc

Compacted Backfill Calculator (Structure Deduction, Compaction, Truckloads & Cost)

Calculate backfill volume after structure deduction.

Inputs

Choose the source excavation shape. Trench and rectangular use length × width × depth; pit uses top and bottom dimensions.

ℹ️Use this for repeated trenches, pits, or identical excavation bays.

ℹ️If the excavation was actually dug larger than the theoretical dimensions (loose ground, wide bucket, real edges), enter that allowance here so the void size used for backfill matches reality. Carried over automatically from the excavation calculator when linked. Defaults to 0%. Not yet supported for sloped pit excavation.

Structure Deduction

ℹ️Enter footing, wall, pipe envelope, tank, or other built volume inside the excavation.

Select Yes if part of the structure volume is hollow and should not be deducted as solid structure.

Compaction

ℹ️Adds extra loose material to achieve the calculated compacted backfill volume. Typical planning range: 5-15%.

ℹ️Used only to convert volume into an approximate weight in tons — does not affect volume, compaction, or cost.

Enable Cost Estimation?

ℹ️Use the usable volume carried per trip. Typical: 3-10 m³ per trip (about 105-350 cft per trip).

ℹ️Optional buffer for unknowns — supplier density variance, delivery charges, or material substitution. Commonly 5-15%.

Backfill required after structure deduction is 66.000. With compaction allowance, plan for 79.200, requiring 14 truck loads and costing around 27,720.

Calculations

Excavation Volume: 90.000 (~144.00 t)

Excavation Units: 2

Structure Deduction: 24.000 (~38.40 t)

Net Backfill: 66.000 (~105.60 t)

Compaction Added: +13.20 (~21.12 t)

Adjusted Backfill: 79.200 (~126.72 t)

Estimates

Truck Loads: 14

Estimated Cost: 27,720

Tip: Metric tons use an approximate Ordinary / Mixed Soil density of 1.60 t/m³ — confirm the actual bulk density with your supplier, since different materials vary significantly.

Approximate results for planning only. Verify with a professional.

Poor compaction and drainage behind a wall are common causes of cracking. Wall Cracks: Causes and Remediation →

Backfill VisualizationExcavationBackfill ZoneStructureOptional voidsExcavation Volume90.000 m³Structure Deduction24.000 m³Adjusted Backfill79.200 m³Diagram simplified for clarity (not to scale)

Looking for the verification checklist, reference tables, or tips and mistakes?See the complete Backfill Calculator.

Compacted backfill material estimate

This page uses 2 identical excavation units (10 m x 3 m x 1.5 m each, 90 m³ combined) and 2 matching structures (8 m x 1.5 m x 1 m each, 24 m³ combined) to model repeated footings or bays on the same site, leaving 66 m³ of net backfill void across both units.

A larger 20% compaction allowance is used here to represent layer-wise compacted fill placed in lifts and tamped between layers, taking the adjusted backfill to 79.2 m³ — needing 14 truck loads at 6 m³ capacity and costing roughly 27,720 at 350 per m³.

  • Default: 2 excavation units of 10 m x 3 m x 1.5 m (90 m³ combined).
  • Structure deduction: 2 units of 8 m x 1.5 m x 1 m (24 m³ combined) → 66 m³ net backfill.
  • Compaction allowance: 20% → 79.2 m³ adjusted backfill, 14 truck loads.

How does backfill quantity calculation work?

The calculation starts with excavation volume, deducts the solid volume occupied by the structure, then adds a compaction allowance to estimate the loose fill material to arrange.

Step 1 — Calculate Excavation Volume

Rectangular or Trench Volume = Length × Width × Depth × Count
Pit Volume = Depth ÷ 3 × (Bottom Area + Top Area + √(Bottom Area × Top Area))
If Overbreak is used: Excavation Volume = above × (1 + Overbreak %)

Use rectangular or trench mode for uniform sides. Use pit mode when top dimensions are larger than bottom dimensions due to side slopes. If the source excavation was actually dug larger than its theoretical size, the Overbreak allowance inflates this volume first, so the backfill void calculated below matches the real hole — not just the design dimensions.

Step 2 — Calculate Structure Deduction

Gross Structure Volume = Structure Length × Structure Width × Structure Height × Structure Count
Structure Volume = Gross Structure Volume − Void Volume

Void volume is deducted only when Include Voids is set to Yes. This is useful for hollow tanks, ducts, pipes, or other structure volumes that should not be treated as solid displacement.

Step 3 — Calculate Net Backfill

Net Backfill = Excavation Volume − Structure Volume

This gives the actual void space to be filled around the completed structure.

Step 4 — Add Compaction Allowance

Adjusted Backfill = Net Backfill × (1 + Compaction Factor ÷ 100)

The adjusted backfill is the loose material volume to order — it is larger than the net void because loose fill needs to be compacted down to fill that void at its final density.

Step 5 — Calculate Truck Loads and Cost

Truck Loads = Adjusted Backfill ÷ Truck Capacity (in m³)
If Truck Capacity is entered in cft: Truck Capacity (m³) = Truck Capacity (cft) ÷ 35.3147
Total Cost = Adjusted Backfill (m³) × Cost per m³

Truck loads are rounded up because fill is normally transported in complete trips. Truck capacity and cost rate can each be entered in m³ or cft — a cft figure is converted to its m³ equivalent first, so the result is identical either way.

Step 6 — Add Contingency (Optional)

Contingency Amount = Base Cost × (Contingency % ÷ 100)
Total Cost = Base Cost + Contingency Amount

Contingency is an optional buffer on top of the base cost to cover unexpected variance — supplier density differences, delivery surcharges, or material substitution. It defaults to 0%; a commonly used range is 5-15%.

Example backfill calculation

This example uses the active calculator inputs above and follows the same steps from the formula section — showing the default scenario if you haven't changed anything, or your own live inputs once you do.

Input Values Used

InputValueWhy it is used
Dimensions10 m × 3 m × 1.5 mSets the rectangular excavation volume
Number of excavations2Multiplies volume for repeated identical excavations
Structure deduction8 × 1.5 × 1 (m), × 2Volume occupied by the structure, subtracted from excavation volume
Compaction factor20%Converts net backfill void into loose material to order
Equipment & cost6 /trip, 350 per Sets truck loads and total cost

Step 1 — Calculate Excavation Volume

CalculationSubstitutionResult
Excavation volume10 × 3 × 1.5 × 290.000

Step 2 — Calculate Structure Deduction

CalculationSubstitutionResult
Gross structure volume8 × 1.5 × 1 × 224.000
Structure volumeGross 24.000

Step 3 & 4 — Net Backfill and Compaction

CalculationSubstitutionResult
Net backfill90.00024.00066.000
Adjusted backfill66.000 × (1 + 20/100)79.200

Step 5 & 6 — Truck Loads, Cost & Contingency

CalculationSubstitutionResult
Truck loads79.200 ÷ 6.00 m³14 trucks
Base cost79.200 × rate27,720
Total costBase cost27,720

Therefore, this job needs approximately 79.200 of loose backfill material, requiring 14 truck loads and costing around 27,720.

This page keeps things focused on the calculation above. For the full construction guide — verification checklist, reference tables, usage steps, tips, common mistakes, and limitations.See the complete Backfill Calculator.

Related Calculators

FAQ

It models a repeated element, such as two identical footing bays on the same job, calculated together in one pass. Excavation count (2) and structure count (2) multiply their respective single-unit volumes, so 10 x 3 x 1.5 x 2 = 90 m³ excavated and 8 x 1.5 x 1 x 2 = 24 m³ deducted.
This page models layer-wise compacted fill, placed and tamped in lifts (common where compaction quality matters, such as under a slab or pavement), and a 20% allowance reflects that more loose material is needed relative to the final compacted void than a general backfill scenario.