TryBuildCalc

Foundation & Footing Drain Calculator (Perimeter Runs, Stone, Pipe and Fall to the Outlet)

Size a perimeter footing drain, with the fall to the outlet checked.

Inputs

The Trench

Measurement Units

Applies to every dimension on this form — trench lengths in feet, and widths, depths, bedding and overlaps in inches. Switching converts the figures already entered rather than reinterpreting them.

▾

ℹ️The single biggest difference between this calculator and every other one. On flat ground the fall has to be dug into the trench, so the outlet end finishes deeper than the inlet end and the dig is a wedge, not a box.

The ground surface is level (or falls less than the drain needs), so the trench floor drops away from it. The outlet end finishes deeper than the inlet end by the full length times the slope. This is the normal case for a wet lawn or a low spot.

Drain Runs

Add a row per straight run. A main with laterals coming into it is best entered as the main plus one row per lateral — each has its own length, depth and fall, and the fabric and pipe are bought per run.

Run 1

ft
in

💡Measured at the inlet end — the outlet end is worked out from the fall.

in

💡1% is the standard minimum — 1/8 in of drop per foot of run.

%

Run 2

ft
in

💡Measured at the inlet end — the outlet end is worked out from the fall.

in

💡1% is the standard minimum — 1/8 in of drop per foot of run.

%
▾

ℹ️Decides the fittings and, more importantly, the capacity check: a connected system forces every drop through one outlet pipe, while separate drains each carry only their own share.

Every run ties into the next, so the whole job discharges through a single outlet. Each junction needs a tee, each upstream end needs a cap, and the outlet pipe has to carry the combined flow.

Pipe

▾

ℹ️Changes the capacity by more than a factor of two at the same fall. The ribbed bore of cheap single-wall coil is the single most common reason a correctly-dug drain still backs up.

Corrugated outside for strength, smooth inside for flow. Roughly double the capacity of single-wall pipe at identical grade, for a modest price step.

▾

ℹ️4 in / 100 mm covers almost all residential work. Capacity rises with diameter to the power of 8/3, so one size up is nearly three times the flow, not one third more.

▾

ℹ️Every run has to be one continuous length, so the coil or stick count is a cutting problem rather than a total divided by a coil length.

💡Stone laid before the pipe goes in. At least 2 in / 5 cm, so the pipe can be brought to a true grade.

in

ℹ️The bedding is what lets you set the pipe to an even fall instead of following every dip in the trench floor. It also comes off the stone available above the pipe, which is why the cover figure in the result moves when you change it.

💡Unperforated pipe from the end of the stone to the outlet. Enter 0 if there is none.

ft

ℹ️This is what the "add 10% for the outlet" rule on other calculators is standing in for — except it is a different product, not extra of the same one. Perforated pipe outside the trench just puts the water back into the ground you are draining.

▾

ℹ️Solid pipe is a different product from the perforated coil in the trench — you cannot cut unperforated pipe off a perforated coil — so it has its own stock size. It is most often sold in 10 ft sticks.

▾

ℹ️A knitted filter sleeve on the pipe itself. Useful in clean sandy ground; in silty soil it is the layer that blinds first, and once it does the water cannot reach the pipe even though the stone around it is still clear.

▾

ℹ️Every French drain needs somewhere to put the water. Where the outlet ends up is also what limits how deep the trench can be at its far end.

The pipe simply emerges on a bank or in a ditch. The cheapest and most reliable outlet there is — provided the ground actually falls away far enough for the pipe to reach it.

Drainage Stone

▾

ℹ️Open-graded angular stone is what a French drain runs on — it holds its voids open under load. The void ratio shown drives the storage figure in the result.

The near-universal specification for a French drain envelope: large enough to hold open voids, small enough to place and rake by hand.

▾

ℹ️Stone is quoted by weight, by loose volume or by the bag depending on the yard — the result shows all three regardless, but the bag count needs to know which bag.

💡Stone that ends up beside the trench rather than in it, plus settlement as it is raked in.

%

Geotextile

▾

ℹ️Decides the width of fabric the trench actually needs. A full wrap has to cover the floor, both walls AND two flaps that fold back over the stone — roughly twice the section a bottom-and-walls lining needs.

The specification that actually keeps a French drain alive. The fabric lines the floor and both walls, the stone goes in, and the two flaps fold back over the top and overlap in the middle so silt cannot enter from any direction.

▾

ℹ️Non-woven needle-punched fabric. 4 oz is the standard residential weight; step up to 6 oz in fine or silty soil, where a lighter fabric blinds sooner.

▾

ℹ️If the wrapped section is wider than the roll, the fabric has to be seamed lengthwise — and every seam is somewhere silt can find its way in. The result will tell you if a wider roll would cover it in one piece.

💡12 in / 30 cm is the standard specification, for both the fold over the stone and any lengthwise seam.

in

Finishing the Surface

▾

ℹ️A cap comes off the top of the stone, so it reduces the stone you buy and the cover over the pipe at the same time. A soil cap also seals the drain from surface water, which matters if the problem is water standing ON the lawn.

The stone runs all the way up to grade. Nothing to buy back, and the drain stays visibly open to surface water.

💡Grated boxes that let surface water in directly. The usual fix for a drain capped with soil and grass.

💡Soil takes up more room out of the ground than in it — 20-30% for most soils, more for clay.

%

Capacity Check

Check Whether the Drain Copes?

Sizes the water arriving against what the pipe can carry away and what the stone can hold. This is the question a materials list on its own never answers.

💡Everything that sheds water toward the drain — roof, paving, and the slope of ground above it.

▾
▾

ℹ️Sets the runoff coefficient — the fraction of rain that actually runs off rather than soaking in. A roof sheds nearly all of it; sandy turf sheds almost none.

💡Your local short-duration design storm. The reference table further down the page gives typical starting figures.

in/hr
Rainfall Unit

Cost Estimation

Estimate Cost?

Drainage Stone Needed

20.18

US tons (18.31 tonnes) — 15.45 cu yd / 11.81 cu m loose

Perforated Pipe

130

ft (39.62 m) — 2 x 100 ft coil

Excavation

15.27

cu yd (11.67 cu m) in the ground — 19.09 cu yd of spoil to move

The fall is dug into the trench, so the outlet end finishes deeper than the inlet end. That wedge is 0.82 cu yd (0.63 cu m) more dig and stone than a constant-depth estimate — 5.7% above the 14.44 cu yd a flat calculation would have given you.

Capacity: Comfortable — the design storm delivers 17 gpm (1.07 l/s) into a pipe that carries 92.5 gpm full bore at 1%, so it runs at 18.4% of full.

Drainage Stone

Washed #57 Stone (3/4 in, open-graded)

In the trench: 397.25 cu ft

Order volume (incl. 5% settlement/spillage): 15.45 cu yd

Weight: 20.18 US tons (18.31 tonnes)

Void space at 40%: 158.9 cu ft — 1189 gal (4500 L) held in the stone itself

Pipe

100 mm Corrugated HDPE

Perforated: 130 ft (39.62 m)

Solid to the outlet: 10 ft (3.05 m)

Coils to buy: 2 x 100 ft coil, plus 1 x 10 ft stick (rigid) of solid pipe

That is 210 ft of pipe bought for 140 ft laid — whole coils and sticks, so the cost below is based on what you buy.

Roughness n = 0.012 — full-bore capacity 92.5 gpm at 1%

Geotextile

4oz non-woven, full wrap (burrito)

Section to cover: 9.8 ft (2.99 m) across

Strips: 4 off a 12.5 ft roll, no seams

Rolls to buy: 1 x 12.5 ft x 360 ft full roll — standard drainage roll

Trench & Finish

Total run: 130 ft (39.62 m) over 4 runs

Excavation: 15.27 cu yd in the ground

Spoil, bulked 25%: 19.09 cu yd

Bedding under the pipe: 3 in (7.6 cm)

Fittings: 9 — 4 caps, 3 tees, 1 coupling, 1 outlet grate

Depth Along Each Run

RunLengthFallDepth at inletDepth at outletStone over pipe
Long side (x2)40 ft1% — 4.8 in drop36 in40.8 in28.4 in → 33.2 in
Short side (x2)25 ft1% — 3 in drop36 in39 in28.4 in → 31.4 in

Depths are measured from the finished surface. In a dig-to-fall trench the stone cover over the pipe grows toward the outlet, so it is the inlet end that has to satisfy the minimum.

Which Runs Come Off Which Coil

  • Coil 1: 40 ft + 40 ft — 20 ft left over
  • Coil 2: 25 ft + 25 ft — 50 ft left over

Before You Dig

  • Because the ground is flat, the fall has to be dug into the trench: Long side starts 36 in deep and finishes 40.8 in deep, a drop of 4.8 in over its length. That deep end is what decides whether the outlet can daylight at all — check it against the ground you are discharging onto before you start digging, not after.
  • That wedge of extra depth is 0.82 cu yd (0.63 cu m) of dig and stone — 6% more than a constant-depth estimate would have told you to order. It is the single commonest way a French drain takeoff comes up short.
  • The pipe carries the design storm at 18.4% of full bore, and the stone voids hold a further 158.9 cu ft (1189 gal) — roughly 69.9 minutes of the design inflow even if the outlet were blocked entirely. This drain has real margin in it.

Bill of Materials

Main material: 20.18 US tons (18.31 tonnes) + recommended tools

+

Computed quantities come from your own runs, trench dimensions and material settings above; the consumables below are general recommendations, filtered to this job — actual needs vary by product, ground conditions and site access.

For Your Job

Washed #57 Stone (3/4 in, open-graded)

20.18 US tons (18.31 tonnes)

15.45 cu yd / 11.81 cu m loose, including 5% settlement and spillage

Find suppliers

100 mm perforated drain pipe

130 ft (39.62 m)

2 x 100 ft coil

Find suppliers

100 mm solid (unperforated) outlet pipe

10 ft (3.05 m)

1 x 10 ft stick (rigid)

Find suppliers

4oz non-woven geotextile

1 x 12.5 ft x 360 ft full roll — standard drainage roll

4 strips at 9.8 ft across the wrapped section

Find suppliers

100 mm fittings

9 pieces

4 end caps, 3 tees, 1 coupling, 1 outlet grate

Find suppliers

Excavated spoil to remove

19.09 cu yd (14.59 cu m) loose

15.27 cu yd in the ground, bulked 25% as it is dug

Find suppliers

General Tools & Consumables

Trenching spade / mattock

String line, pegs and a long spirit level

Laser level or water level (long runs)

site-dependent

Wheelbarrow and a stone rake

Garden hose (for the flow test)

Marker paint and utility locate reference

check first

Pipework

Pipe cutter or fine-toothed saw

Rodent guard / outlet grate

Rodding point or clean-out (long or silty runs)

site-dependent

Geotextile

Landscape staples / fabric pins

Sharp scissors or a hooked utility knife

Safety

Gloves, eye protection and steel-toe boots

French Drain Diagram

Along the run — 40 ft at 1%Ground levelfall 4.8 in36 in40.8 inInletOutletfall dug into the trenchAcross the trench — 12 in widegeotextile4.6 in pipestone12 in wide — 3.7 in of stone each side

Long section drawn from your own run: the surface stays level and the floor falls away from it, so the outlet end is genuinely deeper. Vertical scale is exaggerated against horizontal so the fall is visible — a 40 ft trench drawn true to scale would be a hairline. Cross-section layers are proportional to their real depths, with a minimum thickness so thin layers stay legible.

Looking for the verification checklist, reference tables, tips, or common mistakes?See the complete French Drain / Land Drain Materials Calculator.

A perimeter drain is several runs sharing one outlet

A footing drain is not one trench, it is a loop of them: each side of the building is its own run, with its own length and its own fall, and they all have to arrive at a single outlet. That makes the fittings real — a tee at each junction, a cap at each upstream end, and one outlet carrying the combined flow — and it makes the fall arithmetic matter, because the run that arrives last is the deepest and it is the one that decides whether the outlet can daylight at all.

Two things differ from a garden drain. The trench bottom sits at or just below the top of the footing, not at a depth you choose, so the depth figure comes off the building rather than off convenience. And the stone usually runs to grade or near it rather than being capped with topsoil, because the drain is there to take water down the face of the wall before it ever reaches the surface.

French Drain Formula

Six steps, in the order the calculator works them out. Every one of them is a step where the common shortcut gives a different answer from the real geometry.

Step 1 — Depth along the run

Depth at the outlet = depth at the inlet + (length x slope)

Mean depth = depth at the inlet + (length x slope) / 2

On ground that already falls, both ends are the same and the mean is simply that depth. On flat ground the fall has to be dug in, and this is where every constant-depth estimate goes wrong.

Step 2 — Excavation (a wedge, not a box)

Trench volume = width x length x mean depth

Spoil to move = trench volume x (1 + bulking %)

The trench is a trapezoidal prism whenever the fall is dug in, so the mean depth — not the depth you typed — is what multiplies out. Soil also takes up more room out of the ground than in it.

Step 3 — Drainage stone

Stone envelope = width x length x (mean depth - cap thickness)

Pipe displacement = pi / 4 x (pipe outside diameter)^2 x length

Stone volume = stone envelope - pipe displacement

Order volume = stone volume x (1 + settlement %)

Weight = order volume x loose density

Void storage = stone volume x void ratio

The pipe occupies space the stone would otherwise fill, and any cap layer comes off the top. Void storage is what the trench itself holds during the peak of a storm.

Step 4 — Stone cover over the pipe (derived, not assumed)

Cover at the inlet = depth at the inlet - cap - bedding - pipe outside diameter

Cover at the outlet = depth at the outlet - cap - bedding - pipe outside diameter

Cover is not an input — you know how deep you are digging, and the cover is whatever is left. It grows toward the outlet, so the inlet end is the one that has to clear the 3 in minimum.

Step 5 — Geotextile, as strips off a roll

Full wrap section = (2 x trench width) + (2 x stone depth) + overlap

Lining only = trench width + (2 x stone depth) + (2 x margin)

Strips = 1 + ceil((section - roll width) / (roll width - overlap))

Rolls = the strip lengths packed into the roll length

The leading 1 matters: the first strip has nothing to lap onto. A full wrap needs roughly twice the width a bottom-and-walls lining does, because of the two flaps that fold back over the stone.

Step 6 — Capacity check

Inflow (cfs) = C x i x A (rational method, A in acres, i in in/hr)

Pipe capacity (cfs) = (1.486 / n) x A x R^(2/3) x S^(1/2) (Manning, full bore)

Usable capacity = pipe capacity x 0.5

Buffer = void storage / inflow

Three separate questions with three separate answers: how much water arrives, how much the pipe carries away, and how much the stone holds while that happens.

Why pipe and roll counts are packed, not divided. Every run has to be one continuous length of pipe, and every fabric strip one continuous piece. Three 60 ft runs off 100 ft coils need three coils, not the two that 180 ÷ 100 suggests — no coil can hold two of them. This calculator packs the lengths into stock rather than dividing, and tells you which runs come off which coil so the count can be checked on site.

Real-World French Drain Calculation Example

This example uses the values you have entered above and follows the same six steps as the formula section. Each table shows the value used, the formula applied, and the result produced.

Input Values Used

InputValueWhy it is used
Long side (x 2)40 ft long, 12 in wide, 36 in deep at the inlet, falling 1%Sets the excavation, the stone envelope and the fabric section for this run
Short side (x 2)25 ft long, 12 in wide, 36 in deep at the inlet, falling 1%Sets the excavation, the stone envelope and the fabric section for this run
Ground profileFlat — the fall is dug into the trenchDecides whether the trench is a wedge or a constant-depth box
Drainage stoneWashed #57 Stone (3/4 in, open-graded) at 96.8 lb/cu ft, 40% voidConverts stone volume into weight, and gives the trench its water storage
Pipe100 mm Corrugated HDPE, roughness n = 0.012Displaces stone, and sets how much water can be carried away
Bedding under the pipe3 inLets the pipe be set to a true grade, and comes off the cover above it
Geotextile4oz non-woven, full wrap (burrito), 12 in overlapSets the fabric width the trench section actually needs
Allowances5% stone settlement, 25% spoil bulkingCovers spillage into the order, and sizing the spoil to be carted away
Design storm1,500 sq ft at C = 0.55, 2 in/hrThe water the drain has to cope with

Step 1 — Depth along the run

The fall is added to the inlet depth to find how deep the trench finishes, and the mean of the two ends is what the excavation multiplies out by.

CalculationFormula / SubstitutionResult
Fall over the run40 ft x 1%4.8 in drop
Depth at the inletas entered36 in
Depth at the outlet36 in + 4.8 in40.8 in
Mean depth(36 + 40.8) / 238.4 in

Step 2 — Excavation

The trench volume uses the mean depth, not the depth entered — which is the difference between this calculator and a constant-depth estimate.

CalculationFormula / SubstitutionResult
Trench volume12 in x 40 ft x 38.4 in15.27 cu yd (11.67 cu m)
A constant-depth sum would give12 in x 40 ft x 36 in14.44 cu yd
Dig the fall adds15.27 - 14.44 cu yd0.82 cu yd (5.7% more)
Spoil to move15.27 cu yd x (1 + 25%)19.09 cu yd loose

Step 3 — Drainage stone

The cap layer comes off the top of the trench and the pipe displaces stone from within it; what is left is the stone to order.

CalculationFormula / SubstitutionResult
Stone in the trenchstone envelope less the pipe397.3 cu ft
Order volume397.3 cu ft x (1 + 5%)15.45 cu yd (11.81 cu m)
Weight to order417.1 cu ft x 96.8 lb/cu ft20.18 US tons (18.31 tonnes)
Water held in the voids397.3 cu ft x 40%158.9 cu ft (1,189 gal)

Step 4 — Pipe, cover and fittings

Cover over the pipe is what is left after the cap and the bedding, and it grows toward the outlet. Pipe is packed into whole coils or sticks, never divided.

CalculationFormula / SubstitutionResult
Cover at the inlet36 in - cap - bedding - 4.6 in pipe28.4 in
Cover at the outlet40.8 in - cap - bedding - 4.6 in pipe33.2 in
Perforated pipe laid4 runs130 ft (39.6 m)
Pipe to buypacked into 100 ft coil2 coils
Solid outlet pipe10 ft off 10 ft stick (rigid)1 x 10 ft stick (rigid)
Fittings4 caps, 3 tees, 1 coupling9 pieces

Step 5 — Geotextile

The wrapped section is what the fabric has to cover across the trench, measured at the deepest end. If it exceeds the roll width, the fabric is seamed lengthwise.

CalculationFormula / SubstitutionResult
Section to cover(2 x 12 in) + (2 x stone depth) + 12 in overlap9.8 ft (2.99 m)
Strips off the roll9.8 ft fits inside the 12.5 ft roll — no lengthwise seam4 strips, 0 seams
Rolls to buystrip lengths packed into 360 ft rolls1 x 12.5 ft x 360 ft full roll — standard drainage roll

Step 6 — Capacity check

The water arriving is sized against what the pipe can carry away at the flattest run's grade, and against what the stone can hold while that happens.

CalculationFormula / SubstitutionResult
Design inflow0.55 x 2 in/hr x 0.0344 acres17 gpm (1.07 l/s)
Pipe capacity, full boreManning at n = 0.012, 1%92.5 gpm
Usable capacity92.5 gpm x 50%46.3 gpm
Pipe running at17 / 92.5 gpm18.4% of full — comfortable
Storage buffer158.9 cu ft / 17 gpm69.9 minutes of the design inflow

Therefore, this drain needs 15.27 cu yd of excavation and 20.18 US tons (18.31 tonnes) of washed #57 stone (3/4 in, open-graded), 2 x 100 ft coil of 100 mm perforated pipe, 1 x 12.5 ft x 360 ft full roll — standard drainage roll of geotextile and 9 fittings, with 19.09 cu yd of loose spoil to move. The pipe carries the design storm at 18.4% of full bore, with room to spare.

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.

Frequently Asked Questions

At or just below the top of the footing, so the pipe collects water before it can rise against the wall — never below the bottom of the footing, which risks undermining it. That sets the depth for you rather than leaving it to preference, and it is usually considerably deeper than a garden drain: 36 in and more is routine against a basement or a deep crawl space. Remember that the fall then adds to it, so the run that reaches the outlet last is deeper again.
Outside is the usual position for new construction, laid against the footing and wrapped in stone and geotextile before the excavation is backfilled, because it intercepts water before it reaches the wall. An interior drain beneath the slab is the common retrofit, since it does not require excavating around an existing building, and it usually discharges to a sump rather than to daylight. Both are valid; they are quantified the same way here, but the depth and the outlet arrangement differ.