TryBuildCalc

Hanging Basket Soil Calculator (Spherical-Cap Volume for Rounded Baskets)

Find how much compost a hanging basket holds.

Inputs

Containers

Measurement Unit

Applies to every container dimension and to the headspace — switching converts the figures already entered rather than reinterpreting them. Always measure the inside of a container — a thick-walled pot or planter can lose an inch or more of width to its own walls.

Container List

Add a row per size or shape — pots, window boxes and baskets can all go in one job.

Container 1

Modelled as a spherical cap — the right shape for a wire or coco-lined basket with a rounded bottom. Measure the inside rim diameter and the depth at the centre, which is the deepest point.

in
in

Fill Level

Fill Method

The more accurate option for a measured container: the mix volume is recomputed at the true fill line, so a tapered pot correctly loses its widest slice.

in

ℹ️The gap left between the mix and the rim so water soaks in instead of running over the side. Roughly 1 in (2-3 cm) suits a typical pot; allow more on a large planter and less on a shallow window box.

%

ℹ️Extra mix to cover settling after the first watering, so you are not left topping up from an empty bag. Around 10% is a reasonable allowance; enter 0 to order the bare calculated volume.

Bags & Cost Estimation

ℹ️US bags are labelled in DRY quarts (25.7 to a cubic foot, not the 29.9 a liquid-quart conversion would give); UK, EU and Australian bags are labelled in litres. Both are listed here, so pick whichever matches the bag in front of you.

Enable Cost Estimation?

Potting Mix Needed

1.18 cu ft

30.2 dry qt / 33.3 L / 0.033

Bags to Buy

1

40 L (≈1.41 cu ft) — UK/AU bag

4 × Hanging basket (bowl-shaped)

Filled to 0.75" (1.9 cm) below the rim — about 80.3% of total container volume.

ContainerQtyHolds (full)Mix eachMix total
Container 1 Hanging basket (bowl-shaped)48.6 dry qt (9.4 L)6.9 dry qt (80.3% full)1.07 cu ft (27.5 dry qt)
Total (before settling)434.2 dry qt1.07 cu ft

Volume

Total container volume (brim-full): 1.33 cu ft (34.2 dry qt / 37.7 L)

Mix volume at your fill level: 1.07 cu ft (27.5 dry qt / 30.3 L)

Order volume (+10% settling): 1.18 cu ft (30.2 dry qt / 33.3 L)

Dry quarts, not liquid quarts

US potting mix bags are labelled in dry quarts — 25.7 to a cubic foot. Your 1.18 cu ft is 30.2 dry qt. A calculator that converted with liquid quarts would tell you 35.2 qt — about 16% more mix than you need.

Container Fill Diagram

Hanging basket (bowl-shaped)14" dia6" deepheadspace80.3% full6.9 dry qtper container1 × 40 L bagfor 4 containers — last bag about 83% used

Container drawn to the proportions of the inside dimensions entered; mix shown at the computed fill line. Bag shading indicates how much of the last bag the order uses.

Looking for the verification checklist, reference tables, tips, or common mistakes?See the complete Potting Soil & Container Volume Calculator.

A rounded basket is a spherical cap, not a cylinder

A hanging basket's rounded bottom means it holds far less than its rim diameter suggests. Modelled properly, as a spherical cap, a 14 in basket 7 in deep holds about 718 cubic inches — 10.7 dry quarts, or 11.8 litres. The same 14 in basket only 6 in deep holds about 575 cubic inches. Treating either as a cylinder of its rim diameter overstates it by half or more, which is why basket compost so often runs short.

Two measurements do it: the inside rim diameter, and the depth at the centre, which is the basket's deepest point. Measuring the depth nearer the edge understates the volume substantially. Baskets also dry out faster than any other container, so keep the headspace modest — around three quarters of an inch on a typical basket — to hold as much of each watering as possible.

Potting Soil Formula & Method

Every figure is computed in cubic inches and converted only for display. Cubic inches is the natural working unit here because it is the unit the nursery container standard publishes its class volumes in, and because it converts cleanly to both dry quarts and litres.

Step 1 — Container volume, by shape

Round, straight-sided (cylinder):

V = pi x D² x h / 4

 

Round, tapered (cone frustum):

V = (pi x h / 12) x (D² + D x d + d²)

 

Rectangular, straight-sided (box):

V = L x W x h

 

Rectangular, tapered (prismatoid):

V = (h / 6) x [L x W + (L + l) x (W + w) + l x w]

 

Bowl / rounded basket (spherical cap):

V = (pi x h / 6) x (3 x (D/2)² + h²)

 

D, L, W = inside dimensions at the RIM

d, l, w = inside dimensions at the BASE

h = inside depth

All five are exact formulas for their solid, not approximations. The frustum reduces to the cylinder when there is no taper, and the prismatoid reduces to the box — so entering equal rim and base dimensions gives the straight-sided answer, as it should. The prismatoid form is used rather than a pyramid frustum because a planter can taper by different amounts along its length and its width, and the prismatoid rule is exact for that case too.

Step 2 — Volume of mix at the fill line

Headspace method:

filled depth h_f = h - headspace

width at fill line = base + (rim - base) x (h_f / h)

V_mix = the SAME shape formula, recomputed with

h_f and the fill-line width

 

Percentage method:

V_mix = V_container x fill% / 100

(the fill DEPTH is then solved back from V_mix)

This is the step most calculators skip. Scaling the brim-full volume by the depth ratio would treat the empty slice as if it were an average slice, but on a container that is wider at the rim the empty slice is the widest one. For a 12 in rim, 9 in base, 10.5 in deep pot, filling to 9.5 in gives 805 cu in, not the 828 cu in a flat depth-ratio scaling suggests — a 2.9% difference on one pot, and the same 2.9% across every pot in the order. Note also that the two methods are not interchangeable: 90% of that pot's volume sits at 9.67 in of depth, not 9.45 in.

Step 3 — Whole job, plus settling

V_row = V_mix x number of containers in the row

V_total = sum of every row

V_order = V_total x (1 + settling% / 100)

The settling allowance covers the drop in level when a fresh, air-filled mix is watered in for the first time, so you are not left topping up from an empty bag. It is a practical top-up figure rather than a cited standard — 10% is a reasonable default, and 0 gives the bare calculated volume.

Step 4 — Unit conversion, in DRY quarts

1 US dry quart = 67.200625 cu in -> 25.71 per cu ft

1 US liquid quart = 57.75 cu in -> 29.92 per cu ft

1 litre = 61.024 cu in

1 cubic foot = 1,728 cu in

1 US gallon = 231 cu in

 

dry qt needed = V_order / 67.200625

Bagged potting mix, garden soil and compost sold at US retailers is labelled in US dry quarts. Using liquid quarts — the conversion a general-purpose unit converter will give you — overstates the number of labelled quarts by 16.4%. The calculator reports both figures side by side so the gap is visible rather than assumed.

Step 5 — Bags and cost

bags = ROUNDUP( V_order / bag volume ) (minimum 1)

cost = bags x price per bag

The bag count rounds up because partial bags cannot be bought, and it is always computed from the unrounded order volume — rounding the volume for display first and then dividing can silently drop a bag when the true figure sits just over a whole-bag boundary. Cost follows the whole-bag count, not the volume, because that is what you actually pay.

Containers entered by trade class

V_container = ANSI Z60.2-2025 Table 1 class volume

basis = class minimum / midpoint / maximum

 

"true to size" reference (standard §1.1.3.4):

cu in = gallons x 231

A class is a permitted range, not a size, so there is no single correct figure to use — the basis is yours to choose. Because such a row has a published volume but no published dimensions, a headspace in inches cannot be applied to it, and the percentage fill level is used for those rows instead. The calculator states this on the row and in the results rather than mixing two fill bases silently.

Worked Example

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

Input Values Used

InputValue
Container 14 x Hanging basket (bowl-shaped) — diameter 14, depth 6 in
Fill Level0.75" (1.9 cm) headspace below the rim
Settling & Top-Up Allowance10%
Bag Size40 L (≈1.41 cu ft) — UK/AU bag

Step 1 — Container Volume, by Shape

CalculationResult
(pi x 6 / 6) x (3 x 7² + 6²)574.9 cu in each (8.6 dry qt) — spherical cap
Total brim-full volume across 4 containers2,299.6 cu in (1.33 cu ft)

Step 2 — Volume of Mix at the Fill Line

CalculationResult
filled depth = 6 - 0.75 = 5.25 in; the shallower cap is taken on the SAME sphere, not on the rim width461.8 cu in of mix each — 80.3% of the container

Step 3 — Whole Job, Plus Settling

CalculationResult
461.8 cu in x 4 containers1,847.3 cu in (1.07 cu ft)
Total mix before settling1,847.3 cu in (1.07 cu ft)
1,847.3 x (1 + 10 / 100)2,032 cu in to order (1.18 cu ft)

Step 4 — Unit Conversion, in DRY Quarts

CalculationResult
2,032 / 67.200625 cu in per dry quart30.2 dry qt — the unit US bag labels use
2,032 / 1,728 cu in per cubic foot, and / 61.024 per litre1.18 cu ft (33.3 L)
The same volume converted with LIQUID quarts (57.75 cu in) instead35.2 qt — about 16% more mix than the containers hold

Step 5 — Bags and Cost

CalculationResult
One 40 L bag2,440.9 cu in (40 L)
ROUNDUP(2,032 / 2,441)1 bag to buy

Figures above are rounded for display; the real quantities are always calculated from full, unrounded values.

Therefore, 4 containers need 1.18 cu ft of potting mix — 30.2 dry quarts (33.3 litres) including a 10% settling allowance — which comes to 1 bag of 40 L.

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 12 in basket around 5 in deep holds roughly 348 cubic inches (5.2 dry quarts, 5.7 litres) brim-full, and about 3.6 dry quarts with an inch of headspace. A 14 in basket 6 in deep holds about 575 cubic inches (8.6 dry quarts, 9.4 litres), or about 6.3 dry quarts with the same headspace. Four 14 in baskets therefore come to roughly 25 dry quarts of mix, or about 30 once a settling allowance is added — still comfortably inside one 40 L bag.
At the centre, which is the deepest point of the curve. The spherical-cap formula this calculator uses needs the maximum depth together with the inside rim diameter, and it derives the basket's curvature from those two figures. A depth measured near the edge will give an answer well below the truth.