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Gutter Size Calculator

Size a gutter and its downspouts from your roof's footprint, rainfall rate and gutter slope, using the SMACNA and NIST formulas rather than a roof-area lookup table.

Roof footprint this gutter drains
ft
ft
Roof pitch
Rainfall intensity
in/hr
  • Pacific Northwest — 2 in/hr
  • Upper Midwest / Northeast — 3 in/hr
  • Mid-Atlantic / Midwest — 4 in/hr
  • Southeast / Texas — 5 in/hr
  • Gulf Coast / South Florida — 7 in/hr
  • Custom rate
Gutter profile
Gutter slope and downspouts
Gutter slope
no.
M

A standard 5″ K-style is about 0.75 deep for its width. Deeper sections carry more — that is the M−4/7 term. Half-round ignores this field; its formula has no depth ratio.

Rain falls vertically, so what a gutter has to carry is set by the roof’s footprint, not its sloped surface. The pitch factor exists only because wind drives rain sideways onto a steep face.

Gutter size

Use this gutter
Design area
Peak flow
Width required
Downspout
Same roof, different gutter slope
Level
1/8″/ft
1/4″/ft
1/2″/ft
Capacity rises with the square root of slope — checked against two rows of IPC Table 1106.6.
How it’s calculated
Sizing guidance — not a code approval. These are the NIST formulas SMACNA publishes, and they return the width a gutter needs to carry the flow. Your local building department sets the design rainfall rate for your address and can require a larger gutter, a different slope or more downspouts than this returns. Look your rate up in NOAA Atlas 14 rather than using a regional average, and confirm the result with your inspector before you order material.

Quick Answer

A gutter size calculator sizes a gutter from the roof's plan area, the local rainfall intensity and the gutter's own slope - half-round width W = 0.0182 x (I x A)^(2/5), in feet. A 600 sq ft roof plane on a 5-6/12 pitch at 4 in/hr needs 2.69 in, so a 5-inch K-style gutter carries it.

Diagram showing rain falling vertically onto a 12/12 gable roof with a 40 ft footprint, and a bar comparison of the SMACNA 1.30 pitch factor against the geometric 1.41 ratio used by other gutter size calculators
The two roof planes measure 56.6 ft between them, but the gutters drain the 40 ft footprint underneath. SMACNA’s pitch factor stops at 1.30 because it is a wind allowance — the geometric 1.41 answers a different question.

Gutter Size Formula: The SMACNA and NIST Method

Most gutter sizing charts are lookup tables — roof under 2,200 sq ft, fit a 5-inch gutter. The method SMACNA publishes in its Architectural Sheet Metal Manual is a pair of formulas determined experimentally by the National Bureau of Standards, now NIST, and this gutter size calculator runs those instead. They give the width a level gutter needs:

Half-round: W = 0.0182 × (I × A)2/5
Rectangular: W = 0.0106 × M−4/7 × L3/28 × (I × A)5/14
W is in FEET in both — multiply by 12 for inches.
I = rainfall intensity in in/hr, A = the roof area one gutter section drains in plan, M = the gutter’s depth divided by its width, L = the length of gutter served by one downspout in feet.

Two things fall straight out of the algebra. The exponent on I × A is well under 1, so doubling your roof area does not double the gutter width — on a half-round it multiplies it by 22/5, about 32%. And width is far more sensitive to rainfall rate than to roof size, which is why the rainfall figure you type matters more than getting the roof measurement perfect.

The calculator also reports the peak flow the gutter carries, because that is the number a downspout is chosen against. One square foot of roof under 1 in/hr of rain sheds 0.0104 gallons per minute, so peak flow (gpm) = design area × rainfall rate × 0.0104. A 4,000 sq ft plane at 4 in/hr is moving 166.4 gpm through its gutters at the design storm.

How to Use the Gutter Size Calculator

Five inputs, and only the first three are on screen by default. Work left to right and read the result panel as you go.

  1. Measure the roof footprint this one gutter drains

    Stand back and measure the building on the ground, not up the slope. Enter the length along the eave, then how far the roof reaches back from that eave. On a simple gable, that second number is half the building’s width, because the other half drains to the gutter on the far side.

  2. Pick the roof pitch

    Choose the band your roof falls in — flat to 3/12, 4/12, 5–6/12, 8/12 or 12/12. This adds between 0% and 30% to the area, and it is an allowance for wind blowing rain onto the roof face, not a surface-area correction.

  3. Enter your rainfall intensity in inches per hour

    Type your local design rate. If you do not know it, the dropdown next to the field fills in a rough regional figure so the calculator has something to work with — but look up your real number before you order material.

  4. Choose K-style or half-round

    K-style is the ogee profile on almost every American house. Half-round is the semicircular one, common on older and higher-end work. They use different formulas and different stock sizes, so the answer changes.

  5. Open “Gutter slope and downspouts” if you know them

    Set how many downspouts serve this run and what slope the gutter will be hung at. Both make the required width smaller. Leave them alone and you get two downspouts on a level gutter, which is the conservative default.

Size one gutter run at a time. A house with gutters on two elevations is two separate calculations, each fed by the roof area that actually drains into it. Adding the whole roof into a single run oversizes it badly.

Worked Examples: Gutter and Downspout Sizing

The verification case. SMACNA’s manual works one example in full: a Buffalo, New York roof where a single gutter section drains 1,200 sq ft at a rainfall intensity of 10.4 in/hr, half-round, hung level. Its printed answer is a 9.5-inch half-round gutter. Enter a 40 ft eave, 30 ft of depth, flat pitch, 10.4 in/hr, half-round and one downspout and the calculator returns 9.50 in of required width, rounding up to a 10-inch stock half-round, with a peak flow of 129.8 gpm. That is the same number the manual prints, from the same formula.

An ordinary house. A 40 ft eave with 15 ft of roof depth on a 5–6/12 pitch, 4 in/hr of rain, K-style, level, two downspouts. The 600 sq ft footprint becomes a 660 sq ft design area, the peak flow is 27.5 gpm, and the required width is 2.69 in — so a standard 5-inch K-style gutter runs at about 18% of its capacity. The gutter is not the constraint on a house this size, and that is worth knowing before anyone sells you 6-inch.

What the calculator flags on that same house is the downspout. Flow-wise a 2×3 rectangular downspout is fine, but its cross section is 6.0 sq in and SMACNA advises against anything under 7 sq in outside porches and canopies. The warning tells you to step up to 3×4 even though the flow does not demand it, because the limit there is blockage, not hydraulics.

Where slope changes the answer. Take a large plane: an 80 ft eave, 50 ft of depth, flat pitch, 4 in/hr, K-style, two downspouts. That is 4,000 sq ft and 166.4 gpm. Hung level, it needs 5.51 in and lands on a 6-inch gutter. Hung at a quarter inch per foot, the same roof needs 4.31 in and a 5-inch gutter carries it. The comparison strip in the result panel shows all four slopes at once:

Gutter slopeWidth requiredStock size
Level — 1/16 in per ft5.51 in6 in K-style
1/8 in per ft4.87 in5 in K-style
1/4 in per ft4.31 in5 in K-style
1/2 in per ft3.80 in5 in K-style

One input that no consumer gutter calculator asks for moves the answer a whole stock size, on a roof where 4,000 sq ft is otherwise unremarkable.

Rainfall Intensity: The Input That Decides Your Gutter Size

Roof area varies between houses by a factor of two or three. Design rainfall intensity across the United States varies by more, and it enters the formula with the same exponent that area does — so it carries the same weight. Texas alone spans roughly 2 to 4 in/hr on the 100-year, one-hour rate. A tool that assumes a national average is guessing at the single most important input.

The International Plumbing Code sizes storm drainage on the 100-year, one-hour rainfall rate for the location. Look yours up on NOAA’s Precipitation Frequency Data Server, which returns the figure for your exact coordinates rather than for your state. Enter that number in inches per hour. The regional dropdown in the calculator exists so the tool has a sane starting value, not as a substitute for the lookup.

Two standards use two different storm durations. SMACNA’s own rainfall table is built on a five-minute intensity, while the plumbing code works from a one-hour rate. A five-minute rate is always the larger number. This calculator treats whatever you type as a one-hour rate, matching the code — so do not paste a five-minute figure into it and expect the code answer.

Roof Pitch Factor vs. Sloped Surface Area

Rain falls vertically. A steep roof and a flat roof standing on the same footprint intercept the same falling water, because the catchment is the horizontal projection — the shadow the roof casts at noon. The sloped surface of a 12/12 roof is 41% larger than its footprint, and that 41% collects nothing extra.

So why does pitch appear in the calculation at all? Because wind blows rain sideways onto the roof face, and a steeper face presents more of itself to a driving rain. SMACNA’s Table 1-1 handles that with a multiplier on the plan area, and it tops out well short of the geometric ratio:

Roof pitchSMACNA factorGeometric 1/cos θ
Flat to 3/121.001.00 – 1.03
4/121.051.05
5/12 to 6/121.101.08 – 1.12
8/121.201.20
12/121.301.41

The two agree in the middle and separate at the top. Gutter calculators that apply 1/cos θ and describe it as “increased surface area” oversize a 12/12 roof by about 9% for a reason that is not physically there. SMACNA’s other worked example runs the factor the correct way: a plan area of 8,500 sq ft on a 5–6/12 roof becomes a design area of 9,350 sq ft, which is exactly what this calculator reports for that input.

If your roof pitch is written as a percentage grade or in degrees rather than in twelfths, convert it first with the Slope Percentage Calculator and then pick the matching band here. A 12/12 roof is a 100% grade and 45°, which catches people out — 100% is not vertical.

Gutter Slope and IPC Table 1106.6 Capacity

The NIST formulas describe a level gutter. Hang the same gutter on a fall and it carries more, and the plumbing code quantifies exactly how much: IPC Chapter 11, Storm Drainage tabulates every gutter size at four slopes — 1/16, 1/8, 1/4 and 1/2 inch per foot.

Read across those rows and the pattern is clean. A 3×5 rectangular gutter goes from 157 gpm at 1/4 in per ft to 225 gpm at 1/2 in per ft, a ratio of 1.433. An 8-inch semicircular goes from 172 gpm to 247 gpm over the same doubling, a ratio of 1.436. Both sit on √2. Capacity scales with the square root of slope, and that relationship is read out of the code table rather than assumed.

The calculator uses it in reverse: a gutter at slope s carries √(s ÷ 0.0625) times its level capacity, so sizing for a roof at that slope means sizing a level gutter for the area divided by that factor. Because width goes as a fractional power of area, the saving is smaller than the capacity gain: each doubling of slope takes about 13% off a half-round width and about 12% off a K-style width. Going all the way from level to 1/4 in per foot takes about 22% off a K-style gutter, which is frequently the difference between one stock size and the next.

SMACNA treats anything at or below 1/16 inch per foot as level, and so does this tool. If you leave the slope on the default, the result panel says so and tells you what pitching it would buy — the answer is conservative by construction, never optimistic.

Downspout Sizing, Spacing and the 50-Foot Rule

The downspout recommendation comes from IPC Table 1106.2, which lists how many square feet of roof a circular conductor drains at 1 in/hr. The calculator interpolates between the tabulated diameters, converts rectangular downspouts to their equivalent circular area, divides by your rainfall rate, and picks the first product that covers the area each downspout is carrying.

Three limits then override the arithmetic, and the result panel raises whichever one bites first:

  1. No stock gutter is wide enough

    Above 8 in for K-style and 10 in for half-round you are into custom-formed work. The tool says so rather than quietly naming a size that nobody sells. Add downspouts or split the run instead.

  2. More than 50 feet between downspouts

    SMACNA calls 50 ft the practical maximum length of gutter one downspout should serve. That limit is thermal expansion, not flow — a longer run needs an expansion joint whatever the hydraulics say.

  3. A downspout under 7 square inches

    The common 2×3 rectangular is 6.0 sq in. SMACNA advises against anything under 7 sq in except on porches and canopies, because a small section blocks. A 3×4 is 12 sq in and a 3-inch round is 7.07 sq in.

There is one more rule the calculator states rather than computes: a single downspout on a full elevation leaves no redundancy. If it blocks, the gutter overtops, and the water goes down the wall it was installed to protect. Two is the normal minimum on any run of consequence, which is why the tool defaults to two.

All of this stops at the bottom of the downspout. Below that the same peak flow arrives in a buried pipe, and buried pipe is a tighter constraint than most people expect — a 4-inch corrugated line takes roughly half of what a smooth-wall pipe of the same size and fall would. The French Drain Calculator picks the problem up from there: the stone, the fall, the depth at the outlet, and whether the pipe you bought can carry what the gutter hands it. It works in the same gallons per minute this page reports, so the peak flow above carries straight across.

Common Gutter Sizing Mistakes

  1. Measuring up the slope instead of across the ground

    The single most common error, and it inflates a 12/12 roof by 41%. Measure the footprint, then let the pitch factor add the wind allowance.

  2. Feeding the whole roof into one gutter

    Each run drains only the plane above it. A gable house is at least two calculations, and a hip roof is four.

  3. Using a state or national average rainfall rate

    Intensity varies more within a state than roof area varies between houses. Use the coordinates, not the state.

  4. Sizing the gutter and forgetting the outlet

    A correctly sized gutter with an undersized or blocked downspout still overflows. The gutter is a channel; the downspout is the throat.

  5. Assuming 6-inch is always the upgrade

    On a typical house the 5-inch gutter runs at under a fifth of capacity. Money spent on a larger gutter is usually better spent on an extra downspout.

Stated limitation. NIST derived these formulas for rectangular and half-round sections. K-style is an irregular ogee profile, and SMACNA’s own instruction is to approximate it with an equivalent rectangular gutter. That is what this calculator does, and it is why the K-style result is an engineering approximation rather than a measured capacity. Local rules always govern; in 2026 the design rainfall rate for your address is set by your building department, not by a website.

Gutter Size Calculator: FAQ

There is no single answer, because what matters is the area each gutter run drains and your rainfall rate, not the whole roof. A 2,000 sq ft plane split between two downspouts at 4 in/hr needs well under 5 in of K-style width, so a standard 5-inch gutter covers it comfortably.

A 5-inch K-style handles a typical 600 sq ft roof plane at about 18% of capacity, so the upgrade rarely earns its cost on a house. Six inches starts to matter on large planes, high rainfall rates or where downspouts are far apart — run your own numbers rather than following a rule of thumb.

Slightly, and much less than most calculators claim. Rain falls vertically, so catchment is the footprint; SMACNA adds up to 30% at 12/12 purely as a wind-driven-rain allowance. Tools that apply the geometric 1/cos θ reach 1.41 and oversize a steep roof by roughly 9%.

Capacity rises with the square root of slope, so going from 1/16 to 1/4 in per foot doubles it. Two independent rows of IPC Table 1106.6 confirm the ratio: 157 to 225 gpm and 172 to 247 gpm across a doubling of slope, both close to √2.

Two, on almost any full elevation. Forty feet sits inside SMACNA’s 50-foot practical maximum for a single downspout, so one would pass on length, but a lone downspout leaves no redundancy — if it blocks, the gutter overtops.

Usually on flow, often not on blockage. A 2×3 is 6.0 sq in of cross section and SMACNA advises against anything under 7 sq in outside porches and canopies. A 3-inch round is 7.07 sq in and a 3×4 is 12 sq in.

Because the rectangular formula carries an M−4/7 term — a deeper section of the same width carries more, so a deeper gutter needs less width. A standard 5-inch K-style is about 0.75 deep for its width. Half-round ignores the field entirely; its formula has no depth ratio.

Not directly. NIST derived them for rectangular and half-round sections, and SMACNA’s instruction for an irregular profile like K-style is to approximate it as an equivalent rectangular gutter. This calculator does that and labels it, rather than presenting an approximation as a measured capacity.
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