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Soil Permeability (k) — Reference

Saturated hydraulic conductivity by soil type, the unit conversions that trip everyone up, and the test method that is actually valid at each magnitude. Permeability spans twelve orders of magnitude across ordinary soils — more than any other geotechnical parameter — so the useful question is almost never “what is k” but “what decade is k in, and how confident am I.”

Darcy's Law

v = k · i      Q = k · i · A      i = Δh / L
vseepage = v / n    (actual pore velocity; n = porosity)

v is the discharge velocity through the gross cross-section — it is not the speed of a water particle. Darcy's law holds for laminar flow, which covers essentially all soils finer than coarse gravel (Re < 1 based on D10). In clean cobbles and rockfill it breaks down and a nonlinear Forchheimer form is needed.

Unit Conversions

From→ cm/s→ ft/day→ m/day→ in/hr→ gpd/ft²
1 cm/s12,8358641,41721,200
1 ft/day3.53×10−410.3050.5007.48
1 m/day1.16×10−33.2811.6424.5
1 in/hr7.06×10−42.000.610115.0
1 µm/s1×10−40.2840.08640.1422.12
1 gpd/ft²4.72×10−50.1340.04080.06691
1 darcy (water, 20°C)≈9.6×10−42.70.831.420

Handy anchor: 1 cm/s ≈ 2,835 ft/day, and 1 in/hr ≈ 2 ft/day. NRCS soil surveys report µm/s; geotech reports report cm/s; groundwater models want ft/day; stormwater infiltration rules are written in in/hr.

Order of Magnitude & Drainage Class

k (cm/s)DrainageTypical soilsWhat it means in practice
102–100Very goodClean gravel, rockfill, open-graded stoneFree-draining; drain rock, chimney and blanket drains
100–10−3GoodClean sands, clean sand-gravel mixturesDrains under gravity; usable as a filter or infiltration receiver
10−3–10−5PoorVery fine sands, silts, silty/clayey sands, glacial tillSlow drainage; frost-susceptible; marginal for infiltration BMPs
10−5–10−7Very poorSilt, stratified clay, weathered clay fillEffectively a barrier over construction time scales
< 10−7Practically imperviousHomogeneous clays below the weathered zone, CCLs, GCLsLiner and core material; 1×10−7 cm/s is the common CCL spec

Typical k by USCS Group (compacted fill)

USCSk (cm/s)k (ft/day)Role in an embankment / earthwork
GW10−2–10030–2,800Pervious shell, drainage zone
GP10−1–101300–28,000Drain rock; needs a filter against migration
GM10−6–10−30.003–3Semi-pervious; usable core if fines are plastic
GC10−8–10−63×10−5–0.003Good core and blanket material
SW10−3–10−13–300Shell; good filter sand
SP10−3–10−13–300Shell; uniform — check filter compatibility both ways
SM10−6–10−40.003–0.3Semi-pervious; the classic internal-erosion problem soil
SC10−8–10−63×10−5–0.003Core material
ML10−6–10−40.003–0.3Erodible and dispersive-prone; avoid unfiltered
CL10−9–10−73×10−6–3×10−4Standard impervious core
MH10−8–10−63×10−5–0.003Poor fill; high compressibility
CH10−10–10−83×10−7–3×10−5Very low k, but shrink/swell cracking can dominate the field value

Ranges are for soil compacted near standard Proctor optimum. Compacting wet of optimum can drop k by one to two orders of magnitude versus the same soil compacted dry of optimum — the placement water content is often a bigger lever on k than the material selection.

Estimating k from Gradation

Hazen: k (cm/s) = C · D10²   (D10 in mm, C ≈ 0.4–1.2, use 1.0)
Kozeny–Carman: k ∝ e³ / (1 + e)   (void-ratio dependence within one soil)

Hazen is valid only for clean, loose to medium-dense sand with Cu < 5 and D10 between about 0.1 and 3.0 mm. Outside that window it is not conservative in either direction. Treat it as a sanity check on a measured value, never as a substitute for one.

Test Methods & Their Valid Range

MethodUsable k (cm/s)Notes
Constant head, rigid wall — ASTM D2434> 10−3Coarse soils; watch sidewall leakage and turbulence at high gradients
Falling head, rigid wall10−3–10−6Fine sands and silts
Flexible wall (triaxial) — ASTM D5084≤ 10−6The standard for liners and cores; back-pressure saturate first
Oedometer, from consolidation — ASTM D243510−7–10−10Indirect: k = cv · mv · γw
Pumping test (field, saturated)> 10−5Best mass value; averages fabric and stratification over a large volume
Slug / bail test (field)10−2–10−7Samples only the material near the well screen
Double-ring infiltrometer — ASTM D3385> 10−5Vadose-zone infiltration rate, not saturated k; the usual BMP test
Borehole / Guelph permeameter10−3–10−6Field-saturated k above the water table

Field mass permeability commonly comes out 10 to 1,000× higher than a lab value on an intact tube sample, because the lab specimen misses the sand seams, root holes, desiccation cracks and lift interfaces that carry most of the flow. Use lab values for the core spec and field values for the seepage estimate.

Anisotropy & Temperature

Conditionkh / kv
Homogeneous, isotropic (an assumption, rarely a fact)1
Compacted embankment fill placed in lifts4–9
Natural stratified alluvium2–10
Interbedded sand and clay, varved clay10–100+
k20 = kT · (μT / μ20)

Permeability is reported at 20°C. Because k scales inversely with viscosity, cold water moves roughly 40% slower at 5°C than at 20°C — a real effect for winter infiltration performance and for lab tests run in an unheated shed. Viscosity values are on the water properties card.

NRCS Hydrologic Soil Groups (Ksat of the least transmissive layer)

HSGKsat (in/hr)Ksat (µm/s)Typical texture
A> 5.67> 40Sand, loamy sand, sandy loam — deep, well drained
B1.42–5.6710–40Silt loam, loam
C0.14–1.421.0–10Sandy clay loam
D< 0.14< 1.0Clay loam, silty clay, clay; also any soil over shallow bedrock or a high water table

The conductivity band applies when depth to a water-impermeable layer exceeds about 40 in. and depth to the seasonal high water table exceeds about 24 in. Shallower conditions force a dual group — A/D, B/D, C/D — which reverts to D unless the site is actually drained. These groups feed straight into the curve number card.

Two places k gets used badly. (1) Infiltration BMPs. A design rate is a field-measured rate divided by a factor of safety — commonly 2, and more where a single test represents a large footprint. Below about 0.5 in/hr, an infiltration practice is usually the wrong practice, not a practice with a longer drawdown. (2) Seepage and piping. Total seepage quantity scales with k, but internal erosion risk does not — it is governed by the exit gradient and by filter compatibility. The critical gradient for heave is ic = (Gs − 1)/(1 + e) ≈ 1.0, and design exit gradients for embankment dams are held well below that (FS of 3 or more, i.e. iexit ≤ ~0.3).

Sources: Terzaghi, Peck & Mesri, Soil Mechanics in Engineering Practice; Casagrande & Fadum permeability chart; NAVFAC DM 7.01, Soil Mechanics; USBR Design of Small Dams; ASTM D2434, D5084, D3385; NRCS National Engineering Handbook Part 630, Chapter 7 (hydrologic soil groups). Ranges are representative for preliminary work — site-specific testing governs final design.

Seepage through a dam? Open the embankment seepage calculator → · Piping check? Exit gradient · Filter criteria.

Related cheat sheets and tools

Get the group symbol first from the USCS classification card and the grain-size distribution tool — D10 from that curve is the input to Hazen's formula. Viscosity for the temperature correction is on the water properties card; hydrologic soil group feeds the curve number card. Then run embankment seepage, exit gradient or filter criteria. For infiltration BMPs inside a full watershed model, see HydroComplete.

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