Geotechnical Engineering and Foundations — ESE Civil
Weightage: Soil mechanics and foundation engineering form a large, reliably numerical block in Civil Prelims Paper II and in the Mains. Most questions apply a single formula to given data, so the skill is knowing which formula fits which situation.
1. Phase relations
Soil is solids, water and air. Define:
- Void ratio and porosity , linked by .
- Water content and degree of saturation .
- Specific gravity of solids .
The master relation is .
Unit weights follow:
The submerged unit weight is .
Worked example. A saturated clay has and . Then , and .
2. Index properties and classification
Fine soils are described by Atterberg limits: the liquid limit LL, plastic limit PL and shrinkage limit. The plasticity index is , and the liquidity index is . Clays with higher PI are more compressible. The activity of a clay is PI divided by the percentage of clay-size particles.
For coarse soils, grading uses the uniformity coefficient and the curvature coefficient . A well-graded gravel has and between 1 and 3, and a well-graded sand has with the same range. The Indian classification groups soils on grain size and plasticity (the plasticity chart separating clays from silts).
3. Compaction
Compaction removes air to raise dry density. In the Proctor test the dry density first rises with water content to a maximum at the optimum moisture content (OMC), and then falls as water displaces solids. The curve always lies below the zero-air-voids line. Heavier compaction raises maximum dry density and lowers OMC. Field control uses the relative compaction against the laboratory maximum.
4. Permeability and seepage
Darcy's law states , so . For a layered deposit, flow parallel to layers uses the weighted mean , while flow across layers uses . So .
In a flow net, per unit length. Upward seepage gives a critical hydraulic gradient , about 1 for typical soils, at which effective stress becomes zero and quicksand occurs.
5. Effective stress and consolidation
Terzaghi's principle: . It is the effective stress, not the total, that controls strength and settlement.
When load is applied to saturated clay, water drains slowly and the excess pore pressure dissipates. This is consolidation. The final settlement of a normally consolidated clay is:
Worked example. A 4 m clay layer has , , kPa and a load increase of 100 kPa. Then m.
The rate follows the time factor , with the longest drainage path. Doubling the drainage path increases time four times. About 90 percent consolidation corresponds to . An overconsolidated clay has seen a higher past stress, with .
6. Shear strength
The Mohr-Coulomb criterion gives . Sands have . Tests are:
| Test | Use |
|---|---|
| Direct shear | Quick, simple |
| Unconfined compression | Saturated clay: |
| Triaxial UU, CU, CD | Choose by drainage in the field |
| Vane shear | In-situ soft clay |
Undrained loading of clay (short-term, such as a rapid embankment) is checked with total stress and . Long-term stability uses effective stress parameters.
7. Earth pressure
For a smooth vertical wall and horizontal backfill, Rankine's coefficients are:
The at-rest coefficient is . For a wall of height with dry cohesionless backfill, the active thrust is acting at from the base.
Worked example. For , . A 6 m wall with has .
A cohesive soil has tension cracks to a depth . Retaining walls must be checked against overturning, sliding, bearing and, for a flexible wall, deep-seated failure.
8. Bearing capacity and shallow foundations
Terzaghi's equation for a strip footing is:
with factors rising steeply with . For a square footing the coefficients become and , and for a circular footing and . The net safe bearing capacity is , with usually 3.
A rise of the water table to the base reduces the third term, roughly halving it. Footings are also checked for settlement, which often governs on clay. Isolated, combined, strap and raft footings are chosen as column loads and spacings increase.
9. Pile foundations
Piles carry load through weak soil to stronger strata, or by friction. The ultimate capacity is , end bearing plus skin friction. In clay, the alpha method gives . A pile group may fail as a block, and its efficiency can be below 1 in clay. Negative skin friction adds drag load when the surrounding soil settles faster than the pile.
10. Slope stability and exploration
For an infinite slope in dry cohesionless soil, , independent of height. Finite slopes are analysed by the method of slices (Fellenius, Bishop) or Taylor's stability number.
Exploration uses boreholes, the standard penetration test (the SPT N-value counts blows for the last 300 mm of a 450 mm drive), cone penetration and geophysical methods.
Common traps
- Using instead of below the water table in effective stress.
- Reading time of consolidation as proportional to . It goes with .
- Forgetting is the reciprocal of for a smooth wall.
- Confusing net and gross bearing capacity.
- Using for an unsaturated soil without the actual .
Memory aids
- "S e equals w G": the master phase relation.
- "Double the path, four times the time": consolidation.
- "One third, base up": active thrust and its point of action.
Summary
Phase relations and index properties describe the soil, and permeability, effective stress and consolidation explain water flow and settlement. Shear strength drives earth pressure, bearing capacity, piles and slope stability.
Most questions use one standard formula on given data, so the key is to select the right condition, drained or undrained, dry or saturated.
Exam protocol
- Draw the soil profile and mark the water table first.
- Decide total or effective stress before computing.
- Check the unit system, and use unless told otherwise.
- Keep the four earth-pressure formulas together on a card.
