Deep and Shallow Foundations, Soil Bearing Capacities

Introduction

The foundation is one of the most important parts of any building or civil engineering structure. It forms the lowest portion of the structure and transfers loads from columns, walls, beams, and slabs safely to the ground. A properly designed foundation ensures stability, prevents excessive settlement, and protects the structure from failure. The choice of foundation depends largely on the magnitude of structural loads, soil conditions, groundwater level, site characteristics, and the safe bearing capacity of the soil.

Foundations are broadly classified into shallow foundations and deep foundations. Shallow foundations are suitable when competent soil is available near the ground surface, whereas deep foundations are used when stronger soil or rock lies at a considerable depth. Understanding soil bearing capacity is therefore essential for selecting and designing an appropriate foundation system.

Purpose of Foundations

The primary function of a foundation is to distribute the structural load over a sufficient area of soil so that the pressure imposed on the ground remains within safe limits. A foundation must also prevent excessive or uneven settlement, resist horizontal and uplift forces, provide stability against sliding and overturning, and ensure that the structure remains serviceable throughout its life.

A well-designed foundation should satisfy both strength and serviceability requirements. Strength relates to the ability of soil and foundation materials to resist failure, while serviceability mainly concerns settlement, tilting, cracking, and deformation.

Shallow Foundations

A shallow foundation transfers structural loads to soil located relatively close to the ground surface. In general, a foundation is considered shallow when its depth is small compared with its width.

Shallow foundations are commonly used for low-rise and medium-rise buildings where soil near the surface has adequate bearing capacity.

Types of Shallow Foundations

1. Isolated Footing

An isolated footing supports a single column. It is one of the most common and economical foundation types used in framed buildings.

The footing may be square, rectangular, or circular depending on column shape, loading, and soil conditions. Its main purpose is to spread the concentrated column load over a larger soil area.

2. Combined Footing

A combined footing supports two or more columns. It is generally adopted when columns are closely spaced or when an exterior column is located near the property boundary.

Combined footings may be rectangular or trapezoidal. They are designed so that the resultant load passes approximately through the centroid of the footing area.

3. Strip or Continuous Footing

Strip foundations consist of continuous strips of concrete placed under load-bearing walls or closely spaced columns. They distribute wall loads along a continuous length.

They are widely used in residential buildings and masonry structures where loads are moderate and soil conditions are satisfactory.

4. Raft or Mat Foundation

A raft foundation is a large reinforced concrete slab supporting several columns and walls over most or all of the building area.

Raft foundations are useful where:

  • soil bearing capacity is low,
  • columns are closely spaced,
  • individual footings would cover a large portion of the site,
  • differential settlement must be minimized.

Raft foundations distribute loads over a wide area, thereby reducing soil pressure.

Deep Foundations

Deep foundations transfer loads to deeper soil layers or rock where sufficient bearing resistance is available. They are adopted when near-surface soil is weak, compressible, expansive, or unsuitable for carrying structural loads.

Deep foundations are commonly used for high-rise buildings, bridges, industrial structures, marine structures, and heavy infrastructure projects.

Types of Deep Foundations

1. Pile Foundations

Pile foundations consist of long, slender structural members driven, drilled, or cast into the ground.

Piles may be made of concrete, steel, timber, or composite materials.

According to load-transfer mechanism, piles may be classified as:

End-bearing piles: These transfer the structural load to a hard stratum or rock at their tip.

Friction piles: These transfer load through skin friction developed between the pile surface and surrounding soil.

Combined end-bearing and friction piles: These transfer loads through both mechanisms.

Piles may also be used to resist uplift, lateral forces, and soil movement.

2. Pier Foundations

Pier foundations consist of relatively large-diameter cylindrical columns constructed below ground level. They transfer heavy loads to stronger soil strata.

They are usually shorter and larger in diameter than conventional piles.

3. Caisson or Well Foundations

Caisson foundations are large hollow structures sunk into the ground or riverbed. They are commonly used for bridge piers, waterfront structures, and foundations constructed in deep water.

Well foundations are particularly common in bridge construction because they can resist significant vertical and lateral forces.

Soil Bearing Capacity

Soil bearing capacity refers to the ability of soil to support loads transmitted by a foundation without experiencing shear failure or excessive settlement.

It is usually expressed in units such as kN/m².

The bearing capacity of soil depends on several factors, including:

  • soil type,
  • soil density,
  • moisture content,
  • depth of foundation,
  • width and shape of footing,
  • groundwater level,
  • soil stratification,
  • loading conditions.

Ultimate Bearing Capacity

The ultimate bearing capacity is the maximum pressure that the soil can sustain before shear failure occurs.

If foundation pressure exceeds this value, the soil may fail suddenly or undergo excessive deformation.

For shallow foundations, bearing capacity is often estimated using classical bearing-capacity theories based on soil cohesion, friction angle, foundation dimensions, and unit weight.

Safe Bearing Capacity

The safe bearing capacity is obtained by applying a factor of safety to the ultimate bearing capacity.

A simplified expression is:

Safe Bearing Capacity = Ultimate Bearing Capacity / Factor of Safety

For example, if the ultimate bearing capacity is 600 kN/m² and the factor of safety is 3:

Safe Bearing Capacity = 600 / 3 = 200 kN/m²

The factor of safety accounts for uncertainties in soil properties, loading conditions, construction quality, and analytical assumptions.

Allowable Bearing Pressure

Allowable bearing pressure considers both soil shear strength and permissible settlement. Even if soil is strong enough against shear failure, excessive settlement may still damage the structure.

Therefore, allowable bearing pressure is generally taken as the smaller value determined from:

  • shear failure considerations, and
  • settlement considerations.

Factors Affecting Soil Bearing Capacity

Soil Type

Dense sand, gravel, and hard rock generally have high bearing capacities. Loose sand, soft clay, filled ground, and organic soil normally have lower bearing capacities.

Foundation Depth

Increasing foundation depth may improve bearing capacity because of higher confining pressure and stronger underlying strata.

Foundation Width

Foundation width influences the stress distribution in soil. Larger foundations distribute loads over a wider area but may also influence deeper soil layers.

Groundwater Level

A high groundwater table may reduce effective soil stress and bearing capacity, particularly in granular soils.

Soil Moisture

Changes in moisture content can significantly influence clay soils. Some clays may swell when wet and shrink when dry, causing foundation movement.

Eccentric Loading

Loads acting away from the center of a footing can cause uneven pressure distribution and increase the risk of settlement or rotation.

Foundation Settlement

Settlement occurs when soil compresses under building loads. A small amount of uniform settlement may be acceptable, but differential settlement is more serious because different parts of a structure move by different amounts.

Differential settlement may cause:

  • cracks in walls,
  • distortion of doors and windows,
  • uneven floors,
  • structural damage,
  • tilting of columns.

Proper geotechnical investigation and foundation design are therefore essential.

Soil Investigation

Before selecting a foundation, a geotechnical investigation is usually carried out. It may include:

  • borehole drilling,
  • soil sampling,
  • Standard Penetration Test,
  • Cone Penetration Test,
  • plate load test,
  • laboratory testing,
  • groundwater observation.

The investigation helps determine soil stratification, shear strength, compressibility, density, groundwater conditions, and suitable foundation depth.

Choosing Between Shallow and Deep Foundations

Shallow foundations are generally preferred when competent soil occurs close to the surface and expected settlement is within acceptable limits. They are usually simpler and more economical.

Deep foundations become necessary when surface soils are weak, structural loads are very high, settlement needs strict control, or hard-bearing layers are available only at greater depths.

The final selection should consider technical performance, safety, constructability, environmental conditions, equipment availability, and cost.

Conclusion

Deep and shallow foundations are fundamental components of structural engineering because they provide a stable interface between buildings and the ground. Shallow foundations, including isolated, combined, strip, and raft footings, are suitable where adequate bearing soil is available near the surface. Deep foundations, such as piles, piers, and caissons, transfer loads to stronger strata located at greater depths.

Soil bearing capacity is a key parameter in foundation design. It determines how much load the ground can safely support without shear failure or excessive settlement. Accurate soil investigation, proper assessment of bearing capacity, and careful consideration of settlement are essential for selecting the correct foundation system.

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Deep and Shallow Foundations, Soil Bearing Capacities

Foundations are among the most critical components of any building or civil engineering structure because they safely transfer the loads of the superstructure to the ground. The performance and stability of a building depend not only on the strength of columns, beams, walls, and slabs but also on the suitability of the foundation and the bearing capacity of the supporting soil. Foundations are generally classified into two broad categories: shallow foundations and deep foundations. The choice between them depends on structural loads, soil conditions, groundwater level, site constraints, settlement criteria, and economic considerations.

Introduction to Foundations

A foundation forms the lowest part of a structure and acts as an interface between the building and the soil. Its primary function is to distribute structural loads over a sufficiently large area so that the pressure exerted on the soil remains within safe limits. A properly designed foundation should prevent excessive settlement, differential settlement, sliding, overturning, and structural instability.

The major loads transferred to foundations include dead load, live load, wind load, earthquake forces, and sometimes machine or impact loads. The soil beneath the foundation must be capable of supporting these loads without experiencing shear failure or unacceptable deformation.

Depending on how deeply loads are transferred into the soil, foundations may be shallow or deep.

Shallow Foundations

Shallow foundations are generally used when strong and competent soil is available relatively close to the ground surface. In these foundations, the depth of the foundation is small compared with its width. They are common in residential, commercial, and low- to medium-rise buildings.

Shallow foundations are relatively economical because they require less excavation, simpler construction methods, and fewer specialized machines.

Isolated Footing

An isolated footing supports a single column. It is one of the most commonly used types of shallow foundations for framed structures.

The footing may be square, rectangular, circular, stepped, or sloped in shape. Its dimensions are determined according to the column load and the safe bearing capacity of the soil.

For example, if a column carries a load of 600 kN and the allowable soil pressure is 200 kN/m², the approximate required footing area can be estimated as:

Required area = Column load / Allowable bearing capacity

= 600 / 200
= 3 m²

Additional considerations such as footing self-weight, eccentricity, reinforcement, and settlement must also be incorporated in final design.

Combined Footing

A combined footing supports two or more columns on a common foundation slab. It is normally used when individual footings overlap or when a column is situated close to a property boundary.

Combined footings may be rectangular or trapezoidal. Their purpose is to distribute the loads from several columns uniformly over the underlying soil.

Strip or Wall Footing

A strip footing is a continuous foundation constructed beneath a load-bearing wall or a closely spaced row of columns. It spreads the wall load over a larger area and is widely used in masonry construction and low-rise buildings.

The width of the footing depends on wall load, soil bearing capacity, construction material, and structural requirements.

Raft or Mat Foundation

A raft foundation consists of a large reinforced concrete slab supporting several or all columns and walls of a building. It covers a substantial portion, or sometimes the entire area, of the building.

Raft foundations are particularly useful where soil has relatively low bearing capacity and isolated footings would occupy a large proportion of the site. They also help reduce differential settlement by distributing loads over a wide area.

Deep Foundations

Deep foundations are used when suitable load-bearing soil is located at considerable depth below the ground surface or when structural loads are too large for shallow foundations.

They transfer loads to deeper and stronger soil or rock through end bearing, skin friction, or a combination of both.

Deep foundations are commonly used for high-rise buildings, bridges, industrial structures, marine structures, transmission towers, and projects constructed on weak or compressible soils.

Pile Foundations

Pile foundations consist of long slender structural members driven, bored, or cast into the ground. They may be constructed from reinforced concrete, prestressed concrete, steel, timber, or composite materials.

Piles transfer loads through two principal mechanisms.

End-bearing piles transfer loads to a strong soil layer or rock located beneath weaker deposits. The base of the pile acts similarly to a column resting on a firm stratum.

Friction piles transfer loads through friction developed between the pile surface and the surrounding soil. These piles are useful where no strong bearing layer exists at a practical depth.

Pile foundations may also resist uplift and lateral forces, making them suitable for towers, offshore structures, and bridges.

Pier Foundations

Pier foundations consist of large-diameter cylindrical structural elements constructed by excavating or drilling into the ground and filling the excavation with reinforced concrete.

They are generally larger in diameter than piles and are suitable where firm soil or rock exists at moderate depths.

Caisson Foundations

Caissons are large hollow foundation units that are sunk into the ground or riverbed. They are particularly useful for bridge piers, docks, harbours, and waterfront structures.

Common types include open caissons, box caissons, and pneumatic caissons.

Soil Bearing Capacity

The term bearing capacity refers to the ability of soil to support structural loads without experiencing shear failure or excessive settlement.

It is one of the most important factors in foundation design.

When a foundation applies pressure to the soil, stresses are developed within the ground. If the applied pressure becomes excessive, the soil may fail through shear or undergo large settlements.

Several terms are commonly used in geotechnical engineering.

Ultimate Bearing Capacity

Ultimate bearing capacity is the maximum pressure that soil can support before shear failure occurs.

At this stage, the soil beneath the foundation becomes unstable and significant deformation may take place.

Safe Bearing Capacity

Safe bearing capacity is obtained by applying an appropriate factor of safety to the ultimate bearing capacity.

It may be expressed as:

Safe Bearing Capacity = Ultimate Bearing Capacity / Factor of Safety

A factor of safety is used because soil properties vary and exact ground behaviour cannot always be predicted.

Allowable Bearing Pressure

Allowable bearing pressure considers not only shear strength but also settlement criteria.

In practical foundation design, settlement often governs the allowable pressure, particularly in clayey or compressible soils.

Factors Affecting Soil Bearing Capacity

The bearing capacity of soil depends on several factors.

The type of soil is important because dense sand, gravel, stiff clay, and rock generally have higher bearing capacity than loose sand, soft clay, organic soil, or uncontrolled fill.

The density and consistency of soil also influence its performance. Dense granular soils generally support greater loads than loose soils, while stiff clays usually perform better than soft clays.

The foundation depth affects bearing capacity because deeper foundations are confined by greater overburden pressure.

The size and shape of footing also influence the stress distribution in the ground.

Groundwater is another significant factor. A high groundwater table can reduce the effective strength of soil, particularly in granular deposits.

The load characteristics are equally important. Vertical, eccentric, inclined, dynamic, or cyclic loads affect the behaviour of foundations differently.

Soil Investigation for Foundation Design

Foundation design should ideally be based on a proper geotechnical investigation. Soil testing helps determine soil profile, groundwater level, strength, compressibility, and bearing capacity.

Common field and laboratory investigations include boreholes, trial pits, Standard Penetration Tests, Cone Penetration Tests, plate load tests, grain-size analysis, moisture-content testing, shear-strength testing, and consolidation testing.

A geotechnical report typically provides recommendations regarding suitable foundation type, allowable bearing pressure, expected settlement, groundwater conditions, and construction precautions.

Shallow versus Deep Foundations

The selection of foundation type requires technical and economic judgment.

Shallow foundations are usually preferred where good soil is available close to the surface and structural loads are moderate. They are easier and cheaper to construct.

Deep foundations are preferred where surface soils are weak, compressible, expansive, or susceptible to erosion, and where strong strata are available at greater depths. They are also necessary for structures subjected to large vertical or lateral loads.

Settlement considerations may sometimes require a deep foundation even if the soil’s calculated bearing capacity appears sufficient.

Settlement and Foundation Performance

Settlement is the downward movement of a foundation caused by compression or deformation of the supporting soil.

Some settlement is normal, but excessive or uneven settlement can damage buildings.

Uniform settlement occurs when the whole structure settles by approximately the same amount.

Differential settlement occurs when different parts of the structure settle by different amounts. It is more harmful because it can cause cracks in walls, distortion of frames, tilting, and failure of finishes or services.

Proper soil investigation, suitable foundation selection, adequate drainage, and sound construction practices help control settlement.

Importance in Sustainable Construction

Efficient foundation design also contributes to sustainability. Oversized foundations consume unnecessary quantities of concrete, steel, energy, and financial resources. Conversely, poorly designed foundations may require expensive repairs or reconstruction.

Modern engineering therefore seeks to optimize foundations by accurately assessing soil properties and selecting the most suitable system.

Techniques such as ground improvement, soil stabilization, stone columns, geosynthetics, and reinforced earth can sometimes improve weak soil sufficiently to allow economical shallow foundations instead of costly piles.

Conclusion

Deep and shallow foundations play a fundamental role in ensuring the safety, stability, and durability of buildings and infrastructure. Shallow foundations such as isolated footings, combined footings, strip foundations, and raft foundations are suitable where adequate soil strength exists near the surface. Deep foundations such as piles, piers, and caissons are required when structural loads must be transferred to stronger strata located at greater depths.

Soil bearing capacity is the central geotechnical parameter governing foundation design. However, bearing capacity alone is not sufficient; settlement, groundwater, soil variability, structural loading, and construction conditions must also be considered. A reliable foundation design therefore combines structural engineering principles with detailed knowledge of soil behaviour. Proper site investigation and careful foundation selection can significantly improve structural performance, reduce construction risks, and ensure long-term safety and economy.


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