In geotechnical engineering, bearing capacity is the capacity of soil to support the loads applied to the ground. The bearing capacity of soil is the maximum average contact pressure between the foundation and the soil which should not produce shear failure in the soil. Ultimate bearing capacity is the theoretical maximum pressure which can be supported without failure; allowable bearing capacity is the ultimate bearing capacity divided by a factor of safety. Sometimes, on soft soil sites, large settlements may occur under loaded foundations without actual shear failure occurring; in such cases, the allowable bearing capacity is based on the maximum allowable settlement.
There are three modes of failure that limit bearing capacity: general shear failure, local shear failure, and punching shear failure.
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Spread footings and mat foundations are generally classified as shallow foundations. These foundations distribute the loads from the superstructures to the soil on which they are resting. Failure of a shallow foundation may occur in two ways: (a) by shear failure of the soil supporting the foundation, and (b) by excessive settlement of the soil supporting the foundation. The first type of failure is generally called bearing capacity failure.[1]
The general shear failure case is the one normally analyzed. Prevention against other failure modes is accounted for implicitly in settlement calculations.[2] There are many different methods for computing when this failure will occur.
Karl von Terzaghi was the first to present a comprehensive theory for the evaluation of the ultimate bearing capacity of rough shallow foundations. This theory states that a foundation is shallow if its depth is less than or equal to its width.[3] Later investigations, however, have suggested that foundations with a depth, measured from the ground surface, equal to 3 to 4 times their width may be defined as shallow foundations(Das, 2007).
Terzaghi developed a method for determining bearing capacity for the general shear failure case in 1943. The equations are given below.
For square foundations:

For continuous foundations:

For circular foundations:

where

for φ' = 0
for φ' > 0

For foundations that exhibit the local shear failure mode in soils, Terzaghi suggested the following modifications to the previous equations. The equations are given below.
For square foundations:

For continuous foundations:

For circular foundations:

, the modified bearing capacity factors, can be calculated by using the bearing capacity factors equations(for
, respectively) by replacing the effective internal angle of friction
by a value equal to
[3]
Calculating the gross allowable-load bearing capacity of shallow foundations requires the application of a factor of safety(FS) to the gross ultimate bearing capacity, or:
In 1951, Meyerhof published a bearing capacity theory which could be applied to rough shallow and deep foundations.[4] The equation is given below:

Where:
= bearing capacity factors, B = width of the foundation
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