We will begin by developing the constitutive equations that describe the relationship between stress, , and strain, . This is the subset of continuum mechanics that focuses on the purely elastic regime, and in particular, will focus on linear elasticity where Hooke's Law holds true.
The concepts of stress and strain originate by considering the forces applied to a body and its displacement. Beginning with forces, there are two types of forces that can be applied. First, there is surface force which can either be point forces or distributed forces that are applied over a surface. Second, there is body force which is applied to every element of a body, not just a surface (i.e., gravity, electric fields, etc.).
The body of interest has numerous forces acting on it and these are transmitted through the material. At any point inside the body, you can imagine slicing it to observe the forces present on the imagined cut surface, as pictured in Figure 1. These forces are the interactions between the material on either side of the imagined cut. We define the stress at a point in the body as the forces acting on the surface of such an imagined cut.
As you recall, the stress is defined as the force over the area which it is applied. The force, , is a vector quantity, allowing the components to be projected into the normal and tangential directions. As shown in Figure 1, the normal component is defined according to the angle , yielding a normal stress . The tangential component of the force, , can be further projected into the two orthogonal directions identified in Figure 1 as and , yielding two orthogonal shear stresses. This is performed according to the angle , giving and .
Note here that we've defined the coordinate system such that the direction is the direction normal to the cut surface. It is convenient to use instead of because it allows us to pass the indexes to the stress and strain quantities. In this example, the normal stress is given by to specify that the normal stress is applied to the surface with a normal in the direction with a force projected in the direction. The tangential components and specify the surface having a normal with forces projected in the and directions, respectively. Cutting an infinitesimal cuboid, the stresses are defined in all three directions as shown in Figure 2. For comparison, the notation used in some textbooks will write normal stresses , whereas here we will use . These textbooks also use to denote shear stress, such as whereas here we will use . This allows the stress state to be succinctly written in matrix (tensor) form
The imaginary slice taken through point in the body in Figure 1 could have been any plane, but the force would remain the same. This would result in a new definition of the surface normal, and potentially a new expression for the stress. The physical presence of the stress does not change, but the description does, i.e., the coordinate system is modified. The remainder of this section is devoted to expressing the coordinate transformation and analysis of the stresses.
We will begin by simplifying the picture we are working with. The plane stress condition is observed for a thin 2D object, e.g., a piece of paper, which has no stress out of the plane. This allows us to write . Further, there is no shear in the direction such that . For an object in the plane stress condition, our goal is to determine the state of stress at some point for any orientation of the axis.
For this object, the direction with zero force is coming out of the page and the non-zero stress state in the and directions have components , , and .
Imagine a new area defined on a plane rotated about such that the normal, defined , is related to by as shown in Figure 3.
The components of force on the area is determined by the application of the original stresses to the projection of the new area:
[1 & 2]
where the elements and are the projection of the A in the original orientation, shown in Figure 3 (a), and and are the total stresses in the and directions, where .
Then, dividing by A yields:
[3 & 4]
Projecting the total stresses shown in Figure 3 (b) into the normal direction in the coordinate yields
[5]
In a similar fashion, we project tangential to the plane and yield
[6]
Resulting in
[7]
and
[8]
It is known that and therefore only needs determining. To do so, we define a new area that is rotated by /2 relative to our original plane as shown in Figure 4. In this new orientation,
[9]
and
[10]
Projecting the total stress in the normal direction yields
[11]
Substituting Equations9 and 10 for and into Equation11 for yields
[12]
The well-known trigonometric identities
are applied to Equations7, 8, and 12 for , , and respectively, resulting in
There are numerous immediate results that come from this derivation, from which we can gain greater insights. One result that comes from the equations for is , for all . This means that the trace of the stress tensor is invariant.
A second result is that the maximum normal stresses and shear stresses vary as a sine wave with period . Within this oscillation, the normal and shear stresses are shifted by a phase factor that results in (1) the maximum and minimum normal stresses occur when the shear is zero, (2) the maximum and minimum shear stresses are shifted from each other by /4, (3) the maximum and minimum normal stresses are shifted from each other by /2, and (4) the maximum and minimum shear stresses are shifted by /4 from the minimum and maximum normal stresses.
Any stress state can be rotated to yield . This diagonalizes the stress tensor and gives normal stresses that are extreme. In this orientation, the planes are called the principal planes and the normal stresses are called the principal stresses. The directions that give these principal stresses are called the principal axis. As a matter of convention, we define the first principal stress to be the largest and the sequentially smaller principal stresses to be and , although here we have limited ourselves to 2D plane stress and only enumerate and .
We know in the principal orientation, which means we can use Equation8 for to determine the angle () needed to rotate the tensor into which is principal,
Resulting in
[16]
It is observed graphically by plotting in Figure 5 that adjacent roots are each separated by /2. Furthermore, we can now utilize the Pythagorean Theorem to solve for our principal stresses.
For a simple right triangle with hypotenuse and sides and we know
which can be combined with the Pythagorean Theorem, and Equation16,
These can be further combined which yields
[17]
and
[18]
These equations tell us for a given stress state, , what rotation is needed to align with the principal axis.
Substituting these equations into Equation13 for , determines the principal stresses
Resulting in
[19]
Use Equation19 in Equation16 to find for .
To find the maximum shear stress, we take the derivative with respect to theta of our simplified Equation15 for and set it equal to .
Resulting in an expression for :
[20]
Notice that Equation20 and Equation 16 are negative reciprocals which means that and are shifted by /2. This is indicative of
which implies that and are separated by /4. Through substitution of Equation20 into Equation15, we arrive at an expression for :
A convenient means of visualizing angular relationships is through Mohr's circle, which we derive here. Rearrange Equation13 for and Equation15 for ,
[22]
[23]
Square both expressions,
Next, add them together to yield
The resulting expression is the equation for a circle:
[24]
From this expression, Mohr's circle is drawn in Figure 6. For a given stress state, , the center of the circle is and the radius
.
A bisecting line intercepts the circle such that the projection onto the x-axis identifies and . The projection onto the y-axis identifies . Rotating the bisection is equivalent to transforming the stress state by , i.e., a rotation by on the diagram is equivalent to rotating by in our equations. This allows the new stress state to be read from the diagram. When the bisector is horizontal, the principal orientation is identified. Rotating the bisection on the diagram by is equivalent to rotating the system by /2, which can be imagined as rotating the cuboid faces until the system is back in registry, i.e., it returns to the original stress state. Further, rotating the bisection on the diagram by /2 is equivalent to rotating by /4, which is known to be the orientation with maximum shear stress.
Thus, from a given initial stress state, , all stress states that can be achieved through rotation are visualized on the circle.
Generalizing from 2D to 3D, we move from a biaxial plane stress system to a triaxial system. Determining the principal axis and angular relations is similar to the case of 2D and will be shown below. Note as a matter of convention, when two of the three principal stresses are equal, we call the system "cylindrical", and if all three principal stresses are equal, we call the system "hydrostatic" or "spherical".
As in the case of the biaxial system, we begin by defining a plane with area that passes through our , , and coordinate system, as shown in Figure 7. The plane intercepts the axis at (, , and ) as demonstrated in the figure. To simplify the problem and allow us to make progress toward our derivation, we will say that the plane is one of the principal planes so that the shear stress components are zero. Thus, we only need to consider our principal stress that is normal to the plane.
Define , , and to be the direction cosine between , , and and the normal to the stress. Using the unit vectors , , and parallel to , , and , we have
The projection of stress along , , and direction give the total stresses , , and :
In the biaxial derivation, the area is projected into three directions, producing the triangles in Figure 7 which have areas , and . We can now equate the forces in the two reference frames:
So,
[25]
By a similar process, the and components yield
[26]
[27]
These equations rearrange to
[28]
[29]
[30]
This set of equations can be solved for for a particular value of . This set of secular equations can be solved for eigenvalues and eigenvectors . The non-trivial solutions, when and are non-zero, involves setting the determinant
to zero and solving for the eigenvalues and subsequent eigenvectors.
Upon rearranging, we get
[31]
The three roots of this cubic equation give the principal stresses, , , and . The principle stresses, once determined, are substituted back into the secular Equations28-30 to determine the eigenvectors corresponding to , also recognizing that .
Solving the cubic equation is not the focus of this text, but Equation31 is important because the coefficients in front of the principal stress must be invariant, i.e., the same principal coordinates must exist no matter the orientation of the coordinate system. From the cubic equation, the three invariants are
[32]
[33]
[34]
This is useful because these invariant relations determine the relationship between stresses in different orientations, i.e. given , you can now directly determine , , and .
Now, we will generalize our solution to include not only the principal stresses. Just as we did earlier, we can write out the total forces:
[35]
[36]
[37]
Which gives the total stress:
[38]
From this, the projection onto the normal component is:
[39]
Substituting Equations34-36 into Equation38 gives us:
Which simplifies to,
[40]
The magnitude of the shear component can be determined utilizing , but we cannot easily decompose our shear stress into its constituent elements. Fortunately, we are primarily interested in the maximum shear stress. We know that the plane containing the maximum shear stress is located midway between the planes of principal normal stresses. Starting by setting our known stress state as the principal axis such that , , and , our direction cosine is between the principal axis and the normal of the plane with the maximum shear stress. This means that Equation39 for projection is rewritten as:
[41]
Squaring this equation gives us:
[42]
We can then use the principal components and substitute Equations34-36 into Equation37 to get:
[43]
After much algebra and putting Equations41 & 42 into Equation40, we get:
[44]
With this solution, we now have three possible planes. One plane bisects and , another plane bisects and , and the final plane bisects and . (Bisecting means , and ). Here are the values of , and for these three planes:
By convention, , and therefore our maximum shear stress is:
Note that we know there are two planes of maximum shear stress, rotated /2 from each other. Thus, the direction cosine above are actually .
Because these axial rotations are decoupled, we can represent 3D stress states using Mohr's Circles as seen in Figure 8.