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Calculating the reaction forces and bending moment distributions in a simply supported beam.

This is the second in a series of articles diving into the various calculations used in civil and mechanical engineering, such as our article on calculating stress.  For this one, we’re going to look at reaction forces in a simply supported beam.

What is a beam?

Before we can understand what reaction forces are in a beam, we need to be clear on what a beam actually is.  A beam is a structure that is loaded sideways, or transversely.  The loads can be point loads or Uniformly Distributed Loads (UDL).  The image below shows the difference between them:

Diagrams showing point loads and Uniformly Distributed Loads

Beams can be simply supported or built in:

A diagram showing beams that are built in or simply supported
A diagram showing beams that are built in or simply supported

Transverse loading causes bending, which is a severe form of stressing a structure.  The bent beam is stretched on one side (in tension) and compressed on the other:

A beam under stress
A beam under stress

So now we know what beams are, we can look at how we can analyse the stress they’re subject to when loaded.

Calculating Reaction Forces

Imagine a 3m beam is simply supported at each end, then loaded in the centre with a point load of 2kN.  We’re going to calculate the reaction forces at each end of the beam.

As the beam is in equilibrium (forces are balanced and there is no acceleration, then:

F=ma=0

M=0

Therefore, resolving vertically: R1 + R2 – 2 = 0

Taking Moments about left hand end (acw +ve): (-2)(1.5) + 3R2 = 0. Solving this equation gives us: 3R2 = 3 and hence R2 = 1kN which from the first equation implies that R1 = 1kN also.

Now, we could have used our intuition to figure this out, as when the load is in the centre then the reaction forces will be half of the load at each end of the beam.  However, it’s always worth confirming using the correct calculations.

This can be summarised below:

, Calculating the reaction forces and bending moment distributions in a simply supported beam.

Uniformly Distributed Loads

For the case of a uniformly distributed load (UDL) the equations can be modified slightly.

, Calculating the reaction forces and bending moment distributions in a simply supported beam.

Determine Shear Force and Bending Moment Distributions

Look at the simply supported beam below

, Calculating the reaction forces and bending moment distributions in a simply supported beam.

After we have found the reaction forces, we then determine the shear force and bending moment distributions along the length of the beam.  These are known as internal forces, as opposed to the external forces that are applied to the beam, i.e. they can be thought of as existing inside of the beam.

To determine these internal forces and moments, we must use our imagination and take an imaginary ‘cut’ at some arbitrary point along the beam (position x) between the first two forces from the left, as shown below.

We also add the value of the internal shear force at position x, qx, and the internal bending moment at position x, Mx, using the convention as shown:

, Calculating the reaction forces and bending moment distributions in a simply supported beam.

The section of the beam that is now ‘cut’ is also considered to be in equilibrium, and so we apply the equations of resolving forces and moments in the same way as we did previously for the whole beam when we were calculating the reaction forces:

qx=RA=2.4kN

Notice that we chose an arbitrary position along the length of the beam between points A and C and so this tells us that the shear force, qx, in between these two points has a constant value of 2.4kN.

Now take moments about the cut:

Mx-RAx=0Mx=RAx kNm

This is the equation that tells us how the bending moment varies as a function of x between points A and C.

Now we need to take another ‘cut’ as shown below:

, Calculating the reaction forces and bending moment distributions in a simply supported beam.

Now take moments about the cut:

Mx-RAx+6x-3=0

Mx=RAx-6x-3 kNm

Mx=2.4x-6x-3

Let’s summarise our results:

PositionA to CA to B
Shear Force, qxqx=2.4kNqx=-3.6kN
Bending Moment, MxMx=2.4x kNmMx=2.4x-6x-3 kNm

We can now use this information to produce shear force and bending moment diagrams, as shown below:

, Calculating the reaction forces and bending moment distributions in a simply supported beam.

The maximum value of the bending moment is of particular interest to us, as it is used in the next step to calculate the maximum bending stress. 

From the above it can be seen that the maximum bending moment happens when x = 3m and you will see that we can use either of the above equations for the bending moment as they will both give the same value at this point.

Mx=2.4x =2.43=7.2 kNm

Or

Mx=2.4x-6x-3=2.43-63-3=2.43=7.2 kNm

Note: you can use the above fact as a check that you have found the correct equations. If you do not get the same values, then you have not formulated the equations correctly!

Stay tuned for more articles in the series so you can learn even more calculations to help you in your civil or mechanical engineering career.

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