How to calculate the work done by a variable force F(x)

The formula we use to calculate the work done when a variable force is applied to an object

To calculate the work done when a variable force is applied to lift an object of some mass or weight, we’ll use the formula

???W=\int^b_aF(x)\ dx???

where ???W??? is the work done, ???F(x)??? is the equation of the variable force, and ???[a,b]??? is the starting and ending height of the object.

How to calculate the work done by some variable force (when we’re given a force function F(x))

Take the course

Want to learn more about Calculus 2? I have a step-by-step course for that. :)

Finding the work done, given a variable force F(x)

Example

Find the work done to lift a ???20??? kg box from the floor to a height of ???3??? m when the variable force ???F(x)??? is given in Newtons.

???F(x)=4x^2-2x+3???

Using the formula from this section, and defining the interval ???[a,b]??? as ???[0,3]???, we get

???W=\int^3_04x^2-2x+3\ dx???

???W=\int^3_04x^2\ dx+\int^3_0-2x\ dx+\int^3_03\ dx???

???W=4\int^3_0x^2\ dx-2\int^3_0x\ dx+3\int^3_01\ dx???

Integrating, we get

???W=\left[4\left(\frac{x^3}{3}\right)-2\left(\frac{x^2}{2}\right)+3(x)\right]\Bigg|^3_0???

???W=\frac{4x^3}{3}-x^2+3x\Big|^3_0???

Now we’ll evaluate over the interval.

???W=\left(\frac{4(3)^3}{3}-(3)^2+3(3)\right)-\left(\frac{4(0)^3}{3}-(0)^2+3(0)\right)??? 

???W=36???

???36??? J of force are required to lift a ???20??? kg box from the floor to a height of ???3??? m when the variable force applied is defined by ???F(x)=4x^2-2x+3???.

Get access to the complete Calculus 2 course