Question

How do you find the sum of the arithmetic sequence `4x+6x+...+22x`?

Answer 1

It is

`4x+6x+...22x=2x*[2+3+...+11]`

To find the sum of `2+3+...+11` or `(1+2+...+11)-1`

we can use `S=n*(n+1)/2` for `(1+2+...+11)` hence `S=11*(12)/2=66` and substract one hence

`(2+3+...+11)=65`

Finally

`4x+6x+...22x=2x*[2+3+...+11]=2x*65=130*x`