What is the sum of a 6–term geometric series if the first term is 20 and the last term is 336,140?

1 Answer
George C.
Jun 1, 2016

392160

Explanation:

Given:

a_1 = 20

a_6 = 336140

Then general form of a term of a geometric series is:

a_n = a*r^(n-1)

So r^5 = (a r^5)/(a r^0) = a_6/a_1 = 336140/20 = 16807 = 7^5

So assuming that the geometric series is of Real numbers, the only possible value of r is 7.

Given any geometric series and positive integer N, we find:

(r-1) sum_(n=1)^N a r^(n-1)

=r sum_(n=1)^N a r^(n-1) - sum_(n=1)^N a r^(n-1)

=ar^N + color(red)(cancel(color(black)(sum_(n=2)^(N-1) a r^(n-1)))) - color(red)(cancel(color(black)(sum_(n=2)^(N-1) a r^(n-1)))) - a

=a(r^N-1)

So dividing both ends by (r-1) we find:

sum_(n=1)^N a r^(n-1) = (a(r^N-1))/(r-1)

In our example, we have a=20, r=7, N=6 and we get:

sum_(n=1)^N a r^(n-1) = (a(r^N-1))/(r-1)

= (20(7^6-1))/(7-1) = (20(117649-1))/6 = 2352960/6 = 392160

Related questions
See all questions in Sums of Geometric Sequences
Impact of this question
1464 views around the world
You can reuse this answer
Creative Commons License