Geometric Progression question (1 Viewer)

laser6628 · Nov 12, 2011

Hi i'm new here...
Anyways this was from a past paper in my school and there are no posted solutions. So...
In a Geometric series, the sum of the 1st and 3rd terms is 39 whilst the sum of the 4th and 6th term is 131.625. Determine first term and common ratio.
Thanks

michaeljennings · Nov 12, 2011

I have common ratio of 1.5 and the first term is 12 Ill post working in a sec

Let the first term be 'a' and let the common ratio be 'd'

$a + ad^2 = 39$ Equation 1

$ad^3 + ad^5 = 131.625$ Equation 2

$a(1+d^2)=39$ Equation 1 (factorised)
$ad^3(1+d^2)=131.625$ Equation 2 (factorised)

Then to eliminate (1+d^2) we get

$39/a = 131.625/ad^3$

From here 'a' can be eliminated and make 'd' the subject. Therefore d is 1.5

Sub d=1.5 back into equation 1 and a = 12

MATHSCAPE · Nov 12, 2011

T1 = a, T3 = ar^3, T4 = ar^3 and T6 = ar^5
T1 + T3 = a(1+r^2) = 39
T4 + T6 = ar^3(1+r^2) = 131.625
T4 + T6 = r^3(T1+T2) = 131.625
solve for r
r = 1.5
sub r=1.5 into T1 + T3 to solve for a
a = 12

Geometric Progression question (1 Viewer)

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