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Question

Question 9
If the 9th term of an AP is zero, then prove that its 29th term is twice its 19th term.

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Solution

Let the first term, common difference and number of terms of an AP are a, d and n respectively.
Given that,
9th term of the AP, T9 = 0
[ nth term of an Ap, Tn = a + (n - 1)d]
a + (9 - 1)d = 0
a + 8d = 0 . . . .(i)
19th term, T19 = a + (19 - 1)d
= - 8d + 18d [From eq. (i)]
= 10d . . . . (ii)
29th term, T29 = a + (29-1)d
= - 8d + 28d [from Eq.(ii)]
= 20d = 2×(10d)
T29=2×T19

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