in an ap of 50 terms the sum of the first 10 term is 210 and the sum of its last 15 terms is 2565 find the AP
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Answered by
21
Sn = n/2*(2a+(n-1)d)
then,S10= 10/2*(2a+9d)= 210
sum of last 15 terms. S50-S35
S50- S35= 2565
50/2(2a + 49 d) - 35/ 2 ( 2a + 34d) = 2565
on solving further
a=3 and d = 4
hence AP is 3,7,11,15,19...
then,S10= 10/2*(2a+9d)= 210
sum of last 15 terms. S50-S35
S50- S35= 2565
50/2(2a + 49 d) - 35/ 2 ( 2a + 34d) = 2565
on solving further
a=3 and d = 4
hence AP is 3,7,11,15,19...
Answered by
0
According to the question:-
Hence required AP is →
3,7,11,15,....,199
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