If n arithmetic means are inserted between a and 100 such that the ratio of the first mean to the last mean is 1: 7 and a + n =33, then the value of n is

Question

If n arithmetic means are inserted between a and 100 such that the ratio of the first mean to the last mean is 1: 7 and a + n =33, then the value of n is (A) 21 (B) 22 (C) 23 (D) 24

Tardigrade Admin · Accepted Answer

d =(100- a / n +1) A 1= a + d A n =100- d ⇒ ( A 1/ A n )=(1/7) ⇒ ( a + d /100- d )=(1/7) ⇒ 7 a +8 d =100 ⇒ 7 a +8((100- a / n +1))=100 .....(1) ∵ a + n =33.........(2) Now, by Eq. (1) and (2) 7 n2-132 n-667=0 n =23 and n =(-29/7) reject.

Q. If n arithmetic means are inserted between a and 100 such that the ratio of the first mean to the last mean is 1:7 and a+n=33, then the value of n is

21

22

23

24

d=n+1100−a​ A1​=a+d An​=100−d ⇒An​A1​​=71​ ⇒100−da+d​=71​ ⇒7a+8d=100 ⇒7a+8(n+1100−a​)=100.....(1) ∵a+n=33.........(2) Now, by Eq. (1) and (2) 7n2−132n−667=0 n=23 and n=7−29​ reject.

Q. If $n$ arithmetic means are inserted between a and $100$ such that the ratio of the first mean to the last mean is $1 : 7$ and $a + n = 33$ , then the value of $n$ is