An A.P. consists of 23 terms. If the sum of the 3 terms in the middle is 141 and the sum of the last 3 terms is 261, then the firm is

Question

An A.P. consists of 23 terms. If the sum of the 3 terms in the middle is 141 and the sum of the last 3 terms is 261, then the firm is (A) 6 (B) 5 (C) 4 (D) 3

Tardigrade Admin · Accepted Answer

Let the first term and common difference of AP be

a

and

d

, respectively. Then,

a_{11} + a_{12} + a_{13} = 141

\Rightarrow 3 a + 33 d = 141

\Rightarrow a + 11 d = 47 ... (i)

Also,

a_{21} + a_{22} + a_{23} = 261

\Rightarrow 3 a + 63 d = 261

\Rightarrow a + 21 d = 87 ...... (ii)

From Eqs. (i) and (ii),

a = 3

Q. An A.P. consists of 23 terms. If the sum of the 3 terms in the middle is 141 and the sum of the last 3 terms is 261, then the firm is

6

5

4

3

2

Let the first term and common difference of AP be a and d, respectively. Then, a11​+a12​+a13​=141 ⇒3a+33d=141 ⇒a+11d=47...(i) Also, a21​+a22​+a23​=261 ⇒3a+63d=261 ⇒a+21d=87......(ii) From Eqs. (i) and (ii), a=3

Q. An $A . P .$ consists of $23$ terms. If the sum of the $3$ terms in the middle is $141$ and the sum of the last $3$ terms is $261$ , then the firm is