Given that a4+a8+a12+a16=224, the sum of the first nineteen terms of the arithmetic progression a1, a2, a3, . . . . . is equal to

Question

Given that a4+a8+a12+a16=224, the sum of the first nineteen terms of the arithmetic progression a1, a2, a3, . . . . . is equal to (A) 1540 (B) 1064 (C) 3125 (D) 1980

Tardigrade Admin · Accepted Answer

a1,a2,a3,......,a19 are in A.P. ⇒ S=a1+a2+......+a18+a19=(19/2)(a1 + a19) Given, a4+a8+a12+a16=224 ⇒ a1+3d+a1+7d+a19-7d+a19-3d=224 ⇒ 2(a1 + a19)=224 ⇒ a1+a19=112 ⇒ (19/2)(a1 + a19)=(19/2)× 112 ⇒ S=(19/2)× 112=19× 56=1064

Q. Given that $a_{4} + a_{8} + a_{12} + a_{16} = 224,$ the sum of the first nineteen terms of the arithmetic progression $a_{1}, a_{2}, a_{3}, . . . . .$ is equal to

$1540$

$1064$

$3125$

$1980$

Q. Given that a4​+a8​+a12​+a16​=224, the sum of the first nineteen terms of the arithmetic progression a1​,a2​,a3​,..... is equal to

1540

1064

3125

1980

a1​,a2​,a3​,......,a19​ are in A.P. ⇒S=a1​+a2​+......+a18​+a19​=219​(a1​+a19​) Given, a4​+a8​+a12​+a16​=224 ⇒a1​+3d+a1​+7d+a19​−7d+a19​−3d=224 ⇒2(a1​+a19​)=224 ⇒a1​+a19​=112 ⇒219​(a1​+a19​)=219​×112 ⇒S=219​×112=19×56=1064

Q. Given that $a_{4} + a_{8} + a_{12} + a_{16} = 224,$ the sum of the first nineteen terms of the arithmetic progression $a_{1}, a_{2}, a_{3}, . . . . .$ is equal to

$1540$

$1064$

$3125$

$1980$