If the normal to the curve y ( x )=∫0 x (2 t 2-15 t +10) d t at a point ( a , b ) is parallel to the line x+3 y=-5, a1, then the value of | a +6 b | is equal to .

Question

If the normal to the curve y ( x )=∫0 x (2 t 2-15 t +10) d t at a point ( a , b ) is parallel to the line x+3 y=-5, a>1, then the value of | a +6 b | is equal to . (A)  (B)  (C)  (D)

Tardigrade Admin · Accepted Answer

y ( x )=∫0 x (2 t 2-15 t +10) dt .y prime( x )] x = a =[2 x 2-15 x +10] a =2 a 2-15 a +10 Slope of normal =-(1/3) ⇒ 2 a 2-15 a +10=3 ⇒ a =7 a =(1/2) (rejected) b = y (7)=∫07(2 t 2-15 t +10) dt =[(2 t 3/3)-(15 t 2/2)+10 t ]07 ⇒ 6 b =4 × 73-45 × 49+60 × 7 | a +6 b |=406

Q. If the normal to the curve y(x)=∫0x​(2t2−15t+10)dt at a point (a,b) is parallel to the line x+3y=−5,a>1, then the value of ∣a+6b∣ is equal to ________.

y(x)=∫0x​(2t2−15t+10)dt y′(x)]x=a​=[2x2−15x+10]a​=2a2−15a+10 Slope of normal =−31​ ⇒2a2−15a+10=3⇒a=7 &a=21​ (rejected) b=y(7)=∫07​(2t2−15t+10)dt =[32t3​−215t2​+10t]07​ ⇒6b=4×73−45×49+60×7 ∣a+6b∣=406

Q. If the normal to the curve $y (x) = \int_{0}^{x} (2 t^{2} - 15 t + 10) d t$ at a point $(a, b)$ is parallel to the line $x + 3 y = - 5, a > 1$ , then the value of $∣ a + 6 b ∣$ is equal to ________.