Maximum area of rectangle whose two sides are x=x0, x=π-x0 and which is inscribed in a region bounded by y= sin x and x -axis is obtained when x0 ∈

Question

Maximum area of rectangle whose two sides are x=x0, x=π-x0 and which is inscribed in a region bounded by y= sin x and x -axis is obtained when x0 ∈ (A) ((π/4), (π/3)) (B) ((π/6), (π/4)) (C) (0, (π/6)) (D) None of these

Tardigrade Admin · Accepted Answer

A = Area = sin x(π-2 x) ⇒ (d A/d x)=(π-2 x) cos x-2 sin x=0 ⇒ tan x=(π/2)-x <img class="img-fluid question-image" alt="image" src="https://cdn.tardigrade.in/img/question/mathematics/3d7b5dbd23e72aa02f1f637893ea7ce3-.png" /> Let f(x)= tan x+x-(π/2) ⇒ f((π/6)) is negative; f((π/4)) is positive So, one root lies between ((π/6), (π/4)). [Note that in this interval (d2 A/d x2) is negative]

Q. Maximum area of rectangle whose two sides are $x = x_{0}, x = π - x_{0}$ and which is inscribed in a region bounded by $y = sin x$ and $x$ -axis is obtained when $x_{0} \in$

$(\frac{π}{4}, \frac{π}{3})$

$(\frac{π}{6}, \frac{π}{4})$

$(0, \frac{π}{6})$

None of these

Q. Maximum area of rectangle whose two sides are x=x0​,x=π−x0​ and which is inscribed in a region bounded by y=sinx and x -axis is obtained when x0​∈

(4π​,3π​)

(6π​,4π​)

(0,6π​)

None of these

A= Area =sinx(π−2x) ⇒dxdA​=(π−2x)cosx−2sinx=0 ⇒tanx=2π​−x Let f(x)=tanx+x−2π​ ⇒f(6π​) is negative; f(4π​) is positive So, one root lies between (6π​,4π​). [Note that in this interval dx2d2A​ is negative]

Q. Maximum area of rectangle whose two sides are $x = x_{0}, x = π - x_{0}$ and which is inscribed in a region bounded by $y = sin x$ and $x$ -axis is obtained when $x_{0} \in$

$(\frac{π}{4}, \frac{π}{3})$

$(\frac{π}{6}, \frac{π}{4})$

$(0, \frac{π}{6})$