If an equation of a tangent to the curve, y-cos (x+f) ,-1-1 le x le 1+π, is x+2y=k then k is equal to :

Question

If an equation of a tangent to the curve, y-cos (x+f) ,-1-1 le x le 1+π, is x+2y=k then k is equal to : (A) 1 (B) 2 (C) (π/4) (D) (π/2)

Tardigrade Admin · Accepted Answer

Let y = cos (x+y) ⇒ (d y/d x)=-sin (x+y) (1+(d y/d x)) ldots(1) Now, given equation of tangent is x + 2y = k ⇒ Slope =(-1/2) So, (d y/d x)=(-1/2) put this value in (1), we get (-1/2)=-sin (x+y) (1-(1/2)) ⇒ sin (x+y)=1 ⇒ x+y=(π/2) ⇒ y=(π/2)-x Now, (π/2)-x=cos(x+y) ⇒ x=(π/2) and y=0 Thus x+2y=k ⇒ (π/2)=k

Q. If an equation of a tangent to the curve, $y - cos (x + f), - 1 - 1 \leq x \leq 1 + π, i s x + 2 y = k$ then $k$ is equal to :

1

2

$\frac{π}{4}$

$\frac{π}{2}$

Q. If an equation of a tangent to the curve, y−cos(x+f),−1−1≤x≤1+π,isx+2y=k then k is equal to :

1

2

4π​

2π​

Let y=cos(x+y) ⇒dxdy​=−sin(x+y)(1+dxdy​)…(1) Now, given equation of tangent is x+2y=k ⇒Slope=2−1​ So,dxdy​=2−1​putthisvaluein(1),weget 2−1​=−sin(x+y)(1−21​) ⇒sin(x+y)=1 ⇒x+y=2π​⇒y=2π​−x Now,2π​−x=cos(x+y) ⇒x=2π​andy=0 Thusx+2y=k⇒2π​=k

Q. If an equation of a tangent to the curve, $y - cos (x + f), - 1 - 1 \leq x \leq 1 + π, i s x + 2 y = k$ then $k$ is equal to :

$\frac{π}{4}$

$\frac{π}{2}$