If the normal form of the equation of a straight line 4 x+3 y+2=0 is x cos α+y sin α=p and its intercept form is (x/a)+(y/b)=1, then (p sec α/a b)=

Question

If the normal form of the equation of a straight line 4 x+3 y+2=0 is x cos α+y sin α=p and its intercept form is (x/a)+(y/b)=1, then (p sec α/a b)= (A) -(1/2) (B) (3/2) (C) -(3/2) (D) (1/2)

Tardigrade Admin · Accepted Answer

Given, 4 x+3 y+2=0 ⇒ -4 x-3 y=2 (-4 x/5)-(3/5) y=(2/5) ∵ cos α=(-4/5), sin α=(-3/5) and P=(2/5) (x/2 /-4)+(y/2 /-3)=1 ⇒ a=(-2/4), b=(-2/3) ∴ (P sec α/a b)=((2/5) ×((-5/4))/((-2)4)((-2)3) =(-3/2)

Q. If the normal form of the equation of a straight line $4 x + 3 y + 2 = 0$ is $x cos α + y sin α = p$ and its intercept form is $\frac{x}{a} + \frac{y}{b} = 1$ , then $\frac{p s e c α}{ab} =$

$- \frac{1}{2}$

$\frac{3}{2}$

$- \frac{3}{2}$

$\frac{1}{2}$

Q. If the normal form of the equation of a straight line 4x+3y+2=0 is xcosα+ysinα=p and its intercept form is ax​+by​=1, then abpsecα​=

−21​

23​

−23​

21​

Given, 4x+3y+2=0 ⇒−4x−3y=2 5−4x​−53​y=52​ ∵cosα=5−4​,sinα=5−3​ and P=52​ 2/−4x​+2/−3y​=1 ⇒a=4−2​,b=3−2​ ∴abPsecα​=(4−2​)(3−2​)52​×(4−5​)​ =2−3​

Q. If the normal form of the equation of a straight line $4 x + 3 y + 2 = 0$ is $x cos α + y sin α = p$ and its intercept form is $\frac{x}{a} + \frac{y}{b} = 1$ , then $\frac{p s e c α}{ab} =$

$- \frac{1}{2}$

$\frac{3}{2}$

$- \frac{3}{2}$

$\frac{1}{2}$