Equation of a straight line which passes through the point of intersection of the straight lines x+y-5= 0 and x-y+3=0 and perpendicular to the straight line intersecting x-axis at the point (-2,0) and the y-axis at the point (0,-3), is

Question

Equation of a straight line which passes through the point of intersection of the straight lines x+y-5= 0 and x-y+3=0 and perpendicular to the straight line intersecting x-axis at the point (-2,0) and the y-axis at the point (0,-3), is (A) 2 x-y+10=0 (B) x-3 y+10=0 (C) 2 x-3 y+10=0 (D) 2 x-3 y+12=0

Tardigrade Admin · Accepted Answer

By family of lines required line is: (x+y-5)+λ(x-y+3)=0 equation of other line is (x/-2)+(y/-3)=1 ⇒ 3 x+2 y+6=0 Both are perp hence m1 m2=-1 ⇒ ((λ+1/1-λ))((-3/2))=-1 ⇒ 3 λ+3=-2+2 λ ⇒ λ=-5 Hence required line -4 x=6 y-20=0 2 x-3 y+10=0

Q. Equation of a straight line which passes through the point of intersection of the straight lines $x + y - 5 =$ 0 and $x - y + 3 = 0$ and perpendicular to the straight line intersecting $x$ -axis at the point $(- 2, 0)$ and the $y$ -axis at the point $(0, - 3)$ , is

$2 x - y + 10 = 0$

$x - 3 y + 10 = 0$

$2 x - 3 y + 10 = 0$

$2 x - 3 y + 12 = 0$

Q. Equation of a straight line which passes through the point of intersection of the straight lines x+y−5= 0 and x−y+3=0 and perpendicular to the straight line intersecting x-axis at the point (−2,0) and the y-axis at the point (0,−3), is

2x−y+10=0

x−3y+10=0

2x−3y+10=0

2x−3y+12=0

By family of lines required line is: (x+y−5)+λ(x−y+3)=0 equation of other line is −2x​+−3y​=1⇒3x+2y+6=0 Both are ⊥ hence m1​m2​=−1 ⇒(1−λλ+1​)(2−3​)=−1 ⇒3λ+3=−2+2λ⇒λ=−5 Hence required line −4x=6y−20=0 2x−3y+10=0

Q. Equation of a straight line which passes through the point of intersection of the straight lines $x + y - 5 =$ 0 and $x - y + 3 = 0$ and perpendicular to the straight line intersecting $x$ -axis at the point $(- 2, 0)$ and the $y$ -axis at the point $(0, - 3)$ , is

$2 x - y + 10 = 0$

$x - 3 y + 10 = 0$

$2 x - 3 y + 10 = 0$

$2 x - 3 y + 12 = 0$