A light beam eminating from the point A(3,10) reflects from the straight line 2 x+y-6=0 and then passes through the point B(4,3). The equation of the reflected beam is :

Question

A light beam eminating from the point A(3,10) reflects from the straight line 2 x+y-6=0 and then passes through the point B(4,3). The equation of the reflected beam is : (A) 3 x-y+1=0 (B) x+3 y-13=0 (C) 3 x+y-15=0 (D) x-3 y+5=0

Tardigrade Admin · Accepted Answer

<img class="img-fluid question-image" alt="image" src="https://cdn.tardigrade.in/img/question/mathematics/8d6839c9a2dd578cebf50a83d1c1d6b2-.png" /> Image of A (3,10) in 2 x + y -6=0 (x-3/2)=(y-10/1)=-2((6+10-6/22+12)) (x-3/2)=(y-10/1)=-4 A prime=(-5,6) Equation of A prime B is y - 3 = ((6-3/-5-4)) (x - 4) y-3=-(1/3)(x-4) 3 y-9=-x+4 ⇒ x+3 y-13=0

Q. A light beam eminating from the point $A (3, 10)$ reflects from the straight line $2 x + y - 6 = 0$ and then passes through the point $B (4, 3)$ . The equation of the reflected beam is :

$3 x - y + 1 = 0$

$x + 3 y - 13 = 0$

$3 x + y - 15 = 0$

$x - 3 y + 5 = 0$

Q. A light beam eminating from the point A(3,10) reflects from the straight line 2x+y−6=0 and then passes through the point B(4,3). The equation of the reflected beam is :

3x−y+1=0

x+3y−13=0

3x+y−15=0

x−3y+5=0

Image of A(3,10) in 2x+y−6=0 2x−3​=1y−10​=−2(22+126+10−6​) 2x−3​=1y−10​=−4 A′=(−5,6) Equation of A′B is y−3=(−5−46−3​)(x−4) y−3=−31​(x−4) 3y−9=−x+4 ⇒x+3y−13=0

Q. A light beam eminating from the point $A (3, 10)$ reflects from the straight line $2 x + y - 6 = 0$ and then passes through the point $B (4, 3)$ . The equation of the reflected beam is :

$3 x - y + 1 = 0$

$x + 3 y - 13 = 0$

$3 x + y - 15 = 0$

$x - 3 y + 5 = 0$