ABC is an isosceles triangle in which A is (-1,0), angle A=(2π /3), text AB=AC and AB is along the x- axis. If BC=4√3, then the equation of the line BC is

Question

ABC is an isosceles triangle in which A is (-1,0), angle A=(2π /3), text AB=AC and AB is along the x- axis. If BC=4√3, then the equation of the line BC is (A)  x+√3y=3  (B)  √3x+y=3  (C)  x+y=√3  (D) None of these

Tardigrade Admin · Accepted Answer

(1+OB) cos 30° =2√3 ⇒ 1+OB+2√3× (2/√3)=4 ⇒ OB=3 ⇒ B=(3,0) and m of BC= tan 150° =-(1/√3) So, the equation of BC is y-0=-(1/√3)(x-3) i.e., x+√3y=3

Q. ABC is an isosceles triangle in which A is $(- 1, 0),$ $∠ A = \frac{2 π}{3}, A B = A C$ and AB is along the $x -$ axis. If $BC = 43,$ then the equation of the line BC is

$x + 3 y = 3$

$3 x + y = 3$

$x + y = 3$

None of these

$(1 + OB) cos 30^{\circ} = 23$ $\Rightarrow$ $1 + OB + 23 \times \frac{2}{3} = 4$
$\Rightarrow$ $OB = 3$ $\Rightarrow$ $B = (3, 0)$ and $m$ of $BC = tan 150^{\circ} = - \frac{1}{3}$ So, the equation of $BC$ is $y - 0 = - \frac{1}{3} (x - 3)$ i.e., $x + 3 y = 3$

Q. ABC is an isosceles triangle in which A is (−1,0), ∠A=32π​,AB=AC and AB is along the x− axis. If BC=43​, then the equation of the line BC is

x+3​y=3

3​x+y=3

x+y=3​