Math, asked by earpulalavanya, 8 months ago

5.
If A(9,-9), (1, -3) are the end points of hypotenuse of a right angled isosceles triangle, then the third we
is
(1) (8,-2)
(3) (8,8)
(2) (-8, 2)
(4) (0,0)​

Answers

Answered by guriyasharma
1

Answer of the above mentioned question is mentioned below please check

Thank you

(1) (8,-2)

Answered by RvChaudharY50
15

Correct Question :- if A(9,-9), C(1,-3) are the end points of hypotenuse of a right angled isosceles triangle, then the third vertex ?

Solution :-

Let us assume that, the co-ordinates of third vertex B are (x,y).

since it is given that, ∆ABC is a right angled isosceles triangle and AC is hypotenuse of the ∆ .

so,

  • AB = BC .
  • AB² + BC² = AC² .
  • slope of AB * slope of BC = (-1) { AB ⟂ BC . }

then,

→ AB = BC

→ (9-x)² + (-9-y)² = (1 - x)² + (-3 - y)²

→ 81 + x² - 18x + 81 + y² + 18y = 1 + x² - 2x + 9 + y² + 6y

→ 162 - 18x + 18y = 1 - 2x + 9 + 6y

→ 162 - 10 = - 2x + 18x + 6y - 18y

→ 152 = 16x - 12y

→ 152 = 4(4x - 3y)

→ 38 = (4x - 3y)

→ 4x = 38 + 3y

→ x = (38 + 3y)/4 -------- Eqn.(1)

Now ,

→ Slope of AB * Slope of BC = (-1)

→ {(y + 9)/(x - 9)} * {(-3-y)/(1 - x)} = (-1)

→ (y + 9)(y + 3)(-1) = (-1)(x - 9)(1 - x)

→ (y + 9)(y + 3) = (x - 9)(1 - x)

Putting value of x from Eqn.(1) , we get,

→ (y² + 12y + 27) = [{(38 + 3y)/4 - 9} * {1 - (38 + 3y)/4}]

→ (y² + 12y + 27) = [{(38 + 3y - 36)}/4} * {4 - (38 + 3y)/4}]

→ (y² + 12y + 27) = [(3y + 2/4) * (-3y - 34)/4]

→ (y² + 12y + 27) = [(-9y² - 102y - 6y - 68)/16)

→ (16y² + 192y + 432 + 9y² + 108y + 68) = 0

→ 25y² + 300y + 500 = 0

→ 25(y² + 12y + 20) = 0

→ y² + 12y + 20 = 0

→ y² + 10y + 2y + 20 = 0

→ y(y + 10) + 2(y + 10) = 0

→ (y + 10)(y + 2) = 0

→ y = (-2) or, (-10) .

Putting value of y in Eqn.(1) we get,

→ If y = (-10)

→ x = (38 - 30)/4 = 8/4 = 2 .

and,

→ If y = (-2)

→ x = (38 - 6)/4 = 32/4 = 8 .

Hence, Coordinates of third vertex are (2, -10) or (8 , -2) . {from options (1) is correct. }

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