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Standard XII

Mathematics

Distance Formula

If A3,2, B-3,...

Question

If $A (3, 2),$ $B (- 3, 2), C (0, h)$ are the vertices of an equilateral triangle and $h < 0$ , then the value of $h^{2} + 12 \sqrt{3}$ is

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Solution

$A (3, 2)$ , $B (- 3, 2)$ , $C (0, h)$ are the vertices of an equilateral triangle.
$\Rightarrow A B = B C = A C$
$\Rightarrow A B^{2} = B C^{2} = A C^{2}$
$\Rightarrow 36 = 9 + (h - 2)^{2} = 9 + (h - 2)^{2}$
$\Rightarrow (h - 2)^{2} = 27$
$\Rightarrow h - 2 = \pm \sqrt{27}$
$\Rightarrow h = 2 \pm 3 \sqrt{3}$
Since $h < 0$
$\Rightarrow h = 2 - 3 \sqrt{3}$
$\Rightarrow h^{2} = 4 + 27 - 12 \sqrt{3}$
$\Rightarrow h^{2} + 12 \sqrt{3} = 31$

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Distance Formula

Standard XII Mathematics

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If A(3,2), B(−3,2),C(0,h) are the vertices of an equilateral triangle and h<0, then the value of h2+12√3 is

A(3,2), B(−3,2), C(0,h) are the vertices of an equilateral triangle. ⇒AB=BC=AC ⇒AB2=BC2=AC2 ⇒36=9+(h−2)2=9+(h−2)2 ⇒(h−2)2=27 ⇒h−2=±√27 ⇒h=2±3√3 Since h<0 ⇒h=2−3√3 ⇒h2=4+27−12√3 ⇒h2+12√3=31

If $A (3, 2),$ $B (- 3, 2), C (0, h)$ are the vertices of an equilateral triangle and $h < 0$ , then the value of $h^{2} + 12 \sqrt{3}$ is