in a triangle abc medians ad and be are drawn if ad 4 angle

In a triangle $$ABC,$$ medians $$AD$$ and $$BE$$ are drawn. If $$AD = 4,$$ $$\angle DAB = \frac{\pi }{6}$$ and $$\angle ABE = \frac{\pi }{3} ,$$ then the area of the $$\Delta \,ABC$$ is

A. $$\frac{{64}}{3}$$

B. $$\frac{{8}}{3}$$

C. $$\frac{{16}}{3}$$

D. $$\frac{{32}}{{3\sqrt 3 }}$$

Answer : $$\frac{{32}}{{3\sqrt 3 }}$$

Solution :
Properties and Solutons of Triangle mcq solution image

$$\eqalign{ & AP = \frac{2}{3}AD = \frac{8}{3};\,\,PD = \frac{4}{3};\,\,{\text{Let }}PB = x \cr & \tan {60^ \circ } = \frac{{\frac{8}{3}}}{x}\,\,\,{\text{or }}x = \frac{8}{{3\sqrt 3 }} \cr} $$
Area of $$\Delta ABD = \frac{1}{2} \times 4 \times \frac{8}{{3\sqrt 3 }} = \frac{{16}}{{3\sqrt 3 }}$$
∴ Area of $$\Delta ABC = 2 \times \frac{{16}}{{3\sqrt 3 }} = \frac{{32}}{{3\sqrt 3 }}$$
[ $$\because $$ Median of a $$\Delta $$ divides it into two $$\Delta '{\text{s}}$$ of equal area. ]

Releted MCQ Question on
Trigonometry >> Properties and Solutons of Triangle

Releted Question 1

If the bisector of the angle $$P$$ of a triangle $$PQR$$ meets $$QR$$ in $$S,$$ then

A. $$QS = SR$$

B. $$QS : SR = PR : PQ$$

C. $$QS : SR = PQ : PR$$

D. None of these

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Releted Question 2

From the top of a light-house 60 metres high with its base at the sea-level, the angle of depression of a boat is 15°. The distance of the boat from the foot of the light house is

A. $$\left( {\frac{{\sqrt 3 - 1}}{{\sqrt 3 + 1}}} \right)60\,{\text{metres}}$$

B. $$\left( {\frac{{\sqrt 3 + 1}}{{\sqrt 3 - 1}}} \right)60\,{\text{metres}}$$

C. $${\left( {\frac{{\sqrt 3 + 1}}{{\sqrt 3 - 1}}} \right)^2}{\text{metres}}$$

D. none of these

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Releted Question 3

In a triangle $$ABC,$$ angle $$A$$ is greater than angle $$B.$$ If the measures of angles $$A$$ and $$B$$ satisfy the equation $$3\sin x - 4{\sin ^3}x - k = 0, 0 < k < 1,$$ then the measure of angle $$C$$ is

A. $$\frac{\pi }{3}$$

B. $$\frac{\pi }{2}$$

C. $$\frac{2\pi }{3}$$

D. $$\frac{5\pi }{6}$$

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Releted Question 4

In a triangle $$ABC,$$ $$\angle B = \frac{\pi }{3}{\text{ and }}\angle C = \frac{\pi }{4}.$$ Let $$D$$ divide $$BC$$ internally in the ratio 1 : 3 then $$\frac{{\sin \angle BAD}}{{\sin \angle CAD}}$$ is equal to

A. $$\frac{1}{{\sqrt 6 }}$$

B. $${\frac{1}{3}}$$

C. $$\frac{1}{{\sqrt 3 }}$$

D. $$\sqrt {\frac{2}{3}} $$

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In a triangle $$ABC,$$ medians $$AD$$ and $$BE$$ are drawn. If $$AD = 4,$$ $$\angle DAB = \frac{\pi }{6}$$ and $$\angle ABE = \frac{\pi }{3} ,$$ then the area of the $$\Delta \,ABC$$ is

Releted MCQ Question on
Trigonometry >> Properties and Solutons of Triangle

If the bisector of the angle $$P$$ of a triangle $$PQR$$ meets $$QR$$ in $$S,$$ then

From the top of a light-house 60 metres high with its base at the sea-level, the angle of depression of a boat is 15°. The distance of the boat from the foot of the light house is

In a triangle $$ABC,$$ angle $$A$$ is greater than angle $$B.$$ If the measures of angles $$A$$ and $$B$$ satisfy the equation $$3\sin x - 4{\sin ^3}x - k = 0, 0 < k < 1,$$ then the measure of angle $$C$$ is

In a triangle $$ABC,$$ $$\angle B = \frac{\pi }{3}{\text{ and }}\angle C = \frac{\pi }{4}.$$ Let $$D$$ divide $$BC$$ internally in the ratio 1 : 3 then $$\frac{{\sin \angle BAD}}{{\sin \angle CAD}}$$ is equal to

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In a triangle $$ABC,$$ medians $$AD$$ and $$BE$$ are drawn. If $$AD = 4,$$ $$\angle DAB = \frac{\pi }{6}$$ and $$\angle ABE = \frac{\pi }{3} ,$$ then the area of the $$\Delta \,ABC$$ is

Releted MCQ Question on Trigonometry >> Properties and Solutons of Triangle

If the bisector of the angle $$P$$ of a triangle $$PQR$$ meets $$QR$$ in $$S,$$ then

From the top of a light-house 60 metres high with its base at the sea-level, the angle of depression of a boat is 15°. The distance of the boat from the foot of the light house is

In a triangle $$ABC,$$ angle $$A$$ is greater than angle $$B.$$ If the measures of angles $$A$$ and $$B$$ satisfy the equation $$3\sin x - 4{\sin ^3}x - k = 0, 0 < k < 1,$$ then the measure of angle $$C$$ is

In a triangle $$ABC,$$ $$\angle B = \frac{\pi }{3}{\text{ and }}\angle C = \frac{\pi }{4}.$$ Let $$D$$ divide $$BC$$ internally in the ratio 1 : 3 then $$\frac{{\sin \angle BAD}}{{\sin \angle CAD}}$$ is equal to

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