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प्रश्न
A person standing on the bank of a river observes that the angle of elevation of the top of a tree standing on opposite bank is 60°. When he moves 30 m away from the bank, he finds the angle of elevation to be 30°. Find the height of the tree and width of the river. [Take `sqrt(3)` = 1.732]
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उत्तर
Let LCD be the tree of height h m. Let B be the position bank of the river After moving 30 m away from point B.
Let new position of man be A i.e., AB = 30 m. The angles of elevation of the top of the tree from points A and B are 30° and 60° respectively, i.e., ∠CAD = 30° and ∠CBD = 60°
Let BC = x m
In right triangle BCD, we have
`tan 60^circ = "CD"/"BC"`
⇒ `sqrt(3) = h/x`
⇒ `x = h/sqrt(3)` ...(i)
In right triangle ACD, we have
`tan 30^circ = "CD"/"AC"`
⇒ `1/sqrt(3) = h/(x + 30)`
⇒ `x + 30 = sqrt(3)h`
⇒ `x = sqrt(3)h - 30` ...(ii)
Comparing equations (i) and (ii), we get
⇒ `h/sqrt(3) = sqrt(3)h - 30`
⇒ `h = 3h - 30sqrt(3)`
⇒ `-2h = -30sqrt(3)`
⇒ `h = 15sqrt(3)`
= 15 × 1.732
= 25.98 m
Hence, the height of the tree is 25.98 m.
Now, substituting the value of `h = 15sqrt(3)` in equation we get,
`x = h/sqrt(3)`
⇒ `x = (15sqrt(3))/sqrt(3)`
⇒ x = 15 m
Hence, width of the river is 15 m.
