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प्रश्न
A TV tower stands vertically on a bank of a canal, with a height of `10 sqrt3` m. From a point on the other bank directly opposite the tower, the angle of elevation of the top of the tower is 60°. From another point on the line joining this point to the foot of the tower, the angle of elevation of the top of the tower is 30°. Find the distance between the opposite bank of the canal and the point with a 30° angle of elevation.
विकल्प
30 m
20 m
45 m
35 m
उत्तर
20 m
Explanation:
Applying the function 'tan' in ∆ABC
`"tan" ("C") = "AB"/"BC"`
`=> "tan" (60) = (10 sqrt3 "m")/"BC"`
`=> sqrt3 = (10 sqrt3 "m")/"BC"`
`=> "BC" = (10 sqrt3)/sqrt3`
`=> "BC" = 10 "m"`
And applying in the ∆ABD we have
`"tan" ("D") = "AB"/"BD"`
`"tan" 30 = (10 sqrt3 "m")/"BD"`
`=> 1/sqrt3 = (10 sqrt3 "m")/"BD"`
`=> "BD" = 10 xx 3 "m"`
`=> "BD" = 30 "m"`
Now the distance between the opposite bank of the canal and the point with a 30° angle of elevation is CD:
BD - BC
= 30 m - 10 m
= 20 m
