From the top of a building, the angles of elevation and depression of top and bottom of a tower are 30° and 60° respectively. If the height of the building is 10 mathrm~m, then find the height of the tower.

Question

From the top of a building, the angles of elevation and depression of top and bottom of a tower are 30° and 60° respectively. If the height of the building is 10 mathrm~m, then find the height of the tower. (A) (40/3) m (B) 10 √3 mathrm~m (C) 30 mathrm~m (D) 40 mathrm~m

Tardigrade Admin · Accepted Answer

Let P Q be the height of the building. ∴ P Q=10 mathrm~m text (given) Let A B be the height of the tower. In triangle P Q A, tan 60°=(P Q/P A) ⇒ √3=(10/P A) ∴ P A=(10/√3) ∴ Q C=(10/√3) <img class="img-fluid question-image" alt="image" src="https://cdn.tardigrade.in/img/question/mathematics/e68739613f13b391b63af210acdba402-.png" /> In triangle Q B C, tan 30°=(B C/Q C) ⇒ (1/√3)=(B C/(10)√3) ∴ B C=(10/3) From the figure, A B=A C+B C=10+(10/3)=(40/3) mathrm~m

Q. From the top of a building, the angles of elevation and depression of top and bottom of a tower are $3 0^{\circ}$ and $6 0^{\circ}$ respectively. If the height of the building is $10 m$ , then find the height of the tower.

$\frac{40}{3} m$

$103 m$

$30 m$

$40 m$

Q. From the top of a building, the angles of elevation and depression of top and bottom of a tower are 30∘ and 60∘ respectively. If the height of the building is 10 m, then find the height of the tower.

340​m

103​ m

30 m

40 m

Let PQ be the height of the building. ∴PQ=10 m (given) Let AB be the height of the tower. In △PQA, tan60∘=PAPQ​⇒3​=PA10​ ∴PA=3​10​ ∴QC=3​10​ In △QBC, tan30∘=QCBC​⇒3​1​=3​10​BC​ ∴BC=310​ From the figure, AB=AC+BC=10+310​=340​ m

Q. From the top of a building, the angles of elevation and depression of top and bottom of a tower are $3 0^{\circ}$ and $6 0^{\circ}$ respectively. If the height of the building is $10 m$ , then find the height of the tower.

$\frac{40}{3} m$

$103 m$

$30 m$

$40 m$