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प्रश्न
The gate at the entrance of a garden looks like the given figure from the front. The length and breadth of each rectangle are 4 m and 70 cm respectively. The width of the entrance is 2.8 m. The top arch is made up of two concentric semicircles. Find
- the height of the entrance
- the area of the face of the gate
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उत्तर
Given:
- Each rectangle:
- Height = 4 m
- Breadth = 70 cm = 0.7 m
- Width of entrance between two rectangles = 2.8 m
- Top arch is made of two concentric semicircles
(Outer and inner semicircle forming a curved strip)
i. Height of the entrance
The height of the entrance =
Height of the rectangle + Radius of the outer semicircle
Since the width of the entrance is 2.8 m, that is the diameter of the outer semicircle, so:
- Radius R = `2.8/2` = 1.4 m
Total height = 4 + 1.4 = 5.4 m
ii. Area of the face of the gate
The face of the gate consists of:
- Two vertical rectangles
- The arch area between two semicircles
1. Area of the two rectangles:
Each:
- Height = 4 m
- Width = 0.7 m
So, `"Area"_"rectangles"` = 2 × 4 × 0.7 = 5.6 m2
2. Area of the arch between two semicircles:
- Outer semicircle radius = 1.4 m from above
- Let’s assume the inner semicircle has radius = 1.2 m
(It’s not given, but deduced from width of frame = approx. 0.2 m thick)
Areaarch = `1/2π(R^2 - r^2)`
= `1/2 xx 22/7 xx (1.4^2 - 1.2^2)`
= `11/7 xx (1.96 - 1.44)`
= `11/7 xx 0.52`
= `(11 xx 0.52)/7`
= `5.72/7 ≈ 0.817 m^2`
Areaarch ≈ 0.85 m2
3. Total area of gate face:
Total area = Rectangles + Arch
= 5.6 + 3.85
= 9.45 m2
