Students of a school staged a rally for a cleanliness campaign. They walked through the lanes in two groups. One group walked through the lanes $A B$ , $B C$ , and $C A$ ; where the other through $A C$ , $C D$ , and $D A$ . Then they cleaned the area enclosed within their lanes. If $A B = 9 m$ , $B C = 40 m$ , $C D = 15 m$ , $D A = 28 m$ and $∠ B = 90 °$ , which group cleaned more area and by how much? Find the total area cleaned by the students.

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Solution

Step 1: Solve for the area covered by group walked through lanes $A B$ , $B C$ , and $C A$
Given that $A B = 9 m$ , $B C = 40 m$ and $∠ B = 90 °$
We know that area of right angled triangle is $\frac{1}{2} \times b a s e \times h e i g h t$
$∴$ Area of $△ A B C = \frac{1}{2} \times B C \times A B$
$\begin{array}{cl} = & \frac{1}{2} \times 40 \times 9 \\ = & 20 \times 9 \end{array}$
$\Rightarrow$ Area of $△ A B C = 180 m^{2}$
Step 2: Solve for the area covered by group walked through lanes $A C$ , $C D$ , and $D A$
According to Pythagoras theorem,
$\begin{array}{crcl} {(A C)}^{2} & = & {(A B)}^{2} + {(B C)}^{2} \\ = & 9^{2} + {(40)}^{2} \\ = & 81 + 1600 \\ \Rightarrow & {(A C)}^{2} & = & 1681 \\ \Rightarrow & A C & = & \sqrt{1681} \\ \Rightarrow & A C & = & 41 m \end{array}$
We know that area of triangle with sides $a, b, c$ is $\sqrt{s (s - a) (s - b) (s - c)}$ where $s = \frac{a + b + c}{2}$
Here say $a = 28, b = 15, c = 41 \Rightarrow s = \frac{28 + 15 + 41}{2} = 42$
$∴$ Area of $△ A D C = \sqrt{42 (42 - 28) (42 - 15) (42 - 41)}$
$\begin{matrix} = & \sqrt{42 \times 14 \times 27 \times 1} \\ = & \sqrt{15876} \end{matrix}$
$\Rightarrow$ Area of $△ A D C = 126 m^{2}$
Step 3: Determine which group cleaned more area
Area of $△ A B C = 180 m^{2}$ and area of $△ A D C = 126 m^{2}$
Area of $△ A B C >$ Area of $△ A D C$
Area of $△ A B C -$ Area of $△ A D C = 180 - 126 = 54 m^{2}$
Thus the area cleaned by the group walked through the lanes $A B$ , $B C$ , and $C A$ is $54 m^{2}$ more than the area cleaned by the group walked through the lanes $A C$ , $C D$ , and $D A$ .
Step 4: Solve for the total area cleaned by the students
Total area cleaned by the students $=$ Area of $△ A B C +$ Area of $△ A D C$
$\begin{array}{cl} = & 180 + 126 \\ = & 306 m^{2} \end{array}$
Hence the group walked through the lanes $A B$ , $B C$ , and $C A$ cleaned $54 m^{2}$ more area and the total area cleaned by the students is $306 m^{2}$

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Q. Students of a school staged a rally for a cleanliness campaign. They walked through the lanes in two groups. One group walked through the lanes AB, BC, and CA; where the Other through AC, CD, and DA. Then they cleaned the area enclosed within their lanes. If

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Students of a school staged a rally for cleanliness campaign in two groups. Group A walked through the lanes AB, BC and CA, while Group B walked through AC, CD and DA. They cleaned the area enclosed within their lanes. If $AB = 9 m, BC = 40 m, CD = 15 m, DA = 28 m and ∠ B = 90°$ , then find which group cleaned more area and the total area cleaned by both groups.

Students of a school staged a rally for cleanliness campaign in two groups. Group A walked through the lanes AB, BC and CA, while Group B walked through AC, CD and DA. They cleaned the area enclosed within their lanes. If $AB = 9 m, BC = 40 m, CD = 15 m, DA = 28 m and ∠ B = 90°$ , which group cleaned more area. Also, find the total area cleaned by the students?

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