Question 2
Find the area of a quadrilateral ABCD in which AB=3cm,BC=4cm,CD=4cm, DA = 5cm and AC= 5cm.

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Solution

For $Δ ABC$ ,
${AC}^{2} = {AB}^{2} + {BC}^{2} (5)^{2} = (3)^{2} + (4)^{2} Therefore, Δ ABC is a right triangle, right-angled at point~B Area of Δ ABC = \frac{1}{2} \times AB \times BC = \frac{1}{2} \times 3 \times 4 = 6 c m^{2} For Δ ADC, Perimeter = 2s = AC+CD+DA = (5 + 4 + 5) c m = 14 c m S = 7 c m By, Heron's formula, Area of triangle = \sqrt{s (s - a) (s - b) (s - c)} Area of Δ ADC = ⌊ \sqrt{7 (7 - 5) (7 - 5) (7 - 4)} ⌋ c m^{2} = (\sqrt{7 \times 2 \times 2 \times 3}) c m^{2} = 2 \sqrt{21} c m^{2} = 9.166 c m^{2} Area of ABCD = Area of Δ ABC + Area of Δ ACD = (6 + 9.166) c m^{2} = 15.166 c m^{2} = 15.2 c m^{2} (approximately)$

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Area of a Triangle - by Heron's Formula

Standard IX Mathematics

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Question 2 Find the area of a quadrilateral ABCD in which AB=3cm,BC=4cm,CD=4cm, DA = 5cm and AC= 5cm.

Question 2
Find the area of a quadrilateral ABCD in which AB=3cm,BC=4cm,CD=4cm, DA = 5cm and AC= 5cm.