Given:
AB = 9 cm, AC = 9 cm, BC = 10 cm
To Find:
Area of ∆ ABC
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Given:
AB = 9 cm, AC = 9 cm, BC = 10 cm
To Find:
Area of ∆ ABC
Solution:
So, we will draw a perpendicularly line from the vertex A of ∆ ABC, namely AM.
Since, AB = AC, AM will divide BC into 2 equal parts, i.e., BM = CM.
→ BM = CM = BC/2 = 10/2 cm
→ BM = CM = 5 cm
So, in ∆ ABM,
AB = 9 cm, BM = 5 cm
Using Pythagoras Theorem,
AB² = AM² + BM²
9² = AM² + 5²
81 = AM² + 25
AM² = 81 - 25
AM² = 56
AM = cm
AM = 7.48 cm
Therefore, height (h) = AM = 7.48 cm
and, base (b) = BC = 10 cm
Area of ∆ ABC =
Hence, Area of ABC is 37.4 cm².
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