Here AB $∥$ CD. If the altitude of $△$ ACD is 6 cm and CD is 8 cm then the area of $△$ BCD is:

14 c m^{2}

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24 c m^{2}

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34 c m^{2}

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44 c m^{2}

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Solution

The correct option is B $24 c m^{2}$
Triangle between the same parallels and sharing same base have equal areas.

So, Area( $△$ ACD) = Area( $△$ BCD)

Now, Area( $△$ ACD) = $\frac{1}{2} \times 8 \times 6 = 24 c m^{2}$

$∴$ Area( $△$ BCD) = $24 c m^{2}$

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