Class 9MathematicsAreas of Parallelograms and TrianglesTextbook - Areas of Parallelograms and Triangles
Medium$D, E$ and $F$ are respectively the mid-points of the sides $BC, CA$ and $AB$ of a $\Delta ABC$. Show that $\operatorname{ar}( BDEF ) = \frac{1}{2} \operatorname{ar}( ABC )$
(N/A) Given that $D, E$ and $F$ are the mid-points of sides $BC, CA$ and $AB$ respectively.
By the Mid-point Theorem,$FE \parallel BC$ and $FE = \frac{1}{2} BC = BD$.
Since $FE \parallel BD$ and $FE = BD$,$BDEF$ is a parallelogram.
Similarly,$AFDE$ and $FDCE$ are also parallelograms.
In parallelogram $BDEF$,the diagonal $DE$ divides it into two triangles of equal area,so $\operatorname{ar}(\Delta BDF) = \operatorname{ar}(\Delta DEF)$.
Similarly,in parallelogram $AFDE$,$\operatorname{ar}(\Delta AFE) = \operatorname{ar}(\Delta DEF)$,and in parallelogram $FDCE$,$\operatorname{ar}(\Delta DEF) = \operatorname{ar}(\Delta EDC)$.
Thus,$\operatorname{ar}(\Delta AFE) = \operatorname{ar}(\Delta BDF) = \operatorname{ar}(\Delta DEF) = \operatorname{ar}(\Delta EDC) = \frac{1}{4} \operatorname{ar}(\Delta ABC)$.
Now,$\operatorname{ar}(BDEF) = \operatorname{ar}(\Delta BDF) + \operatorname{ar}(\Delta DEF) = \frac{1}{4} \operatorname{ar}(\Delta ABC) + \frac{1}{4} \operatorname{ar}(\Delta ABC) = \frac{2}{4} \operatorname{ar}(\Delta ABC) = \frac{1}{2} \operatorname{ar}(\Delta ABC)$.
By the Mid-point Theorem,$FE \parallel BC$ and $FE = \frac{1}{2} BC = BD$.
Since $FE \parallel BD$ and $FE = BD$,$BDEF$ is a parallelogram.
Similarly,$AFDE$ and $FDCE$ are also parallelograms.
In parallelogram $BDEF$,the diagonal $DE$ divides it into two triangles of equal area,so $\operatorname{ar}(\Delta BDF) = \operatorname{ar}(\Delta DEF)$.
Similarly,in parallelogram $AFDE$,$\operatorname{ar}(\Delta AFE) = \operatorname{ar}(\Delta DEF)$,and in parallelogram $FDCE$,$\operatorname{ar}(\Delta DEF) = \operatorname{ar}(\Delta EDC)$.
Thus,$\operatorname{ar}(\Delta AFE) = \operatorname{ar}(\Delta BDF) = \operatorname{ar}(\Delta DEF) = \operatorname{ar}(\Delta EDC) = \frac{1}{4} \operatorname{ar}(\Delta ABC)$.
Now,$\operatorname{ar}(BDEF) = \operatorname{ar}(\Delta BDF) + \operatorname{ar}(\Delta DEF) = \frac{1}{4} \operatorname{ar}(\Delta ABC) + \frac{1}{4} \operatorname{ar}(\Delta ABC) = \frac{2}{4} \operatorname{ar}(\Delta ABC) = \frac{1}{2} \operatorname{ar}(\Delta ABC)$.
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Diagonals $AC$ and $BD$ of a quadrilateral $ABCD$ intersect at $O$ in such a way that $\operatorname{ar}(AOD) = \operatorname{ar}(BOC)$. Prove that $ABCD$ is a trapezium.
Medium
View SolutionIn the figure,$P$ is a point in the interior of a parallelogram $ABCD$. Show that:
$(i)$ $\operatorname{ar}(APB) + \operatorname{ar}(PCD) = \frac{1}{2} \operatorname{ar}(ABCD)$
$(ii)$ $\operatorname{ar}(APD) + \operatorname{ar}(PBC) = \operatorname{ar}(APB) + \operatorname{ar}(PCD)$
[Hint: Through $P$,draw a line parallel to $AB$.]
$(i)$ $\operatorname{ar}(APB) + \operatorname{ar}(PCD) = \frac{1}{2} \operatorname{ar}(ABCD)$
$(ii)$ $\operatorname{ar}(APD) + \operatorname{ar}(PBC) = \operatorname{ar}(APB) + \operatorname{ar}(PCD)$
[Hint: Through $P$,draw a line parallel to $AB$.]
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View SolutionIn the given figure,$ABCD$,$DCFE$ and $ABFE$ are parallelograms. Show that $\operatorname{ar}(ADE) = \operatorname{ar}(BCF)$.
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View SolutionIn the figure,$ABCDE$ is a pentagon. $A$ line through $B$ parallel to $AC$ meets $DC$ produced at $F$. Show that:
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View SolutionThe side $AB$ of a parallelogram $ABCD$ is produced to any point $P$. $A$ line through $A$ and parallel to $CP$ meets $CB$ produced at $Q$ and then parallelogram $PBQR$ is completed. Show that $\text{ar}(ABCD) = \text{ar}(PBQR)$.
[Hint: Join $AC$ and $PQ$. Now compare $\text{ar}(ACQ)$ and $\text{ar}(APQ)$.]
[Hint: Join $AC$ and $PQ$. Now compare $\text{ar}(ACQ)$ and $\text{ar}(APQ)$.]
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