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The Diagonal of a Rhombus are Perpendicular to Each Other

Quadrilaterals II - Concepts

Properties of Rectangle

Diagonals of a Rectangle Are of Equal Length

Properties of Rhombus

The Diagonal of a Rhombus are Perpendicular to Each Other

Properties of Square

Diagonals of Square Are Equal and Perpendicular to Each Other.

Mid Point Theorem

Converse Mid Point Theorem

Class - 9th IMO Subjects

Concept Explanation

The Diagonal of a Rhombus are Perpendicular to Each Other

Theorem: The diagonal of a rhombus are perpendicular to each other
Given: A rhombus ABCD in which AC and BD are diagonals. To Prove: AC and BC intersect perpendicularly. Proof: As ABCD is a rhombus Therefore it is a parallelogram $Rightarrow$ AB= BC = CD= DA and AB \|\|CD , AD\|\|BC ....................(1) Also diagonals of a parallelogram bisect each other. $Rightarrow$ AO = OC and BO = OD ...................(2) In $Delta$ BOC and $Delta$ COD BO = DO [ From Equation (2)] BC = CD [ From Equation (1)] OC = OC [ Common ] Therfore $Delta$ BOC $cong$ $Delta$ DOC [SSS Criteria of Congruence] $Rightarrow angle COB = angle COD$ [ By CPCT ] ............(3) But $angle COB + angle COD = 180^0$ [Linear Pair] $angle COB + angle COB = 180^0$ [Using Eq 3] $2 angle COB = 180^0Rightarrow angle COB = 90^0$ $Rightarrow angle COB = angle COD = 90^0$ Similarly we can prove that $angle AOB = angle AOD = 90^0$ $angle AOB = angle AOD = angle COB = angle COD =90^0$ Hence Proved.
Theorem: Show that if the diagonals of a quadrilateral bisect each other at right angles, then it is a rhombus.
Given: A quadrilateral ABCD such that AC and CD bisect at Right angle. AO = OC and BO = OD ....................(1) AC $perp$ BD To Prove: ABCD is a rhombus. Proof: In $Delta$ AOB and $Delta$ COD AO = OC [ From Equation (1)] BO = OD [ From Equation (1)] $angle$ AOB = $angle$ COD [ Each $90^0$ as AC $perp$ BD] Therefore $Delta$ AOB $cong$ $Delta$ COD [ SAS Criteria of Congurence] $Rightarrow$ $angle$ BAO = $angle$ DCO [CPCT] But they are alternate angles When AB and CD are straight lines and AC is the transversal $Rightarrow$ AB \|\| CD Similarly we can Prove that AD \|\| BC As both pairs of opposite sides are equal Therefore ABCD is a \|\|gm In $Delta$ AOB and $Delta$ COB AO = OC [ From Equation (1)] BO = OB [ Common] $angle$ AOB = $angle$ COB [ Each $90^0$ as AC $perp$ BD] Therefore $Delta$ AOB $cong$ $Delta$ COB [ SAS Criteria of Congurence] AB = BC [CPCT] As ABCD is a IIgm and the adjacent sides are equal AB = BC Therefore ABCD is a rhombus
Illustration: ABCD is a rhombus in which diagonal AC is produced to E . If $angle DCE = 138^0$ find $angle DOC, angle ABD; and ; angle DAC$
Solution: As ABCD is a rhombus and we know diagonals of rhombus bisect at right angle. $therefore angle DOC= 90^0$ In $Delta DOC$ $angle CDO +angle DOC = angle DCE$ [Exterior angle = Sum of Interior Opposite Angles] $angle CDO +90^0 = 138^0$ $Rightarrow angle CDO = 138^0- 90^0= 48^0$ As every rhombus is a parallelogram, Therefore CD \|\| AB $Rightarrow angle ABD =angle CDO$ [Alternate Interior Angles when CD \|\| AB and BD is the transversal] $Rightarrow angle ABD =48^0$ In the figure $angle ACD+ angle DCE = 180^0$ [Linear pairs when ACE is a ray and DC stands on it ] $angle ACD+ 138^0 = 180^0Rightarrow angle ACD = 180 - 138= 42^0$ In $Delta ADC$ $angle DAC= angle ACD$ [ Angles opposite to equal sides are equal and AD = DC sides of a rhombus] $angle DAC= 42^0$ Hence $angle DOC=90^0, angle ABD= 48^0; and ; angle DAC= 42^0$

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The Diagonal of a Rhombus are Perpendicular to Each Other

The Diagonal of a Rhombus are Perpendicular to Each Other

Students / Parents Reviews [10]

Prisha Gupta

Yatharthi Sharma

Cheshta

Shivam Rana

Shreya Shrivastava

Manish Kumar

Eshan Arora

Barkha Arora

Om Umang

Hiya Gupta