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Question
Question 11
Show that in a quadrilateral ABCD, AB + BC + CD + DA < 2 (BD + AC).
Show that in a quadrilateral ABCD, AB + BC + CD + DA < 2 (BD + AC).
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Solution
Construction: Join diagonals AC and BD.
In ΔOAB,OA+OB>AB ...(i)
[sum of two sides of a traingle is greater than the third side]
In ΔOBC,OB+OC>BC.....(ii)
[sum of two sides of a triangle is greater than the third side]
In ΔOCD,OC+OD>CD ...(iii)
[sum of two sides of a triangle is greater than the third side]
In ΔODA,OD+OA>DA ...(iv)
[sum of two sides of a triangle is greater than the third side]
On adding Eqs. (i), (ii), (iii) and (iv), we get
2[(OA+OB+OC+OD]>AB+BC+CD+DA⇒2[(OA+OC)+(OB+OD)]>AB+BC+CD+DA⇒2(AC+BD)>AB+BC+CD+DA[∵OA+OC=AC and OB+OD=BD]⇒AB+BC+CD+DA<2(BD+AC)
Construction: Join diagonals AC and BD.
In ΔOAB,OA+OB>AB ...(i)
[sum of two sides of a traingle is greater than the third side]
In ΔOBC,OB+OC>BC.....(ii)
[sum of two sides of a triangle is greater than the third side]
In ΔOCD,OC+OD>CD ...(iii)
[sum of two sides of a triangle is greater than the third side]
In ΔODA,OD+OA>DA ...(iv)
[sum of two sides of a triangle is greater than the third side]
On adding Eqs. (i), (ii), (iii) and (iv), we get
2[(OA+OB+OC+OD]>AB+BC+CD+DA⇒2[(OA+OC)+(OB+OD)]>AB+BC+CD+DA⇒2(AC+BD)>AB+BC+CD+DA[∵OA+OC=AC and OB+OD=BD]⇒AB+BC+CD+DA<2(BD+AC)
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