Math, asked by parthbudhale94, 8 months ago

In an equilateral triangle ABC, the side BC is trisected at D.

Prove that : 9 AD2 = 7 AB2​

Answers

Answered by De20va07
10

Given:   In an equilateral triangle ΔABC. The side BC is trisected at D such that BD = (1/3) BC.

To prove:  9AD2  = 7AB2 

Construction:  Draw AE ⊥ BC.

Proof :

In a ΔABC and ΔACE

AB = AC ( Given)

AE = AE ( common)

∠AEB = ∠AEC = 90°

∴ ΔABC ≅ ΔACE ( For RHS criterion)

BE = EC (By C.P.C.T)

BE = EC = BC / 2

In a right angled triangle ADE

AD2 = AE2 + DE2 ---------(1)

In a right angled triangle ABE

AB2 = AE2 + BE2 ---------(2)

From equ (1) and (2) we obtain

⇒ AD2  - AB2 =  DE2 - BE2 .

⇒ AD2  - AB2 = (BE – BD)2 - BE2 .

⇒ AD2  - AB2 = (BC / 2 – BC/3)2 – (BC/2)2 

⇒ AD2  - AB2 = ((3BC – 2BC)/6)2 – (BC/2)2 

⇒ AD2  - AB2 = BC2 / 36 – BC2 / 4 ( In a equilateral triangle ΔABC, AB = BC = CA)

⇒ AD2 = AB2 + AB2 / 36 – AB2 / 4

⇒ AD2 = (36AB2 + AB2– 9AB2) / 36

⇒ AD2 = (28AB2) / 36

⇒ AD2 = (7AB2) / 9

9AD2 = 7AB2

Hope that will also help u

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