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Question
In an obtuse ΔABC (∠B is obtuse), AD is perpendicular to CB produced. Then prove that AC2 = AB2 + BC2 + 2BC × BD.
Theorem
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Solution
Given: An obtuse triangle ABC, obtuse-angled at B and AD is perpendicular to CB produced.
To Prove: AC2 = AB2 + BC2 + 2BC × BD
Proof: Since, ΔADB is a right triangle, right-angled at D.
∴ Pythagoras theorem, we have
AB2 = AD2 + DB2 ...(i)
Again, ΔADC is a right triangle, right-angled at D.
∴ AC2 = AD2 + DC2 ...(By Pythagoras Theorem)
⇒ AC2 = AD2 + (DB + BC)2
⇒ AC2 = AD2 + DB2 + BC2 + 2DB × BC
⇒ AC2 = AB2 + BC2 + 2DB × BC ...[Using equation (i)]
Hence Proved.
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