answer the following questions in proper writing on paper
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In ΔABC, AB>AC, AD⊥BC,
According to Pythagoras theorem,
AB2 = AD2 + BD2
⇒ AB2 = AD2 + (BE + DE)2
⇒ AB2 = AD2 + BE2 + DE2 + 2 . BE . DE --------------------- (1)
AC2 = AD2 + CD2
AC2 = AD2 + (CE - DE)2
AC2 = AD2 + CE2+ DE2 - 2 . CE . DE --------------------- (2)
Adding equations (1) and (2),
AB2 + AC2 = AD2 + BE2 + DE2 + 2 . BE . DE + AD2 + CE2 + DE2 - 2 . CE . DE
But CE = BE,
AB2 + AC2 = 2AD2 + 2BE2 + 2DE2
⇒ AB2 + AC2 = 2(AD2 + DE2) + 2BE2
⇒ AB2 + AC2 = 2(AD2 + DE2) + 2BE2
⇒ AB2 + AC2 = 2AE2 + 2BE2 [AD2 + DE2 = AE2]
∴ AB2 + AC2 = 2AE2 + 2BE2
Hence proved.
According to Pythagoras theorem,
AB2 = AD2 + BD2
⇒ AB2 = AD2 + (BE + DE)2
⇒ AB2 = AD2 + BE2 + DE2 + 2 . BE . DE --------------------- (1)
AC2 = AD2 + CD2
AC2 = AD2 + (CE - DE)2
AC2 = AD2 + CE2+ DE2 - 2 . CE . DE --------------------- (2)
Adding equations (1) and (2),
AB2 + AC2 = AD2 + BE2 + DE2 + 2 . BE . DE + AD2 + CE2 + DE2 - 2 . CE . DE
But CE = BE,
AB2 + AC2 = 2AD2 + 2BE2 + 2DE2
⇒ AB2 + AC2 = 2(AD2 + DE2) + 2BE2
⇒ AB2 + AC2 = 2(AD2 + DE2) + 2BE2
⇒ AB2 + AC2 = 2AE2 + 2BE2 [AD2 + DE2 = AE2]
∴ AB2 + AC2 = 2AE2 + 2BE2
Hence proved.
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Hey !!
Your answer Is in the attachment...
HOPE it helps you....
Thanks ^-^
Your answer Is in the attachment...
HOPE it helps you....
Thanks ^-^
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