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प्रश्न
Prove that the perimeter of a triangle is greater than the sum of its altitudes.
उत्तर
Given: A ΔABC in which , AD ⊥BC ,BE ⊥ AC and . CF ⊥ AB .
To prove:
AD+BE+CF+<AB+BC+AC
Figure:
Proof:
We know that of all the segments that can be drawn to a given line, from a point not lying on it, the perpendicular distance i.e., the perpendicular line segment is the shortest.
Therefore,
AD⊥ BC
⇒AB>AC and AC> AD
⇒AB+AC>2AD ............(1)
Similarly BE ⊥ AC
⇒BA>BE and BC>BE
⇒BA+BC>2BE .............(2)
And also CF⊥ AB
⇒CA> CF and CB>CF
⇒ CA+CB>2CF ..............(3)
Adding (1), (2) and (3), we get
AB+AC+BA+BC+CA+CB>2AD+2BE+2CF
⇒2AB+2BC+2CA>2(AD+BE+CF)
⇒2(AB+BC+CA)>2(AD+BE+CF)
⇒AB+BC+CA>AD+BE+CF
⇒The perimeter of the triangle is greater than the sum of its altitudes
∴ Hence proved
