let Ar(ABC)=S
let BC=k
then AD(the perpendicular from A to BC)=2S/k
once we have A then the triangle is done so the thing is all points which are at a disatnce 2S/k from BC satisfy this cond so
the locus are paralllell lines one at the "top" and another at the bottom a distance 2S/k from BC
Moderation Team
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