FieAC∩DB={0}
DM mediana inΔDAB,
DN=2NM⇒N centrude greutateΔDAB⇒AO mediana inΔ DAB⇒DO≡OB⇒
⇒O, jumatatea diagonaleiDB⇒ O jumatatea diagonalei AC ( ABCD dreptunghi, O , centrude simetrie)⇒A,O, C coliniare
b) Arie ΔAMN=1/3 *ArieΔDAM=(1/3) *(DA*AM)/2=(1/3)*100*75/2=
25*100/2=1250m², nu m
am tinut cont ca AM=AB/2=150/2=75m
si ca NM=1/2*DN=1/3*DM; depta AN imparte ΔΔDAM in 2 triunghiuri e aceeasi inaltime (distanta de la A la DN este unica) si cu baze in raport 1/2
frumoasa problema!!
