Apotemi Yayinlari Analitik Geometri Apr 2026

Given typical contest style, maybe I made algebra slip. But this derivation shows area→0 as m→0. So possibly intended: line through B and tangent to circle? No, that yields one intersection. Hmm.

Compute: ( (1152u+560)(1+u)^2 = (576u^2+560u) \cdot 2(1+u) ). Divide both sides by ( 2(1+u) ) (since ( u>0 )): ( (1152u+560)(1+u) = 2(576u^2+560u) ). Expand LHS: ( 1152u + 1152u^2 + 560 + 560u = 1152u^2 + 1712u + 560 ). RHS: ( 1152u^2 + 1120u ).

[ \text(a) (x+2)^2+(y-1)^2=36 \quad \text(b) Circle, center (-2,1),\ r=6 \quad \text(c) \inf \text area =0 \text as m\to 0^+ ] Apotemi Yayinlari Analitik Geometri

RHS: ( (144u^2+140u)(u+1) = 144u^3 + 144u^2 + 140u^2 + 140u = 144u^3 + 284u^2 + 140u ).

Thus final: minimal area 0 as m→0, but triangle degenerates. For non-degenerate, no minimum, but if they ask for minimizing area among non-degenerate, it's arbitrarily small. Given typical contest style, maybe I made algebra slip

Set numerator=0: ( (288u+140)(u^2+2u+1) = (144u^2+140u) \cdot 2(u+1) ). Divide both sides by 2: ( (144u+70)(u^2+2u+1) = (144u^2+140u)(u+1) ).

Area of triangle ( A(2,0), R_1, R_2 ): Use determinant formula: [ \textArea = \frac12 | x_A(y_1 - y_2) + x_1(y_2 - y_A) + x_2(y_A - y_1) |. ] Better: shift coordinates to simplify. Let ( u = x-2, v = y ) (translate so ( A ) at origin). Then ( A'=(0,0) ), ( R_i' = (t_i - 4, m t_i) ). Area = ( \frac12 | (t_1-4)(m t_2) - (t_2-4)(m t_1) | ) (since ( \frac12 |x_1 y_2 - x_2 y_1| ) in translated coords). Simplify: [ (t_1-4)m t_2 - (t_2-4)m t_1 = m[ t_1 t_2 - 4 t_2 - t_1 t_2 + 4 t_1 ] = m[ 4(t_1 - t_2) ]. ] So Area = ( \frac12 | 4m (t_1 - t_2) | = 2m |t_1 - t_2| ). No, that yields one intersection

Mistake? Let’s recheck derivative carefully.