bai1: $C_{m} : x^{2} + y^{2} + mx - 4y - m + 2=0$
a/ tim m de $C_{m}$ la duong tron. tim diem co dinh cua $C_{m}$
b/ khi C_{m} di qua goc O(0,0) hay viet phuong trinh $\Delta // D : 3x - 4y=0$ va $\Delta$ chan tren duong tron 1 doan co do dai bang 4
c/ tim m de $C_{m}$ tiep xuc coi truc Oy
$C_m:x^2+y^2+mx-4y-m+2=0$
a. 
$ x^2+y^2+mx-4y-m+2=0$
$\Leftrightarrow  (x+\frac{m}{2})^2+(y-2)^2=\frac{m^2}{4}+m+2>0   $
$\Rightarrow C_m $ luôn là một đường tròn
$C_m(1,1)=C(1,3)=0$
Vậy  $C_m$  luôn đi qua  $(1,1)   ;  (1,3)$
b.
$C_m(0,0)=0\Leftrightarrow -m+2=0\Leftrightarrow m=2$
$C_m:  (x+1)^2+(y-2)^2=5$
Do bán kính đường tròn là  $\sqrt5$  mà độ  dài đoạn chắn là $4$
Ta suy ra khoảng cách từ  tâm  $(-1,2)$  đến   $\Delta : 3x-4y+c=0$  bằng $1$ và bằng
$1=h=\frac{|-3-8+c|}{\sqrt{3^2+4^2}}$
$\Rightarrow |c-11|=5$
$\Rightarrow c=16,6$
$\Delta :  3x-4y+6=0$   hoặc  $\Delta :  3x-4y+16=0$
c.  Tâm của  $C_m:  O_m(-\frac{m}{2},2)$   ,  Bán kính  $\sqrt{\frac{m^2}{4}+m+2}$
$C_m$  tiếp xúc với trục $Oy$  khi và chỉ khi
$|\frac{m}{2}|=\sqrt{\frac{m^2}{4}+m+2}$
$\Leftrightarrow \frac{m^2}{4}=\frac{m^2}{4}+m+2$
$\Leftrightarrow m=-2$

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