$???解:(1)令y=0 ����,得-x2+(m-2)x+ m+1 =0???$
$???因?yàn)閎2-4ac=(m-2)2+ 4(m+ 1)= m2+ 8\gt 0???$
$???所以一元二次方程有兩個(gè)不相等的實(shí)數(shù)根???$
$???所以這個(gè)二次函數(shù)的圖像必與x軸有兩個(gè)公共點(diǎn)???$
$???(2)令x=0,得y=m+1???$
$???所以這個(gè)二次函數(shù)與y軸的交點(diǎn)為(0 �����, m+1)???$
$???由題意得,m+1\lt 0???$
$???解得�����, m\lt -1???$
$???所以當(dāng)m\lt -1時(shí)�,二次函數(shù)的圖像與y軸的交點(diǎn)在y軸的負(fù)半軸上???$
$???(3)由題意得,\frac {-(m-2)}{-2}=0???$
$???解得���,m=2???$
$???所以當(dāng)m = 2時(shí)�����,這個(gè)二次函數(shù)的圖像的對(duì)稱軸是y軸??$
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