问题
解答题
已知抛物线C:y2=2px(P>0)的准线为l,过M(1,0)且斜率为
(1)求抛物线的方程; (2)过点K(-1,0)的直线m与C相交于A、B两点, ①若BM=2AM,求直线AB的方程; ②若点A关于x轴的对称点为D,求证:点M在直线BD上. |
答案
(1)设直线PQ:y=3x-3,代入y2=2px得3x2+(-6-2p)x+3=0,
又∵
=PM
,MQ
∴x=12p+2,解得p2+4P-12=0,
解得p=2,p=-6(舍去)
故抛物线的方程为:y2=4x.
(2)①设A(x1,y1),B(x2,y2),
|
|=BM
=x2+1,(x2-1) 2+y22
|
| =AM
=x1+1,(x1-1)2+y1 2
∵|
| =2|BM
|,AM
∴x2=2x1+1,
由此能导出直线AB的斜率k=±
,2 2 3
∴直线AB为:y=±
(x+1)2 2 3
②设A(x1,y1),B(x2,y2),则D(x1,-y1),
设直线l:y=k(x+1),(k≠0),
代入y2=4x,化简整理,得k2x2+(2k2-4)x+k2=0,
由△>0,得0<k2<1,x1+x2=-
,x1x2=1,2k2-4 k2
kBF=
,kDF=-y2 x2-1
,y1 x1-1
∴kBF-kDF=
+y2 x2-1 y1 x1-1
=k(x2+1)(x1-1)+k(x1+1)(x2-1) (x2-1)(x1-1)
=
=0,2k(x1x2-1) x1x2-(x1+x2)+1
∴点M在BD上.