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A,B是抛物线y^2=2px(p>0)上的两点,满足OA垂直OB,求证直线AB恒过一定点这个答案最后一步怎么得到的不理解
题目内容:
A,B是抛物线y^2=2px(p>0)上的两点,满足OA垂直OB,求证直线AB恒过一定点
这个答案最后一步怎么得到的不理解啊
(y1+y2)*y=2p(x-2p)怎么求?
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设A(X1,Y1),B(X2,Y2)则 y1^2=2px1,y2^2=2px2
∠AOB=90
(y1*y2)/(x1*x2)=-1 即y1*y2=-4P^2
由直线AB得:y-y1=(y1-y2)/(x1-x2)*(x-x1)
因为 y1^2=2px1,y2^2=2px2两式相减
y1^2-y^2=2p(x1-x2)
(y1+y2)(y1-y2)=2p(x1-x2)
(y1-y2)/(x1-x2)=2p/(y1+y2)
故y-y1=2p/(y1+y2)*(x-x1)
又y1*y2=-4P^2,y1^2=2px1,y2^2=2px2
(y-y1)(y1+y2)=2p*(x-x1)
yy1+yy2-y1^2-y1y2=2px-2px1
yy1+yy2-2px1+4p^2=2px-2px1
yy1+yy2=2px-4p^2
故(y2+y1)*y=2p*(x-2p)
x=2p时,y恒为0
所以直线AB过定点(2p,0)
这个答案最后一步怎么得到的不理解啊
(y1+y2)*y=2p(x-2p)怎么求?
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优质解答
∠AOB=90
(y1*y2)/(x1*x2)=-1 即y1*y2=-4P^2
由直线AB得:y-y1=(y1-y2)/(x1-x2)*(x-x1)
因为 y1^2=2px1,y2^2=2px2两式相减
y1^2-y^2=2p(x1-x2)
(y1+y2)(y1-y2)=2p(x1-x2)
(y1-y2)/(x1-x2)=2p/(y1+y2)
故y-y1=2p/(y1+y2)*(x-x1)
又y1*y2=-4P^2,y1^2=2px1,y2^2=2px2
(y-y1)(y1+y2)=2p*(x-x1)
yy1+yy2-y1^2-y1y2=2px-2px1
yy1+yy2-2px1+4p^2=2px-2px1
yy1+yy2=2px-4p^2
故(y2+y1)*y=2p*(x-2p)
x=2p时,y恒为0
所以直线AB过定点(2p,0)
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