椭圆x^2/25+y^2/9=1上不同三点A(x1,y1),B(4,9/4),C(x2,y2)到焦点F(4,0)的距离成等差数列,求x1+x2.
问题描述:
椭圆x^2/25+y^2/9=1上不同三点A(x1,y1),B(4,9/4),C(x2,y2)到焦点F(4,0)的距离成等差数列,求x1+x2.
答
由已知三距离成等差数列 |AF|-|BF|=|BF|-|CF| ,得:
2*|BF|=|AF|+|CF| → 2*9/5=[ (x1-4)^2 + y1^2 ]^(1/2) + [ (x2-4)^2 + y2^2 ]^(1/2)
因为(x1,y1),(x2,y2)在圆上,x1^2/25+y1^2/9=1,x2^2/25+y2^2/9=1,带入上面方程得:
2*9/5 = [ (25-4*x1)^2/25 ]^(1/2) + [ (25-4*x2)^2/25 ]^(1/2)
2*9/5 = [ 50 - 4(x1+x2) ]/5
∴ x1+x2=8 ;①
又∵ y1^2-y2^2=(-9/25)*(x1^2-x2^2)=(-72/25)*(x1-x2)
∴ -(x1-x2) / (y1-y2) = (25/72)*(y1+y2) ②
AC的垂直平分线过AC中点[ (x1+x2)/2,(y1+y2)/2 ],且与AC垂直,其方程可表示为:
y = [-(x1-x2) / (y1-y2) ] * [ x-(x1+x2)/2 ] + (y1+y2)/2 根据①、②式可得:
y = (25/72)*(y1+y2) * [ x-64/25 ]
所以,AC垂直平分线必过 ( 64/25,0 ) 点.
选为满意吧!