一道简单的高中数学题,哪位进来看下帮帮忙
已知实数a,b满足a-3a^(2/3)+5a^(1/3)=1,b-3b^(2/3)+5b^(1/3)=5,求a^(1/3)+b^(1/3)...
已知实数a,b满足a-3a^(2/3)+5a^(1/3)=1, b-3b^(2/3)+5b^(1/3)=5,求a^(1/3)+b^(1/3)
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令a^(1/3)=x, b^(1/3)=y 化简
a-3a^(2/3)+5a^(1/3)=1
x^3-3x^2+5x-1=0
x(x-1)(x-2)+3(x-1)=-2
(x-1)((x-1)^2+2)=-2
(x-1)^3+2(x-1)=-2
b-3b^(2/3)+5b^(1/3)=5
y^3-3y^2+5y-5=0
y(y-1)(y-2)+3(y-1)=2
(y-1)^3+2(y-1)=2
函数f(x')=x'^3+2x'=x'(x'^2+2)
f(-x')=-f(x')
f(x')为原点对称的奇函数
上述方程组可看成 f(x')=2 f(x')=-2
即 y-1=x0
x-1=-x0
x-1+y-1=x0+(-x0)=0
即x+y=2
a-3a^(2/3)+5a^(1/3)=1
x^3-3x^2+5x-1=0
x(x-1)(x-2)+3(x-1)=-2
(x-1)((x-1)^2+2)=-2
(x-1)^3+2(x-1)=-2
b-3b^(2/3)+5b^(1/3)=5
y^3-3y^2+5y-5=0
y(y-1)(y-2)+3(y-1)=2
(y-1)^3+2(y-1)=2
函数f(x')=x'^3+2x'=x'(x'^2+2)
f(-x')=-f(x')
f(x')为原点对称的奇函数
上述方程组可看成 f(x')=2 f(x')=-2
即 y-1=x0
x-1=-x0
x-1+y-1=x0+(-x0)=0
即x+y=2
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