求解两道数学题~~谢谢
2.求x. 3x(x-1)^(1/2) + 2(x-1)^(3/2)
求详细点的步骤。。谢谢了 展开
(1):y=x^3-3; y=5-2x x^3-3=5-2x
x^3+2x-8=0
方程x^3+px+q=0的三个根为:
x1=[-q/2+((q/2)^2+(p/3)^3)^(1/2)]^(1/3)+[-q/2-((q/2)^2+(p/3)^3)^(1/2)]^(1/3);
x2=w[-q/2+((q/2)^2+(p/3)^3)^(1/2)]^(1/3)+ w^2[-q/2-((q/2)^2+(p/3)^3)^(1/2)]^(1/3);
x3=w^2[-q/2+((q/2)^2+(p/3)^3)^(1/2)]^(1/3)w[-q/2-((q/2)^2+(p/3)^3)^(1/2)]^(1/3),
其中w=(-1+i√3)/2。
p=2,q=-8代入可求得三个精确根,x1肯定是实根,x2 x3有可能是复根
http://zh.numberempire.com/equationsolver.php
(2)3x(x-1)^(1/2) + 2(x-1)^(3/2)=(x-1)^(1/2)×(3x+2x-2)=0
x1=1,x2=2/5(舍去)
x-1为被开方数,故x-1》0,x》1,所以x=1
x = (2 (18 + Sqrt[330]))^(1/3)/3^(2/3) - 2^(
2/3)/(3 (18 + Sqrt[330]))^(1/3)
y= 5 - (2 (2 (18 + Sqrt[330]))^(1/3))/3^(2/3) + (
2 2^(2/3))/(3 (18 + Sqrt[330]))^(1/3)
x = -(((1 - I Sqrt[3]) (18 + Sqrt[330])^(1/3))/6^(2/3)) + (
1 + I Sqrt[3])/(6 (18 + Sqrt[330]))^(1/3)
y= 1/3 (15 - (3 I 2^(2/3) 3^(1/6))/(18 + Sqrt[330])^(1/3) - 6^(
2/3)/(18 + Sqrt[330])^(1/3) -
I 3^(5/6) (2 (18 + Sqrt[330]))^(1/3) + (6 (18 + Sqrt[330]))^(1/3)
x= -(((1 + I Sqrt[3]) (18 + Sqrt[330])^(1/3))/6^(2/3)) + (
1 - I Sqrt[3])/(6 (18 + Sqrt[330]))^(1/3)
y = 1/3 (15 + (3 I 2^(2/3) 3^(1/6))/(18 + Sqrt[330])^(1/3) - 6^(
2/3)/(18 + Sqrt[330])^(1/3) +
I 3^(5/6) (2 (18 + Sqrt[330]))^(1/3) + (6 (18 + Sqrt[330]))^(1/3)
3x(x-1)^(1/2) = 2(x-1)^(3/2)
x= 1, x =-2
y=x^2-3 .........................1
y=5-2x...........................2
式1-式2得x^2+2x-8=0,x=2或-4
3x(x-1)^(1/2) + 2(x-1)^(3/2)=0
(x-1)^(1/2)【3x+2(x-1)^2】=0
(x-1)^(1/2)=0或3x+2(x-1)^2=0
解得x=1
第二道题为什么第二步会有二次方呢。。我感觉其他人的步骤更能理解。。不过答案的确只有1。。而且2/5 5/2带入也对不上。。
3x(x-1)^(1/2) + 2(x-1)^(3/2)=0
(x-1)^(1/2)【3x+2(x-1)】=0
(x-1)^(1/2)=0或3x+2(x-1)=0
解得x=1或x=5/2
y=x^2-3 .........................1
y=5-2x...........................2
1式-2式得
x^2+2x-8=0,
(x-2)(x+4)=0,
x=2或-4
当x=2时,y=1;
当x=4时,y=13.
3x(x-1)^(1/2) + 2(x-1)^(3/2)=0
(x-1)^(1/2)【3x+2(x-1)】=0
(x-1)^(1/2)=0或5x-2=0
解得x=1或x=2/5.
代入式子化简得:z^3+q/(27z^3)+q=0, 再令w=z^3,
再解一个一元二次方程,顺次求出z,x 即可。望采纳,谢谢。
第二题怎么只有一个式子,等式都不是,求什么?
第二题若式子等于0,左右两边消去一个(x-1)^(1/2)即可。
