求Z=X^3-Y^3 3x^2 3y^2-9x的极值.

(x+y-z)/z=(y+z-x)/x=(z+x-y)/y[x+y]/z-1=[y+z]/x-1=[z+x]/y-1[x+y]/z=[y+z]/x=[z+x]/y设[x+y]/z=[y+z]/x=[z

5x+3y=3z--------a-x-3y=-z--------ba式+b式4x=2z得z=2x代入a中得x=3y,y=x/3x:y:z=x:x/3:2x=1:1/3:2=3:1:6

x/(y+z)=y/(x+z)=z/(x+y)当x+y+z=0时,x+y=-z(x+y)/z=-z/z=-1当x+y+z≠0时,由x/(y+z)=y/(x+z)=z/(x+y)根据等比性质可得(x+y

设x/3=y/4=z/5=k,则x=3ky=4kz=5k带入x+y+z/3x-2y+z,最后约去k就可以了

设(x+y-z)/z=(x-y+z)/y=(-x+y+z)/x=k则（1）x+y-z=kz（2）x-y+z=ky（3）-x+y+z=kx（1）+（2）+（3）得x+y+z=k(x+y+z)∴k=1时,

设x/3=y/4=z/5=m则x=3m,y=4m,z=5m则x+y+z/3x-2y+z=（3m+4m+5m）/（9m-8m+5m）=12/6=2

∵y+z÷x=Z+X÷y=X+Y÷z容易发现x,y,z位置互换也成立∴式子与x,y,z值无关∴x=y=z∴（X+Y-Z）÷（X+Y+z）=x/3x=1/3明教为您解答,请点击[满意答案];如若您有不满

因为x:y:z=3：4：5所以设x=3k,y=4k,z=5k(k≠0)(1)z/(x+y)=5k/(3k+4k)=5k/7k=5/7(2)x+y+z=63k+4k+5k=612k=6k=1/2x=3k

x+y+z-6=02x+3y-z-12=02x-y-z=0组成方程组再解x=2y=3z=1

设：(x+y-z)/z=(y+z-x)/x=(z+x-y)/y=k{x+y-z=kz(1){y+z-x=kx(2){z+x-y=ky(3)(1)+(2)+(3)得:(x+y+z)=k(x+y+z)(x

4x-3y-3z=0.1)x-3y+z=0.2)相减：3x=4zx/z=4/31)-2)*4:9y=7zy/z=7/9所以：x/z=4/3,y/z=7/9

令(y+z)/x=(z+x)/y=(x+y)/z=ky+z=kxx+z=kyx+y=kz2(x+y+z)=k(x+y+z)2(x+y+z)=k(x+y+z)(2-k)(x+y+z)=0(x+y+z≠0

4x-3y-3z=0(1)x-3y+z=0(2)(1)-(2):3x-4z=0x=4z/3代入(1):16z/3-3y-3z=0y=7z/9所以：x:z=4:3y:z=7:9

解二元一次方程X+Y-5Z=0,3X-3Y-Z=0,求X:y:z16Y-14X=0X:Y=7/8X=7k,Y=8kZ=3kX:y:z=7:8:3再问：O(∩_∩)O谢谢！恩·····可以再详细点，吗？

x+2y+3z=20.(1)x+3y+5z=31.(2)(1)*2-(2)得x+y+z=9

设x+y-z/z=x-y+z/y=y+z-x/x=k有x+y-z=kzx-y+z=kyy+z-x=kx三式相加得x+y+z=k（x+y+z）k=1得x+y=（k+1）zx+z=（k+1）yy+z=（k

X=3K,Y=4K,Z=5K3X+2Y-4Z=189K+8K-20K=18K=-6X=-18,Y=-24,Z=-30X+Y+Z=-72

根号x-3+|y-2|+z^2=2z-1根号x-3+|y-2|+（z^2-2z+1)=0根号x-3+|y-2|+(z-1)^2=0由于数值开根号,绝对值和平方数均为大于等于0的数则上式要成立只有X-3

3元一次方程,好像是初一的问题哦.根据前面两个等式可以得出x=3zy=z(平方)/32x+3y+4z=2*(3z)+3*(z方/3)+4z现在变成了一元二次方程,你应该会解吧.

应该是3X=4Y,5Y=6Z吧?X+Y：Y+Z=[(4Y/3)+Y]：(Y+5Y/6)=14;11