平面x y z=0,x^2 y^2 z^2=a^2,积分ydx zdy xdz

X+Y-Z=6①Y+Z-X=2②Z+X-y=0③①+②+③得x+y+z=8④④-①得2z=2z=1④-②得2x=6x=3④-③得2y=8y=4即x=3y=4z=1

(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

1／x＝p1／y＝q1／z＝rpq+qr+pr=1(y+x)/z+(y+z)/x+(z+x)/y≥2(1/x+1/y+1/z)^2为(pq+qr+pr)[r/p+r/q+q/r+q/p+p/r+p/q

由|3x-2y+z|≥0,|2x+y+2z|≥0,且|3x-2y+z|+|2x+y+2z|=0,得|3x-2y+z|=|2x+y+2z|=0∴3x-2y+z=2x+y+2z=0由3x-2y+z=2x+

3xyz+2(x^2y+y^2z-xyz)-xyz+2z^2x原式=3xyz+2（x²y+y²z+z²x）-3xyz=2（x²y+y²z+z²

4x-y+3z=0(1)2x+y+6z=0(2)()+(2)6x+9z=06x=-9zz/x=-2/3(1)*2-(2)8x-2y-2x-y=06x-3y=06x=3yx/y=1/2z/x=-2/3x

x²+y³-xyz=0,z=（x²+y³）/（xy）=x/y+y²/x；故z/x=1/y+y²/x²z/y=x/y²+y

不妨用特殊代入法啊令a=b=c=0或者a=1,b=-1,c=0结果都是x^3+x^2z-xyz+y^3=0

因为：X+Y+Z=0得：Z+Y=-X------(1)X+Y=-Z------------(2)Z+Y=-X------------(3)X^3+X^2Z-XYZ+Y^2Z+Y^3=X^3+XZ(X+

∂z/∂x把y看成常数所以1+0+∂z/∂x-2/[2√(xyz)]*y*(1*z+x*∂z/∂x)=01+∂z/&

=(x+y+z)^2+yz(y+z+x)=(x+y+z)(x+y+z+yz)

2x-y+z=0上式两边同时除以x可得y/x-z/x=2标注为①x-2y+3z=0上式两边同时除以x刻碟2y/x-3z/x=1标注为②联解①与②可得y/x=5,z/x=3所以(x²+3y&#

因为x+2y-z=0,7x-y-z=0两式相减,得：6x-3y=0,所以y=2x代入x+2y-z=0中,得：x+4x-z=0,那么z=5x那么(x+y+z)÷(2x-y-z)=(x+2x+5x)÷(2

由2x+3y-3z=0得：z-y=2x/3(2x+y-z)/(2x-y+z)=(2x-（z-y）)/(2x+（z-y）)将z-y=2x/3代入上式得：(2x+y-z)/(2x-y+z)=(2x-（2x

是指所构造的方程存在实数解时,其判别式△不小于0.再问：：t^2-(y+z)t+yz=0这个是什么意思再答：题目抄错了，应当是证明x²≥3.利用韦达定理啊!依条件式知：yz＝x²,

4x-3y+z=0(1)x+2y-8z=0(2)(1)-(2)×4得-11y+33z=0∴y=3z把y=3z代入(2)得x=2z把x=2z,y=3z代入x+y-z/x-y+2z得原式=(2z+3z-z

x平方+y平方+2z平方-2x+4y+4z+7=0,则x²-2x+1+y²+4y+4+2z²+4z+2=0则(x-1)²+(y+2)²+2(z+1)&

x*x+y*y+2z*z-2x+4y+4z+7=0(x*x-2x+1)+(y*y+4y+4)+2(z*z+2z+1)=0(x-1)^2+(y+2)^2+2(z+1)^2=0x=1,y=-2,z=-1x

x-z-2=0,3x-6y-7=0,3y+3z-4=0,解得x=-1,y=-5/3,z=-3再问：过程再答：因为|x-z-2|+（3x-6y-7)的二次方+|3y+3z-4|=0，而|x-z-2|≥0

x+y-7z=0①x-2y+5z=0②①-②得：3y-12z=0,即y=4z,2①+②得：3x-9z=0,即x=3z所以x+2y-z/y-2x+12z=11/10,再来题难点的.