.已知x,y,z均为非负数,且满足x y z=30,设m

x+y+z=30(1)3x+y-z=50(2)5x+4y+2z=m(3)(1)+(2)4x+2y=802x+y=40(4)(2)*2+(3)6x+2y+5x+4y=100+m11x+6y=100+m(

X+2Y=1+Z2X+3Y=1+3Z解得X=3Z-1>=0Y=1-Z>=0Z>=01/3

120到130.由x+y+z=30①,3x+y-z=50②②-①得x-z=10.因为x,y,z都是大于等于0所以z>=0①+②=4x+2y=80推出x

X+Y+Z=30,3X+Y-Z=50看成关于YZ的二元一次方程组解得Y=80-2XZ=X-10XYZ都是非负数组成关于X的不等式组得10≤X≤40代入M=5X+4Y+2Z得M=-X+300所以260≤

解x-1=1/2(y+1)=1/3(z-2)∴2(x-1)=y+1,3(x-1)=z-2∴y=2x-3,z=3x-1∴x²+y²+z²=x²+(2x-3)

先把Z当成已知数,联立方程组求出X=（1+Z）/2Y=5/6(1-Z)所以U=3X-2Y+4Z=3/2（1+Z）-5/3（1-Z）+4Z=-1/6+(43/6)Z因为XYZ都是非负实数,所以X≥0即（

3y+2z=x+3,(1)3y+z=4-3x(2)(1)-(2)得：z=4x-1代入（2）得：y=(-7x+5)/3∴W=3x+y+z=3x+(-7x+5)/3+4x-1=14x/3+2/3∵x,y,

3x+2y+z=5①2x+y-3z=1②①-②×2得7z-x=3∴z=(x+3)/7③①×3+②得11x+7y=16∴y=(16-11x)/7④把③④代入S=3x+y-7z得S=3x+(16-11x)

最大为6,最小为3.2.再问：请问可以写下过程吗再答：2*（x+y-z)=2x+2y-2z=1*2=2(2x+2y-2z)+(x+2y+3z)=3x+4y+z=2+4=6W=3x+2y+z=(3x+4

3y+2z=x+3,(1)3y+z=4-3x(2)(1)-(2)得：z=4x-1代入（2）得：y=(-7x+5)/3∴W=3x+y+z=3x+(-7x+5)/3+4x-1=14x/3+2/3∵x,y,

由题可得：x-a=0,y-b=0,z-c=0所以想x,y,z均为负数则xy/z为负数由题可得,a+b=0,cd=1,m=±2当m=2时,（a+b+cd）m-cd=（0+1）×2-1=1当m=-2时,（

左边=2x2+2y2+2z2-2xy-2yz-2xz,右边=6x2+6y2+6z2-6xy-6yz-6xz．所以已知条件变形为2x2+2y2+2z2-2xy-2yz-2xz=0,即(x-y)2+(x-

x+y-z/z=y+z-x/x=z+x-y/y,应用等比定理,得（x+y-z+y+z-x+z+x-y)/(x+y+z)=(x+y-z)/z,所以(x+y+z)/(x+y+z)=（x+y-z)/z,即1

3(x-1)=2(2-y)3x-3=4-2yy=(7-3x)/2>=0x=0x>=-1/2所以0

3X+2Y+Z=5,2X+Y-3Z=1解得x=7z-3,y=7-11z∵XYZ是三个非负数∴x>=0即7z-3>=0y>=0即7-11z>=0z>=0∴3/7

1.x+y+z=30,3x+y-z=50,x,y,z为非负数,求5x+4y+2z取值范围.x+y+z=303x+y-z=505x+4y+2z=m把m当作常数,解此方程组x=140-my=-240+2m

2X-2Z=20X=Z+10>=0Z>=0>=-10Y=20-2Z>=0Z

x+y+z+3x+y-z=80.解得y=40-2x,x+y+z-(3x+y-z)=-20,解得z=x-10,因为x,y,z均为非负数,则y=40-2x＞0,z=x-10＞0,x＞0.解得10＜x＜20

x+y+z+3x+y-z=80.解得y=40-2x,x+y+z-(3x+y-z)=-20,解得z=x-10,因为x,y,z均为非负数,则y=40-2x＞0,z=x-10＞0,x＞0.解得10＜x＜20

3X+2Y+Z=5,2X+Y-3Z=1解得x=7z-3,y=7-11z∵XYZ是三个非负数∴x>=0即7z-3>=0y>=0即7-11z>=0z>=0∴3/7