已知x-y=a,z-y=6

(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

x+2y-z=6①x-y+2z=3②，①×2+②，得x+y=5，则y=5-x③，①+2×②，得x+z=4，则z=4-x④，把③④代入x2+y2+z2得，x2+（5-x）2+（4-x）2=3x2-18x

实数x,y,z,满足那么x+y=6,z^2=xy-9,∴xy=z^+9,(x-y)^=(x+y)^-4xy=-4z^>=0,∴z=0,(x+y)^z=6^0=1.

x+y-z=6y+z-x=2z+x-y=0三式相加得x+y+z=8-得2z=2z=1-得2x=6x=3-得2y=8y=4x=3y=4z=1

udong

设：x/4=y/5=z/6=k则有：x=4k,y=5k,z=6k(x+y+z)/(3x-2y+z)=(4k+5k+6k)/(12k-10k+6k)=15k/8k=15/8

x+y+z=3a(x-a)+(y-a)+(z-a)=0令m=x-a,n=y-a,k=z-am+n+k=0k=-(m+n)原式=mnk/(m^3+n^3+k^3)=-(m+n)mn/[-(m+n)^3+

①代表3x+7y+z=6,②代表4x+10y+z=7,②-①得出x+3y=1,①*4,变成12x+28y+4z=24②*3,变成12x+30y+3z=21,再相减得出z-2y=3,把x+3y=1和z-

因为X,Y,Z,A为自然数,所以1/X+1/Y+1/Z

X=2Y=3Z=6a=1因为a,x,y,z都是自然数且1/x+1/y+1/z=a所以x,y,z都不为0,a也不为0则a,x,y,z>=1,因此1/x+1/y+1/z的最大值(因为X,Y,Z都是自然数,

因为x/y+z+y/z+x+z/x+y=1所以x/y+z=1-y/z+x-z/x+y,两边同乘以x得x^2/y+z=x-xy/z+x-xz/x+y同理y^2/x+z=y-xy/z+y-yz/x+y,z

/>x/4=y/5=z/6=t分别用t表示x,y,z然后带入到要求的式子x+y+z/3x-2y+z中最终解得结果

解法1：2x+5y+4z=0式①3x+y-7z=0式②x+y-z=?式③式①=0,式②=0,所以式①-式③=式②-式③即：2x+5y+4z-x-y+z=3x+y-7z-x-y+zx+4y+5z=2x+

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

等于0.x/(y+z)=1-[y/(z+x)+z/(x+y)]y/(z+x)=1-[x/(y+z)+z/(x+y)]z/(x+y)=1-[x/(y+z)+y/(z+x)]x2/(y+z)+y2/(z+

(X+Y+Z)^2=x^2+y^2+z^2+2(xy+yz+xz)=a^2=x^2+y^2+z^2+2b所以x^2+y^2+z^2=a^2-2

X+Y-Z=6.aY+Z-X=2.bZ+X-Y=0.ca,b,c三式相加X+Y+Z=8.dd式-a式2Z=2Z=1d式-b式2X=6X=3d式-C式2Y=8Y=4

括号是什么意思?只有一半

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