x,y,z为正实数 x/(2x+y+z)+y/(x+2y+z)+z/(x+y+2z)
人气:132 ℃ 时间:2019-12-07 01:11:33
解答
x/(2x+y+z)=[3*(2x+y+z)-(x+2y+z)-(x+y+2z)-]/(4(2x+y+z))
y/(x+2y+z)=[3*(x+y+2z)-(2x+y+z)-(x+y+2z)]/(4(x+2y+z))
z/(x+y+2z)=[3*(x+y+2z)-(2x+y+z)-(x+2y+z)]/(4(x+2y+z))
所以
左边=(3/4)*3 -(1/4)((2x+y+z)/(x+2y+z)+(x+2y+z)/(2x+y+z)+(x+2y+z)/(x+y+2z)+(x+y+2z)/(x+2y+z)+(x+y+2z)/(2x+y+z)+(2x+y+z)(x+y+2z))
又因为((2x+y+z)/(x+2y+z)+(x+2y+z)/(2x+y+z)+(x+2y+z)/(x+y+2z)+(x+y+2z)/(x+2y+z)+(x+y+2z)/(2x+y+z)+(2x+y+z)(x+y+2z))>=6
所以左边
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