第一和第四题 实在不知道什么是分母分子,下面是除1和4以外的所有题目答案.2.=(a-b/a+2b)+(a^2-b^2)/(a+2b)^2
=(a-b)(a+2b)/(a+2b)^2+(a^2-b^2)/(a+2b)^2
=(a^2+2ab-ab-2b^2+a^2-b^2)/(a+2b)^2
=(2a^2+ab-3b^2)/(a+2b)^2
=(2a+3b)(a-b)/(a+2b)^23.原式可化为3x^2-4x+15=0,
配方得3(x-2/3)^2+41/3=0,
方程无解.5.由已知1,分母为0,b= 6,由已知2,a=-5.
则6a+9b=6*6+ 9*(-5)=-96.(x-2)/(x-1)
=(x-1-1)/(x-1)
=(x-1)/(x-1)-1/(x-1)
=1-1/(x-1)
(x-3)/(x-2)
=(x-2-1)/(x-2)
=(x-2)/(x-2)-1/(x-2)
=1-1/(x-2)
x>2
所以x-1>x-2>0
所以1/(x-1)-1/(x-2)
-1/(x-1)>1-1/(x-2)
所以(x-2)/(x-1)>(x-3)/(x-2)7.(1/b-1/a)(2b^2/a^2-b^2-a-b/2a+2b-a+b/2b-2a),
=(a-b)/ab×[2b²/(a+b)(a-b)-(a-b)/2(a+b)+(a+b)/2(a-b)]
=1/ab×[2b²/(a+b)-(a-b)²/2(a+b)+(a+b)/2]
=1/ab×[4b²-(a-b)²+(a+b)²]/2(a+b)
=1/ab×(4b²+4ab)/2(a+b)
=2/a
当a=-1/2时 原式=-48. 设每们乘客能免费带的为X千克,那么为了节省钱,他必须将X,分给另外一个人,这样才能保证不负费的行李量最多,还剩下50-X,这里面还有X可以不负费,那么负费的为50-2X,依题意有450/(50-X)=150/(50-2X)得到50-X=3*(50-2X)
5X=100,X=20 所以每人带20千克行李,