题目
一次函数y=?x+1(0≤x≤10)与反比例函数y= (?10≤x<0)在同一平面直角坐标系中的图象如图所示,点(x1 , y1),(x2 , y2)是图象上两个不同的点,若y1=y2 , 则x1+x2的取值范围是( )A.? ≤x≤1B.? ≤x≤ C.? ≤x≤ D.1≤x≤ 答案:【答案】B【解析】当x=?10时,y= =? ;当x=10时,y=?x+1=?9,∴?9≤y1=y2≤? .设x1<x2,则y2=?x2+1、y1= ,∴x2=1?y2,x1= ,∴x1+x2=1?y2+ .设x=1?y+ (?9≤y≤? ),?9≤ym<yn≤? ,则xn?xm=ym?yn+ ? =(ym?yn)(1+ )<0,∴x=1?y+ 中x值随y值的增大而减小,∴1?(? )?10=? ≤x≤1?(?9)? = .所以答案是:B.【考点Since Wolf Warrior II was on, it has earned 5.6 billion yuan, ______ a record for national movies.A.settingB.having setC.to setD.set
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