【答案】
分析:先根據(jù)對(duì)數(shù)函數(shù)的真數(shù)大于零求定義域,再把復(fù)合函數(shù)分成二次函數(shù)和對(duì)數(shù)函數(shù),分別在定義域內(nèi)判斷兩個(gè)基本初等函數(shù)的單調(diào)性,再由“同增異減”求原函數(shù)的遞增區(qū)間.
解答:解:要使函數(shù)有意義,則6-x-x
2>0,解得-3<x<2,故函數(shù)的定義域是(-3,2),
令t=-x
2-x+6=-
+
,則函數(shù)t在(-3,-
)上遞增,在[-
,2)上遞減,
又因函數(shù)y=
在定義域上單調(diào)遞減,
故由復(fù)合函數(shù)的單調(diào)性知y=
(6-x-x
2)的單調(diào)遞增區(qū)間是[-
,2).
故選A.
點(diǎn)評(píng):本題的考點(diǎn)是復(fù)合函數(shù)的單調(diào)性,對(duì)于對(duì)數(shù)函數(shù)需要先求出定義域,這也是容易出錯(cuò)的地方;再把原函數(shù)分成幾個(gè)基本初等函數(shù)分別判斷單調(diào)性,再利用“同增異減”求原函數(shù)的單調(diào)性.