初三上学期

每日一题:2020-10-10

每日一题: 2020-10-10

题目: 已知函数f(x)=x22x,g(x)=ax+2(a>0)f(x)=x^2-2x, g(x)=ax+2 (a\gt 0). 若对任意1x12-1\leq x_1\leq 2, 总存
1x22-1\leq x_2\leq 2. 使得f(x1)=g(x2)f(x_1)=g(x_2), 求实数aa 的取值范围.

参考思路

1x12-1\leq x_1\leq 2 时, 1f(x1)3-1\leq f(x_1)\leq 3, 因为a>0a\gt 0 所以ax+bax+b1x22-1\leq x_2\leq 2
范围内是增函数. 依据题意应该有
\[
\left\{\begin{array}{lr} a\cdot (-1)+2\leq -1 \\ 2a+2\geq 3 \end{array}\right.\Rightarrow a\geq 3
\]