Câu hỏi của Nguyễn Thị Huyền Diệp

Question

Cho $-1\le a\le1$. Tìm GTLN của b sao cho BĐT đúng $\sqrt{1-a^4}+\left(b+1\right)\left(\sqrt{1+a^2}+\sqrt{1-a^2}\right)+b-4\le0$

Nguyễn Việt Lâm · Accepted Answer

Đặt $\sqrt{1+a^2}+\sqrt{1-a^2}=x\Rightarrow\sqrt{2}\le x\le2$$x^2=2+2\sqrt{1-a^4}\Rightarrow\sqrt{1-a^4}=\dfrac{x^2-2}{2}$$\Rightarrow\dfrac{x^2-2}{2}+\left(b+1\right)x+b-4\le0$$\Rightarrow x^2+2\left(b+1\right)x+2b-10\le0$$\Rightarrow x^2+2x-10\le-2b\left(x+1\right)$$\Rightarrow-2b\ge\dfrac{x^2+2x-10}{x+1}$$\Rightarrow-2b\ge\max\limits_{\left[\sqrt{2};2\right]}f\left(x\right)$ với $f\left(x\right)=\dfrac{x^2+2x-10}{x+1}$Xét trên $\left[\sqrt{2};2\right]$ ta có:$f\left(x\right)=\dfrac{3x^2+6x-30}{3\left(x+1\right)}=\dfrac{3x^2+8x-28-2\left(x+1\right)}{3\left(x+1\right)}=\dfrac{\left(3x+14\right)\left(x-2\right)}{3\left(x+1\right)}-\dfrac{2}{3}\le-\dfrac{2}{3}$$\Rightarrow-2b\ge-\dfrac{2}{3}\Rightarrow b\le\dfrac{1}{3}$Vậy $b_{max}=\dfrac{1}{3}$Câu trả lời: Đặt $\sqrt{1+a^2}+\sqrt{1-a^2}=x\Rightarrow\sqrt{2}\le x\le2$$x^2=2+2\sqrt{1-a^4}\Rightarrow\sqrt{1-a^4}=\dfrac{x^2-2}{2}$$\Rightarrow\dfrac{x^2-2}{2}+\left(b+1\right)x+b-4\le0$$\Rightarrow x^2+2\left(b+1\right)x+2b-10\le0$$\Rightarrow x^2+2x-10\le-2b\left(x+1\right)$$\Rightarrow-2b\ge\dfrac{x^2+2x-10}{x+1}$$\Rightarrow-2b\ge\max\limits_{\left[\sqrt{2};2\right]}f\left(x\right)$ với $f\left(x\right)=\dfrac{x^2+2x-10}{x+1}$Xét trên $\left[\sqrt{2};2\right]$ ta có:$f\left(x\right)=\dfrac{3x^2+6x-30}{3\left(x+1\right)}=\dfrac{3x^2+8x-28-2\left(x+1\right)}{3\left(x+1\right)}=\dfrac{\left(3x+14\right)\left(x-2\right)}{3\left(x+1\right)}-\dfrac{2}{3}\le-\dfrac{2}{3}$$\Rightarrow-2b\ge-\dfrac{2}{3}\Rightarrow b\le\dfrac{1}{3}$Vậy $b_{max}=\dfrac{1}{3}$

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