Bài 3c (SGK-T132): Tính các giới hạn: \[\mathop {lim}\limits_{x \to 6} \frac{{\sqrt {x + 3} – 3}}{{x – 6}}\]

  Giải: \(\underset{x\rightarrow 6}{lim}\) \(\frac{\sqrt{x + 3}-3}{x-6}\) = \(\underset{x\rightarrow 6}{lim}\) \(\frac{(\sqrt{x + 3}-3)(\sqrt{x + 3}+3 )}{(x-6) (\sqrt{x + 3}+3 )}\) = \(\underset{x\rightarrow 6}{lim}\) \(\frac{x +3-9}{(x-6) (\sqrt{x + 3}+3 )}\) = \(\underset{x\rightarrow 6}{lim}\) \(\frac{1}{\sqrt{x+3}+3}\) = \(\frac{1}{6}\).

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