Bài 8 trang 78 SGK Đại số và Giải tích 12 Nâng caoĐơn giản biểu thức:
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Đơn giản biểu thức: LG a \({{\sqrt a - \sqrt b } \over {\root 4 \of a - \root 4 \of b }} - {{\sqrt a + \root 4 \of {ab} } \over {\root 4 \of a + \root 4 \of b }}\) Lời giải chi tiết: \({{\sqrt a - \sqrt b } \over {\root 4 \of a - \root 4 \of b }} - {{\sqrt a + \root 4 \of {ab} } \over {\root 4 \of a + \root 4 \of b }}\) \(= {{\left( {\root 4 \of a + \root 4 \of b } \right)\left( {\root 4 \of a - \root 4 \of b } \right)} \over {\root 4 \of a - \root 4 \of b }} - {{\root 4 \of a \left( {\root 4 \of a + \root 4 \of b } \right)} \over {\root 4 \of a + \root 4 \of b }}\) \( = \root 4 \of a + \root 4 \of b - \root 4 \of a = \root 4 \of b \) LG b \({{a - b} \over {\root 3 \of a - \root 3 \of b }} - {{a + b} \over {\root 3 \of a + \root 3 \of b }}\) Lời giải chi tiết: \({{a - b} \over {\root 3 \of a - \root 3 \of b }} - {{a + b} \over {\root 3 \of a + \root 3 \of b }} \) \(= {{{{\left( {\root 3 \of a } \right)}^3} - {{\left( {\root 3 \of b } \right)}^3}} \over {\root 3 \of a - \root 3 \of b }} - {{{{\left( {\root 3 \of a } \right)}^3} + {{\left( {\root 3 \of b } \right)}^3}} \over {\root 3 \of a + \root 3 \of b }}\) \( = \frac{{\left( {\sqrt[3]{a} - \sqrt[3]{b}} \right)\left( {\sqrt[3]{{{a^2}}} + \sqrt[3]{{ab}} + \sqrt[3]{{{b^2}}}} \right)}}{{\left( {\sqrt[3]{a} - \sqrt[3]{b}} \right)}}\) \( - \frac{{\left( {\sqrt[3]{a} + \sqrt[3]{b}} \right)\left( {\sqrt[3]{{{a^2}}} - \sqrt[3]{{ab}} + \sqrt[3]{{{b^2}}}} \right)}}{{\left( {\sqrt[3]{a} + \sqrt[3]{b}} \right)}}\) \( = (\root 3 \of {{a^2}} + \root 3 \of {ab} + \root 3 \of {{b^2}}) \) \( - \left( {\root 3 \of {{a^2}} - \root 3 \of {ab} + \root 3 \of {{b^2}} } \right) \) \(= 2\root 3 \of {ab} \) LG c \(\left( {{{a + b} \over {\root 3 \of a + \root 3 \of b }} - \root 3 \of {ab} } \right):{\left( {\root 3 \of a - \root 3 \of b } \right)^2};\) Lời giải chi tiết: \(\left( {{{a + b} \over {\root 3 \of a + \root 3 \of b }} - \root 3 \of {ab} } \right):{\left( {\root 3 \of a - \root 3 \of b } \right)^2}\) \( = (\frac{{\left( {\sqrt[3]{a} + \sqrt[3]{b}} \right)\left( {\sqrt[3]{{{a^2}}} - \sqrt[3]{{ab}} + \sqrt[3]{{{b^2}}}} \right)}}{{\left( {\sqrt[3]{a} + \sqrt[3]{b}} \right)}}- \root 3 \of {ab}):\) \(:{\left( {\sqrt[3]{a} - \sqrt[3]{b}} \right)^2}\) \(= \left( {\root 3 \of {{a^2}} - \root 3 \of {ab} + \root 3 \of {{b^2}} - \root 3 \of {ab} } \right):\) \(:{\left( {\root 3 \of a - \root 3 \of b } \right)^2}\) \( = \left( {\root 3 \of {{a^2}} - 2\root 3 \of {ab} + \root 3 \of {{b^2}} } \right):{\left( {\root 3 \of a - \root 3 \of b } \right)^2} \) \(= {\left( {\root 3 \of a - \root 3 \of b } \right)^2}:{\left( {\root 3 \of a - \root 3 \of b } \right)^2} = 1\) LG d \({{a - 1} \over {{a^{{3 \over 4}}} + {a^{{1 \over 2}}}}}.{{\sqrt a + \root 4 \of a } \over {\sqrt a + 1}}.{a^{{1 \over 4}}} + 1.\) Lời giải chi tiết: \({{a - 1} \over {{a^{{3 \over 4}}} + {a^{{1 \over 2}}}}}.{{\sqrt a + \root 4 \of a } \over {\sqrt a + 1}}.{a^{{1 \over 4}}} + 1. \) \(= {{\left( {\sqrt a + 1} \right)\left( {\sqrt a - 1} \right)} \over {\sqrt[4]{{{a^3}}} + \sqrt a }}.{{\root 4 \of a \left( {\root 4 \of a + 1} \right)} \over {\left( {\sqrt a + 1} \right)}}.\root 4 \of a + 1\) \( = \frac{{\left( {\sqrt a + 1} \right)\left( {\sqrt[4]{a} + 1} \right)\left( {\sqrt[4]{a} - 1} \right)}}{{\sqrt a \left( {\sqrt[4]{a} + 1} \right)}}.\frac{{\sqrt[4]{a}\left( {\sqrt[4]{a} + 1} \right)}}{{\sqrt a + 1}}.\sqrt[4]{a} + 1\) \( = \frac{{\left( {\sqrt[4]{a} + 1} \right)\left( {\sqrt[4]{a} - 1} \right).{{\left( {\sqrt[4]{a}} \right)}^2}}}{{\sqrt a }} + 1\) \( = \sqrt a - 1 + 1 = \sqrt a \). Cách khác: HocTot.Nam.Name.Vn
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