Math, asked by shahisthakhan9790, 11 months ago

Simplify 5+2root3÷7+4root3

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Answered by danishjibran

Answer:

Step-by-step explanation:

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Answered by Salmonpanna2022

$⟹11 - 6 \sqrt{3} \: \: \: \tt \red{ Ans}. \\ \\$

$\frac{5 + 2 \sqrt{3} }{7 + 4 \sqrt{3} } \\ \\$

To rationalise the denominator

We have,

$\frac{5 + 2 \sqrt{3} }{7 + 4 \sqrt{3} } \\ \\$

The denominator is 5+2√3. Multiplying the numerator and denominator by 7-4√3,

we get,

$⟹\frac{5 + 2 \sqrt{3} }{7 + 4 \sqrt{3} } \times \frac{7 - 4 \sqrt{3} }{7 - 4 \sqrt{3} } \\ \\$

$⟹ \frac{(5 + 2 \sqrt{3} )(7 - 4 \sqrt{3}) }{(7 + 4 \sqrt{3} )(7 - 4 \sqrt{3}) } \\ \\$

⬤ Applying Algebraic Identity

(a+b)(a-b) = a² - b² to the denominator

We get,

$⟹ \frac{(5 + 2 \sqrt{3} )(7 - 4 \sqrt{3}) }{(7 {)}^{2} - (4 \sqrt{3} {)}^{2} } \\ \\$

$⟹ \frac{35 + 14 \sqrt{3} - 20 \sqrt{3} - 8 \sqrt{3 \times 3} }{49 - 48} \\ \\$

$⟹ \frac{35 + 14 \sqrt{3} - 20 \sqrt{3} - 24 }{1} \\ \\$

$⟹(35 - 24) - 6 \sqrt{3} \\ \\$

$⟹11 - 6 \sqrt{3} \: \: \: \tt \red{ Ans}. \\ \\$

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