Ex 6.4, 1 (i) - Chapter 6 Class 12 Application of Derivatives

Last updated at April 15, 2021 by Teachoo

Ex 6.4, 1 (i) - Find approximate value of √25.3 (Using differentials)

Ex 6.4, 1 (i) - Chapter 6 Class 12 Application of Derivatives - Part 2

Ex 6.4, 1 (i) - Chapter 6 Class 12 Application of Derivatives - Part 3

Transcript

Ex 6.4, 1 Using differentials, find the approximate value of each of the following up to 3 places of decimal. (i) √25.3Let y = √𝑥 where x = 25 & △ x = 0.3 Since y = √𝑥 𝑑𝑦/𝑑𝑥 = (𝑑(√𝑥))/𝑑𝑥 = 1/(2√𝑥) Now, ∆𝑦 = 𝑑𝑦/𝑑𝑥 △x = 1/(2√𝑥) (0.3) = 1/(2√25) (0.3) = 1/(2 × 5) × 0.3 = 0.3/10 = 0.03 Also, ∆𝑦=𝑓(𝑥+∆𝑥)−𝑓(𝑥) Putting values ∆𝑦=√(𝑥+∆𝑥)−√𝑥 0. 03=√(25+0. 3)−√25 0. 03=√(25. 3)−5 0. 03+5=√(25. 3) √(25. 3)=5. 03 Hence, approximate value of √25.3 is 5.03

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Chapter 6 Class 12 Application of Derivatives

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