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Exercise 6.4 - Application of Derivative NCERT Solutions | Mathematics (Maths) Class 12 - JEE PDF Download

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 Page 1


 
 
 
 
 
NCERT Solutions for Class 12 Maths Chapter 6 Application of 
Derivatives 
 
 
Exercise 6.4                                                            Page No: 216 
 
1. Using differentials, find the approximate value of each of the following up to 3 places 
of decimal: 
(i)  
(ii)  
(iii)  
(iv)  
(v)  
(vi)  
(vii)  
(viii)  
(ix)  
(x)  
(xi)  
(xii)  
(xiii)  
(xiv)  
(xv)  
 
Solution:  
(i)  
Consider,  ……….(1) and then 
  
On differentiating equation (1) w.r.t. x, we get 
Page 2


 
 
 
 
 
NCERT Solutions for Class 12 Maths Chapter 6 Application of 
Derivatives 
 
 
Exercise 6.4                                                            Page No: 216 
 
1. Using differentials, find the approximate value of each of the following up to 3 places 
of decimal: 
(i)  
(ii)  
(iii)  
(iv)  
(v)  
(vi)  
(vii)  
(viii)  
(ix)  
(x)  
(xi)  
(xii)  
(xiii)  
(xiv)  
(xv)  
 
Solution:  
(i)  
Consider,  ……….(1) and then 
  
On differentiating equation (1) w.r.t. x, we get 
 
 
 
 
 
NCERT Solutions for Class 12 Maths Chapter 6 Application of 
Derivatives 
  =  
  ……….(2) 
Now, given expression can be written as, 
 
Here,  and , then  
=  
  
Since,  and  is approximately equal to  and  respectively. 
 From equation (2), 
 
 = 0.03 
Hence, approximately value of  is 5 + 0.03 = 5.03. 
(ii)  
Consider,  ……….(1) 
On differentiating equation (1) w.r.t. x, we get 
  =  
  ……….(2) 
Now, from equation (1),  
 
Page 3


 
 
 
 
 
NCERT Solutions for Class 12 Maths Chapter 6 Application of 
Derivatives 
 
 
Exercise 6.4                                                            Page No: 216 
 
1. Using differentials, find the approximate value of each of the following up to 3 places 
of decimal: 
(i)  
(ii)  
(iii)  
(iv)  
(v)  
(vi)  
(vii)  
(viii)  
(ix)  
(x)  
(xi)  
(xii)  
(xiii)  
(xiv)  
(xv)  
 
Solution:  
(i)  
Consider,  ……….(1) and then 
  
On differentiating equation (1) w.r.t. x, we get 
 
 
 
 
 
NCERT Solutions for Class 12 Maths Chapter 6 Application of 
Derivatives 
  =  
  ……….(2) 
Now, given expression can be written as, 
 
Here,  and , then  
=  
  
Since,  and  is approximately equal to  and  respectively. 
 From equation (2), 
 
 = 0.03 
Hence, approximately value of  is 5 + 0.03 = 5.03. 
(ii)  
Consider,  ……….(1) 
On differentiating equation (1) w.r.t. x, we get 
  =  
  ……….(2) 
Now, from equation (1),  
 
 
 
 
 
 
NCERT Solutions for Class 12 Maths Chapter 6 Application of 
Derivatives 
 
=  
Here,  and , then 
 
=  
  
Since,  and  is approximately equal to  and  respectively. 
 From equation (2),  
= 0.0357 
So, approximately value of  is 7 + 0.0357 = 7.0357. 
(iii)  
Consider,  ……….(1) 
On differentiating equation (1) w.r.t. x, we get 
  =  
  ……….(2) 
Now, from equation (1),  
=  
Here,  and , then 
 
Page 4


 
 
 
 
 
NCERT Solutions for Class 12 Maths Chapter 6 Application of 
Derivatives 
 
 
Exercise 6.4                                                            Page No: 216 
 
1. Using differentials, find the approximate value of each of the following up to 3 places 
of decimal: 
(i)  
(ii)  
(iii)  
(iv)  
(v)  
(vi)  
(vii)  
(viii)  
(ix)  
(x)  
(xi)  
(xii)  
(xiii)  
(xiv)  
(xv)  
 
Solution:  
(i)  
Consider,  ……….(1) and then 
  
On differentiating equation (1) w.r.t. x, we get 
 
 
 
 
 
NCERT Solutions for Class 12 Maths Chapter 6 Application of 
Derivatives 
  =  
  ……….(2) 
Now, given expression can be written as, 
 
Here,  and , then  
=  
  
Since,  and  is approximately equal to  and  respectively. 
 From equation (2), 
 
 = 0.03 
Hence, approximately value of  is 5 + 0.03 = 5.03. 
(ii)  
Consider,  ……….(1) 
On differentiating equation (1) w.r.t. x, we get 
  =  
  ……….(2) 
Now, from equation (1),  
 
 
 
 
 
 
NCERT Solutions for Class 12 Maths Chapter 6 Application of 
Derivatives 
 
=  
Here,  and , then 
 
=  
  
Since,  and  is approximately equal to  and  respectively. 
 From equation (2),  
= 0.0357 
So, approximately value of  is 7 + 0.0357 = 7.0357. 
(iii)  
Consider,  ……….(1) 
On differentiating equation (1) w.r.t. x, we get 
  =  
  ……….(2) 
Now, from equation (1),  
=  
Here,  and , then 
 
 
 
 
 
 
NCERT Solutions for Class 12 Maths Chapter 6 Application of 
Derivatives 
=  
  
Since,  and  is approximately equal to  and  respectively. 
 From equation (2),  =  
Therefore, approximately value of  is 0.8 – 0.025 = 0.775. 
(iv)  
Consider,  ……….(1) 
On differentiating equation (1) w.r.t. x, we get 
  =  
  ……….(2) 
Now, from equation (1),  
=  
Here,  and , 
then  
=  
  
Since,  and  is approximately equal to  and  respectively. 
Page 5


 
 
 
 
 
NCERT Solutions for Class 12 Maths Chapter 6 Application of 
Derivatives 
 
 
Exercise 6.4                                                            Page No: 216 
 
1. Using differentials, find the approximate value of each of the following up to 3 places 
of decimal: 
(i)  
(ii)  
(iii)  
(iv)  
(v)  
(vi)  
(vii)  
(viii)  
(ix)  
(x)  
(xi)  
(xii)  
(xiii)  
(xiv)  
(xv)  
 
Solution:  
(i)  
Consider,  ……….(1) and then 
  
On differentiating equation (1) w.r.t. x, we get 
 
 
 
 
 
NCERT Solutions for Class 12 Maths Chapter 6 Application of 
Derivatives 
  =  
  ……….(2) 
Now, given expression can be written as, 
 
Here,  and , then  
=  
  
Since,  and  is approximately equal to  and  respectively. 
 From equation (2), 
 
 = 0.03 
Hence, approximately value of  is 5 + 0.03 = 5.03. 
(ii)  
Consider,  ……….(1) 
On differentiating equation (1) w.r.t. x, we get 
  =  
  ……….(2) 
Now, from equation (1),  
 
 
 
 
 
 
NCERT Solutions for Class 12 Maths Chapter 6 Application of 
Derivatives 
 
=  
Here,  and , then 
 
=  
  
Since,  and  is approximately equal to  and  respectively. 
 From equation (2),  
= 0.0357 
So, approximately value of  is 7 + 0.0357 = 7.0357. 
(iii)  
Consider,  ……….(1) 
On differentiating equation (1) w.r.t. x, we get 
  =  
  ……….(2) 
Now, from equation (1),  
=  
Here,  and , then 
 
 
 
 
 
 
NCERT Solutions for Class 12 Maths Chapter 6 Application of 
Derivatives 
=  
  
Since,  and  is approximately equal to  and  respectively. 
 From equation (2),  =  
Therefore, approximately value of  is 0.8 – 0.025 = 0.775. 
(iv)  
Consider,  ……….(1) 
On differentiating equation (1) w.r.t. x, we get 
  =  
  ……….(2) 
Now, from equation (1),  
=  
Here,  and , 
then  
=  
  
Since,  and  is approximately equal to  and  respectively. 
 
 
 
 
 
NCERT Solutions for Class 12 Maths Chapter 6 Application of 
Derivatives 
 From equation 
(2),  
=  = 0.0083 
Therefore, approximately value of  is 0.2 + 0.0083 = 0.2083. 
(v)  
Consider,  ……….(1) 
On differentiating equation (1) w.r.t. x, we get 
  =  
  ……….(2) 
Now, from equation (1),  
=  =  ……….(3) 
Here  and  
Then  
=  
  =  
Since,  and  is approximately equal to  and  respectively. 
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FAQs on Exercise 6.4 - Application of Derivative NCERT Solutions - Mathematics (Maths) Class 12 - JEE

1. What are some real-life applications of derivatives?
Ans. Some real-life applications of derivatives include determining maximum and minimum values, analyzing rates of change, optimizing functions, and predicting future behavior in various fields such as physics, economics, and engineering.
2. How can derivatives be used to calculate velocity and acceleration?
Ans. Derivatives can be used to calculate velocity by finding the derivative of the position function with respect to time, and acceleration by finding the derivative of the velocity function with respect to time.
3. What is the relationship between the derivative and the slope of a curve?
Ans. The derivative of a function at a specific point gives the slope of the tangent line to the curve at that point. In other words, the derivative represents the rate of change of the function at that point.
4. How do derivatives help in optimizing functions?
Ans. Derivatives help in optimizing functions by finding critical points where the derivative is zero, which can indicate maximum or minimum values of the function. By analyzing these points, one can determine the optimal solution for a given problem.
5. Can derivatives be used to predict future trends in data analysis?
Ans. Yes, derivatives can be used to predict future trends in data analysis by analyzing the rate of change of a function at different points. By extrapolating this information, one can make predictions about the future behavior of the data.
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