How to Graph the Linear Equation x + 2y = 2
How to Graph the Linear Equation x + 2y = 2

Misc 15 - Chapter 8 Class 12 Application of Integrals - Part 2
Misc 15 - Chapter 8 Class 12 Application of Integrals - Part 3
Misc 15 - Chapter 8 Class 12 Application of Integrals - Part 4
Misc 15 - Chapter 8 Class 12 Application of Integrals - Part 5
Misc 15 - Chapter 8 Class 12 Application of Integrals - Part 6
Misc 15 - Chapter 8 Class 12 Application of Integrals - Part 7
Misc 15 - Chapter 8 Class 12 Application of Integrals - Part 8
Misc 15 - Chapter 8 Class 12 Application of Integrals - Part 9
Misc 15 - Chapter 8 Class 12 Application of Integrals - Part 10

Miscellaneous

Misc 1 (ii) Important

Misc 2 Important

Misc 3 Important

Misc 4 (MCQ)

Misc 5 (MCQ) Important

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Question 5 Deleted for CBSE Board 2024 Exams

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Question 11 Important Deleted for CBSE Board 2024 Exams

Question 12 Deleted for CBSE Board 2024 Exams You are here

Question 13 (MCQ) Deleted for CBSE Board 2024 Exams

Question 14 (MCQ) Important Deleted for CBSE Board 2024 Exams

Miscellaneous

Last updated at May 29, 2023 by Teachoo

Question 12 Find the area of the region { , : 2 4 , 4 2+ 4 2 9} Drawing figures Now, our figure will be Circle is 4 2+ 4 2 9 2+ 2 9 4 2+ 2 3 2 2 Radius of circle = 3 2 So, Point C ( 3 2 , 0) Finding point of intersection A & B Solving 2 =4 (1) & 4 2+ 4 2= 9 (2) Putting (1) in (2) 4 2+ 4 2= 9 4 2+ 4 4 =9 4 2+16 9=0 4 2+18 2 9=0 2 (2 +9) 1(2 +9)=0 2 1 2 +9 =0 So, = 1 2 & = 9 2 Area OAC Area OAC = Area ACD + Area OAD Area ACD Area ACD = 1 2 3 2 Equation of circle 2 + 2 = 9 4 2 = 9 4 2 = 9 4 2 Therefore Area ACD = 1 2 3 2 9 4 2 = 1 2 3 2 3 2 2 2 = 2 3 2 2 2 + 3 2 2 2 sin 1 3 2 1 2 3 2 = 2 9 4 2 + 9 8 sin 1 2 3 1 2 3 2 = 3 2 2 9 4 3 2 2 + 9 8 sin 1 2 3 2 3 1 2 2 9 4 1 2 2 + 9 8 sin 1 2 1 2 3 = 3 4 9 4 9 4 + 9 8 sin 1 1 1 4 9 4 1 4 + 9 8 sin 1 1 3 = 9 8 sin 1 1 2 4 9 8 sin 1 1 3 = 9 16 2 4 9 8 sin 1 1 3 Area OAD Area OAD = 0 1 2 Equation of parabola 2 =4 = 4 Therefore Area OAD = 0 1 2 4 =2 0 1 2 =2 0 1 2 1 2 =2 3 2 3 2 0 1 2 = 4 3 [ 3 2 ] 0 1 2 = 4 3 1 2 3 2 0 3 2 = 4 3 1 2 2 = 4 3 1 2 2 2 2 = 2 3 Area OAC = Area ACD + Area OAD = 9 16 2 4 9 8 sin 1 1 3 + 2 3 = 9 16 9 8 sin 1 1 3 + 2 12 Required Area = 2 Area OAC = 2 9 16 9 8 sin 1 1 3 + 2 12 = 9 8 9 4 sin 1 1 3 + 2 6 = 9 8 9 4 sin 1 1 3 + 2 6 2 2 = 9 8 9 4 sin 1 1 3 + 2 6 2 = +

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