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Test: Application Of Integrals (CBSE Level) - 1

25 Questions MCQ Test Mathematics (Maths) Class 12 | Test: Application Of Integrals (CBSE Level) - 1

Description

This mock test of Test: Application Of Integrals (CBSE Level) - 1 for JEE helps you for every JEE entrance exam. This contains 25 Multiple Choice Questions for JEE Test: Application Of Integrals (CBSE Level) - 1 (mcq) to study with solutions a complete question bank. The solved questions answers in this Test: Application Of Integrals (CBSE Level) - 1 quiz give you a good mix of easy questions and tough questions. JEE students definitely take this Test: Application Of Integrals (CBSE Level) - 1 exercise for a better result in the exam. You can find other Test: Application Of Integrals (CBSE Level) - 1 extra questions, long questions & short questions for JEE on EduRev as well by searching above.

QUESTION: 1

A.
π ab
B.
C.
D.
None of these

Solution:

Area of standard ellipse is given by :πab.

QUESTION: 2

The area bounded by the curve y = 4x - x² and the x- axis is equal to

Solution:

For x - axis, y = 0,

Therefore, 4x - x² = 0

Therefore, x = 0 or x = 4

Required area :

QUESTION: 3

The area of the smaller segment cut off from the circle x²+y² = 9by x = 1 is

A.
B.
C.
9sec⁻¹(3)−√8
D.
none of these

Solution:

QUESTION: 4

For which of the following values of m , is the area of the region bounded by the curve y = x - x² and the line y = mx equal to 9/2 ?

A.
-2
B.
2
C.
-4
D.
none of these

Solution:

QUESTION: 5

The area of the region bounded by the parabola (y−2)² = x−1,the tangent to yhe parabola at the point (2 , 3) and the x – axis is equal to

A.
12 sq. units
B.
6 sq. units
C.
9 sq. units
D.
none of these

Solution:

Therefore, tangent at (2, 3) is y – 3 = ½ (x – 2). i.e. x – 2y +4 = 0 . therefore required area is

QUESTION: 6

The area of the loop between the curve y = a sin x and the x – axis and x = 0 , x = π. is

A.
a
B.
2a
C.
3a
D.
none of these

Solution:

QUESTION: 7

The area bounded by the curve y² = x,line y = 4 and y – axis is equal to

A.
7√2
B.
16/3
C.
64/3
D.
none of these

Solution:

QUESTION: 8

The area enclosed by the curve xy² = a²(a − x) and the y – axis is

A.
2π
B.
C.
a²
D.
none of these

Solution:

QUESTION: 9

The area bounded by the curve y = x[x], the x – axis and the ordinates x = 1 and x = -1 is given by

A.
0
B.
1/2
C.
2/3
D.
none of these

Solution:

Graph of y = x [x]

QUESTION: 10

The area bounded by the curves y = cos x and y = sin x between the ordinates x = 0 and x = π/2 is equal to

A.
2(√2+1)sq. units
B.
(4√2+1)sq. units
C.
2(√2−1)sq. units
D.
(4√2-1)sq. units

Solution:

QUESTION: 11

The area enclosed between the curves y = x³ ,x- axis and two ordinates x = 1 to x = 2 is [in square units]

A.
15/4
B.
5/3
C.
5/4
D.
12/5

Solution:

QUESTION: 12

The area bounded by y = log x , the x – axis and the ordinates x = 1 and x = 2 is

A.
log 2/e
B.
log 4
C.
log 4/e
D.
none of these

Solution:

QUESTION: 13

The area bounded by the curves y² = x³ and |y| = 2x is given by

A.
2
B.
32/5
C.
32/2
D.
none of these

Solution:

Both y² = x³ and |y| = 2x are symmetric about y – axis and on solving them we get :

QUESTION: 14

The area bounded by the curve y = 2x - x² and the line x + y = 0 is

A.
9/2 sq. units
B.
35/6 sq. units
C.
19/6 sq. units
D.
none of these

Solution:

The equation y = 2x − x² i.e. y – 1 = - (x - 1)² represents a downward parabola with vertex at (1, 1) which meets x – axis where y = 0 .i .e . where x = 0 , 2. Also , the line y = - x meets this parabola where – x = 2x − x² i.e. where x = 0 , 3.
Therefore , required area is :

QUESTION: 15

The area bounded by the parabola y = x² and the line y = x is

A.
1/2 sq. units
B.
1/3 sq. units
C.
1/6 sq. units
D.
none of these

Solution:

QUESTION: 16

Area of the region bounded by the curves y = e^x, x = a , x = b and the x- axis is given by

A.
e^b−e^a
B.
e^b−a
C.
e^b+e^a
D.
none of these

Solution:

QUESTION: 17

The area bounded by the curves y² = 4x and y = x is equal to

A.
8/3
B.
35/6
C.
1/3
D.
none of these

Solution:

The two curves y² = 4x and y = x meet where x² = 4x i.e ..where x = 0 or x = 4 . Moreover , the parabola lies above the line y = x between x = 0 and x = 4 . Hence , the required are is :

QUESTION: 18

The area bounded by the curves y = √x, 2y+3 = x and the x- axis in the first quadrant is

A.
9
B.
36
C.
25
D.
none of these

Solution:

To find area the curves y = √x and x = 2y + 3 and x – axis in the first quadrant., We have ; y²−− 2y −− 3 = 0 (y – 3) (y + 1) = 0 . y = 3 , - 1 . In first quadrant , y = 3 and x = 9.
Therefore , required area is ;

QUESTION: 19

Let y be the function which passes through (1 , 2) having slope (2x + 1) . The area bounded between the curve and the x – axis is

A.
1/6 sq. units
B.
6 sq. units
C.
5/6 sq. units
D.
none of these

Solution:

Given slope of the curve is 2x + 1.

Also , it passes through (1, 2).
∴ 2 = 1+1+c ⇒ c = 0
Equation of curve is : y = x² + x. Therefore , points of intersection of y = x (x +1) and the x – axis are x = 0 , x = - 1.
Required area :