NCERT Solutions Class 11th Maths Chapter – 11 Conic Sections Exercise 11.3
| Textbook | NCERT |
| class | Class – 11th |
| Subject | Mathematics |
| Chapter | Chapter – 11 |
| Chapter Name | Conic Sections |
| grade | Class 11th Maths solution |
| Medium | English |
| Source | last doubt |
NCERT Solutions Class 11th Maths Chapter – 11 Conic Sections Exercise 11.3
?Chapter – 11?
✍Conic Sections✍
?Exercise 11.3?
In each of the Exercises 1 to 9, find the coordinates of the foci, the vertices, the length of major axis, the minor axis, the eccentricity and the length of the latus rectum of the ellipse.
1. x2/36 + y2/16 = 1
Solution: Given:
The equation is x2/36 + y2/16 = 1
Here, the denominator of x2/36 is greater than the denominator of y2/16.
So, the major axis is along the x-axis, while the minor axis is along the y-axis.
On comparing the given equation with x2/a2 + y2/b2 = 1, we get
a = 6 and b = 4.
c = √(a2 – b2)
= √(36-16)
= √20
= 2√5
Then,
The coordinates of the foci are (2√5, 0) and (-2√5, 0).
The coordinates of the vertices are (6, 0) and (-6, 0)
Length of major axis = 2a = 2 (6) = 12
Length of minor axis = 2b = 2 (4) = 8
Eccentricity, e = c/a = 2√5/6 = √5/3
Length of latus rectum = 2b2/a = (2×16)/6 = 16/3
2. x2/4 + y2/25 = 1
Solution: Given:
The equation is x2/4 + y2/25 = 1
Here, the denominator of y2/25 is greater than the denominator of x2/4.
So, the major axis is along the x-axis, while the minor axis is along the y-axis.
On comparing the given equation with x2/a2 + y2/b2 = 1, we get
a = 5 and b = 2.
c = √(a2 – b2)
= √(25-4)
= √21
Then,
The coordinates of the foci are (0, √21) and (0, -√21).
The coordinates of the vertices are (0, 5) and (0, -5)
Length of major axis = 2a = 2 (5) = 10
Length of minor axis = 2b = 2 (2) = 4
Eccentricity, e = c/a = √21/5
Length of latus rectum = 2b2/a = (2×22)/5 = (2×4)/5 = 8/5
3. x2/16 + y2/9 = 1
Solution: Given:
The equation is x2/16 + y2/9 = 1 or x2/42 + y2/32 = 1
Here, the denominator of x2/16 is greater than the denominator of y2/9.
So, the major axis is along the x-axis, while the minor axis is along the y-axis.
On comparing the given equation with x2/a2 + y2/b2 = 1, we get
a = 4 and b = 3.
c = √(a2 – b2)
= √(16-9)
= √7
Then,
The coordinates of the foci are (√7, 0) and (-√7, 0).
The coordinates of the vertices are (4, 0) and (-4, 0)
Length of major axis = 2a = 2 (4) = 8
Length of minor axis = 2b = 2 (3) = 6
Eccentricity, e = c/a = √7/4
Length of latus rectum = 2b2/a = (2×32)/4 = (2×9)/4 = 18/4 = 9/2
4. x2/25 + y2/100 = 1
Solution: Given:
The equation is x2/25 + y2/100 = 1
Here, the denominator of y2/100 is greater than the denominator of x2/25.
So, the major axis is along the y-axis, while the minor axis is along the x-axis.
On comparing the given equation with x2/b2 + y2/a2 = 1, we get
b = 5 and a =10.
c = √(a2 – b2)
= √(100-25)
= √75
= 5√3
Then,
The coordinates of the foci are (0, 5√3) and (0, -5√3).
The coordinates of the vertices are (0, √10) and (0, -√10)
Length of major axis = 2a = 2 (10) = 20
Length of minor axis = 2b = 2 (5) = 10
Eccentricity, e = c/a = 5√3/10 = √3/2
Length of latus rectum = 2b2/a = (2×52)/10 = (2×25)/10 = 5
5. x2/49 + y2/36 = 1
Solution: Given:
The equation is x2/49 + y2/36 = 1
Here, the denominator of x2/49 is greater than the denominator of y2/36.
So, the major axis is along the x-axis, while the minor axis is along the y-axis.
On comparing the given equation with x2/a2 + y2/b2 = 1, we get
b = 6 and a =7
c = √(a2 – b2)
= √(49-36)
= √13
Then,
The coordinates of the foci are (√13, 0) and (-√3, 0).
The coordinates of the vertices are (7, 0) and (-7, 0)
Length of major axis = 2a = 2 (7) = 14
Length of minor axis = 2b = 2 (6) = 12
Eccentricity, e = c/a = √13/7
Length of latus rectum = 2b2/a = (2×62)/7 = (2×36)/7 = 72/7
6. x2/100 + y2/400 = 1
Solution: Given:
The equation is x2/100 + y2/400 = 1
Here, the denominator of y2/400 is greater than the denominator of x2/100.
So, the major axis is along the y-axis, while the minor axis is along the x-axis.
On comparing the given equation with x2/b2 + y2/a2 = 1, we get
b = 10 and a =20.
c = √(a2 – b2)
= √(400-100)
= √300
= 10√3
Then,
The coordinates of the foci are (0, 10√3) and (0, -10√3).
The coordinates of the vertices are (0, 20) and (0, -20)
Length of major axis = 2a = 2 (20) = 40
Length of minor axis = 2b = 2 (10) = 20
Eccentricity, e = c/a = 10√3/20 = √3/2
Length of latus rectum = 2b2/a = (2×102)/20 = (2×100)/20 = 10
7. 36×2 + 4y2 = 144
Solution: Given:
The equation is 36x2 + 4y2 = 144 or x2/4 + y2/36 = 1 or x2/22 + y2/62 = 1
Here, the denominator of y2/62 is greater than the denominator of x2/22.
So, the major axis is along the y-axis, while the minor axis is along the x-axis.
On comparing the given equation with x2/b2 + y2/a2 = 1, we get
b = 2 and a = 6.
c = √(a2 – b2)
= √(36-4)
= √32
= 4√2
Then,
The coordinates of the foci are (0, 4√2) and (0, -4√2).
The coordinates of the vertices are (0, 6) and (0, -6)
Length of major axis = 2a = 2 (6) = 12
Length of minor axis = 2b = 2 (2) = 4
Eccentricity, e = c/a = 4√2/6 = 2√2/3
Length of latus rectum = 2b2/a = (2×22)/6 = (2×4)/6 = 4/3
8. 16x2 + y2 = 16
Solution: Given:
The equation is 16×2 + y2 = 16 or x2/1 + y2/16 = 1 or x2/12 + y2/42 = 1
Here, the denominator of y2/42 is greater than the denominator of x2/12.
So, the major axis is along the y-axis, while the minor axis is along the x-axis.
On comparing the given equation with x2/b2 + y2/a2 = 1, we get
b =1 and a =4.
c = √(a2 – b2)
= √(16-1)
= √15
Then,
The coordinates of the foci are (0, √15) and (0, -√15).
The coordinates of the vertices are (0, 4) and (0, -4)
Length of major axis = 2a = 2 (4) = 8
Length of minor axis = 2b = 2 (1) = 2
Eccentricity, e = c/a = √15/4
Length of latus rectum = 2b2/a = (2×12)/4 = 2/4 = ½
9. 4x2 + 9y2 = 36
Solution: Given:
The equation is 4x2 + 9y2 = 36 or x2/9 + y2/4 = 1 or x2/32 + y2/22 = 1
Here, the denominator of x2/32 is greater than the denominator of y2/22.
So, the major axis is along the x-axis, while the minor axis is along the y-axis.
On comparing the given equation with x2/a2 + y2/b2 = 1, we get
a =3 and b =2.
c = √(a2 – b2)
= √(9-4)
= √5
Then,
The coordinates of the foci are (√5, 0) and (-√5, 0).
The coordinates of the vertices are (3, 0) and (-3, 0)
Length of major axis = 2a = 2 (3) = 6
Length of minor axis = 2b = 2 (2) = 4
Eccentricity, e = c/a = √5/3
Length of latus rectum = 2b2/a = (2×22)/3 = (2×4)/3 = 8/3
In each of the following Exercises 10 to 20, find the equation for the ellipse that satisfies the given conditions:
10. Vertices (± 5, 0), foci (± 4, 0)
Solution: Given:
Vertices (± 5, 0) and foci (± 4, 0)
Here, the vertices are on the x-axis.
So, the equation of the ellipse will be of the form x2/a2 + y2/b2 = 1, where ‘a’ is the semi-major axis.
Then, a = 5 and c = 4.
It is known that a2 = b2 + c2
So, 52 = b2 + 42
25 = b2 + 16
b2 = 25 – 16
b = √9
= 3
∴ The equation of the ellipse is x2/52 + y2/32 = 1 or x2/25 + y2/9 = 1
11. Vertices (0, ± 13), foci (0, ± 5)
Solution: Given:
Vertices (0, ± 13) and foci (0, ± 5)
Here, the vertices are on the y-axis.
So, the equation of the ellipse will be of the form x2/b2 + y2/a2 = 1, where ‘a’ is the semi-major axis.
Then, a =13 and c = 5.
It is known that a2 = b2 + c2
132 = b2+52
169 = b2 + 15
b2 = 169 – 125
b = √144
= 12
∴ The equation of the ellipse is x2/122 + y2/132 = 1 or x2/144 + y2/169 = 1
12. Vertices (± 6, 0), foci (± 4, 0)
Solution: Given:
Vertices (± 6, 0) and foci (± 4, 0)
Here, the vertices are on the x-axis.
So, the equation of the ellipse will be of the form x2/a2 + y2/b2 = 1, where ‘a’ is the semi-major axis.
Then, a = 6 and c = 4.
It is known that a2 = b2 + c2
62 = b2+42
36 = b2 + 16
b2 = 36 – 16
b = √20
∴ The equation of the ellipse is x2/62 + y2/(√20)2 = 1 or x2/36 + y2/20 = 1
13. Ends of major axis (± 3, 0), ends of minor axis (0, ±2)
Solution: Given:
Ends of major axis (± 3, 0) and ends of minor axis (0, ±2)
Here, the major axis is along the x-axis.
So, the equation of the ellipse will be of the form x2/a2 + y2/b2 = 1, where ‘a’ is the semi-major axis.
Then, a = 3 and b = 2.
∴ The equation for the ellipse x2/32 + y2/22 = 1 or x2/9 + y2/4 = 1
14. Ends of major axis (0, ±√5), ends of minor axis (±1, 0)
Solution: Given:
Ends of major axis (0, ±√5) and ends of minor axis (±1, 0)
Here, the major axis is along the y-axis.
So, the equation of the ellipse will be of the form x2/b2 + y2/a2 = 1, where ‘a’ is the semi-major axis.
Then, a = √5 and b = 1.
∴ The equation for the ellipse x2/12 + y2/(√5)2 = 1 or x2/1 + y2/5 = 1
15. Length of major axis 26, foci (±5, 0)
Solution: Given:
Length of major axis is 26 and foci (±5, 0)
Since the foci are on the x-axis, the major axis is along the x-axis.
So, the equation of the ellipse will be of the form x2/a2 + y2/b2 = 1, where ‘a’ is the semi-major axis.
Then, 2a = 26
a = 13 and c = 5.
It is known that a2 = b2 + c2
132 = b2+52
169 = b2 + 25
b2 = 169 – 25
b = √144
= 12
∴ The equation of the ellipse is x2/132 + y2/122 = 1 or x2/169 + y2/144 = 1
16. Length of minor axis 16, foci (0, ±6).
Solution: Given:
Length of minor axis is 16 and foci (0, ±6).
Since the foci are on the y-axis, the major axis is along the y-axis.
So, the equation of the ellipse will be of the form x2/b2 + y2/a2 = 1, where ‘a’ is the semi-major axis.
Then, 2b =16
b = 8 and c = 6.
It is known that a2 = b2 + c2
a2 = 82 + 62
= 64 + 36
=100
a = √100
= 10
∴ The equation of the ellipse is x2/82 + y2/102 =1 or x2/64 + y2/100 = 1
17. Foci (±3, 0), a = 4
Solution: Given:
Foci (±3, 0) and a = 4
Since the foci are on the x-axis, the major axis is along the x-axis.
So, the equation of the ellipse will be of the form x2/a2 + y2/b2 = 1, where ‘a’ is the semi-major axis.
Then, c = 3 and a = 4.
It is known that a2 = b2 + c2.
a2 = 82 + 62
= 64 + 36
= 100
16 = b2 + 9
b2 = 16 – 9
= 7
∴ The equation of the ellipse is x2/16 + y2/7 = 1
18. b = 3, c = 4, centre at the origin; foci on the x axis.
Solution: Given:
b = 3, c = 4, centre at the origin and foci on the x axis.
Since the foci are on the x-axis, the major axis is along the x-axis.
So, the equation of the ellipse will be of the form x2/a2 + y2/b2 = 1, where ‘a’ is the semi-major axis.
Then, b = 3 and c = 4.
It is known that a2 = b2 + c2
a2 = 32 + 42
= 9 + 16
=25
a = √25
= 5
∴ The equation of the ellipse is x2/52 + y2/32 or x2/25 + y2/9 = 1
19. Centre at (0, 0), major axis on the y-axis and passes through the points (3, 2) and (1, 6).
Solution: Given:
Centre at (0, 0), major axis on the y-axis and passes through the points (3, 2) and (1, 6).
Since the centre is at (0, 0) and the major axis is on the y- axis, the equation of the ellipse will be of the form x2/b2 + y2/a2 = 1, where ‘a’ is the semi-major axis.
The ellipse passes through points (3, 2) and (1, 6).
So, by putting the values x = 3 and y = 2, we get,
32/b2 + 22/a2 = 1
9/b2 + 4/a2…. (1)
And by putting the values x = 1 and y = 6, we get,
11/b2 + 62/a2 = 1
1/b2 + 36/a2 = 1 …. (2)
On solving equation (1) and (2), we get
b2 = 10 and a2 = 40.
∴ The equation of the ellipse is x2/10 + y2/40 = 1 or 4×2 + y2 = 40
20. Major axis on the x-axis and passes through the points (4,3) and (6,2).
Solution: Given:
Major axis on the x-axis and passes through the points (4, 3) and (6, 2).
Since the major axis is on the x-axis, the equation of the ellipse will be the form
x2/a2 + y2/b2 = 1…. (1) [Where ‘a’ is the semi-major axis.]
The ellipse passes through points (4, 3) and (6, 2).
So by putting the values x = 4 and y = 3 in equation (1), we get,
16/a2 + 9/b2 = 1 …. (2)
Putting, x = 6 and y = 2 in equation (1), we get,
36/a2 + 4/b2 = 1 …. (3)
From equation (2)
16/a2 = 1 – 9/b2
1/a2 = (1/16 (1 – 9/b2)) …. (4)
Substituting the value of 1/a2 in equation (3) we get,
36/a2 + 4/b2 = 1
36(1/a2) + 4/b2 = 1
36[1/16 (1 – 9/b2)] + 4/b2 = 1
36/16 (1 – 9/b2) + 4/b2 = 1
9/4 (1 – 9/b2) + 4/b2 = 1
9/4 – 81/4b2 + 4/b2 = 1
-81/4b2 + 4/b2 = 1 – 9/4
(-81+16)/4b2 = (4-9)/4
-65/4b2 = -5/4
-5/4(13/b2) = -5/4
13/b2 = 1
1/b2 = 1/13
b2 = 13
Now substitute the value of b2 in equation (4) we get,
1/a2 = 1/16(1 – 9/b2)
= 1/16(1 – 9/13)
= 1/16((13-9)/13)
= 1/16(4/13)
= 1/52
a2 = 52
Equation of ellipse is x2/a2 + y2/b2 = 1
By substituting the values of a2 and b2 in above equation we get,
x2/52 + y2/13 = 1