NCERT Solutions for Class 10 Maths Chapter 11- Constructions
NCERT Solutions for Class 10 Maths Chapter 11 Constructions are provided in a detailed manner, where one can find a step-by-step solution to all the questions for fast revisions. Solutions for the 11th chapter of NCERT Class 10 maths are prepared by subject experts under the guidelines of NCERT to assist students in their board exam preparations. Get free NCERT Solutions for Class 10 Maths, Chapter 11 โ Constructions at BYJUโS to accelerate the exam preparation. All the questions of NCERT exercises are solved using diagrams with a step-by-step procedure for construction. Solutions of NCERT help students boost their concepts and clear doubts.Chapter 11 Constructions
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Exercise 11.1 Page: 220
In each of the following, give the justification of the construction also:
1. Draw a line segment of length 7.6 cm and divide it in the ratio 5 : 8. Measure the two parts.
Construction Procedure:
A line segment with a measure of 7.6 cm length is divided in the ratio of 5:8 as follows.
1. Draw line segment AB with the length measure of 7.6 cm
2. Draw a ray AX that makes an acute angle with line segment AB.
3. Locate the points i.e.,13 (= 5+8) points, such as A1, A2, A3, A4 โฆโฆ.. A13, on the ray AX such that it becomes AA1 = A1A2 = A2A3 and so on.
4. Join the line segment and the ray, BA13.
5. Through the point A5, draw a line parallel to BA13 which makes an angle equal to โ AA13B
6. The point A5 which intersects the line AB at point C.
7. C is the point divides line segment AB of 7.6 cm in the required ratio of 5:8.
8. Now, measure the lengths of the line AC and CB. It comes out to the measure of 2.9 cm and 4.7 cm respectively.
Justification:
The construction of the given problem can be justified by proving that
AC/CB = 5/ 8
By construction, we have A5C || A13B. From Basic proportionality theorem for the triangle AA13B, we get
AC/CB =AA5/A5A13โฆ.. (1)
From the figure constructed, it is observed that AA5 and A5A13 contain 5 and 8 equal divisions of line segments respectively.
Therefore, it becomes
AA5/A5A13=5/8โฆ (2)
Compare the equations (1) and (2), we obtain
AC/CB = 5/ 8
Hence, Justified.
2. Construct a triangle of sides 4 cm, 5 cm and 6 cm and then a triangle similar to it whose sides are 2/3 of
the corresponding sides of the first triangle.
Construction Procedure:
1. Draw a line segment AB which measures 4 cm, i.e., AB = 4 cm.
2. Take the point A as centre, and draw an arc of radius 5 cm.
3. Similarly, take the point B as its centre, and draw an arc of radius 6 cm.
4. The arcs drawn will intersect each other at point C.
5. Now, we obtained AC = 5 cm and BC = 6 cm and therefore ฮABC is the required triangle.
6. Draw a ray AX which makes an acute angle with the line segment AB on the opposite side of vertex C.
7. Locate 3 points such as A1, A2, A3 (as 3 is greater between 2 and 3) on line AX such that it becomes AA1= A1A2 = A2A3.
8. Join the point BA3 and draw a line through A2which is parallel to the line BA3 that intersect AB at point Bโ.
9. Through the point Bโ, draw a line parallel to the line BC that intersect the line AC at Cโ.
10. Therefore, ฮABโCโ is the required triangle.
Justification:
The construction of the given problem can be justified by proving that
ABโ = (2/3)AB
BโCโ = (2/3)BC
ACโ= (2/3)AC
From the construction, we get BโCโ || BC
โด โ ABโCโ = โ ABC (Corresponding angles)
In ฮABโCโ and ฮABC,
โ ABC = โ ABโC (Proved above)
โ BAC = โ BโACโ (Common)
โด ฮABโCโ โผ ฮABC (From AA similarity criterion)
Therefore, ABโ/AB = BโCโ/BC= ACโ/AC โฆ. (1)
In ฮAABโ and ฮAAB,
โ A2ABโ =โ A3AB (Common)
From the corresponding angles, we get,
โ AA2Bโ =โ AA3B
Therefore, from the AA similarity criterion, we obtain
ฮAA2Bโ and AA3B
So, ABโ/AB = AA2/AA3
Therefore, ABโ/AB = 2/3 โฆโฆ. (2)
From the equations (1) and (2), we get
ABโ/AB=BโCโ/BC = ACโ/ AC = 2/3
This can be written as
ABโ = (2/3)AB
BโCโ = (2/3)BC
ACโ= (2/3)AC
Hence, justified.
3. Construct a triangle with sides 5 cm, 6 cm and 7 cm and then another triangle whose sides are 7/5 of the corresponding sides of the first triangle
Construction Procedure:
1. Draw a line segment AB =5 cm.
2. Take A and B as centre, and draw the arcs of radius 6 cm and 5 cm respectively.
3. These arcs will intersect each other at point C and therefore ฮABC is the required triangle with the length of sides as 5 cm, 6 cm, and 7 cm respectively.
4. Draw a ray AX which makes an acute angle with the line segment AB on the opposite side of vertex C.
5. Locate the 7 points such as A1, A2, A3, A4, A5, A6, A7 (as 7 is greater between 5 and 7), on line AX such that it becomes AA1 = A1A2 = A2A3 = A3A4 = A4A5 = A5A6 = A6A7
6. Join the points BA5 and draw a line from A7 to BA5 which is parallel to the line BA5 where it intersects the extended line segment AB at point Bโ.
7. Now, draw a line from Bโ the extended line segment AC at Cโ which is parallel to the line BC and it intersects to make a triangle.
8. Therefore, ฮABโCโ is the required triangle.
Justification:
The construction of the given problem can be justified by proving that
ABโ = (7/5)AB
BโCโ = (7/5)BC
ACโ= (7/5)AC
From the construction, we get BโCโ || BC
โด โ ABโCโ = โ ABC (Corresponding angles)
In ฮABโCโ and ฮABC,
โ ABC = โ ABโC (Proved above)
โ BAC = โ BโACโ (Common)
โด ฮABโCโ โผ ฮABC (From AA similarity criterion)
Therefore, ABโ/AB = BโCโ/BC= ACโ/AC โฆ. (1)
In ฮAA7Bโ and ฮAA5B,
โ A7ABโ=โ A5AB (Common)
From the corresponding angles, we get,
โ A A7Bโ=โ A A5B
Therefore, from the AA similarity criterion, we obtain
ฮA A2Bโ and A A3B
So, ABโ/AB = AA5/AA7
Therefore, AB /ABโ = 5/7 โฆโฆ. (2)
From the equations (1) and (2), we get
ABโ/AB = BโCโ/BC = ACโ/ AC = 7/5
This can be written as
ABโ = (7/5)AB
BโCโ = (7/5)BC
ACโ= (7/5)AC
Hence, justified.
Construction Procedure:
1. Draw a line segment BC with the measure of 8 cm.
2. Now draw the perpendicular bisector of the line segment BC and intersect at the point D
3. Take the point D as centre and draw an arc with the radius of 4 cm which intersect the perpendicular bisector at the point A
4. Now join the lines AB and AC and the triangle is the required triangle.
5. Draw a ray BX which makes an acute angle with the line BC on the side opposite to the vertex A.
6. Locate the 3 points B1, B2 and B3 on the ray BX such that BB1 = B1B2 = B2B3
7. Join the points B2C and draw a line from B3 which is parallel to the line B2C where it intersects the extended line segment BC at point Cโ.
8. Now, draw a line from Cโ the extended line segment AC at Aโ which is parallel to the line AC and it intersects to make a triangle.
9. Therefore, ฮAโBCโ is the required triangle.
Justification:
The construction of the given problem can be justified by proving that
AโB = (3/2)AB
BCโ = (3/2)BC
AโCโ= (3/2)AC
From the construction, we get AโCโ || AC
โด โ AโCโB = โ ACB (Corresponding angles)
In ฮAโBCโ and ฮABC,
โ B = โ B (common)
โ AโBCโ = โ ACB
โด ฮAโBCโ โผ ฮABC (From AA similarity criterion)
Therefore, AโB/AB = BCโ/BC= AโCโ/AC
Since the corresponding sides of the similar triangle are in the same ratio, it becomes
AโB/AB = BCโ/BC= AโCโ/AC = 3/2
Hence, justified.
5. Draw a triangle ABC with side BC = 6 cm, AB = 5 cm and โ ABC = 60ยฐ. Then construct a triangle whose sides are 3/4 of the corresponding sides of the triangle ABC.
Construction Procedure:
1. Draw a ฮABC with base side BC = 6 cm, and AB = 5 cm and โ ABC = 60ยฐ.
2. Draw a ray BX which makes an acute angle with BC on the opposite side of vertex A.
3. Locate 4 points (as 4 is greater in 3 and 4), such as B1, B2, B3, B4, on line segment BX.
4. Join the points B4C and also draw a line through B3, parallel to B4C intersecting the line segment BC at Cโ.
5. Draw a line through Cโ parallel to the line AC which intersects the line AB at Aโ.
6. Therefore, ฮAโBCโ is the required triangle.
Justification:
The construction of the given problem can be justified by proving that
Since the scale factor is 3/4 , we need to prove
AโB = (3/4)AB
BCโ = (3/4)BC
AโCโ= (3/4)AC
From the construction, we get AโCโ || AC
In ฮAโBCโ and ฮABC,
โด โ AโCโB = โ ACB (Corresponding angles)
โ B = โ B (common)
โด ฮAโBCโ โผ ฮABC (From AA similarity criterion)
Since the corresponding sides of the similar triangle are in the same ratio, it becomes
Therefore, AโB/AB = BCโ/BC= AโCโ/AC
So, it becomes AโB/AB = BCโ/BC= AโCโ/AC = 3/4
Hence, justified.
6. Draw a triangle ABC with side BC = 7 cm, โ B = 45ยฐ, โ A = 105ยฐ. Then, construct a triangle whose sides are 4/3 times the corresponding sides of โ ABC.
To find โ C:
Given:
โ B = 45ยฐ, โ A = 105ยฐ
We know that,
Sum of all interior angles in a triangle is 180ยฐ.
โ A+โ B +โ C = 180ยฐ
105ยฐ+45ยฐ+โ C = 180ยฐ
โ C = 180ยฐ โ 150ยฐ
โ C = 30ยฐ
So, from the property of triangle, we get โ C = 30ยฐ
Construction Procedure:
The required triangle can be drawn as follows.
1. Draw a ฮABC with side measures of base BC = 7 cm, โ B = 45ยฐ, and โ C = 30ยฐ.
2. Draw a ray BX makes an acute angle with BC on the opposite side of vertex A.
3. Locate 4 points (as 4 is greater in 4 and 3), such as B1, B2, B3, B4, on the ray BX.
4. Join the points B3C.
5. Draw a line through B4 parallel to B3C which intersects the extended line BC at Cโ.
6. Through Cโ, draw a line parallel to the line AC that intersects the extended line segment at Cโ.
7. Therefore, ฮAโBCโ is the required triangle.
Justification:
The construction of the given problem can be justified by proving that
Since the scale factor is 4/3, we need to prove
AโB = (4/3)AB
BCโ = (4/3)BC
AโCโ= (4/3)AC
From the construction, we get AโCโ || AC
In ฮAโBCโ and ฮABC,
โด โ AโCโB = โ ACB (Corresponding angles)
โ B = โ B (common)
โด ฮAโBCโ โผ ฮABC (From AA similarity criterion)
Since the corresponding sides of the similar triangle are in the same ratio, it becomes
Therefore, AโB/AB = BCโ/BC= AโCโ/AC
So, it becomes AโB/AB = BCโ/BC= AโCโ/AC = 4/3
Hence, justified.
7. Draw a right triangle in which the sides (other than hypotenuse) are of lengths 4 cm and 3 cm. Then construct another triangle whose sides are 5/3 times the corresponding sides of the given triangle.
Given:
The sides other than hypotenuse are of lengths 4cm and 3cm. It defines that the sides are perpendicular to each other
Construction Procedure:
The required triangle can be drawn as follows.
1. Draw a line segment BC =3 cm.
2. Now measure and draw โ = 90ยฐ
3. Take B as centre and draw an arc with the radius of 4 cm and intersects the ray at the point B.
4. Now, join the lines AC and the triangle ABC is the required triangle.
5. Draw a ray BX makes an acute angle with BC on the opposite side of vertex A.
6. Locate 5 such as B1, B2, B3, B4, on the ray BX such that such that BB1 = B1B2 = B2B3= B3B4 = B4B5
7. Join the points B3C.
8. Draw a line through B5 parallel to B3C which intersects the extended line BC at Cโ.
9. Through Cโ, draw a line parallel to the line AC that intersects the extended line AB at Aโ.
10. Therefore, ฮAโBCโ is the required triangle.
Justification:
The construction of the given problem can be justified by proving that
Since the scale factor is 5/3, we need to prove
AโB = (5/3)AB
BCโ = (5/3)BC
AโCโ= (5/3)AC
From the construction, we get AโCโ || AC
In ฮAโBCโ and ฮABC,
โด โ AโCโB = โ ACB (Corresponding angles)
โ B = โ B (common)
โด ฮAโBCโ โผ ฮABC (From AA similarity criterion)
Since the corresponding sides of the similar triangle are in the same ratio, it becomes
Therefore, AโB/AB = BCโ/BC= AโCโ/AC
So, it becomes AโB/AB = BCโ/BC= AโCโ/AC = 5/3
Hence, justified.
Exercise 11.2 Page: 221
In each of the following, give the justification of the construction also:
1. Draw a circle of radius 6 cm. From a point 10 cm away from its centre, construct the pair of tangents to the circle and measure their lengths.
Construction Procedure:
The construction to draw a pair of tangents to the given circle is as follows.
1. Draw a circle with radius = 6 cm with centre O.
2. Locate a point P, which is 10 cm away from O.
3. Join the points O and P through line
4. Draw the perpendicular bisector of the line OP.
5. Let M be the mid-point of the line PO.
6. Take M as centre and measure the length of MO
7. The length MO is taken as radius and draw a circle.
8. The circle drawn with the radius of MO, intersect the previous circle at point Q and R.
9. Join PQ and PR.
10. Therefore, PQ and PR are the required tangents.
Justification:
The construction of the given problem can be justified by proving that PQ and PR are the tangents to the circle of radius 6cm with centre O.
To prove this, join OQ and OR represented in dotted lines.
From the construction,
โ PQO is an angle in the semi-circle.
We know that angle in a semi-circle is a right angle, so it becomes,
โด โ PQO = 90ยฐ
Such that
โ OQ โฅ PQ
Since OQ is the radius of the circle with radius 6 cm, PQ must be a tangent of the circle. Similarly, we can prove that PR is a tangent of the circle.
Hence, justified.
2. Construct a tangent to a circle of radius 4 cm from a point on the concentric circle of radius 6 cm and measure its length. Also verify the measurement by actual calculation.
Construction Procedure:
For the given circle, the tangent can be drawn as follows.
1. Draw a circle of 4 cm radius with centre โOโ.
2. Again, take O as centre draw a circle of radius 6 cm.
3. Locate a point P on this circle
4. Join the points O and P through lines such that it becomes OP.
5. Draw the perpendicular bisector to the line OP
6. Let M be the mid-point of PO.
7. Draw a circle with M as its centre and MO as its radius
8. The circle drawn with the radius OM, intersect the given circle at the points Q and R.
9. Join PQ and PR.
10. PQ and PR are the required tangents.
From the construction, it is observed that PQ and PR are of length 4.47 cm each.
It can be calculated manually as follows
In โPQO,
Since PQ is a tangent,
โ PQO = 90ยฐ. PO = 6cm and QO = 4 cm
Applying Pythagoras theorem in โPQO, we obtain PQ2+QO2 = PQ2
PQ2+(4)2 = (6)2
PQ2 +16 =36
PQ2 = 36โ16
PQ2 = 20
PQ = 2โ5
PQ = 4.47 cm
Therefore, the tangent length PQ = 4.47
Justification:
The construction of the given problem can be justified by proving that PQ and PR are the tangents to the circle of radius 4 cm with centre O.
To prove this, join OQ and OR represented in dotted lines.
From the construction,
โ PQO is an angle in the semi-circle.
We know that angle in a semi-circle is a right angle, so it becomes,
โด โ PQO = 90ยฐ
Such that
โ OQ โฅ PQ
Since OQ is the radius of the circle with radius 4 cm, PQ must be a tangent of the circle. Similarly, we can prove that PR is a tangent of the circle.
Hence, justified.
3. Draw a circle of radius 3 cm. Take two points P and Q on one of its extended diameter each at a distance of 7 cm from its centre. Draw tangents to the circle from these two points P and Q
Construction Procedure:
The tangent for the given circle can be constructed as follows.
1. Draw a circle with a radius of 3cm with centre โOโ.
2. Draw a diameter of a circle and it extends 7 cm from the centre and mark it as P and Q.
3. Draw the perpendicular bisector of the line PO and mark the midpoint as M.
4. Draw a circle with M as centre and MO as radius
5. Now join the points PA and PB in which the circle with radius MO intersects the circle of circle 3cm.
6. Now PA and PB are the required tangents.
7. Similarly, from the point Q, we can draw the tangents.
8. From that, QC and QD are the required tangents.
Justification:
The construction of the given problem can be justified by proving that PQ and PR are the tangents to the circle of radius 3 cm with centre O.
To prove this, join OA and OB.
From the construction,
โ PAO is an angle in the semi-circle.
We know that angle in a semi-circle is a right angle, so it becomes,
โด โ PAO = 90ยฐ
Such that
โ OA โฅ PA
Since OA is the radius of the circle with radius 3 cm, PA must be a tangent of the circle. Similarly, we can prove that PB, QC and QD are the tangent of the circle.
Hence, justified
4. Draw a pair of tangents to a circle of radius 5 cm which are inclined to each other at an angle of 60ยฐ
Construction Procedure:
The tangents can be constructed in the following manner:
1. Draw a circle of radius 5 cm and with centre as O.
2. Take a point Q on the circumference of the circle and join OQ.
3. Draw a perpendicular to QP at point Q.
4. Draw a radius OR, making an angle of 120ยฐ i.e(180ยฐโ60ยฐ) with OQ.
5. Draw a perpendicular to RP at point R.
6. Now both the perpendiculars intersect at point P.
7. Therefore, PQ and PR are the required tangents at an angle of 60ยฐ.
Justification:
The construction can be justified by proving that โ QPR = 60ยฐ
By our construction
โ OQP = 90ยฐ
โ ORP = 90ยฐ
And โ QOR = 120ยฐ
We know that the sum of all interior angles of a quadrilateral = 360ยฐ
โ OQP+โ QOR + โ ORP +โ QPR = 360o
90ยฐ+120ยฐ+90ยฐ+โ QPR = 360ยฐ
Therefore, โ QPR = 60ยฐ
Hence Justified
5. Draw a line segment AB of length 8 cm. Taking A as centre, draw a circle of radius 4 cm and taking B as centre, draw another circle of radius 3 cm. Construct tangents to each circle from the centre of the other circle.
Construction Procedure:
The tangent for the given circle can be constructed as follows.
1. Draw a line segment AB = 8 cm.
2. Take A as centre and draw a circle of radius 4 cm
3. Take B as centre, draw a circle of radius 3 cm
4. Draw the perpendicular bisector of the line AB and the midpoint is taken as M.
5. Now, take M as centre draw a circle with the radius of MA or MB which the intersects the circle at the points P, Q, R and S.
6. Now join AR, AS, BP and BQ
7. Therefore, the required tangents are AR, AS, BP and BQ
Justification:
The construction can be justified by proving that AS and AR are the tangents of the circle (whose centre is B with radius is 3 cm) and BP and BQ are the tangents of the circle (whose centre is A and radius is 4 cm).
From the construction, to prove this, join AP, AQ, BS, and BR.
โ ASB is an angle in the semi-circle. We know that an angle in a semi-circle is a right angle.
โด โ ASB = 90ยฐ
โ BS โฅ AS
Since BS is the radius of the circle, AS must be a tangent of the circle.
Similarly, AR, BP, and BQ are the required tangents of the given circle.
6. Let ABC be a right triangle in which AB = 6 cm, BC = 8 cm and โ B = 90ยฐ. BD is the perpendicular from B on AC. The circle through B, C, D is drawn. Construct the tangents from A to this circle.
Construction Procedure:
The tangent for the given circle can be constructed as follows
1. Draw the line segment with base BC = 8cm
2. Measure the angle 90ยฐ at the point B, such that โ B = 90ยฐ.
3. Take B as centre and draw an arc with a measure of 6cm.
4. Let the point be A where the arc intersects the ray.
5. Join the line AC.
6. Therefore, ABC be the required triangle.
7. Now, draw the perpendicular bisector to the line BC and the midpoint is marked as E.
8. Take E as centre and BE or EC measure as radius draw a circle.
9. Join A to the midpoint E of the circle
10. Now, again draw the perpendicular bisector to the line AE and the midpoint is taken as M
11. Take M as Centre and AM or ME measure as radius, draw a circle.
12. This circle intersects the previous circle at the points B and Q
13. Join the points A and Q
14. Therefore, AB and AQ are the required tangents
Justification:
The construction can be justified by proving that AG and AB are the tangents to the circle.
From the construction, join EQ.
โ AQE is an angle in the semi-circle. We know that an angle in a semi-circle is a right angle.
โด โ AQE = 90ยฐ
โ EQโฅ AQ
Since EQ is the radius of the circle, AQ has to be a tangent of the circle. Similarly, โ B = 90ยฐ
โ AB โฅ BE
Since BE is the radius of the circle, AB has to be a tangent of the circle.
Hence, justified.
7. Draw a circle with the help of a bangle. Take a point outside the circle. Construct the pair of tangents from this point to the circle.
Construction Procedure:
The required tangents can be constructed on the given circle as follows.
1. Draw a circle with the help of a bangle.
2. Draw two non-parallel chords such as AB and CD
3. Draw the perpendicular bisector of AB and CD
4. Take the centre as O where the perpendicular bisector intersects.
5. To draw the tangents, take a point P outside the circle.
6. Join the points O and P.
7. Now draw the perpendicular bisector of the line PO and midpoint is taken as M
8. Take M as centre and MO as radius draw a circle.
9. Let the circle intersects intersect the circle at the points Q and R
10. Now join PQ and PR
11. Therefore, PQ and PR are the required tangents.
Justification:
The construction can be justified by proving that PQ and PR are the tangents to the circle.
Since, O is the centre of a circle, we know that the perpendicular bisector of the chords passes through the centre.
Now, join the points OQ and OR.
We know that perpendicular bisector of a chord passes through the centre.
It is clear that the intersection point of these perpendicular bisectors is the centre of the circle.
Since, โ PQO is an angle in the semi-circle. We know that an angle in a semi-circle is a right angle.
โด โ PQO = 90ยฐ
โ OQโฅ PQ
Since OQ is the radius of the circle, PQ has to be a tangent of the circle. Similarly,
โด โ PRO = 90ยฐ
โ OR โฅ PO
Since OR is the radius of the circle, PR has to be a tangent of the circle
Therefore, PQ and PR are the required tangents of a circle.
NCERT Solutions for Class 10 Maths Chapter 11 Constructions
Topics present in NCERT Solutions for Class 10 Maths Chapter 11 includes division of a line segment, constructions of tangents to a circle, line segment bisector and many more. Students in class 9, study some basics of constructions like drawing the perpendicular bisector of a line segment, bisecting an angle, triangle construction etc. Using Class 9 concepts, students in Class 10 will learn about some more constructions along with the reasoning behind that work.
NCERT Class 10, Chapter 11-Constructions is a part of Geometry. Over the past few years, geometry consists a total weightage of 15 marks in the final exams. Construction is a scoring chapter of geometry section. In the previous year exam, one question of 4 marks being asked from this chapter.
List of Exercises in class 10 Maths Chapter 11
Exercise 11.1 Solutions (7 Questions)
Exercise 11.2 Solutions (7 Questions)
The NCERT solutions for Class 10 for the 11th chapter of Maths is all about construction of line segments, division of a Line Segment and Construction of a Circle, Constructions of Tangents to a circle using analytical approach. Students also have to provide justification of each answer.
The topics covered in Maths Chapter 11 Constructions are:
Exercise | Topic |
11.1 | Introduction |
11.2 | Division of a Line Segment |
11.3 | Construction of Tangents to a Circle |
11.4 | Summary |
Some of the ideas applied in this chapter:
- The locus of a point that moves in an identical distance from 2 points, is normal to the line joining both the points.
- Perpendicular or Normal means right angles whereas, bisector cuts a line segment in two half.
- The design of different shapes utilizing a pair of compasses and straightedge or ruler.
Key Features of NCERT Solutions for Class 10 Maths Chapter 11 Constructions
- NCERT solutions can also prove to be of valuable help to students in their assignments and preparation of boards and competitive exams.
- Each question is explained using diagrams which makes learning more interactive.
- Easy and understandable language used in NCERT solutions.
- Provide detailed solution using an analytical approach.
Frequently Asked Questions on NCERT Solutions for Class 10 Maths Chapter 11
What is the use of practising NCERT Solutions for Class 10 Maths Chapter 11?
Practising NCERT Solutions for Class 10 Maths Chapter 11 provides you with an idea about the sample of questions that will be asked in the board exam, which would help students prepare competently. These solutions are useful resources, which can provide them with all the vital information in the most precise form. These solutions cover all topics included in the NCERT syllabus, prescribed by the CBSE board.
List out the topics of NCERT Solutions for Class 10 Maths Chapter 11?
The topics covered in NCERT Solutions for Class 10 Maths Chapter 11 Constructions are Introduction to the constructions, the division of a line segment and construction of tangents to a circle and finally it gives the summary of all the concepts provided in the whole chapter. By referring to these solutions, you get rid of your doubts and also can exercise additional questions.
Whether NCERT Solutions for Class 10 Maths Chapter 11 can view only online?
For the ease of learning, the solutions have also been provided in PDF format, so that the students can download them for free and refer to the solutions offline as well. These NCERT Solutions for Class 10 Maths Chapter 11 can be viewed online.