NCERT Solutions for Class 8 Maths Chapter 4 - Practical Geometry

NCERT Solutions for Class 8 Maths Chapter 4 – Practical Geometry. Furthermore, here we’ve provided you with the latest solution for Class 8 Maths Chapter 4 – Practical Geometry. As a result here you’ll find solutions to all the exercises. This NCERT Class 8 solution will help you to score good marks in your exam.

Students can refer to our solution for NCERT Class 8 Maths Chapter 4 – Practical Geometry. The Chapter 4 Solution of NCERT will help students prepare for the exams and easily crack the exam. Below we’ve provided you with the exercise wise latest solution.

NCERT Solutions for Class 8 Maths Chapter 4 – Practical Geometry Pdf Download

Exercise 4.1 – Page 60 of NCERT
Exercise 4.2 – Page 62 of NCERT
Exercise 4.3 – Page 64 of NCERT
Exercise 4.4 – Page 67 of NCERT
Exercise 4.5 – Page 68 of NCERT

NCERT Solutions for Class 8 Maths Chapter 4 – Practical Geometry Exercise 4.1 Solution

Here you’ll find NCERT Chapter 4 – Practical Geometry Exercise 4.1 Solution.
Exercise 4.1: Solutions of Questions on Page Number: 60

Q1: Construct the following quadrilaterals.

Quadrilateral ABCD AB = 4.5 cm

BC = 5.5 cm

CD = 4 cm AD = 6 cm AC = 7 cm

Quadrilateral JUMP JU = 3.5 cm

UM = 4 cm MP = 5 cm PJ = 4.5 cm PU = 6.5 cm

Parallelogram MORE OR = 6 cm

RE = 4.5 cm EO = 7.5 cm

Rhombus BEST BE = 4.5 cm

ET = 6 cm

Answer:

(i) Firstly, a rough sketch of this quadrilateral can be drawn as follows.

ΔABC can be constructed by using the given measurements as follows.

Vertex D is 6 cm away from vertex A. Therefore, while taking A as centre, draw an arc of radius 6 cm.

Taking C as centre, draw an arc of radius 4 cm, cutting the previous arc at point D. Join D to A and C.

ABCD is the required quadrilateral.

(ii) Firstly, a rough sketch of this quadrilateral can be drawn as follows.

http://www.schoollamp.com/images/ncert-solutions/maths+practical+geometry+cbse+141525194845.jpg

Δ JUP can be constructed by using the given measurements as follows.

Vertex M is 5 cm away from vertex P and 4 cm away from vertex U. Taking P and U as centres, draw arcs of radii 5 cm and 4 cm respectively. Let the point of intersection be M.

Join M to P and U.

JUMP is the required quadrilateral.

(iii) We know that opposite sides of a parallelogram are equal in length and also these are parallel to each other.

Hence, ME = OR, MO = ER

A rough sketch of this parallelogram can be drawn as follows.

http://www.schoollamp.com/images/ncert-solutions/maths+practical+geometry+cbse+14152519538973.jpg

Δ EOR can be constructed by using the given measurements as follows.

Vertex M is 4.5 cm away from vertex O and 6 cm away from vertex E. Therefore, while taking O and E as centres, draw arcs of 4.5 cm radius and 6 cm radius respectively. These will intersect each other at point M.

Join M to O and E.

MORE is the required parallelogram.

We know that all sides of a rhombus are of the same measure. Hence, BE = ES = ST = TB

A rough sketch of this rhombus can be drawn as follows.

http://www.schoollamp.com/images/ncert-solutions/maths+practical+geometry+cbse+14152519581328.jpg

Δ BET can be constructed by using the given measurements as follows.

Vertex S is 4.5 cm away from vertex E and also from vertex T. Therefore, while taking E and T as centres, draw arcs of 4.5 cm radius, which will be intersecting each other at point S.

NCERT Solutions for Class 8 Maths Chapter 4 – Practical Geometry Exercise 4.2 Solution

Here you’ll find NCERT Chapter 4 – Practical Geometry Exercise 4.2 Solution.
Exercise 4.2: Solutions of Questions on Page Number: 62

Q1: Construct the following quadrilaterals.

Quadrilateral LIFT LI = 4 cm

IF = 3 cm TL = 2.5 cm LF = 4.5 cm

IT = 4 cm

Quadrilateral GOLD OL = 7.5 cm

GL = 6 cm GD = 6 cm LD = 5 cm OD = 10 cm

Rhombus BEND BN = 5.6 cm

DE = 6.5 cm

Answer:

A rough sketch of this quadrilateral can be drawn as follows.

Δ ITL can be constructed by using the given measurements as follows.

Vertex F is 4.5 cm away from vertex L and 3 cm away from vertex I. Therefore, while taking L and I as centres, draw arcs of 4.5 cm radius and 3 cm radius respectively, which will be intersecting each other at point F.

Join F to T and F to I.

LIFT is the required quadrilateral.

A rough sketch of this quadrilateral can be drawn as follows.

Δ GDL can be constructed by using the given measurements as follows.

http://www.schoollamp.com/images/ncert-solutions/maths+practical+geometry+cbse+14152519694853.jpg

Vertex O is 10 cm away from vertex D and 7.5 cm away from vertex L. Therefore, while taking D and L as centres, draw arcs of 10 cm radius and 7.5 cm radius respectively. These will intersect each other at point O.

Join O to G and L.

GOLD is the required quadrilateral.

We know that the diagonals of a rhombus always bisect each other at 90º. Let us assume that these are intersecting each other at point O in this rhombus.

Hence, EO = OD = 3.25 cm

A rough sketch of this rhombus can be drawn as follows.

http://www.schoollamp.com/images/ncert-solutions/maths+practical+geometry+cbse+14152519718256.jpg

Draw a line segment BN of 5.6 cm and also draw its perpendicular bisector. Let it intersect the line segment BN at point O.

Taking O as centre, draw arcs of 3.25 cm radius to intersect the perpendicular bisector at point D and E.

Join points D and E to points B and N.

BEND is the required quadrilateral.

NCERT Solutions for Class 8 Maths Chapter 4 – Practical Geometry Exercise 4.3 Solution

Here you’ll find NCERT Chapter 4 – Practical Geometry Exercise 4.3 Solution.
Exercise 4.3: Solutions of Questions on Page Number: 64

Q1: Construct the following quadrilaterals.

Quadrilateral MORE MO = 6 cm

OR = 4.5 cm

∠ M = 60°

∠ O = 105°

∠ R = 105°

Quadrilateral PLAN PL = 4 cm

LA = 6.5 cm

∠ P = 90°

∠ A = 110°

∠ N = 85°

Parallelogram HEAR HE = 5 cm

EA = 6 cm

∠ R = 85°

Rectangle OKAY OK = 7 cm

KA = 5 cm

Answer:

(i)

A rough sketch of this quadrilateral can be drawn as follows.

Draw a line segment MO of 6 cm and an angle of 105º at point O. As vertex R is 4.5 cm away from the vertex O, cut a line segment OR of 4.5 cm from this ray.

http://www.schoollamp.com/images/ncert-solutions/maths+practical+geometry+cbse+14152519795076.jpg

Again, draw an angle of 105º at point R.

Draw an angle of 60º at point M. Let this ray meet the previously drawn ray from R at point E.

MORE is the required quadrilateral.

(ii)

The sum of the angles of a quadrilateral is 360°. In quadrilateral PLAN, ∠ P + ∠ L + ∠ A + ∠ N = 360° 90° + ∠ L + 110° + 85° = 360°

285° + ∠ L = 360°

∠ L = 360° – 285° = 75°

A rough sketch of this quadrilateral is as follows.

Draw a line segment PL of 4 cm and draw an angle of 75º at point L. As vertex A is 6.5 cm away from vertex L, cut a line segment LA of 6.5 cm from this ray.

Again draw an angle of 110º at point A.

http://www.schoollamp.com/images/ncert-solutions/maths+practical+geometry+cbse+14152519852971.png

Draw an angle of 90º at point P. This ray will meet the previously drawn ray from A at point N.

PLAN is the required quadrilateral. (iii)

Firstly, a rough sketch of this quadrilateral is as follows.

Draw a line segment HE of 5 cm and an angle of 85º at point E. As vertex A is 6 cm away from vertex E, cut a line segment EA of 6 cm from this ray.

Vertex R is 6 cm and 5 cm away from vertex H and A respectively. By taking radius as 6 cm and 5 cm, draw arcs from point H and A respectively. These will be intersecting each other at point R.

4. Join R to H and A.

HEAR is the required quadrilateral. (iv)

A rough sketch of this quadrilateral is drawn as follows.

http://www.schoollamp.com/images/ncert-solutions/maths+practical+geometry+cbse+14152519895812.jpg

Draw a line segment OK of 7 cm and an angle of 90º at point K. As vertex A is 5 cm away from vertex K, cut a line segment KA of 5 cm from this ray.

(3) Vertex Y is 5 cm and 7 cm away from vertex O

NCERT Solutions for Class 8 Maths Chapter 4 – Practical Geometry Exercise 4.4 Solution

Here you’ll find NCERT Chapter 4 – Practical Geometry Exercise 4.4 Solution.
Exercise 4.4: Solutions of Questions on Page Number: 67

Q1: Construct the following quadrilaterals,

Quadrilateral DEAR DE = 4 cm

EA = 5 cm AR = 4.5 cm

∠ E = 60°

∠ A = 90°

Quadrilateral TRUE TR = 3.5 cm

RU = 3 cm UE = 4 cm

∠ R = 75°

∠ U = 120°

Answer:

(i)

A rough sketch of this quadrilateral can be drawn as follows.

Draw a line segment DE of 4 cm and an angle of 60º at point E. As vertex A is 5 cm away from vertex E, cut a line segment EA of 5 cm from this ray.

Again draw an angle of 90º at point A. As vertex R is 4.5 cm away from vertex A, cut a line segment RA of 4.5 cm from this ray.

http://www.schoollamp.com/images/ncert-solutions/maths+practical+geometry+cbse+14152519982899.jpg

Join D to R.

DEAR is the required quadrilateral. (ii)

A rough sketch of this quadrilateral can be drawn as follows.

Draw a line segment RU of 3 cm and an angle of 120º at point U. As vertex E is 4 cm away from vertex U, cut a line segment UE of 4 cm

from this ray.

http://www.schoollamp.com/images/ncert-solutions/maths+practical+geometry+cbse+1415252000578.jpg

Next, draw an angle of 75º at point R. As vertex T is 3.5 cm away from vertex R, cut a line segment RT of 3.5 cm from this ray.

Join T to E.

TRUE is the required quadrilateral.

NCERT Solutions for Class 8 Maths Chapter 4 – Practical Geometry Exercise 4.5 Solution

Here you’ll find NCERT Chapter 4 – Practical Geometry Exercise 4.5 Solution.
Exercise 4.5: Solutions of Questions on Page Number: 68

Q1: Draw the following:

The square READ with RE = 5.1 cm

Answer:

All the sides of a square are of the same measure and also all the interior angles of a square are of 90º measure. Therefore, the given square READ can be drawn as follows.

A rough sketch of this square READ can be drawn as follows.

Draw a line segment RE of 5.1 cm and an angle of 90º at point R and E.

As vertex A and D are 5.1 cm away from vertex E and R respectively, cut line segments EA and RD, each of 5.1 cm from these rays.

Join D to A.

http://www.schoollamp.com/images/ncert-solutions/maths+practical+geometry+cbse+14152520080221.jpg

READ is the required square.

Q2: Draw the following:

A rhombus whose diagonals are 5.2 cm and 6.4 cm long.

Answer :

In a rhombus, diagonals bisect each other at 90 º. Therefore, the given rhombus ABCD can be drawn as follows.

A rough sketch of this rhombus ABCD is as follows.

Draw a line segment AC of 5.2 cm and draw its perpendicular bisector. Let it intersect the line segment AC at point O.

http://www.schoollamp.com/images/ncert-solutions/maths+practical+geometry+cbse+14152520139086.jpg

Draw arcs of on both sides of this perpendicular bisector. Let the arcs intersect the perpendicular bisector at point B and D.

Join points B and D with points A and C.

ABCD is the required rhombus.

Q3: Draw the following:

A rectangle with adjacent sides of length 5 cm and 4 cm.

Answer:

Opposite sides of a rectangle have their lengths of same measure and also, all the interior angles of a rectangle are of 90º measure. The given rectangle ABCD may be drawn as follows.

A rough sketch of this rectangle ABCD can be drawn as follows.

Draw a line segment AB of 5 cm and an angle of 90º at point A and B.

As vertex C and D are 4 cm away from vertex B and A respectively, cut line segments AD and BC, each of 4 cm, from these rays.

Join D to C.

http://www.schoollamp.com/images/ncert-solutions/maths+practical+geometry+cbse+14152520248782.jpg

ABCD is the required rectangle.

Q4: Draw the following:

A parallelogram OKAY where OK = 5.5 cm and KA = 4.2 cm.

Answer:

Opposite sides of a parallelogram are equal and parallel to each other. The given parallelogram OKAY can be drawn as follows.

A rough sketch of this parallelogram OKAY is drawn as follows.

Draw a line segment OK of 5.5 cm and a ray at point K at a convenient angle.

Draw a ray at point O parallel to the ray at K. As the vertices, A and Y, are 4.2 cm away from the vertices K and O respectively, cut line segments KA and OY, each of 4.2 cm, from these rays.