NCERT Solutions Class 6th Maths Chapter -14 Practical Geometry
| Textbook | NCERT |
| Class | 6th |
| Subject | Mathematics |
| Chapter | 14th |
| Chapter Name | Practical Geometry |
| Category | Class 6th Mathematics |
| Medium | English |
| Source | Last Doubt |
NCERT Solutions For Class 6th Maths Chapter 14 Exercise – 14.6 consists of exercise wise solved questions of Practical Geometry topic. These pdf can be downloaded easily and could be used for learning anywhere and at any time. To get an idea of the types of questions asked from Practical Geometry and the methods of solving these problems in the right way, students have to refer to NCERT Solutions for Class 6th Maths Chapter 14 Practical Geometry without fail.
NCERT Solutions Class 6th Maths Chapter -14 Practical Geometry
Chapter -14
Practical Geometry
Exercise – 14.6
Question 1. Draw ∠POQ of measure 75° and find its line of symmetry. Solution:
Step I : Draw a line segment PQ¯ .
Step II : With centre Q and suitable radius, draw an arc to cut PQ at R.
Step III : With centre R and radius of the same length, mark S and T on the former arc.
Step IV : With centres S and T and with the same radius, draw two arcs which meet each other at U.
Step V: Join QU such that ∠PQU = 90°.
Step VI : With centres S and W, draw two arcs of the same radius which meet each other at Q.
Step VII: Join Q and O such that ∠PQO = 75°.
Step VIII: Bisect ∠PQO with QV.
Thus, OV is the line of symmetry of ∠PQO. |
Question 2. Draw an angle of measure 147° and construct its bisector. Solution:
Step I : Draw ∠ABC = 147° with the help of protractor.
Step II : With centres B and radius of proper length, draw an arc which meets AB and AC at E and F respectively.
Step III : With centres E and F and the radius more that half of the length of arc EF, draw two arcs which meet each other at D.
Step IV : Join B and D.
Thus, BD is the bisector of ∠ABC. |
Question 3. Draw a right angle and construct its bisector. Solution:
Step I: Draw a line segment AB.
Step II : With centre B and proper radius draw an arc to meet AB at C.
Step III : With centre C and same radius, mark two marks D and E on the former arc.
Step IV : With centres D and E and the same radius, draw two arcs which meet each other at G.
Step V : Join B and G such that ∠ABG = 90°
Step VI : Draw BH as the bisector of ∠ABG such that ∠ABH = 45°.
Thus ∠ABG is the right angle and BH is the bisector of ∠ABG. |
Question 4. Draw an angle of measure 153° and divide it into four equal parts. Solution:
Step I : Draw ∠ABP = 153° with the help of protractor.
Step II : Draw BC as the bisector of ∠ABP which dividers ∠ABP into two equal parts.
Step III : Draw BD and BE as the bisector of ∠ABC and ∠CBP respectively.
Thus, the bisectors BD, BC and BE divide the ∠ABP into four equal parts. |
Question 5. Construct with ruler and compasses, angles of the following measures:
(a) 60°
(b) 30°
(c) 90°
(d) 120°
(e) 45°
(f) 135° Solution:
(a) Angle of 60°
Step I: Draw a line segment AB¯ .
Step II : With centre B and proper radius draw an arc.
Step III : With centre D and radius of the- same length mark a point E on the former arc.
Step IV : Join B to E and product to C. Thus ∠ABC is the required angle of measure 60°. (b) Step I: Draw ∠ABC = 60° as we have done in section (a).
Step II: Draw BF as the bisector of ∠ABC.
Thus ∠ABF = 602 = 30°. (c) Angle of 90°
In the given figure,
∠ABC = 90°(Refer to solution 3)
 (d) Angle of 120°.
Step I: Draw AB¯
Step II : With centre A and radius of proper length, draw an arc.
Step III : With centre D and the same radius, draw two mark E and F on former arc.
Step IV : Join A to F and produce to C. Thus ∠CAB = 120° (e) Angle of 45s, i.e., 902 = 45°
In the figure ∠ABD = 45° (Refer to solution 3)
 (f) An angle of 135°
Since 135° = 90° + 45°
= 90° + (902 )°
In this figure ∠ABC = 135°
 |
Question 6. Draw an angle of measure 45° and bisect it. Solution:
Step I : Draw a line AB and take any point O on it.
Step II: Construct ∠AOE = 45° at O.
Step III: With centre O and proper radius, draw an arc GF.
Step IV : With centres G and F and proper radius, draw two arcs which intersect each other at D.
Step V : Join O to D.
Thus ∠AOE = 45° and OD is its bisector. |
Question 7. Draw an angle of measure 135° and bisect it. Solution:
Steps I: Draw a line OA and take any point P on it.
Step II: Construct ∠APQ = 135°.
Step III : Draw PD as the bisector of angle APQ.
Thus ∠APQ = 13502 = 67 102. |
Question 8. Draw an angle of 70°. Make a copy of it using only a straight edge and compasses. Solution:
Step I : Draw a line AB and take any point 0 on it.
Step II : Draw ∠COB = 70° using protractor.
Step III: Draw a ray PQ−→− .
Step IV: With centre O and proper radius, draw an arc which meets OA−→− and OB−→− at E and F respectively.
Step V : With the same radius and centre at P, draw an arc meeting PQ−→− at R.
Step VI: With centre R and keeping and radius equal to EF, draw an arc intersecting the former arc at S.
Step VII : Join P and S and produce it. Thus, QPS is the copy of AOB = 70°. |
Question 9. Draw an angle of 40°. Copy its supplementary angle. Solution:
Step I: Construct ∠AOB = 40° using protractor.
∠COF is the supplementary angle of ∠AOB.
Step II : Draw a ray PR−→− and take any point Q on it.
Step III : With centre O and proper radius, draw an arc which intersects OC−→− and OB−→− at E and F respectively.
Step IV : With centre Q and same radius, draw an arc which intersects PQ−→− at L.
Step V: With centre L and radius equal to EF, draw an arc which intersects the former arc at S.
Step VI : Join Q and S and produce.
Thus, ∠PQS is the copy of the supplementary angle COB. |
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