NCERT Exemplar Class 10 Maths Solutions Chapter 10 Constructions

Exercise 10.1 Multiple Choice Questions (MCQs)

Question 1:
To divide a line segment AB in the ratio 5 : 7, first a ray AX is drawn, so that ∠BAX is an acute angle and then at equal distances points are marked on the ray AX such that the minimum number of these points is
(a) 8                           (b) 10                                 (c) 11                              (d) 12
Solution:
(d) We know that, to divide a line segment AB in the ratio m: n, first draw a ray AX which makes an acute angle ∠BAX, then marked m + n points at equal distance.
Here,                                                  m = 5, n = 7
So, minimum number of these points = m+n = 5 + 7 = 12.

Question 2:
To divide a line segment AB in the ratio 4 : 7, a ray AX is drawn first such that ∠BAX is an acute angle and then points A₁ A₂, A₃,… are located at equal distances on the ray AY and the point B is joined to
(a) A₁₂                       (b) A₁₁                        (c) A₁₂                         (d) A₉
Solution:
(b) Here, minimum 4+7 = 11 points are located at equal distances on the ray AX, and then B is joined to last point is A₁₁

Question 3:
To divide a line segment AB in the ratio 5 : 6, draw a ray AY such that ∠BAX is an acute angle, then draw a ray BY parallel to AY and the points A₁, A₂, A₃,… and B₁, B₂, B₃,… are located to equal distances on ray AY and BY, respectively. Then, the points joined are
(a) A₅ and A₆                     (b) A₆ and B₅             (c) A₄ and B₅              (d) A₅ and B₄
Solution:
(a) Given a line segment AB and we have to divide it in the ratio 5:6.

Steps of construction

1. Draw a ray AX making an acute ∠BAX.
2. Draw a ray BY parallel to AX by making ∠ABY equal to ∠BAX.
3. Now, locate the points A₁, A ₂, A₃, A ₄ and A₅ (m= 5) on AX and B₁, B₂, B₃, B₄, B₅ and B₆ (n = 6) such that all the points are at equal distance from each other.
4. Join B₆A₅. Let it intersect AB at a point C.
   Then, AC:BC = 5:6

Question 4:
To construct a triangle similar to a given ΔABC with its sides  of the corresponding sides of ΔABC, first draw a ray BX such that ∠CBX is an acute angle and X lies on the opposite side of A with respect to BC. Then, locate points B₁, B₂, B₃,… on BX at equal distances and next step is to join
(a) B₁₀ to C               (b) B₁₃ to C                      (c) B₇ to C                   (d)B₄ to C
Solution:
(c) Here, we locate points B₁, B₂, B₃, B₄, B₅, B₆ and B₇ on BX at equal distance and in next step join the last points is B₇ to C.

Question 5:
To construct a triangle similar to a given ΔABC with its sides  of the corresponding sides of ΔABC draw a ray BX such that ∠ CBX is an acute angle and X is on the opposite side of A with respect to BC. The minimum number of points to be located at equal distances on ray BX is
(a) 5                           (b) 8                           (c)13                          (d) 3
Solution:
(b) To construct a triangle similar to a given triangle, with its sides  of the corresponding sides of given triangle the minimum number of points to be located at equal distance is equal to the greater of m and n is 
Hence,                                      =
So, the minimum number of point to be located at equal distance on ray BX is 8.

MCQ Questions for Class 10 Maths With Answers

Question 6:
To draw a pair of tangents to a circle which are inclined to each other at an angle of 60°, it is required to draw tangents at end points of those two radii of the circle, the angle between them should be
(a) 135°                      (b) 90°                        (c) 60°                         (d) 120°
Solution:
(d) The angle between them should be 120° because in that case the figure formed by the intersection point of pair of tangent, the two end points of those-two radii tangents are drawn) and the centre of the circle is a quadrilateral.
From figure it is quadrilateral,
∠POQ + ∠PRQ = 180° [∴ sum of opposite angles are 180°]
60°+ θ = 180°
θ=120
Hence, the required angle between them is 120°.

Exercise 10.2 Very Short Answer Type Questions

Question 1:
By geometrical construction, it is possible to divide a line segment in the ratio √3 :.
Solution:
True

Hence, the geometrical constrution is possible to divide a line segment in the ratio 3 : 1

Question 2:
To construct a triangle similar to a given ΔABC with its sides   of the corresponding sides of ΔABC, draw a ray BX making acute angle with BC and X lies on the opposite side of A with respect of BC. The points B₁, B₂, …, B₇ are located at equal distances on BX, B₃is joined to C and then a line segment B₆C’ is drawn parallel to B₃C, where C’ lines on BC produced. Finally line segment A’C’ is drawn parallel to AC.
Solution:
False
Steps of construction

1. Draw a line segment BC with suitable length.
2. Taking B and C as centres draw two arcs of suitable radii intersecting each other at A
3. Join BA and CA ΔABC is the required triangle.
4. From B draw any ray BX downwards making an acute angle CBX.
5. Locate seven points B₁, B₂, …, B₇ on SX, such that BB₁ = B₁B₂ = B₂B₃ = B₃B₄ = B₄B₅ = B₅B₆ = B₆B₇.
6. Join B₃C and from B₇ draw a line B₇C’|| B₃C intersecting the extended line segment BC at C’.
7. From point C’ draw C’A’|| CA intersecting the extended line segment BA at A’.Then, ΔA’BC’ is the required triangle whose sides are  of the corresponding sides of ΔABC.

Given that, segment B₆C’ is drawn parallel to B₃C. But from our construction is never possible that segment B₆C’ is parallel to B₃C because the similar triangle A’BC’ has its sides  of the corresponding sides of triangle ABC. So, B₇C’ is parallel to B₃C.

Question 3:
A pair of tangents can be constructed from a point P to a circle of radius 3.5 cm situated at a distance of 3 cm from the centre.
Solution:
False
Since, the radius of the circle is 3.5 cm i.e., r = 3.5 cm and a point P situated at a distance of 3 cm from the centre i.e.,d= 3 cm
We see that,                                                                r > d
i.e., a point P lies inside the circle. So, no tangent can be drawn to a circle from a point lying inside it. ‘

Question 4:
A pair of tangents can be constructed to a circle inclined at an angle of 170°.
Solution:

Exercise 10.3 Short Answer Type Questions

Question 1:
Draw a line segment of length 7 cm. Find a point P on it which¹ divides it in the ratio 3:5.
Solution:
Steps of construction

1. Draw a line segment AB = 7 cm.
2. Draw a ray AX, making an acute ∠BAX
3. Along AX, mark 3+ 5= 8 points
   A₁, A₂, A₃, A₄, A₅, A₆, A₇, A₈ such that
   AA₁ = A₁A₂ = A₂A₃ = A ₃A₄ = A ₄A₅ = A ₅A₆ = A ₆A ₇ = A ₇A₈
4. Join   A₈B             
5. From A₃, draw A₃C || A₈B meeting AB at C.
   [by making an angle equal to ∠BA ₈A at A ₃]

Then, C is the point on AB which divides it in the ratio 3 : 5,

Question 2:
Draw a right ΔABC in which BC = 12 cm, AB = 5 cm and ∠B = 90°.Construct a triangle similar to it and of scale factor Is the new triangle also a right triangle?
Solution:
Steps of construction

1. 1. Draw a line segment BC = 12 cm,
   2. From 6 draw a line AB = 5 cm which makes right angle at B.
      
   3. Join AC, ΔABC is the given right triangle.
   4. From B draw an acute ∠CBY downwards.
   5. On ray BY, mark three points B₁, B₂and B₃, such that BB₁ = B₁B₂ = B₂B₃.
   6. Join B₃ C.
   7. From point B₂ draw B₂N || B₃C intersect BC at N.
   8. From point N draw NM || CA intersect BA at M. ΔMBN is the required triangle. ΔMBN is also a right angled triangle at B.

Question 3:
Draw a ΔABC in which BC = 6 cm, CA = 5 cm and AB = 4 cm. Construct a triangle similar to it and of scale factor 
Solution:
Steps of construction

1. Draw a line segment BC = 6 cm.
2. Taking Sand C as centres, draw two arcs of radii 4 cm and 5 cm intersecting each other at A.
3. Join BA and CA. ΔABC is the required triangle.
4. From B, draw any ray BX downwards making at acute angle.
5. Mark five points B₁, B₂,B₃, B₄ and B₅ on BX, such that
   BB, = B,B₂ = B₂B₃ = B₃B₄ = B₄B₅.
6. Join B₃C and from B₅ draw B₅M || B₃C intersecting the extended line segment BC at
7. From point M draw MN || CA intersecting the extended line segment BA at N.
   Then, ΔNBM is the required triangle whose sides is equal to  of the corresponding
   sides of the ΔABC.
   Hence, ΔNBM is the required triangle.

Question 4:
Construct a tangent to a circle of radius 4 cm from a point which is at a distance of 6 cm from its centre.
Solution:
Given, a point M’ is at a distance of 6 cm from the centre of a circle of radius 4 cm.

Exercise 10.4 Long Answer Type Questions

Question 1:
Two line segments AB and AC include an angle of 60°, where AB = 5 cm and AC = 7 cm. Locate points P and Q on AB and AC, respectively such that AP = AB and AQ = AC. Join P and Q and measure the length PQ.
Solution:
Given that, AB = 5 cm and AC = 7 cm


Steps of construction

1. Draw a line segment AB = 5 cm.
2. Now draw a ray AZ making an acute ∠BAZ = 60°.
3. With A as centre and radius equal to 7 cm draw an arc cutting the line AZ at C.
4. Draw a ray AX, making an acute ∠BAX
5. Along AX, mark 1+3 = 4 points A₁, A₂, A₃, and A₄ Such that AA₁ = A₁A₂ = A₂A₃ = A₃A₄
6. Join A₄B
7. From A₃ draw A₃P || A₄B meeting AB at  P                   [by making an angle equal to ∠AA₄B]
   Then, Pis the point on AB which divides it in the ratio 3:1.
   So,                                        AP: PB = 3:1
8. Draw a ray AY, making an acute  ∠CAY

9. Along AY, mark 3+1 = 4 points B₁, B₂, B₃ and B₄.
   Such that AB₁ = B₁B₂ = B₂B₃ =B₃B₄
10. Join   B₄C
    
11. From B₁ draw B₁Q || B₄C meeting AC atQ. [by making an angle equal to ∠AB₄C]
    Then, Q is the point on AC which divides it in the ratio 1 : 3.
    So  AQ:OC = 1:3
12. Finally, join PQ and its measurment is 3.25 cm.

Question 2:
Draw a parallelogram ABCD in which BC = 5 cm, AB = 3 cm and ∠ABC = 60°, divide it into triangles BCD and ABD by the diagonal BD. Construct the triangles BD’C’ similar to ΔBDC with Scale factor . Draw the line segment D’A’ parallel to DA, where A’ lies on extended side BA. Is A’BC’D’ a parallelogram?
Solution:
Steps of construction

1. Draw a line segment AB = 3 cm.
2. Now, draw a ray BY making an acute ∠ABY = 60°.
3. With B as centre and radius equal to 5 cm draw an arc cut the point C on
4. Again draw a ray AZ making an acute ∠ZAX’ = 60°.                [∴ BY || AZ, ∴ ∠YBX’ = TAX’ = 60°]
5. With A as centre and radius equal to 5 cm draw an arc cut the point D on AZ.

6. Now, join CD and finally make a parallelogram ABCD
7. Join BD, which is a diagonal of parallelogram ABCD
8. From B draw any ray BX downwards making an acute ∠CBX.
9. Locate 4 points B₁, B₂, B₃, B₄ on BX, such that BB₁ = B₁B₂ = B₂B₃ = B₃B₄,
10. Join B₄C and from B₃C draw a line B₄C’ || B₃C intersecting the extended line segment BC at C’.
11. From point C’ draw C’D’|| CD intersecting the extended line segment BD at D’. Then, AD’BC’ is the required triangle whose sides are  of the corresponding sides of ΔDBC
12. Now draw a line segment D’A’ parallel to DA, where A’ lies on extended side BA i.e ray BX’.
13. Finally, we observe that A’BCD’ is a parallelogram in which A’D’ = 6.5,cm A’B = 4 cm and ∠A’BD’ = 60° divide it into triangles BCD’ and A’BD’ by the diagonal BD.

Question 3:
Draw two concentric circles of radii 3 cm and 5 cm. Taking a point on outer circle construct the pair of tangents to the other. Measure the length of a tangent and verify it by actual calculation.
Solution:
Given, two concentric circles of radii 3 cm and 5 cm with centre 0. We have to draw pair of
tangents from point P on outer circle to the other.

Steps of construction

1. Draw two concentric circles with centre 0 and radii 3 cm and 5 cm.
2. Taking any point P on outer circle. Join OP.
3. Bisect OP, let M’ be the mid-point of .
   Taking M’ as centre and OM’ as radius draw a circle dotted which cuts the inner circle at M and P’.
4. Join P M and PP’. Thus, PM and PP’ are the required tangents.
5. On measuring PM and PP’, we find that PM = PP’ = 4 cm.

Question 4:
Draw an isosceles triangle ABC in which AB = AC = 6 cm and BC = 5 cm. Construct a triangle PQR similar to AABC in which PQ = 8 cm. Also justify the construction.
Solution:
Let ΔPQR and ΔABC are similar triangles, then its scale factor between the corresponding sides is 
Steps of construction

1. 1. Draw a line segment BC = 5 cm.
   2. Construct OQ the perpendicular bisector of line segment BC meeting BC at P’.
   3. Taking B and C as centres draw two arcs of equal radius 6 cm intersecting each other at A
   4. Join BA and CA. So, ΔABC is the required isosceles triangle.
      
   5. From B, draw any ray BX making an acute ∠CBX
   6. Locate four points B₁, B₂, B₃ and B₄ on BX such that BB₁ = B₁B₂ = B₂B₃ = B₃B₄
   7. Join B₃C and from B₄ draw a line B₄R || B₃C intersecting the extended line segment BC at R.
   8. From point R, draw RP||CA meeting BA produced at P
      Then, ΔPBR is the required triangle.

Question 5:
Draw a ΔABC in which AB = 5 cm, BC = 6 cm and ∠ABC = 60°. Construct a triangle similar to ABC with scale factor   Justify the construction.
Solution:

Question 6:
Draw a circle of radius 4 cm. Construct a pair of tangents to it, the angle between which is 60°. Also justify the  construction.  Measure the distance between the centre of the circle and the point of intersection of tangents.
Solution:
In order to draw the pair of tangents, we follow the following steps
Steps of construction

1. Take a point 0 on the plane of the paper and draw a circle of radius OA = 4 cm.
2. Produce OA to B such that OA = AB = 4 cm.
3. Taking A as the centre draw a circle of radius AO = AB = 4 cm.
   Suppose it cuts the circle drawn in step 1 at P and Q.
4. Join BP and BQ to get desired tangents.

Question 7:
Draw a ΔABC in which AB = 4 cm, SC = 6 cm and AC = 9 cm. Construct a triangle similar to ΔABC with scale factor   Justify the construction. Are the two triangles congruent? Note that, all the three angls and two sides of the two triangles are equal.
Solution:
Steps of construction

1. 1. Draw a line segment BC = 6 cm.
   2. Taking B and C as centres, draw two arcs of radii 4 cm and 9 cm intersecting each other at A.
   3. Join BA and CA, ΔABC is the required triangle.
   4. From B, draw any ray BX downwards making an acute angle.
   5. Mark three points B₁, B₂, B₃ on BX, such that BB₁ = B₁B₂ = B₂B₃.

1. Join B₂C and from B₃ draw B₃M || B₂C intersecting the extended line segment BC at
2. From point M, draw MN||CA intersecting the extended line segment BA to N.
   Then,ΔNBM is the required triangle whose sides are equals to   of the corresponding sides of the ΔABC

The two triangles are not congruent because, if two triangles are congruent, then they have same shape and same size. Here, all the three angles are same but three sides are not same one side is different.

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