Class 6 Exam  >  Class 6 Notes  >  RD Sharma Solutions for Class 6 Mathematics  >  RD Sharma Solutions -Ex-18.2, Basic Geometrical Tools, Class 6, Maths

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics PDF Download

Q. 1.) Mark the two points, A and B on a piece of paper and join them. Measure this length. For each of the following draw a line segment CD that is:

(i) Equal to the segment AB

(ii) Twice AB

(iii) three times AB

(iv) Half AB

(v) collinear with AB and is equal to it.

Answer:

Mark two points, A and B on a piece of paper and join them as follows:

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

To measure the length of AB, place the ruler with its edge along AB, such that the zero mark of the cm side of the ruler coincides with point A, as shown in the figure. Now, read the mark on the ruler, which corresponds to the point B. The reading on the ruler at point B is the length of the line segment AB. Here, AB = 5.6 cm

(i) To draw the line segment CD equal to AB, take a divider and open it, such that the end-point of one of its arms is at A and the end-point of the second arm is at B, as shown in the figure. Then, lift the divider and without disturbing its opening, place the end-points of both hands on the paper, where we have to draw CD.

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 MathematicsEx-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

(ii) To draw the line segment twice AB, draw a line / and take a point C on it. Now, take a divider and open it such that the end points of both its arms are at A and B. Then, lift the divider and without disturbing its opening, place one end-point at C and the other end-point on the line 1, as shown in the figure. Lift the divider and place one end-point at E and the other end-point on the line 1, opposite C. Name this point D.

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics
Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

(iii) To draw the line segment three times A, we draw a line / and take a point C on it. Now take a divider and open it, such that the end-points of both its arms are at A and B.

Then, we lift the divider and place one end-point at C and the other end-point on the line 1, as shown in the figure.

Let this point be E.

Again, lift the divider and place one end-pint at E and the other end-point on the line 1, opposite to C. Let this point be F.

Again, lift the divider and place one end-point at F and the other end-point on the line 1, opposite to C. Name this point D.

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics
Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

(iv) To draw the line segment that is half AB, we draw a line / and take a point C on it. Now, using a ruler, we measure the line segment AB and here, AB = 5.6 cm

Half of AB=5.62=2.8 cm

Now, we take a divider and open it so much that its end of one hand is at 0 and end of the another hand is at 2.8 cm

Then, we lift the divider and place one end at C and the other end on the line l at point D.

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

(v) To draw a line segment CD collinear with AB and equal to AB, we take a ruler along AB and draw the line extended to AB, as shown in the figure. We take a divider and open it such that the end-points of both its arms are at A and B. Then, we lift the divider and place the end-points of both its hands on the extended line of AB and mark them as C and D.

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

 

Q. 2.) The end – point P of a line – segment PQ is against 4 cm mark and the end – point Q is against the mark indicating 14.8 cm on a ruler. What is the length of the segment PQ?

Answer:

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

Extend the line segment QP towards point zero of the ruler and take a point 0 on the extended line QP corresponding to point zero on the ruler.

From the figure, we can say:

OP = 4 cm and OQ = 14.8 cm

Now, PQ = OQ – OP

= (14.8 - 4) cm

= 10.8 cm

 

Q. 3.) Draw a line segment CD. Produce it to CE such that CE= 3 CD

Answer:

We draw a line l and take two points C and D on it.

Take a divider and open it such that its end of both arms is at C and D.

Then, we lift the divider and place its one end at D and other end on the line l opposite to C as shown in the figure.

Let this point be A.

Lift the divider again and place its one end at A and other end on the line 1 opposite to C.

Name this point as E.

Here CD = DE = AE

Therefore, CE = CD + DE + AE

= CD + CD + CD (As, CD ± DE = AE)

or, CE = 3CD

 

Q. 4.) If AB = 7.5 cm and CD = 2.5 cm, construct a segment whose length is equal to

(i) AB – CD

(ii) 2 AB

(iii) 3 CD

(iv) AB + CD

(v) 2 AB + 3 CD

Answer:

Given:

AB= 7.5 cm and CD = 2.5 cm

Draw AB and CD

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 MathematicsEx-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

(i) Draw a line l and take a point E on it.

Now, take a divider and open it such that ends of both the arms are at A and B. Then, we lift the divider and place its one end at E and other end (F) and on the line l as shown in figure. Now, reset the divider in such a way that the end of its one hand is at C and the end of the other hand is at D. Then, we lift the divider and place its one end at E and other end (G) on the line l as shown in the figure. FG is required line segment, whose length is equal to (AB – CD)

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

(ii) Draw a line l and take a point E on it. Now a take a divider and open it such that the ends of both its arms are at A and B.

Then, we lift the divider and place its one end at E and other end (say F) on the line l as shown in the figure.

Again, lift the divider and place its one end F and other end on the line l, opposite to E.

Let this point be G.

EG is required line segment, whose length is equal to 2 AB.

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

(iii) Draw a line l and take a point E on it. Now take a divider and open it such that the ends of both its arms are at C and D.

Then, we lift the divider and place its end at E on it and other end (F) on the line l, as shown in the figure.

Again, we lift the divider end (G) on the l opposite to C.

Again, lift the divider end (G) on the line l opposite to C.

Again, lift the divider and place its one end at G and another end (H) on the line l, opposite to E. EH is required line segment, whose length is equal to 3 CD.

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

(iv) We draw a line l and take a point E on it. Now, take a divider and open it such that the ends of both its arms are A and B. The, we lift the divider end (F) on the line l, as shown in the figure.

Now, reset the divider in such a way that the end of its one hand is at C and the end of the other hand is at D.

Then, we lift the divider and place its one end at F and another end (G) on the line l opposite to E as shown in the figure.

EG is required line segment , whose length is equal to (AB + CD)

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

(v) Draw a line / and take point Eon it. Now, take a divider and open it such that the ends of both its arms are at A and B. Then, we lift the divider and place its one end at E and other end (say F) on the line 1, as shown in the figure.

Again, lift the divider and place its one end at F and another end (G) on the line 1, opposite to E. Now, reset the divider in such a way that the ends of its one hand are at C and the end of other hand is at D.

Then, we lift the divider and place its one end at G and another end (say H) on the line 1, opposite to E as shown in the figure.

Again, lift the divider and place its one end at H and other end (say I) on the line 1, opposite to E as shown in the figure. Again, lift the divider and place its one end at I and another end (say J) on the line 1, opposite to E as shown in the figure.

EG is required line segment, whose length is equal to (2AB + 3CD).

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

 

Q. 5.) Fill in the blanks:

(i) A part of a line with two end – points is called a Line segment

Explanation: a line segment is a part of a line that is bounded by two distinct end points.

Example: Sides of a triangle or any polygon.

A and B are definite fixed points.

Therefore, AB is a line segment.

(ii)Segment AB is equal to segment BA

Explanation: While naming a line segment, the order may not be same but the length will be equal. If AB = 4 cm, then, BA = 4 cm

(iii) The length of a line segment is the shortest distance between two segments.

Explanation: We measure the length between two points as the length of the line segment between the two points. The length between two points is the straight line, which is the shortest distance between the two end points.

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

(iv) Two segments are congruent only if they have equal length.

(v) Two segments of the same length are said to be congruent.

Explanation: Line segments are congruent if they have the same length. If AB = 4 cm and CD = 4 cm Then, we say segment AB is congruent to segment CD.

 

Q. 6.) Match the following statements:

Column AColumn B
iLine segment hasCTwo end – point
IiTwo segments may intersectAAt a point
IiiTwo segments are congruentBIf they have equal lengths
ivLine segment isDPortion of a line.

Explanation:

(i) A line segment is a part of a line that is bounded by two distinct end points.

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

(ii) Two line segments will either not intersect at all or intersect at one point. It can never intersect at more than one point.

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 MathematicsEx-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

(iii) Line segments are congruent if they have the same lengths. If AB = 6 cm and CD = 6 cm Then, AB and CD are congruent.

(iv) A line segment is a part of a line that is bounded by two distinct end points.

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

Here, AB is a line and CD is a line segment.

So, segment CD is a portion of a line AB.

 

Q. 7.) Tell which of the following statements are true (T) and false (F):

(i) The intersection of two segments may be segment.

Ans. False

Explanation: Two line segments can intersect maximum at one point and one point cannot make a line segment.

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

(ii) Two segments may intersect at a point which is not any end point of either segments containing it.

Ans. True

Explanation: If two line segment, then point of intersection will not be any of the end points.

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 MathematicsEx-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics
Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

(iii) Every ray is a segment

Ans. True

Explanation: A portion of line that starts at point and has no end point is called a ray, whereas align

segment.

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

(iv) Every segment is a ray.

Both ends points of a line segment are fixed but ray has only one end fixed. Thus a segment can never be

a ray

 

Q. 8.) What is the difference between a line, a line segment and a ray?

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics
Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics
Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

A line can be drawn to infinity in both the directions. AB is a line

A line segment has both ends fixed. EF is a line segment. A ray has one end fixed and another end can be drawn to infinity. CD is a ray.

 

Q. 9.) How many rays are represented in fig 18.8? Name them

Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics

We know that a ray has fixed starting point and it can be drawn to infinity. If we take 0 as starting point, we will have a ray in every given direction.

So, our rays are, OA→ , OB→, OC→, OD→, OE→, OF→, OG, OH→ .

Thus, the number of rays in the figure is 8.

The document Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions | RD Sharma Solutions for Class 6 Mathematics is a part of the Class 6 Course RD Sharma Solutions for Class 6 Mathematics.
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FAQs on Ex-18.2, Basic Geometrical Tools, Class 6, Maths RD Sharma Solutions - RD Sharma Solutions for Class 6 Mathematics

1. What are the basic geometrical tools used in Class 6 Mathematics?
Ans. The basic geometrical tools used in Class 6 Mathematics include a ruler, compass, protractor, and a pair of dividers. These tools are used for measuring lengths, drawing straight lines, constructing angles, and dividing lengths.
2. How can a ruler be used as a basic geometrical tool in Class 6 Mathematics?
Ans. A ruler is used to measure lengths and draw straight lines in Class 6 Mathematics. It has markings in centimeters and millimeters, which help in accurately measuring the length of lines and sides of shapes. It can also be used as a straight edge for drawing straight lines.
3. What is the purpose of using a compass in Class 6 Mathematics?
Ans. A compass is used in Class 6 Mathematics for drawing circles and arcs. It consists of two legs, one with a pointed end and the other with a pencil or pen holder. By adjusting the distance between the legs, different sizes of circles or arcs can be drawn. The compass is also used to bisect angles and construct perpendicular lines.
4. How can a protractor be used in Class 6 Mathematics?
Ans. A protractor is used to measure and construct angles in Class 6 Mathematics. It has a semicircular shape with markings from 0 to 180 degrees. To measure an angle, the protractor is placed on the vertex of the angle and the arms of the angle are aligned with the markings on the protractor. It can also be used to construct angles of specific measurements.
5. What is the role of a pair of dividers in Class 6 Mathematics?
Ans. A pair of dividers is used in Class 6 Mathematics for dividing lengths and transferring measurements. It has two pointed legs that can be adjusted to a desired distance. This tool is useful for dividing a line segment into equal parts, creating congruent line segments, and transferring measurements from one shape to another.
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