Class 7 Exam  >  Class 7 Notes  >  RD Sharma Solutions for Class 7 Mathematics  >  RD Sharma Solutions (Part - 1)- Ex-20.2, Mensuration - I, Class 7, Math

RD Sharma Solutions (Part - 1)- Ex-20.2, Mensuration - I, Class 7, Math | RD Sharma Solutions for Class 7 Mathematics PDF Download

Question 1:

A rectangular grassy lawn measuring 40 m by 25 m is to be surrounded externally by a path which is 2 m wide. Calculate the cost of levelling the path at the rate of Rs 8.25 per square metre.

Answer 1:

We have,
Length AB = 40 m and breadth BC = 25 m

RD Sharma Solutions (Part - 1)- Ex-20.2, Mensuration - I, Class 7, Math | RD Sharma Solutions for Class 7 Mathematics

∴ Area of lawn ABCD = 40 m x 25 m = 1000 m2

Length PQ = (40  + 2  + 2 ) m = 44 m
Breadth QR = ( 25 + 2 + 2 ) m = 29 m
∴ Area of PQRS = 44 m x 29 m = 1276 m2
Now,
Area of the path = Area of PQRS − Area of the lawn ABCD
                     = 1276 m2 − 1000 m2
                     = 276 m2
Rate of levelling the path = Rs. 8.25 per m2
∴ Cost of levelling the path = Rs. ( 8.25 x 276)
                                             = Rs. 2277

 

Question 2:

One metre wide path is built inside a square park of side 30 m along its sides. The remaining part of the park is covered by grass. If the total cost of covering by grass is Rs 1176, find the rate per square metre at which the park is covered by the grass.

Answer 2:

We have,
The side of the square garden (a) = 30 m

RD Sharma Solutions (Part - 1)- Ex-20.2, Mensuration - I, Class 7, Math | RD Sharma Solutions for Class 7 Mathematics

∴ Area of the square garden including the path = a2 = (30)2 = 900 m2
From the figure, it can be observed that the side of the square garden, when the path is not included, is 28 m.
Area of the square garden not including the path = (28)2 = 784 m2
Total cost of covering the park with grass = Area of the park covering with green grass x Rate per square metre
                                                1176 = 784 x Rate per square metre
∴ Rate per square metre at which the park is covered with grass = Rs. (1176 ÷ 784 )
                                                                                                          = Rs. 1.50

 

Question 3:

Through a rectangular field of sides 90 m × 60 m, two roads are constructed which are parallel to the sides and cut each other at right angles through the centre of the field. If the which of the road is 3 m, find the total area cobered by the two roads.

Answer 3:

We have,
Length of the rectangular field = 90 m and breadth of the rectangular field = 60 m

 

RD Sharma Solutions (Part - 1)- Ex-20.2, Mensuration - I, Class 7, Math | RD Sharma Solutions for Class 7 Mathematics

 

∴ Area of the rectangular field = 90 m x 60 m = 5400 m2
Area of the road PQRS = 90 m x 3 m = 270 m2
Area of the road ABCD = 60 m x 3 m = 180 m2
Clearly, area of KLMN is common to the two roads.
Thus, area of KLMN = 3 m x 3 m = 9 m2
Hence,
Area of the roads = Area (PQRS) + Area (ABCD) − Area (KLMN)
                            = (270 + 180 )m2 − 9 m2 = 441 m

 

 

Question 4:

From a rectangular sheet of tin, of size 100 cm by 80 cm, are cut four squares of side 10 cm from each corner. Find the area of the remaining sheet.

Answer 4:

We have,

RD Sharma Solutions (Part - 1)- Ex-20.2, Mensuration - I, Class 7, Math | RD Sharma Solutions for Class 7 Mathematics

Length of the rectangular sheet = 100 cm
Breadth of the rectangular sheet = 80 cm
Area of the rectangular sheet of tin = 100 cm x 80 cm = 8000 cm2
Side of the square at the corner of the sheet = 10 cm
Area of one square at the corner of the sheet = (10 cm)2 = 100 cm2
∴ Area of 4 squares at the corner of the sheet = 4 x 100 cm2 = 400 cm2
Hence,
Area of the remaining sheet of tin =Area of the rectangular sheet − Area of the 4 squares
Area of the remaining sheet of tin = (8000 − 400) cm2
                                                       = 7600 cm

 

Question 5:

A painting 8 cm long and 5 cm wide is painted on a cardboard such that there is a margin of 1.5 cm along each of its sides. Fund the total area of the margin.

Answer 5:

We have,
Length of the cardboard = 8 cm and breadth of the cardboard = 5 cm

RD Sharma Solutions (Part - 1)- Ex-20.2, Mensuration - I, Class 7, Math | RD Sharma Solutions for Class 7 Mathematics

 

∴ Area of the cardboard including the margin = 8 cm  x 5 cm = 40 cm2
From the figure, it can be observed that,
New length of the painting when the margin is not included = 8 cm − (1.5 cm + 1.5 cm) = (8 − 3) cm = 5 cm
New breadth of the painting when the margin is not included = 5 cm − (1.5 cm + 1.5 cm) = (5 − 3) cm = 2 cm
∴ Area of the painting not including the margin = 5 cm x 2 cm = 10 cm2
Hence,
Area of the margin = Area of the cardboard including the margin − Area of the painting
                               = (40 − 10)  cm2
                               = 30 cm2

Question 6:

Rakesh has a rectangular field of length 80 m and breadth 60 m. In it, he wants to make a garden 10 m long and 4 m broad at one of the corners and at another corner, he wants to grow flowers in two floor-beds each of size 4 m by 1.5 m. In the remaining part of the field, he wants to apply mansures. Find the cost of applying the manures at the rate of Rs 300 per are.

Answer 6:

Length of the rectangular field  = 80 m
Breadth of the rectangular field = 60 m
RD Sharma Solutions (Part - 1)- Ex-20.2, Mensuration - I, Class 7, Math | RD Sharma Solutions for Class 7 Mathematics

 

∴ Area of the rectangular field = 80 m x 60
                                                  = 4800 m2
Again,
Area of the garden = 10 m x 4 m = 40 m2
Area of one flower bed = 4 m x 1.5 m = 6 m2
Thus,
Area of two flower beds = 2 x 6 m2 = 12 m2
Remaining area of the field for applying manure = Area of the rectangular field − (Area of the garden + Area of the two flower beds)
Remaining area of the field for applying manure = 4800 m2 − (40 + 12 ) m2
                                                                        = (4800 − 52 )m2
                                                                        = 4748 m2
Since 100 m2 = 1 are
∴ 4748 m2 = 47.48 ares

So, cost of applying manure at the rate of Rs. 300 per are will be Rs. (300 x 47.48) = Rs. 14244

The document RD Sharma Solutions (Part - 1)- Ex-20.2, Mensuration - I, Class 7, Math | RD Sharma Solutions for Class 7 Mathematics is a part of the Class 7 Course RD Sharma Solutions for Class 7 Mathematics.
All you need of Class 7 at this link: Class 7
97 docs

Top Courses for Class 7

FAQs on RD Sharma Solutions (Part - 1)- Ex-20.2, Mensuration - I, Class 7, Math - RD Sharma Solutions for Class 7 Mathematics

1. What are RD Sharma Solutions?
Ans. RD Sharma Solutions are a set of comprehensive solutions for the RD Sharma textbook, which is commonly used by students in Class 7 for learning mathematics. These solutions provide step-by-step explanations and solutions to all the exercises and problems in the textbook, helping students to understand and solve mathematical problems effectively.
2. What is the significance of RD Sharma Solutions for Class 7?
Ans. RD Sharma Solutions for Class 7 are highly significant as they act as a guide for students to understand and solve complex mathematical problems. These solutions provide detailed explanations, shortcuts, and tips to solve the problems, making it easier for students to grasp the concepts and excel in their mathematics exams.
3. How can RD Sharma Solutions help in preparing for the Mensuration - I exam in Class 7?
Ans. RD Sharma Solutions for Mensuration - I in Class 7 provide comprehensive explanations and solutions to the problems related to mensuration. By referring to these solutions, students can understand the concepts of mensuration, learn the formulas, and practice solving various types of problems. This helps in building a strong foundation in mensuration, ultimately aiding in the preparation for the exam.
4. Are RD Sharma Solutions for Class 7 Math available online?
Ans. Yes, RD Sharma Solutions for Class 7 Math are available online. Students can access these solutions on various educational websites, mobile apps, or by purchasing the RD Sharma textbook with the solutions included. Online availability of these solutions makes it convenient for students to study and revise the concepts anytime and anywhere.
5. Can RD Sharma Solutions for Class 7 Math be used for self-study?
Ans. Yes, RD Sharma Solutions for Class 7 Math can be extremely helpful for self-study. The solutions provide a step-by-step approach to solving mathematical problems, making it easier for students to learn and practice independently. By referring to these solutions, students can enhance their problem-solving skills and gain confidence in their mathematical abilities.
97 docs
Download as PDF
Explore Courses for Class 7 exam

Top Courses for Class 7

Signup for Free!
Signup to see your scores go up within 7 days! Learn & Practice with 1000+ FREE Notes, Videos & Tests.
10M+ students study on EduRev
Related Searches

Math | RD Sharma Solutions for Class 7 Mathematics

,

Viva Questions

,

video lectures

,

shortcuts and tricks

,

ppt

,

pdf

,

Semester Notes

,

Free

,

RD Sharma Solutions (Part - 1)- Ex-20.2

,

Class 7

,

MCQs

,

RD Sharma Solutions (Part - 1)- Ex-20.2

,

Class 7

,

practice quizzes

,

Sample Paper

,

Mensuration - I

,

RD Sharma Solutions (Part - 1)- Ex-20.2

,

study material

,

Summary

,

Extra Questions

,

Important questions

,

Mensuration - I

,

Math | RD Sharma Solutions for Class 7 Mathematics

,

mock tests for examination

,

Previous Year Questions with Solutions

,

Class 7

,

Math | RD Sharma Solutions for Class 7 Mathematics

,

Mensuration - I

,

past year papers

,

Exam

,

Objective type Questions

;