Class 7 Exam  >  Class 7 Notes  >  RD Sharma Solutions for Class 7 Mathematics  >  RD Sharma Solutions (Part - 2) - Ex-20.1, Mensuration - I, Class 7, Math

RD Sharma Solutions (Part - 2) - Ex-20.1, Mensuration - I, Class 7, Math | RD Sharma Solutions for Class 7 Mathematics PDF Download

QUESTION 10:

A table top is 9 dm 5 cm long 6 dm 5 cm broad. What will be the cost to polish it at the rate of 20 paise per square centimetre?

ANSWER 10:

We have,
Length of the table top = 9 dm 5 cm = (9 x 10 + 5) cm = 95 cm    [ Since 1 dm = 10 cm]
Breadth of the table top = 6 dm 5 cm = (6 x 10 + 5) cm = 65 cm
∴ Area of the table top = Length x Breadth = (95 cm x 65 cm) = 6175 cm2
Rate of polishing per square centimetre = 20 paise = Rs. 0.20
Total cost = Rs. (6175 x 0.20) = Rs. 1235


Question 11:

A room is 9.68 m long and 6.2 m wide. Its floor is to be covered with rectangular tiles of size 22 cm by 10 cm. Find the total cost of the tiles at the rate of Rs 2.50 per tile.

Answer 11:

We have,
Length of the floor of the room = 9.68 m
Breadth of the floor of the room = 6.2 m
Area of the floor = 9.68 m x 6.2 m = 60.016 m2
Length of the tile = 22 cm
Breadth of the tile = 10 cm
Area of one tile = 22 cm x 10 cm = 220 cm2 = 0.022 m2    [Since 1 m2 = 10000 cm2]
Thus,
Number of tiles =   RD Sharma Solutions (Part - 2) - Ex-20.1, Mensuration - I, Class 7, Math | RD Sharma Solutions for Class 7 Mathematics

Cost of one tile = Rs. 2.50
Total cost = Number of tiles x Cost of one tile
                = Rs. (2728 x 2.50) = Rs. 6820

Question 12:

One side of a square field is 179 m. Find the cost of raising a lown on the field at the rate of Rs 1.50 per square metre.

Answer 12:

We have,
Side of the square field = 179 m
Area of the field = (Side)2 = (179 m)2 = 32041 m2
Rate of raising a lawn on the field per square metre = Rs. 1.50
Thus,
Total cost of raising a lawn on the field = Rs.(32041 x 1.50) = Rs. 48061.50

Question 13:

A rectangular field is measured 290 m by 210 m. How long will it take for a girl to go two times round the field, if she walks at the rate of 1.5 m/sec?

Answer 13:

We have,
Length of the rectangular field = 290 m
Breadth of the rectangular field = 210 m
Perimeter of the rectangular field = 2(Length + Breadth)
                                                = 2(290 + 210) = 1000 m
Distance covered by the girl = 2 x Perimeter of the rectangular field
                                        = 2 x 1000 = 2000 m

The girl walks at the rate of 1.5 m/sec.
or,
Rate = 1.5 x 60 m/min = 90 m/min
Thus,
Required time to cover a distance of 2000 m =  RD Sharma Solutions (Part - 2) - Ex-20.1, Mensuration - I, Class 7, Math | RD Sharma Solutions for Class 7 Mathematics

Hence, the girl will take  RD Sharma Solutions (Part - 2) - Ex-20.1, Mensuration - I, Class 7, Math | RD Sharma Solutions for Class 7 Mathematics min to go two times around the field.

 

Question 14:

A corridor of a school is 8 m long and 6 m wide. It is to be covered with convas sheets. If the available canvas sheets have the size 2 m × 1 m, find the cost of canvas sheets required to cover the corridor at the rate of Rs 8 per sheet.

Answer 14:

We have,
Length of the corridor = 8 m
Breadth of the corridor = 6 m
Area of the corridor of a school = Length x Breadth = (8 m x 6 m) = 48 m2
Length of the canvas sheet = 2 m
Breadth of the canvas sheet = 1 m
Area of one canvas sheet = Length x Breadth = (2 m x 1 m) = 2 m2
Thus,
Number of canvas sheets =  RD Sharma Solutions (Part - 2) - Ex-20.1, Mensuration - I, Class 7, Math | RD Sharma Solutions for Class 7 Mathematics

Cost of one canvas sheet = Rs. 8
∴ Total cost of the canvas sheets = Rs. (24 x 8) = Rs. 192

 

Question 15:

The length and breadth of a playground are 62 m 60 cm and 25 m 40 cm respectively. Find the cost of turfing it at Rs 2.50 per square metre. How long will a man take to go three times round the field, if he walks at the rate of 2 metres per second.

Answer 15:

We have,
Length of a playground = 62 m 60 cm = 62.6 m    [ Since 10 cm = 0.1 m]
Breadth of a playground = 25 m 40 cm = 25.4 m
Area of a playground = Length x Breadth= 62.6 m x 25.4 m = 1590.04 m2
Rate of turfing = Rs. 2.50/m2
∴ Total cost of turfing = Rs. (1590.04 x 2.50) = Rs. 3975.10

Again,
Perimeter of a rectangular field = 2(Length + Breadth)
                                                   = 2(62.6 + 25.4) = 176 m
Distance covered by the man in 3 rounds of a field = 3 x Perimeter of a rectangular field
                                                                            = 3 x 176 m = 528 m
The man walks at the rate of 2 m/sec.
or,
Rate = 2 x 60 m/min = 120 m/min

Thus,
Required time to cover a distance of 528 m =  RD Sharma Solutions (Part - 2) - Ex-20.1, Mensuration - I, Class 7, Math | RD Sharma Solutions for Class 7 Mathematics

 =  4 minutes 24 seconds      [ since 0.1 minutes = 6 seconds]

 


The document RD Sharma Solutions (Part - 2) - Ex-20.1, 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.
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FAQs on RD Sharma Solutions (Part - 2) - Ex-20.1, Mensuration - I, Class 7, Math - RD Sharma Solutions for Class 7 Mathematics

1. What is RD Sharma Solutions?
Ans. RD Sharma Solutions is a comprehensive book that provides detailed solutions to the exercises and problems given in the RD Sharma textbook. It is a popular resource among students studying mathematics in Class 7 and covers topics like mensuration, algebra, geometry, and more.
2. What is the significance of Part - 2 in RD Sharma Solutions?
Ans. Part - 2 in RD Sharma Solutions refers to the second part of the book that covers specific chapters or topics. In the case of Ex-20.1, it is related to the topic of Mensuration - I. Part - 2 allows students to focus on a particular section of the book, making it easier to navigate and find relevant exercises and solutions.
3. What is mensuration in mathematics?
Ans. Mensuration is a branch of mathematics that deals with the measurement of geometric shapes and figures. It involves calculating the area, volume, perimeter, and surface area of various two-dimensional and three-dimensional objects like squares, rectangles, circles, cubes, cylinders, and more.
4. How can RD Sharma Solutions help in preparing for Class 7 exams?
Ans. RD Sharma Solutions provides step-by-step solutions to all the exercises and problems in the RD Sharma textbook. By referring to these solutions, students can understand the concepts better, practice different types of questions, and improve their problem-solving skills. It serves as a valuable resource for exam preparation by offering comprehensive explanations and examples.
5. Are RD Sharma Solutions available online?
Ans. Yes, RD Sharma Solutions are available online. Many educational websites and platforms provide free or paid access to these solutions. Students can access the solutions in PDF format or view them online, making it convenient for them to study anytime and anywhere. However, it is important to ensure that the solutions obtained are from reliable sources to ensure accuracy.
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