BSEB Class 9 Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbook Solutions PDF: Download Bihar Board STD 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Book Answers ~ HSSlive: Plus One & Plus Two Notes & Solutions for Kerala State Board

Tuesday, June 28, 2022

BSEB Class 9 Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbook Solutions PDF: Download Bihar Board STD 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Book Answers

BSEB Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbooks Solutions and answers for students are now available in pdf format. Bihar Board Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Book answers and solutions are one of the most important study materials for any student. The Bihar Board Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 books are published by the Bihar Board Publishers. These Bihar Board Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 textbooks are prepared by a group of expert faculty members. Students can download these BSEB STD 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 book solutions pdf online from this page.

Bihar Board Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbooks Solutions PDF

Bihar Board STD 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Books Solutions with Answers are prepared and published by the Bihar Board Publishers. It is an autonomous organization to advise and assist qualitative improvements in school education. If you are in search of BSEB Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Books Answers Solutions, then you are in the right place. Here is a complete hub of Bihar Board Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 solutions that are available here for free PDF downloads to help students for their adequate preparation. You can find all the subjects of Bihar Board STD 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbooks. These Bihar Board Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbooks Solutions English PDF will be helpful for effective education, and a maximum number of questions in exams are chosen from Bihar Board.

Bihar Board Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Books Solutions

Board	BSEB
Materials	Textbook Solutions/Guide
Format	DOC/PDF
Class	9th
Subject	Maths Chapter 13 Surface Areas and Volumes Ex 13.1
Chapters	All
Provider	Hsslive

How to download Bihar Board Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbook Solutions Answers PDF Online?

Visit our website - Hsslive
Click on the Bihar Board Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Answers.
Look for your Bihar Board STD 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbooks PDF.
Now download or read the Bihar Board Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbook Solutions for PDF Free.

BSEB Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbooks Solutions with Answer PDF Download

Find below the list of all BSEB Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbook Solutions for PDF’s for you to download and prepare for the upcoming exams:

BSEB Bihar Board Class 9th Maths Solutions Chapter 13 Surface Areas and Volumes Ex 13.1

Question 1.
A plastic box 1.5 m long, 1.25 m wide and 65 cm deep is to be made. It is to be open at the top. Ignoring the thickness of the plastic sheet, determine:
(i) The area of the sheet required for making the box.
(ii) The cost of sheet for it, if a sheet measuring 1 m² costs Rs 20.
Solution:
We have, Length, l = 1.5 m, Breadth, b = 1.25 m and Depth = Height.
h = 65 cm = .65 m
(i) Since the plastic box is open at the top. Therefore, Plastic sheet required for making such a box
= [2(l + b) × h + lb] m²
= [2(1.5 + 1.25) × .65 + 1.5 × 1.25] m²
= [2 × 2.75 × .65 + 1.875] m²
= (3.575 + 1.875) m² = 5.45 m²

(ii) Cost of 1 m² of sheet = Rs 20
∴ Total cost of 5.45 m² of sheet = Rs (5.45 × 20)
= Rs 109

Question 2.
The length, breadth and height of a room are 5 m, 4 m and 3 m respectively. Find the cost of white washing the walls of the room and the ceiling at the rate of Rs 7.50 per m².
Solution:
Here, Z = 5 m, 6 = 4 m and h = 3 m
Area of four walls including ceiling
= [2(l + b) × h + lb] m²
= [2(5 + 4) × 3 + 5 × 4] m²
= (2 × 9 × 3 + 20) m²
= (54 + 20) m² = 74 m²
Cost of white washing is Rs 7.50 per square metre.
∴ Cost of white washing = Rs (74 × 7.50) = Rs 555

Question 3.
The floor of a rectangular hall has a perimeter 250 m. If the cost of painting the four walls at the rate of Rs 10 per m² is Rs 15000, find the height of the hall.
Solution:
Cost of painting the four walls = Rs 15000
Rate of painting is Rs 10 per m²
∴ Area of four walls = (1500010) m² = 1500 m²
⇒ 2(l + b)h = 1500
⇒ Perimeter × Height = 1500
⇒ 250 × Height = 1500
⇒ Height = 1500250 = 6
Hence, the height of the hall = 6 metres.

Question 4.
The paint in a certain container is sufficient to paint an area equal to 9.375 m². How many bricks of dimensions 22.5 cm × 10 cm × 7.5 cm can be painted out of this container?
Solution:
Surface area of one brick
= 2(lb + bh + hl)
= 2(22.5100 × 10100 + 10100 × 7.5100 + 7.5100 × 22.5100) m²
= 2 × 1100 × 1100 (22.5 × 10 + 10 × 7.5 + 7.5 × 22.5) m²
= 15000 × (225 + 75 + 168.75) m²
= 15000 × 468.75 m² = 0.09375 m²
Area for which the paint is just sufficient is 9.375 m²
∴ Number of bricks that can be painted with the available Paint = 9.3750.09375 = 100

Question 5.
A cubical box has each edge 10 cm and another cuboidal box is 12.5 cm long, 10 cm wide and 8 cm high.
(i) Which box has the greater lateral surface area and by how much?
(ii) Which box has the smaller total surface area and by how much?
Solution:
(i) Lateral surface area of cubical box of edge 10 cm = 4 × 10² cm² = 400 cm²
Lateral surface area of cuboidal box
= 2(l + b) × h
= 2 × (12.5 + 10) × 8 cm²
= 2 × 22.5 × 8 cm²
= 360 cm²
Thus, lateral surface area of the cubical box is greater and is more by (400 – 360) cm² i.e., 40 cm²

(ii) Total surface area of cubical box of edge 10 cm = 6 × 10² cm² = 600 cm²
Total surface area of cuboidal box
= 2 (lb + bh + hl)
= 2(12.5 × 10 + 10 × 8 + 8 × 12.5) cm²
= 2(125 + 80 + 100) cm²
= (2 × 305) cm²
= 610 cm²
Thus, total surface area of cuboidal box is greater by 10 cm²

Question 6.
A small indoor greenhouse (herbarium) is made entirely of glass panes (including base) held together with tape. It is 30 cm long, 25 cm wide and 25 cm high.
(i) What is the area of the glass?
(ii) How much of tape is needed for all the 12 edges ?
Solution:
Here, Z = 30 cm, b = 25 cm and h = 25 cm.
(i) Area of the glass = Total surface area
= 2 (lb + bh + hl)
= 2(30 × 25 + 25 × 25 + 25 × 30) cm²
= 2(750 + 625 + 750) cm²
= (2 × 2125) cm² = 4250 cm²

(ii) Tap needed for all the 12 edges
= The sum of all the edges = 4(l + b + h)
= 4(30 + 25 + 25) cm
= 4 × 80 cm = 320 cm.

Question 7.
Shanti Sweets Stall was placing an order for making cardboard boxes for packing their sweets. Two sizes of boxes were required. The bigger of dimensions 25 cm × 20 cm × 5 cm and the smaller of dimensions 15 cm × 12 cm × 5 cm. For all the overlaps, 5% of the total surface area is required extra. If the cost of the cardboard is Rs 4 for 1000 cm2, find the cost of cardboard required for supplying 250 boxes of each \kind.
Solution:
In case of bigger box : l = 25 cm, b = 20 cm and h = 5 cm
Total surface area = 2(lb + bh + hl)
= 2(25 × 20 + 20 × 5 + 5 × 25) cm²
= 2(500 + 100 + 125) cm²
= (2 × 725) cm²
= 1450 cm²
In case of smaller box:
l = 15 cm, b = 12 cm and h = 5 cm
Total surface area = 2(lb + bh + hl)
= 2(15 × 12 + 12 × 5 + 5 × 15) cm²
= 2(180 + 60 + 75) cm²
= (2 × 315) cm²
= 630 cm²
Total surface area of 250 boxes of each type
= 250(1450 + 630) cm²
= (250 × 2080) cm² = 520000 cm²
Cardboard required (i.e., including 5% extra for overlaps etc.)
= (520000 × 105100) cm²
= 546000 cm²
Cost of 1000 cm² of cardboard
= Rs 4
∴ Total cost of cardboard
= Rs (5460001000 × 4) = Rs 2184

Question 8.
Parveen wanted to make a temporary shelter for her car, by making a box-like structure with tarpaulin that covers all the four sides and the top of the car (with the front face as a flap- which can be rolled up). Assuming that the stitching margins are very small, and therefore negligible, how much tarpaulin would be required to make the shelter of height 2.5 m, with base dimensions 4 m × 3 m?
Solution:
Dimensions of the box-like structure are l = 4 m, b = 3 m and h = 2.5 m.
Since there is no tarpaulin for the floor.
∴ Tarpaulin required = [2(l + b) × h + lb] m²
= [2(4 + 3) × 2.5 + 4 × 3] m²
= (2 × 7 × 2.5 + 12) m²
= (35 + 12) m² = 47 m²

BSEB Textbook Solutions PDF for Class 9th

Bihar Board Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbooks for Exam Preparations

Bihar Board Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbook Solutions can be of great help in your Bihar Board Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 exam preparation. The BSEB STD 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbooks study material, used with the English medium textbooks, can help you complete the entire Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Books State Board syllabus with maximum efficiency.

FAQs Regarding Bihar Board Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbook Solutions

How to get BSEB Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbook Answers??

Students can download the Bihar Board Class 9 Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Answers PDF from the links provided above.

Can we get a Bihar Board Book PDF for all Classes?

Yes you can get Bihar Board Text Book PDF for all classes using the links provided in the above article.

Important Terms

Bihar Board Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1, BSEB Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbooks, Bihar Board Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1, Bihar Board Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbook solutions, BSEB Class 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbooks Solutions, Bihar Board STD 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1, BSEB STD 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbooks, Bihar Board STD 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1, Bihar Board STD 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbook solutions, BSEB STD 9th Maths Chapter 13 Surface Areas and Volumes Ex 13.1 Textbooks Solutions,

HSSlive: Plus One & Plus Two Notes & Solutions for Kerala State Board

Hsslive.co.in: Kerala Higher Secondary News, Plus Two Notes, Plus One Notes, Plus two study material, Higher Secondary Question Paper.

Tuesday, June 28, 2022