In this chapter, we provide RD Sharma Class 6 ex 4.3 Solutions Chapter 4 Operations on Whole Numbers for English medium students, Which will very helpful for every student in their exams. Students can download the latest RD Sharma Class 6 ex 4.3 Solutions Chapter 4 Operations on Whole Numbers Maths pdf, Now you will get step by step solution to each question.
| Textbook | NCERT |
| Class | Class 6 |
| Subject | Maths |
| Chapter | Chapter 4 |
| Chapter Name | Operations on Whole Numbers |
| Exercise | Ex 4.3 |
RD Sharma Solutions for Class 6 Chapter 4 Operations on Whole Numbers Ex 4.3 Download PDF
Chapter 4: Operations on Whole Numbers – Exercise 4.3
Question: 1
Fill in the blanks to make each of the following a true statement:
Solution:
(i) 785 × 0 = 0
(ii) 4567 × 1 = 4567 (Multiplicative identity)
(iii) 475 × 129 = 129 × 475 (Commutativity)
(iv) 1243 × 8975 = 8975 × 1243 (Commutativity)
(v) 10 × 100 × 10 = 10000
(vi) 27 × 18 = 27 × 9 + 27 × 4 + 27 × 5
(vii) 12 × 45 = 12 × 50 – 12 × 5
(viii) 78 × 89 = 78 × 100 – 78 × 16 + 78 × 5
(ix) 66 × 85 = 66 × 90 – 66 × 4 – 66
(x) 49 × 66 + 49 × 34 = 49 × (66 + 34)
Question: 2
Determine each of the following products by suitable rearrangements:
Solution:
(i) 2 × 1497 × 50
= (2 × 50) × 1497 = 100 × 1497 = 149700
(ii) 4 × 358 × 25
= (4 × 25) × 358 = 100 × 358 = 35800
(iii) 495 × 625 × 16
= (625 × 16) × 495 = 10000 × 495 = 4950000
(iv) 625 × 20 × 8 × 50
= (625 × 8) × (20 × 50) = 5000 × 1000 = 5000000
Question: 3
Using distributivity of multiplication over addition of whole numbers, find each of the following products:
Solution:
(i) 736 × 103 = 736 × (100 + 3)
{Using distributivity of multiplication over addition of whole numbers}
= (736 × 100) + (736 × 3)
= 73600 + 2208 = 75808
(ii) 258 × 1008 = 258 × (1000 + 8)
{Using distributivity of multiplication over addition of whole numbers}
= (258 × 1000) + (258 × 8)
= 258000 + 2064 = 260064
(iii) 258 × 1008 = 258 × (1000 + 8)
{Using distributivity of multiplication over addition of whole numbers}
= (258 × 1000) + (258 × 8)
= 258000 + 2064 = 260064
Question: 4
Find each of the following products:
Solution:
(i) 736 × 93
Since, 93 = (100 – 7)
Therefore, 736 × (100 – 7)
= (736 × 100) – (736 × 7)
(Using distributivity of multiplication over subtraction of whole numbers)
= 73600 – 5152 = 68448
(ii) 816 × 745
Since, 745 = (750 – 5)
Therefore, 816 × (750 – 5)
= (816 × 750) – (816 × 5)
(Using distributivity of multiplication over subtraction of whole numbers)
= 612000 – 4080 = 607920
(iii) 2032 × 613
Since, 613 = (600 +13)
Therefore, 2032 × (600 + 13)
= (2032 × 600) + (2032 × 13)
= 1219200 + 26416 = 1245616
Question: 5
Find the values of each of the following using properties:
Solution:
(i) 493 × 8 + 493 × 2
= 493 × (8 + 2)
(Using distributivity of multiplication over addition of whole numbers)
= 493 × 10 = 4930
(ii) 24579 × 93 + 7 × 24579
= 24579 × (93 + 7)
(Using distributivity of multiplication over addition of whole numbers)
= 24579 × 100 = 2457900
(iii) 1568 × 184 – 1568 × 84
= 1568 × (184 – 84)
(Using distributivity of multiplication over subtraction of whole numbers)
= 1568 × 100 = 156800
(iv) 15625 × 15625 – 15625 × 5625
= 15625 × (15625 – 5625)
(Using distributivity of multiplication over subtraction of whole numbers)
= 15625 × 10000 = 156250000
Question: 6
Determine the product of:
(i) the greatest number of four digits and the smallest number of three digits.
(ii) the greatest number of five digits and the greatest number of three digits.
Solution:
(i) The largest four-digit number = 9999
The smallest three – digit number = 100
Therefore, Product of the smallest three-digit number and the largest four-digit number = 9999 × 100 = 999900
(ii) The largest five – digit number = 9999
The largest number of three digits = 999
Therefore, Product of the largest three-digit number and the largest five-digit number
= 9999 × 999
= 9999 × (1000 — 1)
= (9999 × 1000) — (9999 × 1)
= 9999000 – 9999
= 9989001
Question: 7
In each of the following, fill in the blanks, so that the statement is true:
Solution:
(i) (500 + 7) (300 – 1)
= 507 × 299
= 299 × 507 (Commutativity)
(ii) 888 + 777 + 555
= 111 (8 + 7 + 5)
= 111 × 20 (Distributivity)
(iii) 75 × 425
= (70 + 5) × 425
= (70 + 5) (340 + 85)
(iv) 89 × (100 – 2)
= 89 × 98
= 98 × 89
= 98 × (100 – 11) (Commutativity)
(v) (15 + 5) (15 – 5)
= 20 × 10
= 200
= 225 – 25
(vi) 9 × (10000 + 974)
= 98766
Question: 8
A dealer purchased 125 color television sets. If the cost of each set is Rs 19820, determine the cost of all sets together.
Solution:
Cost of 1 color television set = Rs 19820
Therefore, Cost of 125 color television sets = Rs (19820 × 125)
= Rs 19820 × (100 + 25)
= Rs (19820 × 100) + (19820 × 25)
= Rs 1982000 + 495500
= Rs 2477500
Question: 9
The annual fee charged from a student of class 6th in a school is Rs 8880. If there are, in all, 235 students in class 6th, find the total collection.
Solution:
Fees charged from 1 student = Rs 8880
Therefore, Fees charged from 235 students = Rs 8880 × 235
= 2086800
Thus, the total collection from class VI students is Rs 2086800.
Question: 10
A group housing society constructed 350 flats. If the cost of construction for each flat is Rs 993570, what is the total cost of construction of all the flats.
Solution:
Cost of construction of 1 flat = Rs 993,570
Total number of flats constructed = 350
Total cost of construction of 350 flats = Rs (993,570 × 350)
= Rs 347,749,500
Question: 11
The product of two whole numbers is zero. What do you conclude?
Solution:
If the product of two whole numbers is zero, then it means that either one of them is zero or both of them are zero.
Question: 12
What are the whole numbers which when multiplied with itself gives the same number?
Solution:
There are two numbers which when multiplied with themselves give the same numbers.
(i) 0 × 0 = 0
(ii) 1 × 1 = 1
Question: 13
In a large housing complex, there are 15 small buildings and 22 large building. Each of the large buildings has 10 floors with 2 apartments on each floor. Each of the small buildings has 12 floors with 3 apartments on each floor. How many apartments are there in all.
Solution:
Number of large buildings = 22
Number of small buildings = 15
Number of floors in 1 large building = 10
Number of apartments on 1 floor = 2
Therefore, Total apartments in 1 large building = 10 × 2 = 20
Similarly,
Total apartments in 1 small building = 12 × 3 = 36
Therefore, Total apartments in the entire housing complex = (22 × 20) + (15 × 36)
= 440 + 540
= 980
All Chapter RD Sharma Solutions For Class 6 Maths
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