Playing With Numbers
Class 8th Mathematics CBSE Solution
- Find the values of the letters in each of the following and give reasons for…
- r 4a + 98 b Find the values of the letters in each of the following and give…
- r 1a x a 9a Find the values of the letters in each of the following and give…
- Find the values of the letters in each of the following and give reasons for…
- Find the values of the letters in each of the following and give reasons for…
- Find the values of the letters in each of the following and give reasons for…
- Replace A, B by suitable numerals.
- Find the values of the letters in each of the following and give reasons for…
- Find the values of the letters in each of the following and give reasons for…
- r 12a +6ab Find the values of the letters in each of the following and give…
- If 21y5 is a multiple of 9, where y is a digit, what is the value of y?…
- If 31z5 is a multiple of 9, where z is a digit, what is the value of z? You…
- If 24x is a multiple of 3, where x is a digit, what is the value of x? (Since…
- If 31z5 is a multiple of 3, where z is a digit, what might be the values of z?…
Exercises 16.1
Question 1.Find the values of the letters in each of the following and give reasons for the steps involved
Answer:
The addition of A and 5 is giving 2 which means that a number whose ones digit is 2.
But, this is only possible when digit A is 7
Well in that case, the addition of A =7 and 5 will give 12
And, 1 will be the carry for the next step.
Now,
In the next step,
1 + 3 + 2 = 6
Therefore, the addition is as follows:
Clearly, B is 6
Hence, A and B are 7 and 6 respectively
Question 2.
Find the values of the letters in each of the following and give reasons for the steps involved
Answer:
While adding A and 8, we are getting 3 which shows that a number whose ones digit is 3.
But, this is only possible when digit A is 5.
In that case, the addition of A and 8 will give 13
And, 1 will be the carry for the next step.
Now,
In the next step,
1 + 4 + 9 = 14
Therefore, the addition is as follows:
Clearly, B and C are 4 and 1 respectively
Hence, A, B, and C are 5, 4, and 1 respectively
Question 3.
Find the values of the letters in each of the following and give reasons for the steps involved
Answer:
While multiplying A with A itself, we are getting a number whose ones digit is A again.
But, This happens only when A = 1, 5, or 6
Now,
If A = 1, then the multiplication will be 11 × 1 = 11. But, here the tens digit is given as 9
Therefore, A = 1 is invalid.
Similarly,
If A = 5, then the multiplication will be 15 × 5 = 75. Thus, A = 5 is also invalid.
If we take A = 6, then 16 × 6 = 96
Therefore, A should be 6
The multiplication is as follows:
Hence, the value of A is 6
Question 4.
Find the values of the letters in each of the following and give reasons for the steps involved
Answer:
While adding A and 3 we obtain 6. There can be two cases.
(i) First step is not producing a carry
In that case,
A comes to be 3 as 3 + 3 = 6
Taking the first step in which the addition of B and 7 is giving A (i.e., 3), B should be a number such that the units digit of this addition comes to be 3.
It is only possible only when B = 6
In that case, A = 6 + 7 = 13
But, A is a single digit number
Hence, it is invalid.
(ii) First step is producing a carry
In that case,
A comes to be 2 as 1 + 2 + 3 = 6
Taking the first step in which the addition of B and 7 is giving A (i.e., 2), B should be a number such that the units digit of this addition comes to be 2.
But, it is possible only when B = 5 and 5 + 7 = 12
Hence, the values of A and B are 2 and 5 respectively
Question 5.
Find the values of the letters in each of the following and give reasons for the steps involved
Answer:
The multiplication of 3 and B gives a number whose ones digit is B again
Therefore, B must be 0 or 5
Let B is 5
Multiplication of first step = 3 × 5 = 15
Now,
1 will be a carry for the next step
3 × A + 1 = CA
This is not valid for any value of A
Hence, B must be 0 only.
If B = 0, then there won’t be any carry for the next step
We will get, 3 × A = CA
That is, the one's digit of 3 × A should be A
This is possible when A = 5 or 0
But, A cannot be 0 as AB is a two-digit number
Therefore, A must be 5 only.
The multiplication is as follows:
Hence, the values of A, B, and C are 5, 0, and 1 respectively
Question 6.
Find the values of the letters in each of the following and give reasons for the steps involved
Answer:
While multiplying B and 5 we are getting a number whose ones digit is B again.
This is only possible when B = 5 or B = 0
In that case,
The product will be, B × 5 = 5 × 5 = 25
2 will be a carry for the next step
Now,
We have, 5 × A + 2 = CA, which is possible for A = 2 or 7
The multiplication is as follows:
If B = 0,
B × 5 = B
⇒ 0 × 5
= 0
There will not be any carry in this step.
In the next step, 5 × A = CA
It can only happen when A = 5 or A = 0
But, A cannot be 0 as AB is a two-digit number
Hence, A can be 5 only.
The multiplication is as follows:
Hence, there are 3 possible values of A, B, and C:
(i) 5, 0, and 2 respectively
(ii) 2, 5, and 1 respectively
(iii) 7, 5, and 3 respectively
Question 7.
Replace A, B by suitable numerals. 
Answer:
while multiplying 6 and B we get a number whose one's digit is B again
It is only possible when B = 0, 2, 4, 6, or 8
If B = 0, then the product will be 0.
Therefore, this value of B is immposible.
In that case,
If B = 2, then B × 6 = 12 and 1 will be a carry for the next step
6A + 1 = BB = 22
⇒ 6A = 21
Hence, any integer value of A is not possible
If B = 6, then B × 6 = 36 and 3 will be a carry for the next step
6A + 3 = BB = 66
⇒ 6A = 63
Hence, any integer value of A is not possible
If B = 8, then B × 6 = 48 and 4 will be a carry for the next step.
6A + 4 = BB = 88
⇒ 6A = 84
Therefore,
A = 14
However, A is a single digit number. Therefore, this value of A is not possible
If B = 4, then B × 6 = 24 and 2 will be a carry for the next step.
6A + 2 = BB = 44
⇒ 6A = 42
And hence, A = 7
The multiplication is as follows:
Hence, the values of A and B are 7 and 4 respectively
Question 8.
Find the values of the letters in each of the following and give reasons for the steps involved
Answer:
While adding 1 and B we get 0 i.e., a number whose ones digits is 0.
This is only possible when digit B is 9.
In that case, the addition of 1 and B will give 10 and, 1 will be the carry for the next step.
In the next step,
1 + A + 1 = B
Clearly,
A is 7 as 1 + 7 + 1 = 9 = B
Therefore, the addition is as follows:
Hence, the values of A and B are 7 and 9 respectively
Question 9.
Find the values of the letters in each of the following and give reasons for the steps involved
Answer:
While adding B and 1 we get 8 i.e., a number whose ones digits is 8.
This is only possible when digit B is 7.
In that case, the addition of B and 1 will give 8.
In the next step,
A + B = 1
Clearly, A is 4
4 + 7 = 11 and 1 will be a carry for the next step.
In the next step,
1 + 2 + A = B
1 + 2 + 4 = 7
Therefore, the addition is as follows:
Hence, the values of A and B are 4 and 7 respectively
Question 10.
Find the values of the letters in each of the following and give reasons for the steps involved
Answer:
While adding A and B we get 9 i.e., a number whose ones digits is 9.
The sum can be 9 only as the sum of two single digit numbers cannot be 19.
Therefore, there will not be any carry in this step
In the next step, 2 + A = 0
It is possible only when A = 8
2 + 8 = 10 and 1 will be the carry for the next step.
1 + 1 + 6 = A
Clearly, A is 8.
We know that the addition of A and B is giving 9. As A is 8, therefore, B is 1
Hence, the addition is as follows:
Hence, the values of A and B are 8 and 1 respectively
Exercises 16.2
Question 1.If 21y5 is a multiple of 9, where y is a digit, what is the value of y?
Answer:
We know that. if a number is a multiple of 9, then the sum of its digits will be divisible by 9
Sum of digits of 21y5 = 2 + 1 + y + 5 = 8 + y
Hence, 8 + y should be a multiple of 9
This is possible when 8 + y is any one of these numbers 0, 9, 18, 27, and so on …
However, since y is a single digit number, this sum can be 9 only.
8 + y = 9y = 9 - 8
y = 1
Therefore, y should be 1 only
Question 2.
If 31z5 is a multiple of 9, where z is a digit, what is the value of z?
You will find that there are two answers for the last problem. Why is this so?
Answer:
We know that if a number is a multiple of 9, then the sum of its digits will be divisible by 9
Sum of digits of 31z5 = 3 + 1 + z + 5 = 9 + z
Hence, 9 + z should be a multiple of 9
This is possible when 9 + z is any one of these numbers 0, 9, 18, 27, and so on …
But, since z is a single digit number, this sum can be either 9 or 18
Therefore, z should be either 0 or 9
Question 3.
If 24x is a multiple of 3, where x is a digit, what is the value of x?
(Since 24x is a multiple of 3, its sum of digits 6 + x is a multiple of 3; so 6 + x is one of these numbers: 0, 3, 6, 9, 12, 15, 18, ... . But since x is a digit, it can only be that6 + x = 6 or 9 or 12 or 15. Therefore, x = 0 or 3 or 6 or 9. Thus, x can have any of four different values)
Answer:
Since 24x is a multiple of 3, the sum of its digits is a multiple of 3
Sum of digits of 24x = 2 + 4 + x = 6 + x
Hence, 6 + x is a multiple of 3
This is possible when 6 + x is any one of these numbers 0, 3, 6, 9, and so on …
Since x is a single digit number, the sum of the digits can be 6 or 9 or 12 or 15 and the value of x comes to 0 or 3 or 6 or 9 respectively
Thus, x can have its value as any of the four different values 0, 3, 6, or 9
Question 4.
If 31z5 is a multiple of 3, where z is a digit, what might be the values of z?
Answer:
Since 31z5 is a multiple of 3, the sum of its digits will be a multiple of 3
That is, 3 + 1 + z + 5 = 9 + z is a multiple of 3
This is possible when 9 + z is any one of 0, 3, 6, 9, 12, 15, 18, and so on …
Since z is a single digit number, the value of 9 + z can only be 9 or 12 or 15 or 18 and thus, the value of x comes to 0 or 3 or 6 or 9 respectively
Thus, z can have its value as any one of the four different values 0, 3, 6, or 9