Application of LCM and HCF
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Sakthi e
May 19, 2016, 5:05:16 AM5/19/16
to brailleacl
Problems
Question 1. What is the greatest number that will divide 2930 and 3250
and will leave as remainders 7 and 11 respectively?
Solution: The greatest number will be the HCF of (2930 – 7) and (3250
– 11), i.e. 79.
Question 2. What is the least number by which 825 must be multiplied
in order to produce a multiple of 715?
Solution: 825 = 3 × 5 × 5 ×11; 715 = 5 × 11 × 13
Any multiple of 715 must have factors of 5, 11 and 13. So, 825 should
be multiplied by the factor(s) of 715, which is (are) not present in
825.
∴ The required least number = 13
Question 3. The LCM of two numbers is 2310 and their HCF is 30. If one
of the numbers is 7 × 30, find the other number.
Solution: the required number = (2310 ×30)/(7 ×30) = 330.
Question 4. Three bells commence tolling together and they toll after
0.25, 0.1 and 0.125 seconds. After what interval will they again toll
together?
Solution: They will toll together after an interval of time equal to
the LCM of 0.25 sec, 0.1 sec and 0.125 sec.
LCM of 0.25, 0.1 and 0.125 = (LCM of 250, 100 and 125) × 0.001
= 500 × 0.001 = 0.5 sec.
Question 5. What is the smallest sum of money which contains Rs. 2.50,
Rs. 20, Rs. 1.20 and Rs. 7.50?
Solution: LCM of 2.5, 20, 1.2 and 7.5 = (LCM of 25, 200, 12 and 75)
Here the highest number of decimal is 1 so we multiply each by 10 to
get 25, 200, 12 and 75.
Their LCM is = 600 but since we multiplied by 10 so bring back the
original value we need to divide it by 10
so the required solution = 600/10= 60
Question 6. What is the greatest number which will divide 410, 751 and
1030 so as to leave the remainder 7 in each case?
Solution: the required number will be the HCF of (410-7), (751 – 7),
(1030 – 7) i.e. 31.
Question 7. What is the HCF of 4/5 , 5/6 and 7/15 ?
lcm
Question 8. Three men start together to travel the same way around a
circular track of 11 km. Their speeds are 4, 5.5 and 8 km per hour
respectively. When will they meet at the starting point?
hcf
Question 9. How many times is the HCF of 48, 36, 72 and 24 contained
in their LCM?Solution: HCF of 48, 36, 72, 24 = 12;
LCM of 48, 36, 72, 24 = 144
∴ LCM = 12 × HCF. (12x12 =144)
Question 10. Find the least square number which is exactly divisible
by 4, 5, 6, 15 and 18.Solution: LCM of 4, 5, 6, 15 and 18 = 180, which
is exactly divisible by the given numbers.
180 = 2 × 2 × 3 × 3 × 5
You can see that 2 and 3 are paired but 5 is not . To make it paired
we need to multiply by 5 so that the whole multiplication becomes a
perfect square.
Therefore, if 180 is multiplied by 5 (180 × 5 = 900) and 900 will be a
perfect square as well as divisible by 4, 5, 6, 15 and 18.
Question 11. Find the sum of a numbers between 300 and 400 such that
when they are divided by 6, 9 and 12.
(i) it leaves no remainder; and
(ii) it leaves remainder as 4 in each case.
Solution: The LCM of 6, 9, and 12 = 36
(i) Multiples of 36 which lie between 300 and 400 are 324,
360 and 396.
∴ The required least number = 324 + 360 + 396 = 1080
(ii) Here the remainder is 4 in each case
So, the numbers are (324 + 4) = 328 and (360 + 4) = 364. (The number
396 + 4 = 400 does not lie between 300 and 400 so it is not
acceptable.)
∴ The required sum = 328 + 364 = 692.
--
Regards
E. Sakthivel
Computer Trainer
Online Computer Class
contact to Mobile: 9884171323 / 7667610181
E-Mail: sakthi...@gmail.com
Skype: sakthivel1711
Question 1. What is the greatest number that will divide 2930 and 3250
and will leave as remainders 7 and 11 respectively?
Solution: The greatest number will be the HCF of (2930 – 7) and (3250
– 11), i.e. 79.
Question 2. What is the least number by which 825 must be multiplied
in order to produce a multiple of 715?
Solution: 825 = 3 × 5 × 5 ×11; 715 = 5 × 11 × 13
Any multiple of 715 must have factors of 5, 11 and 13. So, 825 should
be multiplied by the factor(s) of 715, which is (are) not present in
825.
∴ The required least number = 13
Question 3. The LCM of two numbers is 2310 and their HCF is 30. If one
of the numbers is 7 × 30, find the other number.
Solution: the required number = (2310 ×30)/(7 ×30) = 330.
Question 4. Three bells commence tolling together and they toll after
0.25, 0.1 and 0.125 seconds. After what interval will they again toll
together?
Solution: They will toll together after an interval of time equal to
the LCM of 0.25 sec, 0.1 sec and 0.125 sec.
LCM of 0.25, 0.1 and 0.125 = (LCM of 250, 100 and 125) × 0.001
= 500 × 0.001 = 0.5 sec.
Question 5. What is the smallest sum of money which contains Rs. 2.50,
Rs. 20, Rs. 1.20 and Rs. 7.50?
Solution: LCM of 2.5, 20, 1.2 and 7.5 = (LCM of 25, 200, 12 and 75)
Here the highest number of decimal is 1 so we multiply each by 10 to
get 25, 200, 12 and 75.
Their LCM is = 600 but since we multiplied by 10 so bring back the
original value we need to divide it by 10
so the required solution = 600/10= 60
Question 6. What is the greatest number which will divide 410, 751 and
1030 so as to leave the remainder 7 in each case?
Solution: the required number will be the HCF of (410-7), (751 – 7),
(1030 – 7) i.e. 31.
Question 7. What is the HCF of 4/5 , 5/6 and 7/15 ?
lcm
Question 8. Three men start together to travel the same way around a
circular track of 11 km. Their speeds are 4, 5.5 and 8 km per hour
respectively. When will they meet at the starting point?
hcf
Question 9. How many times is the HCF of 48, 36, 72 and 24 contained
in their LCM?Solution: HCF of 48, 36, 72, 24 = 12;
LCM of 48, 36, 72, 24 = 144
∴ LCM = 12 × HCF. (12x12 =144)
Question 10. Find the least square number which is exactly divisible
by 4, 5, 6, 15 and 18.Solution: LCM of 4, 5, 6, 15 and 18 = 180, which
is exactly divisible by the given numbers.
180 = 2 × 2 × 3 × 3 × 5
You can see that 2 and 3 are paired but 5 is not . To make it paired
we need to multiply by 5 so that the whole multiplication becomes a
perfect square.
Therefore, if 180 is multiplied by 5 (180 × 5 = 900) and 900 will be a
perfect square as well as divisible by 4, 5, 6, 15 and 18.
Question 11. Find the sum of a numbers between 300 and 400 such that
when they are divided by 6, 9 and 12.
(i) it leaves no remainder; and
(ii) it leaves remainder as 4 in each case.
Solution: The LCM of 6, 9, and 12 = 36
(i) Multiples of 36 which lie between 300 and 400 are 324,
360 and 396.
∴ The required least number = 324 + 360 + 396 = 1080
(ii) Here the remainder is 4 in each case
So, the numbers are (324 + 4) = 328 and (360 + 4) = 364. (The number
396 + 4 = 400 does not lie between 300 and 400 so it is not
acceptable.)
∴ The required sum = 328 + 364 = 692.
--
Regards
E. Sakthivel
Computer Trainer
Online Computer Class
contact to Mobile: 9884171323 / 7667610181
E-Mail: sakthi...@gmail.com
Skype: sakthivel1711
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