find the least number that is divisible by 15,18,21,30 leaving a remainder in each case
Answers
Answer:
15- it is a multiple of 3...so the least no. divisible by 15 is 3
18-it is a multiple of 3...so the least no. divisible by 18 is 3
21-it is a multiple of 3...so the least no. divisible by 21 is 3
30-it is a multiple of 3...so the least no. divisible by 30 is 3
Step-by-step explanation:
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637 is the least number that is divisible by 15,18,21,30 leaving 7 remainder in each case
Given:
A number is divisible by 15,18,21,30 leaving 7 remainder in each case
To Find:
Least Number satisfying
Solution:
LCM - Least common multiplier of given numbers is the least number which is perfectly divisible by given numbers.
Step 1:
Least number that is divisible by 15,18,21,30 leaving 7 remainder in each case will be
LCM ( 15 , 18 , 21 , 30) + 7
Step 2:
Prime Factorize 15, 18 ,21 and 30
15 = 3 x 5
18 = 2 x 3 x 3
21 = 3 x 7
30 = 2 x 3 x 5
Step 3:
Calculate LCM
LCM ( 15 , 18 , 21 , 30) = 2 x 3 x 3 x 5 x 7 = 630
Step 4:
Add 7 in 630 to get desired number
630 + 7 = 637
637 is the least number that is divisible by 15,18,21,30 leaving 7 remainder in each case
( Question is missing remainder , probably remainder is 7)
Ref: https://brainly.in/question/49500743