Adv
Deepak Bora
  • 0
Newbie

Find the sum of all three-digit natural numbers which are divisible by 13.

  • 0

This is the Important question based on Arithmetic progression Chapter of R.S Aggarwal book for ICSE & CBSE Board.
Here you have to find the sum of three-digit natural numbers which are divisible by given number.
Question Number 16 of Exercise 11 C of RS Aggarwal Solution

Share

1 Answer

  1. The sum of 3-digit number between 100 and 999 that are divisible by 13 can be found out by arithmetic sum i.e.
    First 3-digit number that is divided by 13 is 104
    Greatest 3-digit number that is divided by 13 is 988
    Formula for the sum of Arithmetic progression is n/2(a+l) with “a” being the value of the first number of the series and “l” being the last.
    Therefore, a = 104 and l = 988
    Value of n depends on the larger number which is divisible by 13 that is 988 by 13 is 76, whereas the number 104 divided by 13 is 8, so the number of terms is 76 – 13 = 69
    The sum is n/2(a+l)=69/2(104+988)=37674

    • 0
Leave an answer

Leave an answer

Browse

Choose from here the video type.

Put Video ID here: https://www.youtube.com/watch?v=sdUUx5FdySs Ex: "sdUUx5FdySs".

Captcha Click on image to update the captcha.

Related Questions