Question

12. Find the sum of the first 40 positive integers divisible by 6.​

Answer 1

hi friend,

the first 40 positive integers divisible by 6 are 6,12,18,....... upto

40 terms

the given series is in arthimetic progression with first term a=6 and common difference d=6

sum of n terms of an A.p is

n/2×{2a+(n-1)d}

→required sum = 40/2×{2(6)+(39)6}

=20{12+234}

=20×246

=4920

I hope this will help u ;)

Answer 2

Answer:

your answer is 4920

Step-by-step explanation:

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