2 Answers

Wudizhuo · Answer 1 · 2018-08-24T03:40:41+0000

Answer:

38,39 and 40

Explanation:

Given: the sum of 3 consecutive integral numbers is 117

To Find: Find the numbers.

Solution:

Let the three consecutive numbers be =
$\text{x}$

$\text{x}+1$

$\text{x}+2$

As given in question,

the sum of these three consecutive integral number is =
117

now,

$\text{x}+\text{x}+1+\text{x}+2=117$

$3\text{x}+3=117$

$3\text{x}=114$

$\text{x}=(114)/(3)$

$\text{x}=38$

first number is 38, other two numbers are

$\text{x}+1=39$

$\text{x}+2=40$

To verify,

38+39+40=117

Therefore three consecutive integrals whose sum is 117 are
38,39 and

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