SOLUTION: The product of three consecutive integers is 21 more than the cube of the smallest integer. Find the integers.

Question 718010: The product of three consecutive integers is 21 more than the cube of the smallest integer. Find the integers.
Found 2 solutions by DrBeeee, algebrahouse.com:
Answer by DrBeeee(684) (Show Source): You can put this solution on YOUR website!
Let n = first integer
Then the second and third consecutive integers are n+1 and n+2, respectively.
Your problem statement gives us
(1) n*(n+1)*(n+2) = n^3 - 21, agree?
Simplify (1) to get
(2) n*(n^2 +3n +2) = n^3 + 21 or
(3) n^3 + 3n^2 + 2n = n^3 + 21
The n^3 terms of (3) cancel leaving
(4) 3n^2 + 2n - 21 = 0
Are you good at factoring? No, use the quadratic factoring equation.
I'm fair enough at factoring to be able to use the basic "rules" and get
(5) 3n^2 + 2n -21 = (3n - x)*(n + y), where x*y = 21, try 7*3 and get
(6) 3n^2 + 2n -21 = (3n-7)*(n+3)
If you FOIL the right side of (6) you wili get the left side of (6).
Setting (6) equal to zero you get the two roots of (4) as
(7) n = (7/3,-3).
The first root, 7/3 is not a solution because 7/3 is not an integer. The correct root is
(8) n = -3
Let's check the value n = -3 with (1).
Is (-3*-2*-1 = (-3)^3 + 21)?
Is (-6 = -27 +21)?
Is (-6 = -6)? Yes
Answer: The three consecutive integers are -3, -2, and -1.
Answer by algebrahouse.com(1659) (Show Source): You can put this solution on YOUR website!
x = smallest integer
x + 1 = second integer
x + 2 = third integer {consecutive integers increase by 1}

x(x + 1)(x + 2) = x� + 21 {product of the three is 21 more than cube of smallest}
(x� + x)(x + 2) = x� + 21 {used distributive property}
x� + 3x� + 2x = x� + 21 {used foil method}
3x� + 2x = 21 {subtracted x� from each side}
3x� + 2x - 21 = 0 {subtracted 21 from each side}
3x� + 9x - 7x - 21 = 0 {split 2x into 9x and -7x}
3x(x + 3) - 7(x + 3) = 0 {factored 3x out of first two terms and -7 out of last two terms}
(3x - 7)(x + 3) = 0 {factored x + 3 out of the two terms}
3x - 7 = 0 or x + 3 = 0 {set each factor equal to 0}
x = 7/3 or x = -3 {solved each equation for x}
x = -3 {fractions are not integers}
x + 1 = -2 {substituted -3, in for x, into x + 1}
x + 2 = -1 {substituted -1, in for x, into x + 2}

-3, -2, and -1 are the three consecutive integers

For more help from me, visit: www.algebrahouse.com

RELATED QUESTIONS
The product of three consecutive integers is 21 more than the cube of the smallest... (answered by greenestamps,Alan3354)
The product of three consecutive integers is 21 more than the cube of the smallest... (answered by math_helper)
Find three consecutive integers whos product is 120 larger than the cube of the smallest... (answered by solver91311)
find three consecutive integers whose product is 85 larger than the cube of the smallest... (answered by stanbon)
Find three consecutive integers whose product is 161 larger than the cube of the smallest (answered by ewatrrr,MathTherapy)
find three consecutive integers whose product is 56 larger than the cube of the smallest... (answered by CubeyThePenguin)
Find three consecutive integers whose product is 208 larger that the cube of the smallest (answered by CubeyThePenguin)
the product of 3 integers is 21 more than the cube of the smallest integer.what is the... (answered by harpazo)
The product of three consecutive odd integers is ten less than the cube of the smallest... (answered by josgarithmetic)