Difference between revisions of "004 Sample Final A, Problem 6"

Latest revision as of 15:58, 4 May 2015

Simplify. ${\frac {1}{3x+6}}-{\frac {x}{x^{2}-4}}+{\frac {3}{x-2}}$

Foundations
How do you simplify ${\frac {1}{x}}+{\frac {1}{x+2}}$ into one fraction?
Answer:
You need to get a common denominator. The common denominator is $x(x+2)$ . So,
${\frac {1}{x}}+{\frac {1}{x+2}}={\frac {x+2}{x(x+2)}}+{\frac {x}{x(x+2)}}={\frac {2x+2}{x(x+2)}}$ .

Solution:

Step 1:
If we factor the denominators, we have ${\frac {1}{3(x+2)}}-{\frac {x}{(x+2)(x-2)}}+{\frac {3}{x-2}}$ .
So, the common denominator of these three fractions is $3(x-2)(x+2)$ .

Step 2:
So, we have ${\frac {1}{3(x+2)}}-{\frac {x}{(x+2)(x-2)}}+{\frac {3}{x-2}}={\frac {x-2}{3(x-2)(x+2)}}-{\frac {3x}{3(x+2)(x-2)}}+{\frac {3(3)(x+2)}{3(x+2)(x-2)}}$ .

Step 3:
Now, combining into one fraction, we have ${\frac {x-2-3x+3(3)(x+2)}{3(x-2)(x+2)}}={\frac {7x+16}{3(x-2)(x+2)}}$

Final Answer:
${\frac {7x+16}{3(x-2)(x+2)}}$

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+|If we factor the denominators, we have <math>\frac{1}{3(x+2)} - \frac{x}{(x+2)(x-2)} + \frac{3}{x-2}</math>.
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+|So, the common denominator of these three fractions is <math>3(x-2)(x+2)</math>.
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+|So, we have <math>\frac{1}{3(x+2)} - \frac{x}{(x+2)(x-2)} + \frac{3}{x-2}=\frac{x-2}{3(x-2)(x+2)} - \frac{3x}{3(x+2)(x-2)} + \frac{3(3)(x+2)}{3(x+2)(x-2)}</math>.
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 ! Step 3:
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+|Now, combining into one fraction, we have <math>\frac{x-2-3x+3(3)(x+2)}{3(x-2)(x+2)}=\frac{7x+16}{3(x-2)(x+2)} </math>
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+|<math>\frac{7x+16}{3(x-2)(x+2)} </math>
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 [[004 Sample Final A|<u>'''Return to Sample Exam</u>''']]