What is the solution to 2/(3-x)=1/3-1/x23x=131x?

2 Answers
Jim G.
Mar 16, 2017

x=+-3ix=±3i

Explanation:

You are correct. there are no real solutions. They are complex.

There are different approaches to solving this equation.

I have decided on the following approach.

Collect fractions in x together on the left side of the equation.

"add "1/x" to both sides"add 1x to both sides

2/(3-x)+1/x=1/3cancel(-1/x)cancel(+1/x)

rArr2/(3-x)+1/x=1/3

add the fractions on the left by creating a color(blue)"common denominator"

(2/(3-x)xxx/x)+(1/x xx(3-x)/(3-x))=1/3

rArr(2x)/(x(3-x))+(3-x)/(x(3-x))=1/3

Now there is a common denominator, we can add the numerators, leaving the denominator as it is.

rArr(2x+3-x)/(x(3-x))=1/3

rArr(x+3)/(x(3-x))=1/3

At this stage we can color(blue)"cross-multiply"

rArr3(x+3)=3x-x^2

rArrcancel(3x)+9=cancel(3x)-x^2

rArrx^2=-9

There is no real number when squared produces a negative.

rArr" there are no real solutions"

I don't know if you have covered color(blue)"complex numbers"

for completeness I will provide the solution.

x^2=-9tocolor(red)((1))

Take the color(blue)"square root of both sides"

sqrt(x^2)=+-sqrt(-9)

• sqrt(-9)=sqrt(9xx-1)=sqrt9xxsqrt(-1)

sqrt(-1)" is defined as an imaginary number and given the symbol i"

rArrsqrt9xxsqrt(-1)=3i

"Finally returning to " color(red)((1))

x^2=-9rArrx=+-3i

Tony B
Mar 16, 2017

x=+-3 i

Explanation:

Given:" "2/(3-x)=1/3-1/x

Multiply both sides by (3-x)

2=(3-x)/3-(3-x)/x

2=1-x/3-3/x+1

2=2 -x/3-3/x

The only way this can work is if we set-x/3-3/x=0

-x/3=+3/x

-(x^2)=3^2

Multiply both sides by (-1)

x^2=-9

x=sqrt(9xx(-1))

x=+-3 i

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