3.1 Rechnungen mit komplexen Zahlen

Beispiel 1

If we would like to find out the sum of the roots (solutions) of the equation \displaystyle x^2-2x+2=0 we can first obtain the roots \displaystyle x_1=1+\sqrt{-1} and \displaystyle x_2=1-\sqrt{-1}. These roots contain \displaystyle \sqrt{-1}. If we allow ourselves to do calculations containing \displaystyle \sqrt{-1}, we see that the sum of \displaystyle x_1 and \displaystyle x_2 turns out to be \displaystyle 1+\sqrt{-1} + 1-\sqrt{-1} =2, which is an ordinary, familiar "real" number.

Even though the answer to the problem was a "real" number, we found the "imaginary" number \displaystyle \sqrt{-1} useful in solving it.

Beispiel 2

1. \displaystyle (3-5i)+(-4+i)=-1-4i
2. \displaystyle \bigl(\tfrac{1}{2}+2i\bigr)-\bigl(\tfrac{1}{6}+3i\bigr) = \tfrac{1}{3}-i
3. \displaystyle \frac{3+2i}{5}-\frac{3-i}{2} = \frac{6+4i}{10}-\frac{15-5i}{10} = \frac{-9+9i}{10} = -0\textrm{.}9 + 0\textrm{.}9i

Beispiel 3

1. \displaystyle 3(4-i)=12-3i
2. \displaystyle 2i(3-5i)=6i-10i^2=10+6i
3. \displaystyle (1+i)(2+3i)=2+3i+2i+3i^2=-1+5i
4. \displaystyle (3+2i)(3-2i)=3^2-(2i)^2=9-4i^2=13
5. \displaystyle (3+i)^2=3^2+2\times3i+i^2=8+6i
6. \displaystyle i^{12}=(i^2)^6=(-1)^6=1
7. \displaystyle i^{23}=i^{22}\times i=(i^2)^{11}\times i=(-1)^{11}i=-i

Beispiel 4

1. \displaystyle z=5+i\qquad then \displaystyle \quad\overline{z}=5-i\,.
2. \displaystyle z=-3-2i\qquad then \displaystyle \quad\overline{z} =-3+2i\,.
3. \displaystyle z=17\qquad then \displaystyle \quad\overline{z} =17\,.
4. \displaystyle z=i\qquad then \displaystyle \quad\overline{z} =-i\,.
5. \displaystyle z=-5i\qquad then \displaystyle \quad\overline{z} =5i\,.

Beispiel 5

1. If \displaystyle z=4+3i one has
   • \displaystyle z+\overline{z} = 4 + 3i + 4 -3i = 8
   • \displaystyle z-\overline{z} = 6i
   • \displaystyle z \, \overline{z} = 4^2-(3i)^2=16+9=25
2. If for \displaystyle z one has \displaystyle \mathop{\rm Re} z=-2 and \displaystyle \mathop{\rm Im} z=1, one gets
   • \displaystyle z+\overline{z} = 2\,\mathop{\rm Re} z = -4
   • \displaystyle z-\overline{z} = 2i\,\mathop{\rm Im} z = 2i
   • \displaystyle z\, \overline{z} = (-2)^2+1^2=5

Beispiel 6

1. \displaystyle \quad\frac{4+2i}{1+i} = \frac{(4+2i)(1-i)}{(1+i)(1-i)} = \frac{4-4i+2i-2i^2}{1-i^2} = \frac{6-2i}{2}=3-i
2. \displaystyle \quad\frac{25}{3-4i} = \frac{25(3+4i)}{(3-4i)(3+4i)} = \frac{25(3+4i)}{3^2-16i^2} = \frac{25(3+4i)}{25} = 3+4i
3. \displaystyle \quad\frac{3-2i}{i} = \frac{(3-2i)(-i)}{i(-i)} = \frac{-3i+2i^2}{-i^2} = \frac{-2-3i}{1} = -2-3i

Beispiel 7

1. \displaystyle \quad\frac{2}{2-i}-\frac{i}{1+i} = \frac{2(2+i)}{(2-i)(2+i)} - \frac{i(1-i)}{(1+i)(1-i)} = \frac{4+2i}{5}-\frac{1+i}{2}
   \displaystyle \quad\phantom{\frac{2}{2-i}-\frac{i}{1+i}}{} = \frac{8+4i}{10}-\frac{5+5i}{10} = \frac{3-i}{10}\vphantom{\Biggl(}
2. \displaystyle \quad\frac{1-\dfrac{2}{1-i}}{2i+\dfrac{i}{2+i}} = \frac{\dfrac{1-i}{1-i}-\dfrac{2}{1-i}}{\dfrac{2i(2+i)}{(2+i)} + \dfrac{i}{2+i}} = \frac{\dfrac{1-i-2}{1-i}}{\dfrac{4i+2i^2 + i}{2+i}} = \frac{\dfrac{-1-i}{1-i}}{\dfrac{-2+5i}{2+i}}
   \displaystyle \quad\phantom{\smash{\frac{1-\dfrac{2}{1-i}}{2i+\dfrac{i}{2+i}}}}{} = \frac{-1-i}{1-i}\times \frac{2+i}{-2+5i} = \frac{(-1-i)(2+i)}{(1-i)(-2+5i)} = \frac{-2-i-2i-i^2}{-2+5i+2i-5i^2}\vphantom{\Biggl(}
   \displaystyle \quad\phantom{\smash{\frac{1-\dfrac{2}{1-i}}{2i+\dfrac{i}{2+i}}}}{} = \frac{-1-3i}{3+7i} = \frac{(-1-3i)(3-7i)}{(3+7i)(3-7i)} = \frac{-3+7i-9i+21i^2}{3^2-49i^2}\vphantom{\Biggl(} \displaystyle \quad\phantom{\smash{\frac{1-\dfrac{2}{1-i}}{2i+\dfrac{i}{2+i}}}}{} = \frac{-24-2i}{58} = \frac{-12-i}{29}\vphantom{\Biggl(}

Beispiel 8

Determine the real number \displaystyle a such that the expression \displaystyle \ \frac{2-3i}{2+ai}\ becomes real.

Multiply the numerator and denominator by the complex conjugate of the denominator so that the expression can be written with separate real and imaginary parts.

If the expression is to be real , the imaginary part must be 0, ie.

Beispiel 9

1. Solve the equation \displaystyle 3z+1-i=z-3+7i.
   
   Collect all \displaystyle z on the left-hand side by subtracting \displaystyle z from both sides

   \displaystyle 2z+1-i = -3+7i

   and now subtract \displaystyle 1-i

   \displaystyle 2z = -4+8i\,\mbox{.}

   This gives that \displaystyle \ z=\frac{-4+8i}{2}=-2+4i\,\mbox{.}
2. Solve the equation \displaystyle z(-1-i)=6-2i.
   
   Divide both sides by \displaystyle -1-i in order to obtain \displaystyle z

   \displaystyle z = \frac{6-2i}{-1-i} = \frac{(6-2i)(-1+i)}{(-1-i)(-1+i)} = \frac{-6+6i+2i-2i^2}{(-1)^2 -i^2} = \frac{-4+8i}{2} = -2+4i\,\mbox{.}

3. Solve the equation \displaystyle 3iz-2i=1-z.
   
   Adding \displaystyle z and \displaystyle 2i to both sides gives

   \displaystyle 3iz+z=1+2i\quad \Leftrightarrow \quad z(3i+1)=1+2i\,\mbox{.}

   This gives

   \displaystyle z = \frac{1+2i}{1+3i} = \frac{(1+2i)(1-3i)}{(1+3i)(1-3i)} = \frac{1-3i+2i-6i^2}{1-9i^2} = \frac{7-i}{10}\,\mbox{.}

4. Solve the equation \displaystyle 2z+1-i=\bar z +3 + 2i.
   
   The equation contains both \displaystyle z as well as \displaystyle \overline{z} and therefore we assume \displaystyle z to be \displaystyle z=a+ib and solve the equation for \displaystyle a and \displaystyle b by equating the real and imaginary parts of both sides

   \displaystyle 2(a+bi)+1-i=(a-bi)+3+2i

   i.e.

   \displaystyle (2a+1)+(2b-1)i=(a+3)+(2-b)i\,\mbox{,}

   which gives

   \displaystyle \left\{\begin{align*} 2a+1 &= a+3\\ 2b-1 &= 2-b\end{align*}\right.\quad\Leftrightarrow\quad\left\{\begin{align*} a &= 2\\ b &= 1\end{align*}\right.\,\mbox{.}

   The answer is therefore, \displaystyle z=2+i.