Lösung 2.3:3e
Aus Online Mathematik Brückenkurs 1
(Unterschied zwischen Versionen)
K |
|||
| Zeile 1: | Zeile 1: | ||
| - | In this case, we see that the left-hand side contains the factor | + | In this case, we see that the left-hand side contains the factor <math>x+3</math>, which we can take out to obtain |
| - | <math>x+ | + | |
| - | + | ||
| - | + | ||
| - | + | ||
| - | + | ||
| - | + | ||
| - | + | ||
| + | {{Displayed math||<math>\begin{align} | ||
| + | (x+3)(x-1) - (x+3)(2x-9) | ||
| + | &= (x+3)\bigl((x-1)-(2x-9)\bigr)\\[5pt] | ||
| + | &= (x+3)(x-1-2x+9)\\[5pt] | ||
| + | &= (x+3)(-x+8)\,\textrm{.} | ||
| + | \end{align}</math>}} | ||
This rewriting of the equation results in the new equation | This rewriting of the equation results in the new equation | ||
| + | {{Displayed math||<math>(x+3)(-x+8)=0</math>}} | ||
| - | + | which has the solutions <math>x=-3</math> and <math>x=8\,</math>. | |
| - | + | ||
| - | + | ||
| - | which has the solutions | + | |
| - | <math>x=- | + | |
| - | and | + | |
| - | <math>x= | + | |
| - | We check the solution | + | We check the solution <math>x=8</math> by substituting it into the equation, |
| - | <math>x= | + | |
| - | by substituting it into the equation | + | |
| - | + | {{Displayed math||<math>\text{LHS} = (8+3)\cdot (8-1) - (8+3)\cdot (2\cdot 8 - 9) = 11\cdot 7 - 11\cdot 7 = 0 = \textrm{RHS.}</math>}} | |
| - | <math>= | + | |
| - | + | ||
Version vom 08:47, 29. Sep. 2008
In this case, we see that the left-hand side contains the factor \displaystyle x+3, which we can take out to obtain
This rewriting of the equation results in the new equation
which has the solutions \displaystyle x=-3 and \displaystyle x=8\,.
We check the solution \displaystyle x=8 by substituting it into the equation,
