Abstand zum Strom
About points...
We associate a certain number of points with each exercise.
When you click an exercise into a collection, this number will be taken as points for the exercise, kind of "by default".
But once the exercise is on the collection, you can edit the number of points for the exercise in the collection independently, without any effect on "points by default" as represented by the number here.
That being said... How many "default points" should you associate with an exercise upon creation?
As with difficulty, there is no straight forward and generally accepted way.
But as a guideline, we tend to give as many points by default as there are mathematical steps to do in the exercise.
Again, very vague... But the number should kind of represent the "work" required.
When you click an exercise into a collection, this number will be taken as points for the exercise, kind of "by default".
But once the exercise is on the collection, you can edit the number of points for the exercise in the collection independently, without any effect on "points by default" as represented by the number here.
That being said... How many "default points" should you associate with an exercise upon creation?
As with difficulty, there is no straight forward and generally accepted way.
But as a guideline, we tend to give as many points by default as there are mathematical steps to do in the exercise.
Again, very vague... But the number should kind of represent the "work" required.
About difficulty...
We associate a certain difficulty with each exercise.
When you click an exercise into a collection, this number will be taken as difficulty for the exercise, kind of "by default".
But once the exercise is on the collection, you can edit its difficulty in the collection independently, without any effect on the "difficulty by default" here.
Why we use chess pieces? Well... we like chess, we like playing around with \(\LaTeX\)-fonts, we wanted symbols that need less space than six stars in a table-column... But in your layouts, you are of course free to indicate the difficulty of the exercise the way you want.
That being said... How "difficult" is an exercise? It depends on many factors, like what was being taught etc.
In physics exercises, we try to follow this pattern:
Level 1 - One formula (one you would find in a reference book) is enough to solve the exercise. Example exercise
Level 2 - Two formulas are needed, it's possible to compute an "in-between" solution, i.e. no algebraic equation needed. Example exercise
Level 3 - "Chain-computations" like on level 2, but 3+ calculations. Still, no equations, i.e. you are not forced to solve it in an algebraic manner. Example exercise
Level 4 - Exercise needs to be solved by algebraic equations, not possible to calculate numerical "in-between" results. Example exercise
Level 5 -
Level 6 -
When you click an exercise into a collection, this number will be taken as difficulty for the exercise, kind of "by default".
But once the exercise is on the collection, you can edit its difficulty in the collection independently, without any effect on the "difficulty by default" here.
Why we use chess pieces? Well... we like chess, we like playing around with \(\LaTeX\)-fonts, we wanted symbols that need less space than six stars in a table-column... But in your layouts, you are of course free to indicate the difficulty of the exercise the way you want.
That being said... How "difficult" is an exercise? It depends on many factors, like what was being taught etc.
In physics exercises, we try to follow this pattern:
Level 1 - One formula (one you would find in a reference book) is enough to solve the exercise. Example exercise
Level 2 - Two formulas are needed, it's possible to compute an "in-between" solution, i.e. no algebraic equation needed. Example exercise
Level 3 - "Chain-computations" like on level 2, but 3+ calculations. Still, no equations, i.e. you are not forced to solve it in an algebraic manner. Example exercise
Level 4 - Exercise needs to be solved by algebraic equations, not possible to calculate numerical "in-between" results. Example exercise
Level 5 -
Level 6 -
Question
Solution
Short
Video
\(\LaTeX\)
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Visit our YouTube-Channel to see solutions to other exercises.
Don't forget to subscribe to our channel, like the videos and leave comments!
Exercise:
Ein Punkt P habe den Abstand r zu einem unlich langen geraden stromdurchflossenen Draht vgl. Abb.. Vergrössert man den Abstand r um % so ändert sich der Betrag des Magnetfelds um muT. Wie gross war das ursprüngliche Magnetfeld? center tikzpicturescale. drawvery thick dashed - -- ; drawvery thick -- ; drawvery thick dashed -- ; filldrawthick black circle .cm node above left P; drawtriangle -triangle -- ; node at . . r; tikzpicture center
Solution:
Für das ursprüngliche Feld und das neue Feld gilt: B_ fracmu_pifracIr_ und B_ fracmu_pifracIr_ wobei r_ tfracr_ ist Pkt.. Somit gilt für die Änderung: eqnarray* Delta B & B_ - B_ &fracmu_pifracIr_ left -frac right & frac B_ eqnarray* Daraus folgt: B_ Delta B mutextT. quad text Pkt.
Ein Punkt P habe den Abstand r zu einem unlich langen geraden stromdurchflossenen Draht vgl. Abb.. Vergrössert man den Abstand r um % so ändert sich der Betrag des Magnetfelds um muT. Wie gross war das ursprüngliche Magnetfeld? center tikzpicturescale. drawvery thick dashed - -- ; drawvery thick -- ; drawvery thick dashed -- ; filldrawthick black circle .cm node above left P; drawtriangle -triangle -- ; node at . . r; tikzpicture center
Solution:
Für das ursprüngliche Feld und das neue Feld gilt: B_ fracmu_pifracIr_ und B_ fracmu_pifracIr_ wobei r_ tfracr_ ist Pkt.. Somit gilt für die Änderung: eqnarray* Delta B & B_ - B_ &fracmu_pifracIr_ left -frac right & frac B_ eqnarray* Daraus folgt: B_ Delta B mutextT. quad text Pkt.
Meta Information
Exercise:
Ein Punkt P habe den Abstand r zu einem unlich langen geraden stromdurchflossenen Draht vgl. Abb.. Vergrössert man den Abstand r um % so ändert sich der Betrag des Magnetfelds um muT. Wie gross war das ursprüngliche Magnetfeld? center tikzpicturescale. drawvery thick dashed - -- ; drawvery thick -- ; drawvery thick dashed -- ; filldrawthick black circle .cm node above left P; drawtriangle -triangle -- ; node at . . r; tikzpicture center
Solution:
Für das ursprüngliche Feld und das neue Feld gilt: B_ fracmu_pifracIr_ und B_ fracmu_pifracIr_ wobei r_ tfracr_ ist Pkt.. Somit gilt für die Änderung: eqnarray* Delta B & B_ - B_ &fracmu_pifracIr_ left -frac right & frac B_ eqnarray* Daraus folgt: B_ Delta B mutextT. quad text Pkt.
Ein Punkt P habe den Abstand r zu einem unlich langen geraden stromdurchflossenen Draht vgl. Abb.. Vergrössert man den Abstand r um % so ändert sich der Betrag des Magnetfelds um muT. Wie gross war das ursprüngliche Magnetfeld? center tikzpicturescale. drawvery thick dashed - -- ; drawvery thick -- ; drawvery thick dashed -- ; filldrawthick black circle .cm node above left P; drawtriangle -triangle -- ; node at . . r; tikzpicture center
Solution:
Für das ursprüngliche Feld und das neue Feld gilt: B_ fracmu_pifracIr_ und B_ fracmu_pifracIr_ wobei r_ tfracr_ ist Pkt.. Somit gilt für die Änderung: eqnarray* Delta B & B_ - B_ &fracmu_pifracIr_ left -frac right & frac B_ eqnarray* Daraus folgt: B_ Delta B mutextT. quad text Pkt.
Contained in these collections
| Title | Creator | Matched on |
|---|---|---|
| Bewegung von $\alpha$-Teilchen | cm | tags |
| Hüpfender Draht | cm | tags |
| Spule im B-Feld | cm | tags |
| Bewegter Stab | cm | tags |
| Quadratische Spule im B-Feld | rb | tags |
Similar exercises (32)
| Title | Creator | Matched on |
|---|---|---|
| Bewegung von $\alpha$-Teilchen | cm | tags |
| Hüpfender Draht | cm | tags |
| Spule im B-Feld | cm | tags |
| Bewegter Stab | cm | tags |
| Quadratische Spule im B-Feld | rb | tags |
| Flachspule | cm | tags |
| Zwei Leiter u. eine Spule | cm | tags |
| Magnetische Schaukel | cm | tags |
| Bewegte Leiterschleife II | cm | tags |
| Massenspektroskopie | cm | tags |
| Multiple Choice | cm | tags |
| Bewegung im B-Feld | cm | tags |
| B-Feld einer Spule | cm | tags |
| Zyklotron | rb | tags |
| Lorentz und Newton | cm | tags |
| Massenspektrometer | cm | tags |
| Magnetfeld einer Spule | cm | tags |
| B-Feld zeichnen | cm | tags |
| Induktionsstrom in Spule | cm | tags |
| Definition von Ampere | cm | tags |
| Zyklotron | cm | tags |
| Hall-Effekt | cm | tags |
| B-Feld einer Spule | rb | tags |
| Aluminiumring | test | tags |
| B-Feld von Magnet bestimmen | cm | tags |
| Leiter zwischen Bahnen | rb | tags |
| Induktionsspule | rb | tags |
| Windungszahl und Induktivität | rb | tags |
| Fallender Stab im Magnetfeld | rb | tags |
| Dotierte Halbleiter | cm | tags |
| Gleichrichterschaltung | cm | tags |
| Halbleiter | cm | tags |

