Elektrostatik: Coulombkraft 3
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
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Video
\(\LaTeX\)
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Exercise:
Drei gleich starke Punktladungen mit verschiedenen Vorzeichen liegen auf den Ecken eines Quadrats siehe Abbildung~reffig:LadQuad. Sei F_ die Kraft von Ladung auf Ladung . Berechnen Sie formal die resultiere elektrische Kraft auf Ladung Richtung und Betrag. figureH includegraphicswidthtextwidth#image_path:LadQuad# caption labelfig:LadQuad figure
Solution:
% . Sept. Lie. Da Fpropto r^- und die Diagonale sqrt mal länger als eine Quadratseite ist siehe Abbildung~reffig:LadQuad ist die Kraft F_ von Ladung auf Ladung genau halb so gross wie F_. Die Kräfte F_ und F_ schliessen im Lageplan einen sidegreWinkel und im Kräfteplan einen sidegreWinkel alpha ein. * &textKosinussatz: &F_ressqrtF_^+tfracF_^ - F_tfracF_cosalpha F_ sqrttfrac-cossidegree approx F_ .dots &textSinussatz: &fracsinvarphiF_fracsinalphaF_res Rightarrow varphi arcsinleft fractfracF_F_ sqrttfrac-cosalpha sinalpha right arcsinleft fracsinsidegree sqrt-cossidegree right approx .sidegree * figureh center includegraphicsscale.Grafiken/LadQuad/LadQuad.pdf textitcaptionlabelfig:LadQuad Lageplan links und Kräfteplan rechts der Coulombkräfte auf Ladung . center figure newpage figureH includegraphicswidthtextwidth#image_path:LadQuad# caption labelfig:LadQuad figure figureH includegraphicswidthtextwidth#image_path:LadQuad# caption labelfig:LadQuad figure
Drei gleich starke Punktladungen mit verschiedenen Vorzeichen liegen auf den Ecken eines Quadrats siehe Abbildung~reffig:LadQuad. Sei F_ die Kraft von Ladung auf Ladung . Berechnen Sie formal die resultiere elektrische Kraft auf Ladung Richtung und Betrag. figureH includegraphicswidthtextwidth#image_path:LadQuad# caption labelfig:LadQuad figure
Solution:
% . Sept. Lie. Da Fpropto r^- und die Diagonale sqrt mal länger als eine Quadratseite ist siehe Abbildung~reffig:LadQuad ist die Kraft F_ von Ladung auf Ladung genau halb so gross wie F_. Die Kräfte F_ und F_ schliessen im Lageplan einen sidegreWinkel und im Kräfteplan einen sidegreWinkel alpha ein. * &textKosinussatz: &F_ressqrtF_^+tfracF_^ - F_tfracF_cosalpha F_ sqrttfrac-cossidegree approx F_ .dots &textSinussatz: &fracsinvarphiF_fracsinalphaF_res Rightarrow varphi arcsinleft fractfracF_F_ sqrttfrac-cosalpha sinalpha right arcsinleft fracsinsidegree sqrt-cossidegree right approx .sidegree * figureh center includegraphicsscale.Grafiken/LadQuad/LadQuad.pdf textitcaptionlabelfig:LadQuad Lageplan links und Kräfteplan rechts der Coulombkräfte auf Ladung . center figure newpage figureH includegraphicswidthtextwidth#image_path:LadQuad# caption labelfig:LadQuad figure figureH includegraphicswidthtextwidth#image_path:LadQuad# caption labelfig:LadQuad figure
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Exercise:
Drei gleich starke Punktladungen mit verschiedenen Vorzeichen liegen auf den Ecken eines Quadrats siehe Abbildung~reffig:LadQuad. Sei F_ die Kraft von Ladung auf Ladung . Berechnen Sie formal die resultiere elektrische Kraft auf Ladung Richtung und Betrag. figureH includegraphicswidthtextwidth#image_path:LadQuad# caption labelfig:LadQuad figure
Solution:
% . Sept. Lie. Da Fpropto r^- und die Diagonale sqrt mal länger als eine Quadratseite ist siehe Abbildung~reffig:LadQuad ist die Kraft F_ von Ladung auf Ladung genau halb so gross wie F_. Die Kräfte F_ und F_ schliessen im Lageplan einen sidegreWinkel und im Kräfteplan einen sidegreWinkel alpha ein. * &textKosinussatz: &F_ressqrtF_^+tfracF_^ - F_tfracF_cosalpha F_ sqrttfrac-cossidegree approx F_ .dots &textSinussatz: &fracsinvarphiF_fracsinalphaF_res Rightarrow varphi arcsinleft fractfracF_F_ sqrttfrac-cosalpha sinalpha right arcsinleft fracsinsidegree sqrt-cossidegree right approx .sidegree * figureh center includegraphicsscale.Grafiken/LadQuad/LadQuad.pdf textitcaptionlabelfig:LadQuad Lageplan links und Kräfteplan rechts der Coulombkräfte auf Ladung . center figure newpage figureH includegraphicswidthtextwidth#image_path:LadQuad# caption labelfig:LadQuad figure figureH includegraphicswidthtextwidth#image_path:LadQuad# caption labelfig:LadQuad figure
Drei gleich starke Punktladungen mit verschiedenen Vorzeichen liegen auf den Ecken eines Quadrats siehe Abbildung~reffig:LadQuad. Sei F_ die Kraft von Ladung auf Ladung . Berechnen Sie formal die resultiere elektrische Kraft auf Ladung Richtung und Betrag. figureH includegraphicswidthtextwidth#image_path:LadQuad# caption labelfig:LadQuad figure
Solution:
% . Sept. Lie. Da Fpropto r^- und die Diagonale sqrt mal länger als eine Quadratseite ist siehe Abbildung~reffig:LadQuad ist die Kraft F_ von Ladung auf Ladung genau halb so gross wie F_. Die Kräfte F_ und F_ schliessen im Lageplan einen sidegreWinkel und im Kräfteplan einen sidegreWinkel alpha ein. * &textKosinussatz: &F_ressqrtF_^+tfracF_^ - F_tfracF_cosalpha F_ sqrttfrac-cossidegree approx F_ .dots &textSinussatz: &fracsinvarphiF_fracsinalphaF_res Rightarrow varphi arcsinleft fractfracF_F_ sqrttfrac-cosalpha sinalpha right arcsinleft fracsinsidegree sqrt-cossidegree right approx .sidegree * figureh center includegraphicsscale.Grafiken/LadQuad/LadQuad.pdf textitcaptionlabelfig:LadQuad Lageplan links und Kräfteplan rechts der Coulombkräfte auf Ladung . center figure newpage figureH includegraphicswidthtextwidth#image_path:LadQuad# caption labelfig:LadQuad figure figureH includegraphicswidthtextwidth#image_path:LadQuad# caption labelfig:LadQuad figure
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Elektrostatik: Coulombkraft by Lie