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Ohm'sches Gesetz & Widerstände - REMAKE

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  1. Hey guys, I'm sure you all know the feeling. The washing machine, the laptop, and Grandma's old vacuum are
  2. all on one outlet, and suddenly the fuse blows. You'll find out why that happens now. Today we're covering Ohm's
  3. law and explaining what a resistor is. Let's just get started. You can think of a resistor as an opponent to current
  4. . Basically, imagine that when current flows through a resistor, it gets slowed down a little. What was current
  5. intensity again? Current indicates how many electrons flow through a conductor in a certain amount of time. And
  6. voltage is the force that makes the electrons move through the conductor. This drives them from one point to
  7. another, and the higher the resistance, the lower the current. By the way, resistance is abbreviated with a
  8. capital R and its unit is Ohms. It's represented by Omega, this symbol here. But what does a resistor actually look
  9. like? This part here is, for example, a resistor for engineers to tinker with, but actually every electronic device is
  10. a resistor. More on that at the end. So , we now know what a resistor actually is. But why do we actually need it?
  11. We'll explain that to you. Now let's get to Ohm's law. What Ohm's law is, is a physical law that another intelligent
  12. brain came up with, and his last name was Ohm. Sounds logical, right? And what does the law state? It states that
  13. there is a relationship between voltage U and the current I flowing through the conductor. Specifically, U and I are
  14. proportional to each other. But what does that mean exactly? If we increase the voltage in a simple circuit, the
  15. current also increases. So, more current flows the higher the voltage is . We can imagine it like this. We have
  16. a small wooden board, which represents our conductor. We place a few marbles on the board to represent our electrons
  17. . They can move freely in any direction . If we lift the board on one side, all the marbles move in one direction,
  18. downwards. That is essentially our current direction. The current then corresponds to the time it takes for
  19. the marbles to roll down. If we lift the board higher, the marbles roll down faster. The height at which we lift the
  20. board corresponds to the voltage in our circuit. The higher we lift the board, the faster the marbles move, and the
  21. higher our voltage, the higher our current. Now let's go a step further and hammer nails all over our board. We
  22. can compare the nails to our resistance . We put our marbles back on and lift the board on one side. You can surely
  23. guess what happens now. The marbles move downward, just much more slowly. They keep hitting the nails and are
  24. slowed down as a result. The more nails we add, the longer it would take for the marbles to reach the bottom. So the
  25. resistance would increase and the current would keep decreasing. And that is exactly how it works in an
  26. electrical circuit. The electrons are slowed down by the resistance. This changes the current, and we can of
  27. course put the whole thing into a formula. It is R = U divided by I. R is the resistance. We already know what U
  28. is, namely voltage, and I is, as always , current. You should definitely memorize this formula well. And to make
  29. this formula easier to remember, there is the magic triangle. You draw a triangle and write a U at the top and R
  30. times I at the bottom. If you now want to calculate one of the values, simply cross out the corresponding letter and
  31. you can then read off the formula for it. Here is a small example. We have a voltage of 10 volts and a current of 2
  32. amperes. How big is our resistance now? To calculate that, we just take our triangle and cross out the R. We can
  33. now read off the formula quite easily. So R is U divided by I. Let's plug in our values, so R = 10 divided by 2. And
  34. that is clearly 5 ohms. All right. It's that simple. Great, then we've covered almost everything now, but one question
  35. remains open. What about the fuse? Why does it trip when we plug all our devices into one outlet? We can now
  36. explain that quite easily with Ohm's law. Every electronic device is a resistor because they need current to
  37. run. The voltage in the socket is always 230 volts. Now we plug a few devices into our socket. The voltage
  38. stays the same. But the total resistance becomes smaller. That's because we have a parallel circuit of
  39. resistors here. The devices are not connected in series, but in parallel. This means we add the reciprocal of all
  40. resistors, and that makes the total resistance smaller. That's a bit complicated. To understand that, just
  41. check out our video on series and parallel circuits of resistors. So we now have a lower resistance while the
  42. voltage remains the same. This results in a higher current, because if there are fewer nails in our board, the balls
  43. can roll down faster. At some point, the current reaches 16 amps. And to prevent overloading the circuit, the
  44. fuse in the basement blows and all the lights in the house go out. Let's summarize everything briefly and
  45. concisely. Resistance represents the ratio between voltage and the flowing current. So, what voltage is needed to
  46. allow a certain current to flow through a conductor? Resistance has the symbol R and the unit ohm. Ohm's law states
  47. that voltage U and current I are proportional to each other. This means that if we increase the voltage in a
  48. circuit, the current flowing through it also increases. And to calculate all of this, we just need to remember this
  49. nice triangle. Hi, this is Nico from Simpleclub. Are you also tired of clicking through
  50. thousands of videos until you find exactly what you need right now? Then definitely check out the Simpleclub app
  51. . All content for your grade level, perfectly organized. We have much more content than on YouTube, and it goes
  52. into much greater detail. If you're interested, click here now and get the app.

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