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===== Defining Current ===== | ===== Defining Current ===== | ||
In the last few pages of notes, we have talked about how the surface charges are arranged to create a constant electric field in the wire. This electric field is responsible for pushing the electrons through the wire from one side of the battery to the other - creating a flow of electrons, which we called **electron current**. Building on this idea, these notes will go into how we mathematically define electron current and introduce what we call " | In the last few pages of notes, we have talked about how the surface charges are arranged to create a constant electric field in the wire. This electric field is responsible for pushing the electrons through the wire from one side of the battery to the other - creating a flow of electrons, which we called **electron current**. Building on this idea, these notes will go into how we mathematically define electron current and introduce what we call " | ||
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==== Electron Current ==== | ==== Electron Current ==== | ||
- | Before, we defined the electron current as the flow of electrons through the wire. We can make this more specific by defining electron current as the **number of electrons passing through a point per second**. Because the electron current is made up of negative charges, | + | Before, we defined the electron current as the flow of electrons through the wire. We can make this more specific by defining electron current as the **number of electrons passing through a point per second**. Because the electron current is made up of negative charges, |
i=#electronssecond | i=#electronssecond | ||
Since it is very difficult to actually count the number of electrons that pass a location, we generally write the electron current in terms of the **electron density** in the wire (n), the cross-sectional area of the wire (A), and the average speed of the electrons through the wire (vavg). | Since it is very difficult to actually count the number of electrons that pass a location, we generally write the electron current in terms of the **electron density** in the wire (n), the cross-sectional area of the wire (A), and the average speed of the electrons through the wire (vavg). | ||
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i=nAvavg | i=nAvavg | ||
- | Electron density is a property of the material, which represents the number of electrons per volume of the wire that are free to move. For example, copper has a high electron density ($8.4∗10^28 \frac{electrons}{m^3}$) | + | Electron density |
If we check the units of this equation we see that: | If we check the units of this equation we see that: | ||
#electronss=#electronsm3∗m2∗ms | #electronss=#electronsm3∗m2∗ms | ||
+ | which is what we would expect for the electron current. | ||
- | ===Conventional Current === | + | ==== Conventional Current |
- | Conventional current is then defined as the number | + | Conventional current is then defined as the amount |
I=#Coulombssecond=|q|i | I=#Coulombssecond=|q|i | ||
- | The conventional current is now positive (number of electrons times the magnitude of the charge). By " | + | The conventional current is now positive (number of electrons times the magnitude of the charge). By " |
For historical reasons, much of what we work with in circuits is based off of conventional current rather than the electron current (much of what we know was established before we discovered it was the electrons that were free to move; you can thank [[https:// | For historical reasons, much of what we work with in circuits is based off of conventional current rather than the electron current (much of what we know was established before we discovered it was the electrons that were free to move; you can thank [[https:// | ||