184_notes:examples:week6_drift_speed

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184_notes:examples:week6_drift_speed [2017/09/26 15:41] – [Example: Drift Speed in Different Types of Wires] tallpaul184_notes:examples:week6_drift_speed [2021/06/08 00:49] (current) schram45
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 +[[184_notes:current|Return to current in wires]]
 +
 =====Example: Drift Speed in Different Types of Wires===== =====Example: Drift Speed in Different Types of Wires=====
-Suppose you have a two charges, one with value $5 \mu\text{C}$, the other with value $-\mu\text{C}$. There are at separate locations, a distance $1 \text{ m}$ apart, and they can be modeled as a dipole. What is the flux through a cylinder with radius $4 \text{ m}$ and length $16 \text{ m}$ that encloses this dipole?+Suppose you have a two wires. Each has a current of $5 \text{ A}$. One is made of copper (Cu) and has radius $0.5 \text{ mm}$. The other is made of zinc (Zn) and has radius $0.1 \text{ mm}$. What are the drift speeds of electrons in each wireYou may want to consult the table below.
  
-{{ 184_notes:6_n_table.jpg?800 |Dipole and Gaussian cylinder}}+[{{ 184_notes:6_n_table.jpg?700 |Properties of Metals}}]
  
 ===Facts=== ===Facts===
-  * The dipole charges are $q=5 \mu\text{C}$, $-q=-5 \mu\text{C}$. +  * The copper wire has $I=5 \text{ A}$, $0.5 \text{ mm}$. 
-  * The dipole distance is $1 \text{ m}$. +  * The zinc wire has $I=5 \text{ A}$, $r = 0.1 \text{ mm}$. 
-  * The cylinder has radius $\text{ m}$ and length $16 \text{ m}$.+  * The charge of an electron is $q=-1.6\cdot 10^{-19} \text{ C}$. 
 +  * Electron density of copper is $n_{\text{Cu}}=8.47\cdot 10^{22} \text{ cm}^{-3}$
 +  * Electron density of zinc is $n_{\text{Zn}}=13.2\cdot 10^{22} \text{ cm}^{-3}$. 
 +  * Electron current as $i=nAv_{avg}$. 
 +  * Current is $I=|q|i$. 
 +    * Units of current is charge per second. Electron current is electrons per second. We multiply by $q(the electron charge) to get charge per second.
  
-===Lacking=== +===Goal=== 
-  * $\Phi_e$ through the cylinder+  * Find the drift speed for both wires.
  
 ===Approximations & Assumptions=== ===Approximations & Assumptions===
-  * The axis of the cylinder is aligned with the dipole. +  * The wires have circular cross-sections. This is typical of real wires and allows us to use the diameter of the wire to calculate the area properly
-  * The dipole and cylinder are centered with respect to each other+  * Using the [[184_notes:current|Drude model]] for electrons in the wire - the electrons are accelerated by the electric field, until they run into a positive nucleus, which reduces the speed back to zero
-  * The electric flux through the cylinder is due only to the dipole (i.e., no other charges exist). +
-  * The charges are point charges, which indeed means we can model them as a dipole.+
  
 ===Representations=== ===Representations===
-  * We represent the situation with the following diagram.+  * We represent electron current as $i=nAv_{avg}$. 
 +  * We represent current as $I=|q|i$. Current is charge per second. Electron current is electrons per second. We multiply by $q$ (the electron charge) to get charge per second
 ====Solution==== ====Solution====
-Firstnotice that we probably do not want to do any calculations heresince the it will not be fun to take dot-product of the dipole'electric field and the area-vectorand it will get very messy very quickly when we start integrating over the surface of the cylinderInsteadwe evaluate the situation more qualitativelyConsider the electric field vectors of the dipole near the surface of the cylinder+We can use the [[184_notes:current|Drude model]] for electrons in the wire - the electrons are accelerated by the electric fielduntil they run into a positive nucleuswhich reduces the speed back to zero. This is where our definition of drift speed comes from, so it is worth including it in our solution for reference. 
-{{ 184_notes:5_dipole_field_lines.png?300 |Dipole Electric Field Lines}}+ 
 +There are lot of variables in this problem, so let'make a plan. 
 + 
 +<WRAP TIP> 
 +=== Plan === 
 +We will do the following steps for each wire. 
 +  * Find the electron density of each material (see listed abovein Facts). 
 +  * Find the cross-sectional area of the wire. 
 +  * Find the electron current of each wireusing the given current. 
 +  * Use all the new information to find the drift speed. 
 +</WRAP> 
 + 
 +To find the cross-sectional area of the wire, we just use the area of a circle. We know the radius, so this should be easy$A=\pi r^2$. 
 + 
 +We are given current, and we can solve for electron current using the charge of an electron: $i = \frac{I}{|q|}$. 
 + 
 +We now have enough information to solve for the drift speed of electrons. We use positive numbers below, since we care only about speed for now, not direction.
  
-Notice that the vectors near the positive charge are leaving the cylinder, and the vectors near the negative charge are entering. Not only this, but they are mirror images of each other. Wherever an electric field vector points out of the cylinder on the right side, there is another electric field vector on the left that is pointing into the cylinder at the same angle. These mirror image vectors also have the same magnitude, though it is a little tougher to visualize.+$$v_{avg} = \frac{I}{\pi r^2 n |q|}$$
  
-We could write this as a comparison between the left and right side of the cylinder. The $\text{d}\vec{A}$-vectors are mirrored for left vsrightand the $\vec{E}$-vectors are mirrored, but opposite $\left(\vec{E}_{left}=-\vec{E}_{right}\right)$. We tentatively write the equality, +Current ($I$), radius ($r$), electron density ($n$), and electron charge ($q$are all things we know for our two wiresWhen we plug in the numberswe get the following: 
-$$\Phi_{left}=-\Phi_{right}$$+\begin{align*} 
 +v_{\text{avg, Cu}} = 0.47 \textmm/s&,& v_{\text{avgZn}} = 7.5 \textmm/s} 
 +\end{align*}
  
-Putting it together, we tentatively write: +Notice that this is actually really slow! Depending on the material, the electron only travels somewhere between 1 mm - 1 cm per second on average.
-$$\Phi_{\text{cylinder}}=\Phi_{left}+\Phi_{right}=0$$ +
-We gain more confidence when we read the [[184_notes:gauss_ex|next section of notes]], where we define "Gauss' Law". This law states that the total flux through a close surface is the amount of charge enclosed divided by $\epsilon_0$, the [[https://en.wikipedia.org/wiki/Vacuum_permittivity|permittivity of free space]]. +
-$$\Phi_{\text{total}}=\int \vec{E} \cdot \text{d}\vec{A}=\frac{Q_{\text{enclosed}}}{\epsilon_0}$$ +
-Since the total charge of the dipole is $0$, then indeed the charge enclosed is $0$and we were correct with our reasoning about the electric field and flux above.+
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