Showing posts with label electric potential energy. Show all posts
Showing posts with label electric potential energy. Show all posts

20200311

Online reading assignment: capacitors

Physics 205B, spring semester 2020
Cuesta College, San Luis Obispo, CA

Students have a bi-weekly online reading assignment (hosted by SurveyMonkey.com), where they answer questions based on reading their textbook, material covered in previous lectures, opinion questions, and/or asking (anonymous) questions or making (anonymous) comments. Full credit is given for completing the online reading assignment before next week's lecture, regardless if whether their answers are correct/incorrect. Selected results/questions/comments are addressed by the instructor at the start of the following lecture.

The following questions were asked on reading textbook chapters and previewing presentations on capacitors.


Selected/edited responses are given below.

Describe what you understand from the assigned textbook reading or presentation preview. Your description (2-3 sentences) should specifically demonstrate your level of understanding.
"The concept of the capacitor charging: in the GIF animation, the charging seems to be due to a negative charge leaving one side and when the negative charge leaves, a positive charge is left over. The positive charge then attracts a negative charge in the opposite side of the capacitor."

"The SI unit of capacitance is a farad, or coulombs squared over joules. Also that the capacitance is fixed once the construction of the capacitor is complete, and the only way to change the capacitance is to change the build of the capacitor. The potential applied to the capacitor can be altered however by using different batteries."

"A capacitor constructed from two plates and a space in-between. I also understand the capacitor construction formula."

"That once a capacitor is constructed you cannot change the capacitance of it without changing its build (plate area or separation distance)."

"Capacitors are built by putting parallel metal plates together with a small distance in between. Charging a capacitor requires a battery and will cause electrons to move freely from the top plate to the bottom plate until the top plate demonstrates a positive charge and the bottom plate have a negative charge. However, as more and more electrons move towards the bottom panel, it requires more work and creates a larger EPE charge due to the voltage."

"Capacitors store electric charge. Capacitors have a capacitance, which reflects their ability to store electric charge. While their capacitance is determined by surface area and separation distance of parallel metal plates, changing the voltage applied to the capacitor also changes their charge but does not change the capacitance of the capacitor."

"Capacitors store up electric potential energy by creating a potential difference across 2 parallel metal plates. The more charge the capacitor holds, the more energy it takes to move it across to the opposing plate. Unlike batteries, a charged capacitor can release its energy in a short burst over a short period of time."

Describe what you found confusing from the assigned textbook reading or presentation preview. Your description (2-3 sentences) should specifically identify the concept(s) that you do not understand.
"Understanding voltage and especially understanding how it relates to capacitance is difficult."

"I don't understand how a capacitor gets charged."

"I do not understand capacitor charge because I see charges staying or leaving."

"Electric potential energy storage explanation."

"The capacitor energy storage formulas were different depending on the scenario. I need to work problems out to understand the differences."

"I found most of this reading assignment confusing. I could definitely use some clarification on the math."

"Nothing at this time, just want more examples of applications in class."

Describe two quantities that a capacitor is designed to store/hold.
"A capacitor is designed to hold voltage and electric potential energy."

"The capacitor holds charges. Both positive and negative?"

"Charge and electric potential energy."

State the unit of capacitance, and give its definition in terms of other SI units.
"farad, F, which is C (coulombs) squared divided by joules."

"Coulombs/volts = farads; where coulomb is electric charge, while volt is electric potential."

For a parallel-plate capacitor, ___________ the plate area and __________ the plate separation would increase its capacitance.
decreasing; decreasing.  [0]
decreasing; increasing.  ** [2]
increasing; decreasing.  ************************ [24]
increasing; increasing.  *** [3]
(Unsure/guessing/lost/help!)  *** [3]

For a parallel-plate capacitor, increasing the voltage (electric potential) difference applied to the capacitor would __________ the amount of charge stored in it.
decrease.  ******* [7]
increase.  **************** [16]
have no effect on.  ******* [7]
(Unsure/guessing/lost/help!)  **[2]

Explain why increasing or decreasing the voltage (electric potential difference) of a capacitor cannot change the numerical value of its capacitance.
"I don't know. I would think increasing the voltage also increases the capacitance?"

"Because it only affects the actual amount of charge it has, not the storage ability, or size of the actual capacitor."

"The capacitor is based on the plate separation distance and cross-sectional area."

"The capacitor holds a specific amount and adding or decreasing the voltage does not change. This is due to the fact that once it is constructed, the capacitance is fixed."

Ask the instructor an anonymous question, or make a comment. Selected questions/comments may be discussed in class.
"Do we get to use capacitors in any labs?"

"I am definitely struggling with this section, are we going to take a pretty deep dive on this?" (We will, but in lab.)

"Oh man, this electricity stuff is challenging."

"Capacitors shockingly weren't as difficult as I was anticipating."

"I noticed that farads are named after Michael Faraday. I hear his name mentioned a lot when discussing physics. Has he made a lot of contributions to the physics of electricity?" (Yes, but so did a lot of other physicists that have units named after them: Coulomb, Volta, Ohm, Ampere, Weber, Henry, and Tesla; along with others who don't have units named after them: Franklin, Maxwell, Ørsted, Lorentz, etc.)

20200309

Online reading assignment: electric potential energy

Physics 205B, spring semester 2020
Cuesta College, San Luis Obispo, CA

Students have a bi-weekly online reading assignment (hosted by SurveyMonkey.com), where they answer questions based on reading their textbook, material covered in previous lectures, opinion questions, and/or asking (anonymous) questions or making (anonymous) comments. Full credit is given for completing the online reading assignment before next week's lecture, regardless if whether their answers are correct/incorrect. Selected results/questions/comments are addressed by the instructor at the start of the following lecture.

The following questions were asked on reading textbook chapters and previewing presentations on electric potential energy.


Selected/edited responses are given below.

Describe what you understand from the assigned textbook reading or presentation preview. Your description (2-3 sentences) should specifically demonstrate your level of understanding.
"EPE is equal to the k constant times the source charge q1 times the test charge q1divided by a distance denoted as r. Voltage (potential) is equal to the k constant times the source charge Q divided by a distance from the source charge r."

"Electric potential energy can change when moving a source charge and test charge closer together, or moving them farther apart. One direction will give a positive change in EPE when pushing like signs together or pulling two opposite signs apart."

"Electric potential energy can be increased by pushing together like-sign charges or pulling apart opposite-sign charges. This results in a change in electric potential energy because it requires work to be done. Work is done by charges that are allowed to do what they want."

"I understood EPE can be increased by pushing like charges together or pulling apart opposite charges. While, allowing things to act without using 'work' results in a decreased EPE. Also, I believe to calculate ∆EPE, one must calculate the EPE at different locations and subtract."

"EPE utilizes a field of equipotentials, similar to electric fields."

"I get there is a difference between electric potential energy and electric potential, but I don’t really know what it is."
Describe what you found confusing from the assigned textbook reading or presentation preview. Your description (2-3 sentences) should specifically identify the concept(s) that you do not understand.
"Maybe the images on the blog explaining when something was negative rather than positive."

"I did not understand voltage, electric potential energy and what the peaks or wells mean."

"The difference between electric potential and electric potential energy is a bit confusing. I'm also getting lost on how the two-step approach is implemented in finding the potential energy."

"I had a hard time with the end of the presentation because I was confused about the circular equipotentials. Also, are EPE and potential are the same? I don't know why they have different labels in the equations."

"I am a little unclear with how to determine when something is a two-step approach versus a direct approach."

"The textbook does not have good examples of these types of problem. Can you please go over in class?"

"Nothing at this time. Possibly application."
Explain the difference between the units of electric potential V, and electric potential energy, EPE.
"EPE is in joules and potential is in joules per coulombs."

"The electric potential energy is an energy and is measured in joules. The electric potential is an energy per unit charge and is measured in joules per coulomb, or volts."

"The units."

"I don't understand the difference in units for the different energy potentials."

Explain the conceptual difference between the electric potential V, and electric potential energy, EPE.
"EPE is measured in joules because it is an energy. The volt is measured in joules per unit."

"Electric potential energy is an energy while electric potential is an energy per unit charge."

"Electric potential is created by a source charge. EPE is the energy stored in electric potential. I think this is why I'm so confused. I get one is an energy and the other one is an energy per charge but I don’t get how they relate to each other, or if one created the other..."

"Not really sure."

Briefly summarize the difference (if any) between "voltage" and electric potential.
"They are the same."

"A volt is the way to measure electric potential."

"There isn't a difference. Electric potential is measured in volts at a location in space."

"They are interchangeable."


Identify the changes in electric potential energy EPE (if any) for the following test charges (±q):
(Only correct responses shown.)
Positive test charge +q brought closer to a positive source charge +Q: increase [67%]
Negative test charge –q brought closer to a positive source charge +Q: decrease [70%]
Positive test charge +q brought closer to a negative source charge –Q: decrease [70%]
Negative test charge –q brought closer to a negative source charge –Q: increase [73%]

Identify the changes in electric potential V (if any) for the following test charges (±q):
(Only correct responses shown.)
Positive test charge +q brought closer to a positive source charge +Q: increase [48%]
Negative test charge –q brought closer to a positive source charge +Q: increase [48%]
Positive test charge +q brought closer to a negative source charge –Q: decrease [42%]
Negative test charge –q brought closer to a negative source charge –Q: decrease [45%]

Ask the instructor an anonymous question, or make a comment. Selected questions/comments may be discussed in class.
"Pleeeeease review the difference of potential and EPE."

"Thrilled to see the energy equation back with a new member added to it."

"That was electrifying."

"I am having a hard time with the last question, are you going to go over it in class?"

"Would like to review the last question above."

"You weren't lying when you said this material was THICK."

"Do the concepts in this section relate to how magnets work? (Not yet. Too soon.)

20190510

Physics midterm question: comparing same-energy, different potential capacitors

Physics 205B Midterm 2, spring semester 2019
Cuesta College, San Luis Obispo, CA

A capacitor is connected to a 1.5 V battery and a different capacitor is connected to a 6.0 V battery. Both capacitors store the same amount of electrical potential energy. Discuss why the capacitor connected to the 1.5 V battery has a larger capacitance than the capacitor connected to the 6.0 V battery. Explain your reasoning by using the properties of capacitors, charge, electric potential, and energy.

Solution and grading rubric:
  • p:
    Correct. Discusses why the capacitor connected to the 1.5 V battery has a greater capacitance than the capacitor connected to the 6.0 V battery because:
    1. from EPE = (1/2)⋅Q⋅(ΔV), both capacitors store the same amount of electrical potential energy; such that the capacitor connected to the 1.5 V battery holds a larger charge than the capacitor connected to the 6.0 V battery; and
    2. from C = QV, since the capacitor connected to the 1.5 V battery has a smaller potential difference and a larger charge than the capacitor connected to the 6.0 V battery; then the capacitor connected to the 1.5 V battery must have a larger capacitance.
  • r:
    As (p), but argument indirectly, weakly, or only by definition supports the statement to be proven, or has minor inconsistencies or loopholes.
  • t:
    Nearly correct, but argument has conceptual errors, or is incomplete. Typically assumes that both capacitors have the same charge, and/or does not explicitly use the given fact that the capacitors store the same amount of electrical potential energy.
  • v:
    Limited relevant discussion of supporting evidence of at least some merit, but in an inconsistent or unclear manner. Some attempt at applying properties of capacitors, charge, electric potential, and energy.
  • x:
    Implementation/application of ideas, but credit given for effort rather than merit. No clear attempt at systematically applying properties of capacitors, charge, electric potential, and energy.
  • y:
    Irrelevant discussion/effectively blank.
  • z:
    Blank.
Grading distribution:
Sections 30882, 30883
Exam code: midterm02u7aH
p: 22 students
r: 1 student
t: 18 students
v: 0 students
x: 1 student
y: 1 student
z: 0 students

A sample "p" response (from student 2334):

Another sample "p" response (from student 1842), substituting in Q = C·ΔV into the electric potential energy equation:

20190422

Physics quiz archive: circuits (2)

Physics 205B Quiz 5, spring semester 2019
Cuesta College, San Luis Obispo, CA
Sections 30882, 30883, version 1
Exam code: quiz05eXpL



Sections 30882, 30883 results
0- 6 :  
7-12 :   ** [low = 9]
13-18 :   ****************
19-24 :   ***************** [mean = 20.2 +/- 4.7]
25-30 :   **** [high = 30]

20190410

Physics quiz archive: capacitors, circuits

Physics 205B Quiz 4, spring semester 2019
Cuesta College, San Luis Obispo, CA
Sections 30882, 30883, version 1
Exam code: quiz04KhhF



Sections 30882, 30883 results
0- 6 :  
7-12 :   **** [low = 9]
13-18 :   *****
19-24 :   *************** [mean = 23.4 +/- 6.0]
25-30 :   ***************** [high = 30]

20190320

Online reading assignment: circuit analysis

Physics 205B, spring semester 2019
Cuesta College, San Luis Obispo, CA

Students have a bi-weekly online reading assignment (hosted by SurveyMonkey.com), where they answer questions based on reading their textbook, material covered in previous lectures, opinion questions, and/or asking (anonymous) questions or making (anonymous) comments. Full credit is given for completing the online reading assignment before next week's lecture, regardless if whether their answers are correct/incorrect. Selected results/questions/comments are addressed by the instructor at the start of the following lecture.

The following questions were asked on reading textbook chapters and previewing presentations on circuit analysis.


Selected/edited responses are given below.

Describe what you understand from the assigned textbook reading or presentation preview. Your description (2-3 sentences) should specifically demonstrate your level of understanding.
"In a series the current must pass through the resistors in sequence while in a parallel, portions can pass through separately and independently."

"There are two types of configurations for equivalent resistances and they each have a different way of calculating them. First, if there is a series configuration--meaning that the resistors are connected in a chain pattern--to calculate the resistance all you do is add them. Secondly, if there is the parallel configuration, to calculate the resistance you take the inverse of each resistor and add them up, and invert the resulting sum."

"When the resistors are in series, more resistors would mean that the resistance increases; however, when the resistors are in parallel, more resistors would mean that the resistance decreases, which is good for an ideal circuit."

"Current conservation (what flows in must also come out). Current leaving a junction must equal current entered."

"I get the basic concept of what goes in must come out. Any potential increase has to equal the potential drop that occurs from the current flowing through the resistors and bulbs."

"Resistor drops downstream and rises upstream. Emf rises during 'power ups,' drops during 'penalties.'"

"If we follow a complete loop in an electric circuit such that we wind up back at our starting point all the electric rise this potential added together will equal of electric potential that dropped together. This is having the same location as the final and initial points travel in a complete Loop forming an electrical circuit."

"How resistors are connected in series and in parallel and the equivalent resistance calculations. I also understood Kirchhoff's rules."

"I am beginning to understand voltages and currents but I need more practice using Kirchoff's rules."

Describe what you found confusing from the assigned textbook reading or presentation preview. Your description (2-3 sentences) should specifically identify the concept(s) that you do not understand.
"Kirchoff's junction rule and loop rule are both confusing. Might need some examples in class to clarify."

"I am still wrapping my brain around why the series and parallel resistors are so different."

"I was a little confused how when resistors are connected in parallel the equivalent resistance is smaller than either resistor."

"I am confused about emf rises/drops with respect to the battery terminals and resistor rises/drops with respect to current."

"I am hazy about voltage potential difference drop and electric potential decrease when the circuit moves from positive to negative. Also voltage potential difference and electric potential increase when the circuit moves from negative to positive."

"I understand the basic concepts, but I think I could use some practice with the actual calculations and logistics of what happens when in regards to the potential and traveling in directions in a circuit."

"I found everything very interesting and understand just about everything in this presentation."

"I don't understand most of this terminology."

"Sorry, so much chemistry."

Determine what happens to the following parameters as current flows through an ideal wire.
(Only correct responses shown.)
Current: remains the same [59%]
Voltage: remains the same [45%]

Determine what happens to the following parameters if you go through a resistor along the direction of current.
(Only correct responses shown.)
Current: remains the same [34%]
Voltage: decreases [59%]

Determine what happens to the following parameters if you follow a path (regardless of current direction) into the (–) terminal and out of the (+) terminal of an ideal battery.
(Only correct responses shown.)
Current: remains the same [45%]
Voltage: increases [55%]

Briefly explain what quantity is conserved when applying Kirchhoff's junction rule.
"Current (amperage) is conserved."

"Charge flow per time is conserved."

"The quantity of current flowing into a junction is equal to the quantity of current flowing out of the junction."

"I think it is 'what goes in must come out' which apparently seems like a simple concept but is useful to enforce mathematically as well to analyze electrical circuits."

Briefly explain what quantity is conserved when applying Kirchhoff's junction rule.
"Electric potential is conserved."

"Energy per charge."

"Kirchhoff's loop rule: the conservation of electric potential (electric potential energy per charge). The sum of voltages around any closed loop in a circuit must equal zero (charge conservation and conservation of energy)."

"No idea."

Ask the instructor an anonymous question, or make a comment. Selected questions/comments may be discussed in class.
"I was following this up until about halfway then I started to get lost with these concepts."

"I am still a little hazy on some of the topics, but I really liked that there were some smaller pictures in the presentation that gave us examples of what was happening while we were reading the descriptions. That really helped and I liked the way it was set up :)" (Hopefully those pictures are what's in your head from now on when you visualize what's going on with the currents and potential rises/drops in circuits.)

"Hi, sorry I was studying for a chemistry test and pretty much just remembered about this assignment at the last minute. :/ "

"I thought I had a good understanding until I saw these examples. The amount of current in must eqaul the amount of current that out of a voltage source. Same goes for the potential difference, the sum of the electric potential rises must equal the sum of the electric potential drops." (That sounds pretty good, so far.)

"Is there anything covered early this semester that will not be on the upcoming midterm? (The study guide for the midterm next Wednesday is already up (five key topics, anything not listed will not be on the midterm), and for this weekend relevant practice problems have been assigned for you to work on, before our review session next Monday.)

20190318

Online reading assignment: circuit basics

Physics 205B, spring semester 2019
Cuesta College, San Luis Obispo, CA

Students have a bi-weekly online reading assignment (hosted by SurveyMonkey.com), where they answer questions based on reading their textbook, material covered in previous lectures, opinion questions, and/or asking (anonymous) questions or making (anonymous) comments. Full credit is given for completing the online reading assignment before next week's lecture, regardless if whether their answers are correct/incorrect. Selected results/questions/comments are addressed by the instructor at the start of the following lecture.

The following questions were asked on reading textbook chapters and previewing presentations on circuit basics.


Selected/edited responses are given below.

Describe what you understand from the assigned textbook reading or presentation preview. Your description (2-3 sentences) should specifically demonstrate your level of understanding.
"Most basic circuits that we can build will have an electromotive source of voltage connected to the resistor. In this way the charges can flow continuously around and around. I also learned that an ideal battery uses the chemical reactions that occur change charges in an order to release electric potential energy. I also learned that different chemical reactions will release different amounts of electrical potential energy which creates different voltages."

"An ideal circuit is one where charges can flow continuously through it. Electrons flow in the opposite direction of the current, which is how much positive charge in coulumbs that circulates per time in seconds. Coulombs per second is referred to as amps. Ideal batteries are used to release electric potential energy by exchanges charges. A circuit also consists of a resistor in which all different materials have different resistance values. We can use Ohm's law to determine how much current will flow through a circuit."

"When you stack ideal batteries, you add the total value of voltages. A good conductor has a low resistance value and a poor conductor has a high resistance value. When you string together resistors, you have to add their individual values together for an equivalent resistance value. Ohm's law can help determine how much current will flow given the total amount of voltage and resistance."

"In a basic circuit, charges can flow continuously around. A current is the positive charge that circulates while the electrons will flow around the other way."

"A basic circuit involves an electromotive force connected to a resistor so that a charge may flow continuously. A current is defined by the amount of positive charge flowing (out from the (+) terminal of the battery), but it is the electrons that are flowing in the opposite direction (out from the (–) terminal of the battery)."

"Amps (A) is what a positive current charge that circulates in coulombs per second."

"There is a direct relationship between resistance, voltage and current. These three variables describe different characteristics of a circuit. The equation is able to be manipulated easily to solve for the desired variable."

Describe what you found confusing from the assigned textbook reading or presentation preview. Your description (2-3 sentences) should specifically identify the concept(s) that you do not understand.
"I don't understand the idea of battery stacking in order to increase the voltage output. Does the electric current just flow between the batteries, how do the stacked batteries relate to each other in order to increase the voltage output?"

"What is amperage and how is it measured in contrast to voltage? Why are these two aspects inversely related and how does that apply to each circuit?"

"I think I'm understanding the basics, but it also feels like I'm really missing something."

"We hear AC/DC all our lives (not the band necessarily). I don't know that I've ever realized how simple that concept really is. Direct current is moving one way all the time and alternating current is alternating back-and-forth. what a concept!"

"For some reason this is really hard for my brain to wrap around. I get the basic concepts of how a circuit functions, but when it comes to amps and current and voltage and stuff like that."

"Ohm's law--I do not understand the difference between the voltage and the current. Also I do not understand why the ratio of ∆V/I remains constant."

"I am sorry, I will read this before class. Chemistry is killing me :("

"I need to be more in-depth with all the material in this reading."

"I will take great notes in class on Monday."

A wire is used to complete a circuit with a single 9.0 V battery. When a wire is used to complete a circuit with a system of 244 "stacked" 9.0 V batteries, there will be __________ voltage and __________ current, compared to the single 9.0 V battery circuit.
less; less.  * [1]
less; more.  ** [2]
more; less.  ****** [6]
more; more.  ********************** [22]
(Unsure/guessing/lost/help!)  ***** [5]

An emf source is connected to a container of water. When salt is dissolved in the water, there will be __________ resistance and __________ current, compared to the pure deionized water circuit.
less; less.  [0]
less; more.  **************************** [28]
more; less.  ** [2]
more; more.  * [1]
(Unsure/guessing/lost/help!)  ***** [5]

A metal screw completes a "short circuit" with a transformer emf source. This is dangerous due to the very __________ resistance of the metal screw, and the very _________ current flowing through it.
low; low.  * [1]
low; high.  *************************** [27]
high; low.  * [1]
high; high.  ** [2]
(Unsure/guessing/lost/help!)  ***** [5]

Ask the instructor an anonymous question, or make a comment. Selected questions/comments may be discussed in class.
"I didn't quite understand what you meant by 'current flowing clockwise through this circuit, while the electrons actually circulate in the opposite counterclockwise direction through this circuit.' Does this mean that the negative charge (electrons) is going one direction and the positive charge (protons) is going the opposite direction?" (Almost; electrons are traveling in one direction around the circuit, and the lack of electrons (which makes a neutral object have a positive charge) travels around in the opposite direction. You can think of bumper-to-bumper traffic, where each car moves forward, but the gap between cars moves backwards down the freeway.)

"So the current moves in one direction?" (For the steady-state, direct current circuits (which we are considering here), the current keeps moving in one direction around the circuit, at a constant value. However, what is really going on is that electrons are going in the opposite direction of how we define currents, but that's a result of electrons arbitrarily being labeled as having a negative charge instead of positive charge.)

"This was very helpful. The circuits seem super-dangerous." (These were only dangerous not just because of the voltage differences, but because the resistances were low, making the resulting amounts of current very high.)

"I don't understand if short-circuiting is due to too much or too little resistance." (Too little. Even with a modest amount of voltage (∆V), completing a circuit with a low resistance object (metal, water, unprotected sweaty palms) will make the resistance (R) in the denominator in Ohm's law (I = ∆V/R) very small, making the current (I) very high, which is what can kill you.)

"Can you explain what happens when you are putting up your Christmas lights and one bulb is dead then the series of bulbs after it don't work." (If a bulb completely burns out ), then no current can pass through it (as its filament is broken), which prevents the rest of the bulbs from being lit, as the circuit is now "open." However, a newer "shunt" type of bulb has a backup path for current to pass through it even after the filament is broken, although you may notice the rest of the bulbs are a little dimmer afterwards.)

"I'm curious to how my portable charger works and what makes it so easy to charge as well as why it charges the phones so fast in addition to lasting so long to die off. I'm curious to know what materials they used, but of course I'm not going to dismantle it to see what's inside." (Most likely it contains a lithium-ion battery inside. And yes, good on deciding to not take it apart.)

"I am just a little confused on the stacking component of batteries (and even batteries in general). I understand there is a chemical reaction but how does that create a charge? Do batteries constantly have a charge and chemical reactions are happening inside the battery at all times?" (By "charge" let's make sure we're talking about actual electrons that flow, instead of "putting energy into" the battery. So chemical reactions occur in batteries by materials exchanging electrons (to fill or to empty their orbitals and bonds), releasing energy in the process. If the battery is part of a complete circuit, then electrons are free to flow through the rest of the circuit to return to the battery, and take part in further chemical reactions, releasing more energy, etc. Ideally, if the battery is disconnected from a circuit, then the chemical reactions will stop, because no more electrons are available to be exchanged.)

"It would be cool to make a battery for lab." (That sounds like chemistry to me. However, we'll be building a capacitor in lab this week, and taking a look at thermocouples for next week's lab, which can basically be thought of as temperature-dependent batteries.)

20190313

Online reading assignment: capacitors

Physics 205B, spring semester 2019
Cuesta College, San Luis Obispo, CA

Students have a bi-weekly online reading assignment (hosted by SurveyMonkey.com), where they answer questions based on reading their textbook, material covered in previous lectures, opinion questions, and/or asking (anonymous) questions or making (anonymous) comments. Full credit is given for completing the online reading assignment before next week's lecture, regardless if whether their answers are correct/incorrect. Selected results/questions/comments are addressed by the instructor at the start of the following lecture.

The following questions were asked on reading textbook chapters and previewing presentations on capacitors.


Selected/edited responses are given below.

Describe what you understand from the assigned textbook reading or presentation preview. Your description (2-3 sentences) should specifically demonstrate your level of understanding.
"A capacitor consists of two conducting plates of the same geometry and with opposite charges of the same magnitude close together but not touching. The space between capacitors is sometimes filled with a non-conductive dielectric substance. When a dielectric is used, the capacitance (the proportional constant of a capacitor) increases and the electric field between the plates decreases."

"Capacitors store EPE and charges."

"Capacitance is fixed once constructed. The capacitor has a bigger capacitance with a bigger area and a smaller separation distance."

"They capacitance of a capacitor is fixed once it's built, but you can change the amount of potential applied. Applying a high potential will allow it to store more charge, if you apply less potential then it it stores less charge."

"Plate capacitors work similar to batteries in that they store electric charges and create 'pressure' that causes a circuit to function."

Describe what you found confusing from the assigned textbook reading or presentation preview. Your description (2-3 sentences) should specifically identify the concept(s) that you do not understand.
"I don't quite understand the whole idea of changing the amount of charge that each capacitor can hold. I just don't quite understand how changing the potential difference would change the amount of charge a capacitor."

"How is electricity initially stored in the capacitor and how is it released evenly?"

"What I don't understand is why the first electron moves quickly and the last moves the slowest. I don't understand the concept of 'start-up' and 'end-cost.'"

"I'm a bit confused on how to use the equations for capacitor energy storage."

"Can we go over substituting terms in the EPE equations?"

"Why there are three equations for capacitor energy storage and why they're all necessary."

"I'm confused about the units that is being used in this chapter. Id like to have explanation on this chapter little bit more time."

"The equations are confusing."

Describe two quantities that a capacitor is designed to store/hold.
"Charge and electric potential energy."

"Capacitors are designed to store/hold electric potential energy by storing a given amount of charge."

"Coulombs and joules."

"Positive and negative charges?"

State the unit of capacitance, and give its definition in terms of other SI units.
"The unit of capacitance is farads, which are coulombs2 per joule. It measures the units for charge per potential."

"The farad (F) named for Michael Faraday. The units are coulombs/volt."

"The unit of capacitance is farads (F). As far as defining in terms of other SI units I am confused. I battle with units and conversion. Wut? Confused guy emoji."

For a parallel-plate capacitor, ___________ the plate area and __________ the plate separation would increase its capacitance.
decreasing; decreasing.  [0]
decreasing; increasing.  ***** [5]
increasing; decreasing.  ******************** [20]
increasing; increasing.  *** [3]
(Unsure/guessing/lost/help!)  ** [2]

For a parallel-plate capacitor, increasing the voltage (electric potential) difference applied to the capacitor would __________ the amount of charge stored in it.
decrease.  [6]
increase.  **************** [16]
have no effect on.  ***** [5]
(Unsure/guessing/lost/help!)  *** [3]

Explain why increasing or decreasing the voltage (electric potential difference) of a capacitor cannot change the numerical value of its capacitance.
"Because the capacitance is fixed once the capacitor is built."

"With the voltage change the amount of charge also changes."

Ask the instructor an anonymous question, or make a comment. Selected questions/comments may be discussed in class.
"Knowing that 'endless amounts of amusement await us when doing capacitor energy problems' is good to know. Now were prepared and understand that this is something we really need to figure out how to do right."

"It was interesting to learn that the 'ones' and 'zeros' in computers are stored/delineated through in and with transistor/capacitor combinations (in the millions) in RAM chips. This was such an abstract idea for me for a long time. It is odd to start understanding how it works now."

"I am not really familiar with capacitors, so I'm not entirely sure what they are or what they do (in a practical sense), like what are they used for? I get the whole process of making them, how they work, etc., but I don't really know what they are in other than defibrillators." (As in defibrillators, capacitors are really good at storing energy (and charge) that can be released quickly, for things like camera flashes and tasers. But they can also take in energy (and charge) very quickly--so they can regulate and control surges in circuits--and can be found in surge protectors, chargers, and in audio systems.)

"Does the material of a capacitor matter?" (For the plates, no, as long as they are made of any conductive metal. However, the material between the plates does matter, whether you use a gap of air between them, or some other insulating material (a "dielectric") such as a layer of glass or plastic, or even certain types of oil or solvents, these materials will typically raise the capacitance value more than having just air between the plates.)

"A lot of the online presentation was not loading for me last night. It would have been nice to see the photos because I was a little confused on what the presentation was talking about." (It wasn't just you; the presentation slides are hosted by Google, which had connectivity issues last night.)

"I would like the 'KRIF' image example to be explained a little more." (Capacitors are commonly used in sound systems to regulate current surges, so high-capacitance capacitors are sold at a premium to people who are willing to pay those prices for their audio systems. This means there are unscrupulous manufacturers who deliberately mislabel and repackage their low-capacitance capacitors as having much higher capacitance values. Caveat emptor.)

"Electricity is scary conceptually and in actuality."

"More practice on equations please."

20190311

Online reading assignment: electric potential energy

Physics 205B, spring semester 2019
Cuesta College, San Luis Obispo, CA

Students have a bi-weekly online reading assignment (hosted by SurveyMonkey.com), where they answer questions based on reading their textbook, material covered in previous lectures, opinion questions, and/or asking (anonymous) questions or making (anonymous) comments. Full credit is given for completing the online reading assignment before next week's lecture, regardless if whether their answers are correct/incorrect. Selected results/questions/comments are addressed by the instructor at the start of the following lecture.

The following questions were asked on reading textbook chapters and previewing presentations on electric potential energy.


Selected/edited responses are given below.

Describe what you understand from the assigned textbook reading or presentation preview. Your description (2-3 sentences) should specifically demonstrate your level of understanding.
"Pushing together repelling charges and pulling apart attractive charges causes electric potential energy to increase and the opposite causes electric potential energy to decrease."

"A positive charge accelerates from higher electric potential region toward a lower electric potential region. The opposite happens for a negative charge."

"We know that a source charge can exert an electric force on a test charge, and now we know that a source charge can 'store' electric potential energy on a test charge! Whoa! Changes in this potential energy changes based on how far apart the source and test charge are from each other. More potential energy is stored when like charges are pushed together because this requires energy since these opposite charges will repel while the change in potential energy will be smaller when like charges are allowed to repel each other or opposite charges are allowed to attract towards each other."

"Electrical potential energy, EPE, can be observed using a direct approach (source Q stores EPE with test q) or a two-step approach (source Q creates Voltage potential which then stores EPE with test q). In both cases, electric field lines will point towards decreasing electric potential values. A positive test charge, q, will also point toward the direction of decreasing potential and decreasing potential energy. A negative test charge will point towards increasing potential but decreasing potential energy."

"Electric potential energy can be increased by pushing two same sign charges together because they will repel and that the same will happen when you pull apart opposite sign charges because they want to stay together. These both cases will cause EPE to become positive. When charges are able to do what they do naturally, which is to repel from same sign charges and move closer together to opposite sign charges, this will cause the EPE to become negative because it will decrease. I also learned that potential at a location in space is also referred to as voltage."
Describe what you found confusing from the assigned textbook reading or presentation preview. Your description (2-3 sentences) should specifically identify the concept(s) that you do not understand.
"I do not understand the concept of the equipotentials. I do not understand the relevance and meaning of the field lines and equipotential circles. I understand that it has to do with potential energy but that's about it."

"How is electric energy measured and observed in reality? What are the implications of high or low EPE? "

"How when we have a positive source charge and a positive test charge we get increasing potential energy but if they're left alone you get decreased potential energy. I also found the whole snowmobile analogy very confusing."

"So the potential of a point charge is a potential difference with a potential at infinity. I'm not quite sure what this is supposed to mean other than that if the point charge is positive that its potential is raised above the reference value of 0. So if the point charge is negative then its potential is lowered below the reference value of 0?"

"Sometimes it's hard to tell which direction stuff is pointing in different cases."

"I'm a bit confused with the concept for the two step approach to electric potential energy. SO the source charge won't directly affect the test charge instead it will create an electric field which will then exert a force onto the test subject. I guess what I don't quite understand is why does there need to be almost like a middle step to the direct approach."

"I didn't understand why electric field lines point towards decreasing electric potential values for both positive and negative charges."
Explain the difference between the units of electric potential V, and electric potential energy, EPE.
"V is measured in joules per coulomb and EPE is measured in joules."

"I didn't understand this."

"I think both of these are the same?"

Explain the conceptual difference between the electric potential V, and electric potential energy, EPE.
"A source creates a potential V, everywhere around it and the EPE is stored with the test charge. The source charge creates an electric potential everywhere around it on its own. EPE is stored when the source charge and test charge are brought closer together or farther apart. EPE is only made from both charges."

"EPE is a measure of energy. Electric potential (V) is a measure of energy per charge."

"Still a little foggy on this. It usually takes me seeing examples in class to fully understand the differences between these things and why they are different."

"I don't know"

Briefly summarize the difference (if any) between "voltage" and electric potential.
"There is none."

"I believe voltage is the same as electric potential."

"Potential and voltage are the same thing."

"Really not making sense."


Identify the changes in electric potential energy EPE (if any) for the following test charges (±q):
(Only correct responses shown.)
Positive test charge +q brought closer to a positive source charge +Q: increase [67%]
Negative test charge –q brought closer to a positive source charge +Q: decrease [61%]
Positive test charge +q brought closer to a negative source charge –Q: decrease [64%]
Negative test charge –q brought closer to a negative source charge –Q: increase [64%]

Identify the changes in electric potential V (if any) for the following test charges (±q):
(Only correct responses shown.)
Positive test charge +q brought closer to a positive source charge +Q: increase [44%]
Negative test charge –q brought closer to a positive source charge +Q: increase [36%]
Positive test charge +q brought closer to a negative source charge –Q: decrease [58%]
Negative test charge –q brought closer to a negative source charge –Q: decrease [31%]

Ask the instructor an anonymous question, or make a comment. Selected questions/comments may be discussed in class.
"I am still not comfortable about the difference between electric potential and electric potential energy. I don't understand why work increases electric potential energy when two like charges are moved closer together or when two different charges are moved away from one another." (Two like charges repel each other, so it will take "effort" in trying to push them together. This "effort" is the work you are doing in increasing their electric potential energy (like compressing a spring raises its elastic potential energy). Likewise two opposite charges attract each other, so it will take "effort in trying to pull them apart. This "effort" is the work you are doing in increasing their electric potential energy (like stretching a spring raises its elastic potential energy.)

Can V be likened to a field if EPE can be likened to a force?" (Yes, as potential is measure of the energy that a charge could have if placed at a location near a source charge, while electric potential energy is energy two charges have with each other. Likewise electric field isa measure of the force that a charge could have if placed at location near a source charge, while electric is the force two charges exert on each other.)

"The book is difficult to read and the blogs are a bit hard to understand as well. It would be nice if actual problems where posted on the blogs with the answers and the step-by-step how to solve that way we would try and understand how to do these problems before coming to class. The blog is a bit vague and shows the formulas but posting actual examples like how we work examples in class would be very helpful." (Point taken; keep letting me know which problems from the homework reports you would like me to work out in class, while I will still go over other examples proactively in class (as time allows) before you do the subsequent homework report. Also the electric forces/fields/energy/potentials concepts and problems are very abstract, so keep at it, and we'll develop these ideas further as well get into magnetic forces and fields later.)

"Can you go over the snowmobile model in class?"

20180505

Physics midterm question: decreasing capacitor charge

Physics 205B Midterm 2, spring semester 2018
Cuesta College, San Luis Obispo, CA

A parallel-plate capacitor is constructed by placing two foil sheets between different pages in a phone book. The capacitor is then connected to a power source that slowly decreases the voltage applied from 9.0 V to 0 V. Discuss why the amount of charge stored in the capacitor must also decrease while this is happening. Explain your reasoning by using the properties of capacitors, charge, electric potential, and energy.

Solution and grading rubric:
  • p:
    Correct. Discusses why the charge stored in the capacitor will decrease because:
    1. the capacitance of the capacitor is constant, as it has been already constructed and thus its plate area and separation distance remain unchanged; and
    2. as the applied voltage ΔV decreases, because the capacitance remains constant, then the charge stored must also decrease.
  • r:
    As (p), but argument indirectly, weakly, or only by definition supports the statement to be proven, or has minor inconsistencies or loopholes. Discusses (2), but assumes and does not explain (1) why capacitance is constant.
  • t:
    Nearly correct, but argument has conceptual errors, or is incomplete. Assumes and does not explain why capacitance is constant, and somehow argues from C = QV how Q is inversely related to ΔV; or discusses how decreasing ΔV causes a decreasing Q because EPE decreases (from EPE = (1/2)⋅Q⋅ΔV), but does not discuss why EPE is expected to decrease (from EPE = (1/2)⋅C(⋅ΔV)2, where capacitance is constant).
  • v:
    Limited relevant discussion of supporting evidence of at least some merit, but in an inconsistent or unclear manner. Some attempt at applying properties of capacitors, charge, electric potential, and energy.
  • x:
    Implementation/application of ideas, but credit given for effort rather than merit. No clear attempt at systematically applying properties of capacitors, charge, electric potential, and energy.
  • y:
    Irrelevant discussion/effectively blank.
  • z:
    Blank.
Grading distribution:
Sections 30882, 30883
Exam code: midterm02iFtW
p: 14 students
r: 8 students
t: 9 students
v: 2 students
x: 1 student
y: 0 students
z: 0 students

A sample "p" response (from student 4632):


Another sample "p" response (from student 3693):