Showing posts with label momentum. Show all posts
Showing posts with label momentum. Show all posts

Wednesday, November 18, 2020

RT;DL Things That Go Bump!

Which involves more force: stopping or bouncing? Let's demonstrate.



I inherited a stop/bounce dart when I arrived at my school in 1986. You arrange the dart as a pendulum and swing it into a wood block. Back in those days, you ran the unadorned nail point into the block for the stop, and attached a rubber stopped to the nail point for the bounce.

Since then, the advent of "happy" and "sad" balls improved this demo. And happy/sad pendula/mallets have been commercially available (help me out with a link if you know one).

Arrange the dart so that it barely knocks over the block using the happy ball on the tip. Then switch to the sad ball and allow for predictions and arguments. Then proceed with the reveal.

Sunday, January 26, 2020

PTSOS Workshop 2 Links of Phyz

Here are some notes and links relevant to PTSOS Workshop #2. If you're new to teaching physics in Northern California, check out PTSOS.org.

Momentum and Energy
I prefer momentum before energy, but I've run into teachers who consider those to be fightin' words.

Phyz Momentum Curriculum

One highlight here is our Grass Omelette (Egg Toss Competition). In 2013, I had five sections of Physics, so I was able to compile an adequate set of images and video to make a tidy video: Egg Toss 2013

Phyz Energy Curriculum

If you're a fan of ranking items, you might enjoy
Potential Energy Ranking - Answers
Kinetic Energy and Momentum Rankings

Further distinctions between kinetic energy and momentum are explored here.
Kinetic Energy and Momentum Conundrums - Answers

For video resources, there's
The Mechanical Universe High School: Conservation of Momentum, and Conservation of Energy
The Mechanical Universe (College): Conservation of Energy, Potential Energy, and Conservation of Momentum.

Waves and Sound
Phyz Waves Curriculum

One of my favorite lessons is a nice foray into skepticism: Back Masking and EVP (Drop Box Link to Keynote Presentation). I connect it to a lesson that involves Musical Roads and Talkie Tapes.

Demo: Science is Fun!

For video resources, there's
The Mechanical Universe High School: Introduction to Waves
The Mechanical Universe (College): Waves
PBS: The Secret Life of Waves


Monday, October 07, 2019

Doggies on a waxed floor



Where will you use it: inertia, friction, centripetal force? I don't think students will mind if you use it for all of those.

Can you stretch it into conservation laws? Of course you can! Low stopping force requires longer stopping time. Impulse/momentum: check. That wee force will need to act across a large distance to change the kinetic energy of those goggies! Work-energy: check.

Want to take it a step further? How did those doggos get up to speed to begin with? Hmmm...

And fear not: it all ends well.



Hat tip to Wendy A. (Rio Phyz ’88). Old physics teacher flex? Why, yes!

Tuesday, July 03, 2018

Cell Phone Airbag Challenge

Videos and pictures of this airbag device have been circling the web the last few days:

While not available for production yet it is getting a lot of publicity, and rightly so. It is an ingenious design that appears to be effective and reusable. It got me thinking about Dan Burns and my Crash Cushion project. Students are asked to design a crash cushion for either a smart cart or a cart with an accelerometer on it to crash into. They are challenged to decrease the impact force as much as possible, something we hope they realize is accomplished by increasing the impact time. 

I want to assign this as an emergency sub assignment for students that can be done theoretically, no cracked screens needed. So I looked to see what other designs might already be out there and found this 2013 parody by Honda:

It is in Japanese and does not have subtitles but the engineering process is still evident in the parody video. The end product is a giant case for your phone which of course makes the phone impractical. I see the Honda version as where my students my start in the process and then the new spring loaded German design as where they might end, with lots of R&D in between.

I plan to start the activity by asking students what is necessary for an automatically deployed air bag for a dropped cell phone. They could work in pairs or groups and discuss the basics of the design criteria for a device that protects the dropped phone from breaking. I expect students to think about drop proof cases they may have seen commercially available that have enforced corners. Once they have made a list of the design needs groups/ pairs could share their individual lists to come up with a whole class list.

After their criteria has been established I would like to show students the original Honda parody video above. The original Honda video has been removed from their YouTube channel but the video is available on a few news sites. Since I can't find one with subtitles I'm not 100% sure its clean for the classroom but its probably safe since it was originally published on the official Honda page. Even on silent students can watch the video and observe his design process; it could be considered an advantage that they have to rely on the visual only and can't regurgitate anything they hear the engineer say. They will probably laugh at the final design but it will serve as a starting point for the next stage.

Before watching the video, or after, students can be given the shorter article about the parody video  that summarizes it and includes stills from the video. Ask students to discuss if the Honda Case N meets all aspects of their design criteria. If their class list was missing something about the phone case being of a practical size they will probably want to add it now. This should lead to a discuss about additional criteria they might want to add.

At this point you can ask students to actually start brainstorming an air bag device on paper. This may include some conjecture and may not hold up to questioning:
"There will be this bag that shoots out here..."
         "How will it shoot out?"
"Ummmm some kind of compressed gas..."
         "Where will that come from?"
"Uhhhh..."

And to an extent that is completely okay. Students aren't going to be able to build a workable model like they do with the Crash Cushions project. This activity is not even necessarily focused on the ideas of impulse either but more on reasonable design criteria

I found this article about the spring loaded German design and made a pdf to share with students. The original video can be shared as well, although it is in German. I plan to ask students what is most important to that design and if it meets all of their design criteria. Students can discuss differences in their design and the German spring loaded design, which of their own design criteria it does not meet, etc.

The viral German spring loaded design is expected to go to Kickstarter soon to crowd fund enough capital to begin production. You could continue the activity with students by asking them which of their own designs they would help crowd fund (before showing them the German design). After they see the German spring loaded design you could ask students if they support it enough to fund it as well, hypothetically of course.

While I plan for this to be a substitute activity it does require the sub to be capable of playing online video clips if your students do not have one-to-one devices like Chromebooks. My subs are not usually capable of operating my projector nor are we a one-to-one school so I don't know how likely I will be to implement this in the next school year. I've summarized everything, including questions I would ask students in this teacher guide for the activity.

I would love to hear any one else's ideas for extending this activity below. 

Tuesday, January 16, 2018

Egg Toss video because—why not?

The final batch of clips from Grass Omelette XVII at Rio Americano. A nice catch and two spectacular splashes! With no sun, we were able to line up with the geometry of the field. Seems we should have taken a bit of Sharpie to the eggs to increase their contrast with the sky.

Large impact time to reduce impact force


Impact force too large #1



Impact force too large #2


Previous Grass Omelette XVII coverage can be found here:
Splash and Catch: Grass Omelette XVII

More robust coverage of this activity can be found here:
Egg Toss 2013

Monday, November 06, 2017

Catch and Splash: Grass Omelette XVII

After a few year's dalliance with Energy before Momentum, I have switched back to Momentum before Energy. Please don't flame!

One benefit to the return is that our annual egg toss competition, Grass Omelette, has returned to late October/early November. And that increases the likelihood of nice weather.

We conduct the event prior to any discussion on impulse so that we can refer to it during or after our lessons on F∆t = m∆v.

I shoot the catches at 120 fps so that I can pull half-decent still images of "splashes" to give to the individual students who were brave enough to don the plastic ponchos and kilts. I'm currently using a Panasonic Lumix DMC-FZ200. Maybe in the future, I'll shoot normal-speed 4K video to get better stills. At some point, consumer high-speed 4K will be available. I know the Sony RX10 iv can shoot 24 fps at full resolution (as well as 960 fps lower-res high-speed).

In any case...

Egg Toss 2017 Catches

Egg Toss 2017 Splashes

When I had 5 sections of Physics (no AP anything and no Conceptual Physics) in 2013, I had enough to produce an amusing compendium set to Vangelis' Chariots of Fire.

Egg Toss 2013

Saturday, May 27, 2017

Crushable Concrete & Impulse

I find myself repeating "Longer time, smaller force," throughout my momentum unit. There are so many examples of safety devices that decrease the force one might experience by increasing the time. Bike helmets, car bumpers, crumple zones, air bags, seat belts, etc. All decrease the force experienced by increasing the time of the collision. The sticking point is always that the impulse is the same regardless. Many of my students incorrectly think that by increasing the time they have somehow managed to decrease the impulse. I remind them that the vehicle is going from 60 mph to 0 mph whether they use their brakes or hit a wall. They also seem to struggle with applying this concept to larger objects .... And what's larger than a jumbo jet?

Awhile back I caught a news segment about an airplane crash in which an Engineered Material Arresting System (EMAS) safely stopped a plane. Apparently pilots overshoot the runway sometimes and, well, its hard to stop something as big as a jumbo jet. This Popular Mechanics article gives a good background: "EMAS is essentially a rectangular bed of 2,000 to 4,000 collapsible cubes glued in place at the end of a runway, nearly level with the ground. As a plane careens into the cubes, the cubes break apart. Friction between the cubes and the plane's wheels ultimately slows the plane to a stop." The article continues to say "The system can safely stop a Boeing 737 traveling at 65 miles per hour in fewer than 300 feet."

Oooh, that sounds like a Physics problem! All you need is the average mass of the airplane and students could calculate the size of the force that EMAS applies to stop the plane. According to the FAA Fact Sheet for EMAS all runways need an extra 1000 feet past the end of the runway for emergencies. I would be careful that students don't confuse stopping "slowly" through 1000 feet with airplanes that often crash roughly at the end of a rough, unmaintained dirt patch that happens to be 1000 feet long. The point of the EMAS is stop in a short distance in a long time, compared to stopping quickly by say hitting a wall or a long rough distance over a long time.

Since there are many different possible stopping situations solving problems about this with students should be accompanied by simple diagrams, maybe even descriptions for each. If  you don't want to get into practice problems you can at least show students pictures and videos of airplanes stopping with EMAS.

I plan to bring up this material in my Crash Cushions project (original post here, additional information about leveling here). In my initial tests of the project a few years ago I found that small paper cubes were the most successful in minimizing the force, a similar design to EMAS!
Bringing in real-life examples that students can evaluate and analyze can help them improve their designs which is an aspect of the NGSS Science & Engineering Practices.


An explanatory video from the company:

Tuesday, January 24, 2017

Crash cushions cont.

Several years ago Dan Burns and I started discussing an engineering project for which students build a crash cushion to investigate momentum and impulse. Using only a few sheets of paper and hot glue student groups design crash cushions (similar to water barrels or guard rails on roadways) to lower the force experienced by a cart rolling down an incline that crashes into them.

Since then we have both completed the project with classes albeit differently. We also presented at the Summer 2016 AAPT meeting in Sacramento, all of the materials discussed there are here. I wanted to share the project here again, with the tweaks my partner Jon Brix and I have made to it since.

My colleague Matt Miller continued the project in Conceptual Physics this year although opted not to use the Vernier sensor that I had last year.  He opted for the resettable Drop N Tells I bought years ago instead as it is more visual for the younger students. He set up a ramp and used a lightweight impact car that had an additional <200 grams of mass added. Miller adjusted the ramp set-up until the 25, 15, 10 and 5-g sensors were consistently tripping. His students were challenged to design the crash barrier that did not trigger all the sensors. I believe he set the grading up this way:
C = triggering the 15, 10 and 5-g sensors
B = triggering the 10 and 5-g sensors
A = triggering only the 5-g sensor
Extra Credit earned for not triggering any sensors.

Dan uses a PASCO Smart Cart while I use Vernier sensors. The first year I tried this I used a low-g accelerometer because it was what I had. Through a Donors Choose grant I was able to purchase the higher 25-g accelerometer3-axis accelerometer and a Wireless Dynamic Sensor System (WDSS). The wired sensors require some coordination to prevent the cord from catching but are workable. I found that the wireless WDSS made for easier set-ups but would disconnect occasionally. Both the WDSS and the 3-axis sensors were almost too accurate and the graphs produced were difficult for students to interpret. I opted this year to use the single-axis 25-g accelerometer because even collecting 500 samples per second the peak accelerations were easier for students to determine.

In the past I've used a wood ramp and a big heavy dynamics cart that then travels along the flat lab bench into a wall. The transition from ramp to flat tabletop caused additional acceleration peaks so we opted to have the cart run directly into the wall from an incline. The heavy cart and steep ramp produced a high acceleration that exceeded the accelerometer's limits. We decreased the ramp angle and still occasionally "missed" the hit because the time of impact of the cart against the wall was so short. This year we opted to use a low-friction (not smart) PASCO cart and track from another colleague. The 120 cm long track was raised above the table by one textbook and pushed against the wall. A box of weights (over 30 lbs) was pushed against the higher end of the track to prevent it from moving. In initial tests the conservation of momentum caused the track to move quite a bit when the cart struck the end of the track.

This year student designs proved very successful. Because of the light cart and small incline students were able to reduce the acceleration of the cart at impact fairly easily. Usually the designs that "failed" did so because the cart passed underneath the crash cushion and still struck the wall. I had only one set-up in the classroom so groups took turns testing their barriers and collecting data. We stored a trial of the cart running into a book at the end of the ramp and then printed out graphs for each group with their trial on top of the control data. Here is an example of the data student's received with the control (green) and their trial (blue):
Students were to take measurements of their crash cushion before and after their collision although most cushions did not permanently deform. For some reason students were very pleased when their crash cushion suffers little damage; several cited the fact that it could be reused as a positive attribute. Students were also to calculate the Force with and without their crash cushion based on the mass of the cart.

Using this information students were to write a Claim, Evidence, Reasoning (CER) conclusion to answer the question: "Was your crash cushion effective?" After grading these conclusions we realized a few things:
1. Students did not agree on what made a crash cushion effective. Most students realized that decreasing the force, as shown on their graph as a decrease in acceleration, by increasing the time of impact made for a successful crash cushions. A few more realized that stopping the moving cart without letting it bounce back was also good. Yet many students considered their crash cushions ineffective if there was any acceleration, even if they reduced their force by more than 50% .
2. Students do not know what is fact vs. opinion. This must be going around recently. Students often stated opinions or qualitative observations in place of specific measurable data. "Our crash cushion was good because it stopped the cart slowly."
3. Some students did not understand the graph axis, significance of peaks, etc. Referring to the example above, some students incorrectly described the "time of impact" to be just over 2.5 seconds for the control trial. They did not understand or forgot the fact that the cart had to roll down the ramp before the impact.
4. When in doubt, students are prolific. I expected three, maybe 5, sentences from students yet often received a full page. While grading these conclusions I often crossed out over half of what was written because it was superfluous. They seemed to just keep writing and praying for partial credit.

Before handing back their conclusions I reviewed the CER format with students and showed them a few pictures of correctly written (short) examples of their peers. I showed them a few sample graphs from their trials and reviewed the significance of each peak. In the future this will be done the day after to give students a chance to correct their CER conclusions before turning them in.

Thursday, August 04, 2016

Jumping without a parachute

You've probably seen this video of Luke Aikins jumping out of a plane from 25,000 feet without a parachute. Knowing the physics behind it doesn't make it any less impressive:


There are several videos online but I like this one with the height gauge at the side. This video shows his top speed at 150 mph but this LiveScience post and a few other sources quote a human's terminal velocity around 120 mph or 53 m/s. Aikins says both 150 mph and 120 mph in this NPR interview about how they prepared for the jump. Wired also discussed some of the physics behind Aikins' jump, focusing on air resistance and terminal velocity. The net is 100 feet by 100 feet and held 200 feet above the ground by four cranes at each corner. In the interview Aikins refers to the giant net as his parachute, its just below him instead of above him.


Remind students it Aikins were to go from 120 mph to 0 mph by hitting the ground he (probably) isn't surviving. So how can he go through the same change of speed in the net and survive? Hopefully you hear a chorus of students saying that time is a factor and it has been its extended by the net. If you bring up this example in your motion unit your students will probably refer to the acceleration equation. A smaller time value means a larger acceleration (and a larger force); an extended time will produce a smaller acceleration. Students can practice their unit conversions to find Aikins terminal velocity in kilometers per hour or meters per second.

Aikins flips on to his back, so that he can land without snapping his neck, at 2:30 in the video above. I downloaded the video and edited it down to his landing in the net. In this edited version the first contact with the next is seen at 2:24 seconds. As Aikins falls into the net the edges don't stay taught (another talking point) so its tough to call when he comes to a full stop and when the lowering of the net starts. I called it at 4:00 seconds making the time it takes him to stop in the net 1.76 seconds. If students use 53 m/s they will find a decceleration for Aikins of about -30 m/s^2 or about 3g.


With the same information students can calculate Aikins kinetic energy just before he hits the net. All of that kinetic energy is converted to work done on the net and to elastic potential energy of the net. You will have to make some assumptions about Aikins mass and the stretch of the net. The NPR article includes these two pictures of the net before and after Aikins jumps into it, he's the speck in the top of the left side. I set them side by side and drew a line over to show 200 feet about the ground. The perspective will make it difficult to exactly determine the height of Aikins when he stops completely, you can discuss with students how best to do so.
What else can you discuss? Momentum! This is just like a car traveling at high speed that has to be stopped. It can hit a wall in a short time and be destroyed or it can be stopped over a (relatively) long time and suffer minor damage. Again students can calculate Aikins' change in momentum based on the information they find and making a few simple assumptions.

Obviously the experts that helped build it went into a little more detail but its an interesting piece of Physics not beyond basic mechanics principles we teach our students.

Tuesday, July 26, 2016

Physics of Ballet

Someone shared this with me on social media because they know how I love Physics. It is very well explained and a great animation.

Monday, May 16, 2016

I came in like a bowling ball

Now you can't help but introduce this demo by playing that Miley Cyrus song. ;)

Years ago I wrote an overly professional letter begging for a single bowling ball from my local bowling alley. [Always play the poor teacher card, because you are, in fact, a poor teacher.] They called soon after and asked if I wanted a dozen or so. I never refuse free stuff if there is even a remote chance that I will use it later so yes, I took them all. Transporting fifteen of them led to one of my favorite questions about inertia based on this picture: "Which way did this car last turn? Explain your answer."

In my last classroom I was able to drill into the supporting I-beam in the ceiling and insert a large threaded rod, with Loctite and several locking nuts. I cut a piece of plywood to be the same size as that ceiling tile, with a hole in it at just the right spot. This prevents the threaded rod from moving side to side while the pendulum swung. The plywood is placed on top of the ceiling tile so the ceiling looks uniform from beneath. An inconspicuous eye hook is all that you can see from the ceiling when everything is placed. The support should easily hold 200 pounds so it also hangs a punching bag during my momentum unit.

In my current English-room-turned-science-room this set-up wasn't going to work. For one I'm probably moving again next year so I try not to make too many holes. The ceiling is also not as strong. About half the room has a dropped ceiling covering duct work, the other half has exposed beams in terrible strategic positions and wood slats across the rest. I thought I was destined to go back to the videos I used to use before I realized there was a support beam outside my classroom.

Since I was in a new room, making a new set-up, I decided to make a new pendulum ball. I had shared a bowling ball pendulum made by another teacher, so I decided to make my own. I drilled the biggest hole I could using our drill press at school but it wasn't quite big enough for the eye hook I wanted to use so I had to take a rat tail file to it. In retrospect, as can be seen to scale with the bowling ball, it might be a bit big. I filled the hole with two-part epoxy and used an extra 6' dowel I had around to tighten it with the help of a student and an aid. Simple machines work kids. ;) We tightened it until we heard a small crack. The crack filled with epoxy and set quickly. A few hours after it cured I tried swinging the bowling ball around, trying to start and stop it quickly to test the connection at high forces.

The hardware in the upper right attached to 1/8" steel cable to make
the pendulum. Given the arrangement of my outside beam I have to be able to loop the steel cable around it. When we did the demo everything stayed together! The only hiccup was getting paint flecks from the peeling paint on the wood support beams in my mouth.

Monday, February 09, 2015

Conservation of momentum: not always your friend

Make of this what you will, gentle readers. But don't doubt the physics! We've got combustion, fluid flow, conservation of momentum / Newton's 3rd law, and an inclined plane.

Firefighters try to extinguish a car fire when suddenly...



And remember: if you're going to set your car alight on the top of a hill, have the courtesy to set the parking brake!

Monday, January 12, 2015

Momentum Mobile: Have you seen this equipment?

Demonstration or lab equipment for physics classes can vary from homemade of scraps and junk to store bought and polished shiny pieces. I believe there is a place for each in the classroom but sometimes there is no beating a truly well made purchased piece. An advantage to purchased pieces is that they often stand the test of time and are used year after year (or decade after decade depending on your teaching experience).

Many of us keep a "wish list" of sorts for our classrooms. This may be mental or you may actually have a collection of marked catalogs or ripped out pages. A wise physics teacher (*cough* Dean *cough*) once told me that keeping such a list could help get equipment for your classroom when random money falls from the sky. While it doesn't quite rain I have been lucky enough to have such lists ready at the end of the fiscal year or at the beginning of a new program when an administration is asking for things to buy. That's right, sometimes they ask us and you better be ready!

Yet sometimes you know just what you want to buy but you don't know where to find it. It may have been something you saw at a conference or in a catalog somewhere sometime and you can't quite place it. Whatever it is you just know, "If I had this then my students would completely understand [insert tough concept here]." Perhaps the most frustrating part is that you know the equipment is out there, somewhere, you just don't know where to look. But someone does; maybe avid Blog of Phyz readers?

Another Physics teacher in my district recently said that he wanted this momentum cart he had read about years ago. The cart has a slanted back (higher at the front, lower at the back) and marbles or ball bearings are placed in it. At the start the marbles are stopped from rolling out with a hand at the back of the cart. When you remove your hand the marbles start to roll out and because of conservation of momentum the cart starts to move forward. The marbles fall out one at a time and as they continue to fall the cart speeds up. The teacher said that he thought he remembered the second to the last marble would be the fastest and then the last marble is at rest. This part did not make sense to me but we will have to get the cart to experiment with.

I made this simple image based on his description and he said it looks like what he had seen but didn't know where to find one. Over the years a few students have tried to make it but they have not been successful. Has anyone ever heard or seen anything like this before? Have you seen it for sale anywhere? Perhaps you know what is is properly called and a quick internet search can help us find it. Any and all help would be appreciated!

Bree Barnett Dreyfuss
Amador Valley High School

Saturday, August 24, 2013

20 kg of metal at Mach 1 meets 10 Mg of ice

And hilarity physics ensues.

The European Space Agency slammed a jet-pack accelerated, 20-kg "penetrator" into a 10-metric tone ice cube.

They had their reasons.

The impact decelerated the penetrator to the tune of 24,000 gs. Some folks pass out if exposed to 10 gs, and the human body loses structural integrity around 30 gs (300 m/s^2).



In addition to the obvious grooviness, I see introductory physics problems for homework and tests. You?

Hat tip: Phil Plait's Bad Astronomy

Thursday, February 14, 2013

Thursday, February 07, 2013

Hewitt-Drew-it! Conservation of Momentum

In this screencast, Paul shows how Newton's laws lead to the impulse-momentum relationship, which then leads to the conservation of momentum.

Hewitt-Drew-it! PHYSICS 25. Conservation of Momentum

Monday, February 04, 2013

Hewitt-Drew-it! Momentum

In this screencast, Paul, a former boxer, investigates the physics of riding with a punch, and other situations related to momentum.

Hewitt-Drew-it! PHYSICS 24. Momentum