Debbink Physics
Ideal Gas Law Lab (Conclusion Discussion)
updated
Below are the videos that can be used to collect data for spinners at different angled inclines. All 15 videos have an object that increases speed. Some of the videos show the increase in speed while moving in the positive direction, and others show the increase in speed while moving in the negative direction. Some videos have the object start with an initial velocity, while others show the object starting from rest. If you are a teacher you can use different groupings of videos based on what you would like the students to learn when analyzing the position and velocity data collected from the videos.
Data Collection Instructions: youtu.be/dnkdLRqiiGs
Data Analysis Instructions: youtu.be/8vMzg8EFo5w
Conclusion Discussion: youtu.be/oDC6ZU-0msk
Directions:
1. Click on the gear icon in the YouTube video player to change the “Playback speed”. Select a playback speed of 0.25. This will make it easier to measure the position at specific times or measure the time at specific positions.
2. Record the initial position and time of the spinner. The position of the spinner should be measured from the front of the disk.
3. Record 6 - 8 more positions and times throughout the video. Make sure to collect a wide range of data (from the beginning to the end of the video clip).
4. Graph the position values on the y-axis and the time values on the x-axis for further data analysis.
Spinner Lab Video #1: youtu.be/t9WMMF4qiXI
Spinner Lab Video #2: youtu.be/rQuh07WIznA
Spinner Lab Video #3: youtu.be/VEEkUOxFFAc
Spinner Lab Video #4: youtu.be/w9yz1soGKZ4
Spinner Lab Video #5: youtu.be/G31Ozt9hJuw
Spinner Lab Video #6: youtu.be/9d4qkSfE_hM
Spinner Lab Videos (#1,2,3,4,5,6 Compared): youtu.be/unGTnG-OPcg
Videos #7- #9 move in the POSITIVE direction and have an INITIAL VELOCITY.
Spinner Lab Video #7: youtu.be/vA_TwGJMmco
Spinner Lab Video #8: youtu.be/oh6JkOslYiU
Spinner Lab Video #9: youtu.be/3ZsMB5BYJ28
Spinner Lab Videos (#2,4,6,7,8,9 Compared): youtu.be/a_-ZwotENkk
Videos #10 - #15 move in the NEGATIVE direction. Videos #10,12 and 14 also have an INITIAL VELOCITY.
Spinner Lab Video #10: youtu.be/CK3berSsb6w
Spinner Lab Video #11: youtu.be/fDOD6kte0FI
Spinner Lab Video #12: youtu.be/CD1-MMwL_ug
Spinner Lab Video #13: youtu.be/kliOfCLlEdE
Spinner Lab Video #14: youtu.be/dNyo-DsRAWc
Spinner Lab Video #15: youtu.be/TiZWYzhY0HU
Spinner Lab Videos (#2,7,8,11,12,14 Compared): youtu.be/pwfttHxD0bQ
Below are the videos that can be used to collect data for spinners at different angled inclines. All 15 videos have an object that increases speed. Some of the videos show the increase in speed while moving in the positive direction, and others show the increase in speed while moving in the negative direction. Some videos have the object start with an initial velocity, while others show the object starting from rest. If you are a teacher you can use different groupings of videos based on what you would like the students to learn when analyzing the position and velocity data collected from the videos.
Data Collection Instructions: youtu.be/dnkdLRqiiGs
Data Analysis Instructions: youtu.be/8vMzg8EFo5w
Conclusion Discussion: youtu.be/oDC6ZU-0msk
Directions:
1. Click on the gear icon in the YouTube video player to change the “Playback speed”. Select a playback speed of 0.25. This will make it easier to measure the position at specific times or measure the time at specific positions.
2. Record the initial position and time of the spinner. The position of the spinner should be measured from the front of the disk.
3. Record 6 - 8 more positions and times throughout the video. Make sure to collect a wide range of data (from the beginning to the end of the video clip).
4. Graph the position values on the y-axis and the time values on the x-axis for further data analysis.
Spinner Lab Video #1: youtu.be/t9WMMF4qiXI
Spinner Lab Video #2: youtu.be/rQuh07WIznA
Spinner Lab Video #3: youtu.be/VEEkUOxFFAc
Spinner Lab Video #4: youtu.be/w9yz1soGKZ4
Spinner Lab Video #5: youtu.be/G31Ozt9hJuw
Spinner Lab Video #6: youtu.be/9d4qkSfE_hM
Spinner Lab Videos (#1,2,3,4,5,6 Compared): youtu.be/unGTnG-OPcg
Videos #7- #9 move in the POSITIVE direction and have an INITIAL VELOCITY.
Spinner Lab Video #7: youtu.be/vA_TwGJMmco
Spinner Lab Video #8: youtu.be/oh6JkOslYiU
Spinner Lab Video #9: youtu.be/3ZsMB5BYJ28
Spinner Lab Videos (#2,4,6,7,8,9 Compared): youtu.be/a_-ZwotENkk
Videos #10 - #15 move in the NEGATIVE direction. Videos #10,12 and 14 also have an INITIAL VELOCITY.
Spinner Lab Video #10: youtu.be/CK3berSsb6w
Spinner Lab Video #11: youtu.be/fDOD6kte0FI
Spinner Lab Video #12: youtu.be/CD1-MMwL_ug
Spinner Lab Video #13: youtu.be/kliOfCLlEdE
Spinner Lab Video #14: youtu.be/dNyo-DsRAWc
Spinner Lab Video #15: youtu.be/TiZWYzhY0HU
Spinner Lab Videos (#2,7,8,11,12,14 Compared): youtu.be/pwfttHxD0bQ
Note: The ascending number in the corner is the time measured in seconds.
Spinner Lab Video #6: youtu.be/9d4qkSfE_hM
Instructions for Graphing in Logger Pro: docs.google.com/document/d/1tKP_m4dw1qAvI6vTGxSt2BZMaFxEQ_6TBZziWnPDyt0/edit?usp=sharing
Data Collection Instructions: youtu.be/dnkdLRqiiGs
Data Analysis Instructions: youtu.be/8vMzg8EFo5w
Conclusion Discussion: youtu.be/oDC6ZU-0msk
Directions:
1. Click on the gear icon in the YouTube video player to change the “Playback speed”. Select a playback speed of 0.25. This will make it easier to measure the position at specific times or measure the time at specific positions.
2. Record the initial position and time of the spinner. The position of the spinner should be measured from the front of the disk.
3. Record 6 - 8 more positions and times throughout the video. Make sure to collect a wide range of data (from the beginning to the end of the video clip).
4. Graph the position values on the y-axis and the time values on the x-axis for further data analysis.
Below are more videos that can be used to collect the same type of data for spinners at different angled inclines. All 15 videos have an object that increases speed. Some of the videos show the increase in speed while moving in the positive direction, and others show the increase in speed while moving in the negative direction. Some videos have the object start with an initial velocity while others show the object starting from rest. If you are a teacher you can use different groupings of videos based on what you would like the students to learn when analyzing the position and velocity data collected from the videos.
Spinner Lab Video #1: youtu.be/t9WMMF4qiXI
Spinner Lab Video #2: youtu.be/rQuh07WIznA
Spinner Lab Video #3: youtu.be/VEEkUOxFFAc
Spinner Lab Video #4: youtu.be/w9yz1soGKZ4
Spinner Lab Video #5: youtu.be/G31Ozt9hJuw
Spinner Lab Video #6: youtu.be/9d4qkSfE_hM
Spinner Lab Videos (#1,2,3,4,5,6 Compared): youtu.be/unGTnG-OPcg
Videos #7- #9 move in the POSITIVE direction and have an INITIAL VELOCITY.
Spinner Lab Video #7: youtu.be/vA_TwGJMmco
Spinner Lab Video #8: youtu.be/oh6JkOslYiU
Spinner Lab Video #9: youtu.be/3ZsMB5BYJ28
Spinner Lab Videos (#2,4,6,7,8,9 Compared): youtu.be/a_-ZwotENkk
Videos #10 - #15 move in the NEGATIVE direction. Videos #10,12 and 14 also have an INITIAL VELOCITY.
Spinner Lab Video #10: youtu.be/CK3berSsb6w
Spinner Lab Video #11: youtu.be/fDOD6kte0FI
Spinner Lab Video #12: youtu.be/CD1-MMwL_ug
Spinner Lab Video #13: youtu.be/kliOfCLlEdE
Spinner Lab Video #14: youtu.be/dNyo-DsRAWc
Spinner Lab Video #15: youtu.be/TiZWYzhY0HU
Spinner Lab Videos (#2,7,8,11,12,14 Compared): youtu.be/pwfttHxD0bQ
Below are the videos that can be used to collect the data described in this video. The different videos include cars moving at different speeds and in different directions.
Toy Car Lab Video #1: youtu.be/4PkZpbeLA1I
Toy Car Lab Video #2: youtu.be/jJbACVnt7VE
Toy Car Lab Video #3: youtu.be/zzIulHo4RhY
Toy Car Lab Video #4: youtu.be/wsdG-V4EO1A
DATA COLLECTION:
Instructions for Data Collection: youtu.be/zUioSFJIhnM
1. Click on the gear icon in the YouTube video player to change the “Playback speed”. Select a playback speed of 0.25. This will make it easier to measure the position at specific times, or measure the time at specific positions.
2. Record the initial position and time of the car. The position of the car should be measured from the front of the car.
3. Record 6 - 8 more positions and times throughout the video. Make sure to collect a wide range of data (from the beginning to the end of the video clip).
4. Graph the position values on the y-axis and the time values on the x-axis for further data analysis.
DATA ANALYSIS: The following video discusses how to graph and analyze the position and time collected from this or video. The video also discusses the general process to write the equation for a linear relationship.
Instructions for Data Analysis: youtu.be/cBnsPppGBHQ
CONCLUSION DISCUSSION: youtu.be/fc3D8lW0IiQ
Below are the videos that can be used to collect the data described in this video. The different videos include cars moving at different speeds and in different directions.
Toy Car Lab Video #1: youtu.be/4PkZpbeLA1I
Toy Car Lab Video #2: youtu.be/jJbACVnt7VE
Toy Car Lab Video #3: youtu.be/zzIulHo4RhY
Toy Car Lab Video #4: youtu.be/wsdG-V4EO1A
DATA COLLECTION:
Instructions for Data Collection: youtu.be/zUioSFJIhnM
1. Click on the gear icon in the YouTube video player to change the “Playback speed”. Select a playback speed of 0.25. This will make it easier to measure the position at specific times, or measure the time at specific positions.
2. Record the initial position and time of the car. The position of the car should be measured from the front of the car.
3. Record 6 - 8 more positions and times throughout the video. Make sure to collect a wide range of data (from the beginning to the end of the video clip).
4. Graph the position values on the y-axis and the time values on the x-axis for further data analysis.
CONCLUSION DISCUSSION: youtu.be/fc3D8lW0IiQ
Pre Lab Discussion Video:
Periodic Motion Lab (Pre Lab Discussion) Spring-Mass Systems: youtu.be/iWUJvW9MbEs
Data Collection Videos:
Periodic Motion Lab (Spring-Mass Systems) Spring #1: youtu.be/vJzLrQi0d0M
Periodic Motion Lab (Spring-Mass Systems) Spring #2: youtu.be/t1r7FdF81Y0
Periodic Motion Lab (Spring-Mass Systems) Spring #3: youtu.be/mRPVz-EER7E
If you are interested in determining the spring constant of each color spring for yourself, check out the additional videos that allow you to collect force and stretch data for the GREEN, RED, and YELLOW springs.
Data Collection Videos (Force vs Stretch):
Spring Force Lab (GREEN Spring #1): youtu.be/h4PdaNCGMUQ
Spring Force Lab (GREEN Spring #2): youtu.be/w1kDG5upycA
Spring Force Lab (RED Spring #1): youtu.be/MutPM-lUZJk
Spring Force Lab (RED Spring #2): youtu.be/_HyZegkkuIE
Spring Force Lab (YELLOW Spring #1): youtu.be/kNW1YeYN_gE
Spring Force Lab (YELLOW Spring #2): youtu.be/AOCFuus8ki8
Force vs Stretch CONCLUSION DISCUSSION: youtu.be/GWl_t9KiYW0
Data Collection Videos (Period vs Mass):
Periodic Motion Lab (Spring-Mass Systems) Spring #1: youtu.be/vJzLrQi0d0M
Periodic Motion Lab (Spring-Mass Systems) Spring #2: youtu.be/t1r7FdF81Y0
Periodic Motion Lab (Spring-Mass Systems) Spring #3: youtu.be/mRPVz-EER7E
Conclusion Discussion Video: youtu.be/aJs3vOgPCkE
If you are interested in determining the spring constant of each color spring for yourself, check out the additional videos that allow you to collect force and stretch data for the GREEN, RED, and YELLOW springs.
Data Collection Videos (Force vs Stretch):
Spring Force Lab (GREEN Spring #1): youtu.be/h4PdaNCGMUQ
Spring Force Lab (GREEN Spring #2): youtu.be/w1kDG5upycA
Spring Force Lab (RED Spring #1): youtu.be/MutPM-lUZJk
Spring Force Lab (RED Spring #2): youtu.be/_HyZegkkuIE
Spring Force Lab (YELLOW Spring #1): youtu.be/kNW1YeYN_gE
Spring Force Lab (YELLOW Spring #2): youtu.be/AOCFuus8ki8
Force vs Stretch CONCLUSION DISCUSSION: youtu.be/GWl_t9KiYW0
Pre Lab Discussion Video:
Periodic Motion Lab (Pre Lab Discussion) Spring-Mass Systems: youtu.be/iWUJvW9MbEs
Data Collection Videos:
Periodic Motion Lab (Spring-Mass Systems) Spring #1: youtu.be/vJzLrQi0d0M
Periodic Motion Lab (Spring-Mass Systems) Spring #2: youtu.be/t1r7FdF81Y0
Periodic Motion Lab (Spring-Mass Systems) Spring #3: youtu.be/mRPVz-EER7E
Conclusion Discussion Video: youtu.be/aJs3vOgPCkE
If you are interested in determining the spring constant of each color spring for yourself, check out the additional videos that allow you to collect force and stretch data for the GREEN, RED, and YELLOW springs.
Data Collection Videos (Force vs Stretch):
Spring Force Lab (GREEN Spring #1): youtu.be/h4PdaNCGMUQ
Spring Force Lab (GREEN Spring #2): youtu.be/w1kDG5upycA
Spring Force Lab (RED Spring #1): youtu.be/MutPM-lUZJk
Spring Force Lab (RED Spring #2): youtu.be/_HyZegkkuIE
Spring Force Lab (YELLOW Spring #1): youtu.be/kNW1YeYN_gE
Spring Force Lab (YELLOW Spring #2): youtu.be/AOCFuus8ki8
Force vs Stretch CONCLUSION DISCUSSION: youtu.be/GWl_t9KiYW0
Pre Lab Discussion Video:
Periodic Motion Lab (Pre Lab Discussion) Spring-Mass Systems: youtu.be/iWUJvW9MbEs
Data Collection Videos:
Periodic Motion Lab (Spring-Mass Systems) Spring #1: youtu.be/vJzLrQi0d0M
Periodic Motion Lab (Spring-Mass Systems) Spring #2: youtu.be/t1r7FdF81Y0
Periodic Motion Lab (Spring-Mass Systems) Spring #3: youtu.be/mRPVz-EER7E
Conclusion Discussion Video: youtu.be/aJs3vOgPCkE
If you are interested in determining the spring constant of each color spring for yourself, check out the additional videos that allow you to collect force and stretch data for the GREEN, RED, and YELLOW springs.
Data Collection Videos (Force vs Stretch):
Spring Force Lab (GREEN Spring #1): youtu.be/h4PdaNCGMUQ
Spring Force Lab (GREEN Spring #2): youtu.be/w1kDG5upycA
Spring Force Lab (RED Spring #1): youtu.be/MutPM-lUZJk
Spring Force Lab (RED Spring #2): youtu.be/_HyZegkkuIE
Spring Force Lab (YELLOW Spring #1): youtu.be/kNW1YeYN_gE
Spring Force Lab (YELLOW Spring #2): youtu.be/AOCFuus8ki8
Force vs Stretch CONCLUSION DISCUSSION: youtu.be/GWl_t9KiYW0
Pre Lab Discussion Video:
Periodic Motion Lab (Pre Lab Discussion) Spring-Mass Systems: youtu.be/iWUJvW9MbEs
Data Collection Videos:
Periodic Motion Lab (Spring-Mass Systems) Spring #1: youtu.be/vJzLrQi0d0M
Periodic Motion Lab (Spring-Mass Systems) Spring #2: youtu.be/t1r7FdF81Y0
Periodic Motion Lab (Spring-Mass Systems) Spring #3: youtu.be/mRPVz-EER7E
Conclusion Discussion Video: youtu.be/aJs3vOgPCkE
If you are interested in determining the spring constant of each color spring for yourself, check out the additional videos that allow you to collect force and stretch data for the GREEN, RED, and YELLOW springs.
Data Collection Videos (Force vs Stretch):
Spring Force Lab (GREEN Spring #1): youtu.be/h4PdaNCGMUQ
Spring Force Lab (GREEN Spring #2): youtu.be/w1kDG5upycA
Spring Force Lab (RED Spring #1): youtu.be/MutPM-lUZJk
Spring Force Lab (RED Spring #2): youtu.be/_HyZegkkuIE
Spring Force Lab (YELLOW Spring #1): youtu.be/kNW1YeYN_gE
Spring Force Lab (YELLOW Spring #2): youtu.be/AOCFuus8ki8
Force vs Stretch CONCLUSION DISCUSSION: youtu.be/GWl_t9KiYW0
Related Blog Article: bit.ly/3JwdNtz
Download the Projectile Investigation Lab Guide: This contains all the links and videos mentioned in the video
bit.ly/3oVad2Q
Featured Products from Arbor Scientific
- Mini Projectile Launcher: bit.ly/3B3ggqB
- Mini Projectile Launcher and BeeSpi V Bundle: bit.ly/3DE6WgM
- Releasing Your Potential Pendulum Kit: bit.ly/3bqr4aE
- Whiteboard 6 Pack: bit.ly/3j6o4S0
Video Links
- Projectile Investigation Video #1 (Slow Speed): youtu.be/5tYd96TZOwE
- Projectile Investigation Video #2 (Medium Speed): youtu.be/YiEOW9Ew5BU
- Projectile Investigation Video #3 (Fast Speed): youtu.be/pJj9IUadjJs
- Shot VS Drop (Physics of Projectile Motion) Video: youtu.be/I1srkpFhjxI
About Arbor Scientific
"For more than three and a half decades, we’ve been committed to supporting science educators with meaningful and engaging lab demonstrations and hands-on experiences that not only inspire students but educators as well. We understand school budgets are limited, so we only provide products that offer value, without sacrificing quality. That’s our promise."
Join our CoolStuff Insider List: bit.ly/34HbfVO
--
Video Chapters
0:00 Video Introduction
2:44 Data Collection
5:11 Analysis & Conclusion
11:28 Projectiles & Stunt Design
Patterns in Nature Handout:
drive.google.com/file/d/0B_gejhBVDnxXTGZtcG9GVWlCM2c/view?usp=sharing&resourcekey=0-vgqd5WSrRn7JjZ-SxTfqoA
How to Linearize a Non-Linear Relationship using Logger Pro:
docs.google.com/document/d/1A-oy8jBQK0ZmM94zBmFP3MyV7xbCa2mncYVTaklom7w/edit?usp=sharing
Sound effects obtained from zapsplat.com
This video walks you through an introductory physics lab that allows students to develop a model for the relationship between an object’s kinetic energy and velocity. This guided investigation will allow students to develop the kinetic energy equation, where the kinetic energy of a moving object is equal to one-half times the object’s mass times the velocity squared.
Featured Blog: bit.ly/2Y2kNuF
Download the Kinetic Energy Lab Guide: bit.ly/3v7YfoQ
Featured Products
- Car and Ramp Lab: bit.ly/35EGNw4
- Timer and Photogates: bit.ly/2UlslXr
- Physics Workshop Stand: bit.ly/3fsf5YL
- Whiteboard 6 Pack: bit.ly/3j6o4S0
Video Chapters
0:00 Video Introduction
1:28 Prelab Discussion
2:57 Data Collection
6:14 Data Analysis
8:39 Conclusion Discussion
It is clear that vertically they behave the same! Both balls have a vertical acceleration of -9/8m/s/s.
If you are interested in collecting data about the launched ball's horizontal and vertical positions for further analysis, see the 3 linked videos below...
Projectile Investigation #1 (Slow Speed): youtu.be/5tYd96TZOwE
Projectile Investigation #2 (Medium Speed): youtu.be/YiEOW9Ew5BU
Projectile Investigation #3 (Fast Speed): youtu.be/pJj9IUadjJs
These videos were created to be used in an introductory physics class to introduce two-dimensional "projectile motion".
Directions:
1. Pause the video at different times to collect the launched ball's horizontal position and vertical position both ON and OFF the table. This data can be used to graph the horizontal and vertical positions as they change over time to learn about the ball's motion.
2. Make a horizontal position versus time graph to analyze the horizontal part of the ball's motion.
3. Make a vertical position versus time graph to analyze the vertical part of the ball's motion.
4. Consider the forces acting on the ball both ON and OFF the table.
To see how the ball moves differently when launched at different speeds, see the linked videos below.
"Projectile Investigation #1 (Slow Speed)": youtu.be/5tYd96TZOwE
"Projectile Investigation #2 (Medium Speed)": youtu.be/YiEOW9Ew5BU
"Projectile Investigation #3 (Fast Speed)": youtu.be/pJj9IUadjJs
Also, see the linked video below to see how the vertical part of the ball's motion compares with how a dropped object behaves.
"Shot VS Drop (Physics of Projectile Motion)": youtu.be/I1srkpFhjxI
These videos were created to be used in an introductory physics class to introduce two-dimensional "projectile motion".
Directions:
1. Pause the video at different times to collect the launched ball's horizontal position and vertical position both ON and OFF the table. This data can be used to graph the horizontal and vertical positions as they change over time to learn about the ball's motion.
2. Make a horizontal position versus time graph to analyze the horizontal part of the ball's motion.
3. Make a vertical position versus time graph to analyze the vertical part of the ball's motion.
4. Consider the forces acting on the ball both ON and OFF the table.
To see how the ball moves differently when launched at different speeds, see the linked videos below.
"Projectile Investigation #1 (Slow Speed)": youtu.be/5tYd96TZOwE
"Projectile Investigation #2 (Medium Speed)": youtu.be/YiEOW9Ew5BU
"Projectile Investigation #3 (Fast Speed)": youtu.be/pJj9IUadjJs
Also, see the linked video below to see how the vertical part of the ball's motion compares with how a dropped object behaves.
"Shot VS Drop (Physics of Projectile Motion)": youtu.be/I1srkpFhjxI
These videos were created to be used in an introductory physics class to introduce two-dimensional "projectile motion".
Directions:
1. Pause the video at different times to collect the launched ball's horizontal position and vertical position both ON and OFF the table. This data can be used to graph the horizontal and vertical positions as they change over time to learn about the ball's motion.
2. Make a horizontal position versus time graph to analyze the horizontal part of the ball's motion.
3. Make a vertical position versus time graph to analyze the vertical part of the ball's motion.
4. Consider the forces acting on the ball both ON and OFF the table.
To see how the ball moves differently when launched at different speeds, see the linked videos below.
"Projectile Investigation #1 (Slow Speed)": youtu.be/5tYd96TZOwE
"Projectile Investigation #2 (Medium Speed)": youtu.be/YiEOW9Ew5BU
"Projectile Investigation #3 (Fast Speed)": youtu.be/pJj9IUadjJs
Also, see the linked video below to see how the vertical part of the ball's motion compares with how a dropped object behaves.
"Shot VS Drop (Physics of Projectile Motion)": youtu.be/I1srkpFhjxI
In this video a metal plate with loose sand on its surface is disturbed at different frequencies using a function generator. At particular frequencies there are two-dimensional "standing waves" which get created on the metal's surface. A standing wave has regions of large up and down displacement called "anti-nodes" and other regions which do not get displaced up and down called "nodes". When a standing wave is created in the metal surface, the loose sand will move away from the anti-nodes and toward the nodes, the regions which do not shake up and down.
The frequencies which create standing waves in a material are known as resonant frequencies.
To learn more about the physics of resonance and "standing waves" see the video below...
Standing Waves Introduction: youtu.be/wBEkFva64TE
The equipment was provided by Arbor Scientific (arborsci.com)
Music: bensound.com
The following videos discuss energy storage accounts and energy bar charts…
1. Energy Analogy and Energy Storage Accounts: youtu.be/7NqloTKdvZs
2. Energy Bar Graphs (Part 1: Energy Conservation): youtu.be/nQMrmPSamUo
3. Energy Bar Graphs (Part 2: Work = Energy Transfer): youtu.be/t8ZqoLxc1Ps
AP1 Unit 05 Worksheet 4 (Quantitative Energy Calculations and Energy Conservation):
docs.google.com/document/d/19xm75TVh_M7BQI2meaJNXK0N6RndAq8JwrHaYtFWMDM/edit?usp=sharing
The following videos are referenced in this video…
Developing the Spring Potential Energy Equation Video: youtu.be/xK5JOxhB_DM
Energy Bar Graphs (Part 1: Energy Conservation): youtu.be/nQMrmPSamUo
Energy Bar Graphs (Part 2: Work = Energy Transfer): youtu.be/t8ZqoLxc1Ps
Congratulations to our new school record holders: Sarah Grace Brown and Hannah Tran. Their DC electric motor had a rotational velocity of approximately 1600rpm!
TIP: Use the period key to move the video 1 frame forward and the comma key to move the video 1 frame backwards.
Circular Motion Lab (Data Set #1): youtu.be/B4gGojdUr1c
Circular Motion Lab (Data Set #2): youtu.be/_b6YTIW7oBA
Circular Motion Lab (Data Set #3): youtu.be/xVSEEIeSaCI
Circular Motion Lab (Data Set #4): youtu.be/sdK33dR58XQ
Circular Motion Lab (Data Set #5): youtu.be/GPFyoperoFk
Circular Motion Lab (Data Set #6): youtu.be/4TRC_Yvb12E
Circular Motion Lab (CONCLUSION DISCUSSION): youtu.be/iZAf6sx1Kes
NOTE: The conclusion discussion video discusses a different method for collecting the velocity and sum of the forces data, but the conclusions are the same we reached using the data collection videos
The first linked video is an introduction to the lab which explains the type of data which needs to be collected and how to collect that data. The last linked video below is a summary of the conclusion discussion to make sense of the collected and analyzed data.
Circular Motion Lab (Introduction): youtu.be/FYWaDjXrJhg
TIP: Use the period key to move the video 1 frame forward and the comma key to move the video 1 frame backwards.
Circular Motion Lab (Data Set #1): youtu.be/B4gGojdUr1c
Circular Motion Lab (Data Set #2): youtu.be/_b6YTIW7oBA
Circular Motion Lab (Data Set #3): youtu.be/xVSEEIeSaCI
Circular Motion Lab (Data Set #4): youtu.be/sdK33dR58XQ
Circular Motion Lab (Data Set #5): youtu.be/GPFyoperoFk
Circular Motion Lab (Data Set #6): youtu.be/4TRC_Yvb12E
Circular Motion Lab (CONCLUSION DISCUSSION): youtu.be/iZAf6sx1Kes
NOTE: The conclusion discussion video discusses a different method for collecting the velocity and sum of the forces data, but the conclusions are the same we reached using the data collection videos.
The first linked video is an introduction to the lab which explains the type of data which needs to be collected and how to collect that data. The last linked video below is a summary of the conclusion discussion to make sense of the collected and analyzed data.
Circular Motion Lab (Introduction): youtu.be/FYWaDjXrJhg
TIP: Use the period key to move the video 1 frame forward and the comma key to move the video 1 frame backwards.
Circular Motion Lab (Data Set #1): youtu.be/B4gGojdUr1c
Circular Motion Lab (Data Set #2): youtu.be/_b6YTIW7oBA
Circular Motion Lab (Data Set #3): youtu.be/xVSEEIeSaCI
Circular Motion Lab (Data Set #4): youtu.be/sdK33dR58XQ
Circular Motion Lab (Data Set #5): youtu.be/GPFyoperoFk
Circular Motion Lab (Data Set #6): youtu.be/4TRC_Yvb12E
Circular Motion Lab (CONCLUSION DISCUSSION): youtu.be/iZAf6sx1Kes
NOTE: The conclusion discussion video discusses a different method for collecting the velocity and sum of the forces data, but the conclusions are the same we reached using the data collection videos.
The first linked video is an introduction to the lab which explains the type of data which needs to be collected and how to collect that data. The last linked video below is a summary of the conclusion discussion to make sense of the collected and analyzed data.
Circular Motion Lab (Introduction): youtu.be/FYWaDjXrJhg
TIP: Use the period key to move the video 1 frame forward and the comma key to move the video 1 frame backwards.
Circular Motion Lab (Data Set #1): youtu.be/B4gGojdUr1c
Circular Motion Lab (Data Set #2): youtu.be/_b6YTIW7oBA
Circular Motion Lab (Data Set #3): youtu.be/xVSEEIeSaCI
Circular Motion Lab (Data Set #4): youtu.be/sdK33dR58XQ
Circular Motion Lab (Data Set #5): youtu.be/GPFyoperoFk
Circular Motion Lab (Data Set #6): youtu.be/4TRC_Yvb12E
Circular Motion Lab (CONCLUSION DISCUSSION): youtu.be/iZAf6sx1Kes
NOTE: The conclusion discussion video discusses a different method for collecting the velocity and sum of the forces data, but the conclusions are the same we reached using the data collection videos.
The first linked video is an introduction to the lab which explains the type of data which needs to be collected and how to collect that data. The last linked video below is a summary of the conclusion discussion to make sense of the collected and analyzed data.
Circular Motion Lab (Introduction): youtu.be/FYWaDjXrJhg
TIP: Use the period key to move the video 1 frame forward and the comma key to move the video 1 frame backwards.
Circular Motion Lab (Data Set #1): youtu.be/B4gGojdUr1c
Circular Motion Lab (Data Set #2): youtu.be/_b6YTIW7oBA
Circular Motion Lab (Data Set #3): youtu.be/xVSEEIeSaCI
Circular Motion Lab (Data Set #4): youtu.be/sdK33dR58XQ
Circular Motion Lab (Data Set #5): youtu.be/GPFyoperoFk
Circular Motion Lab (Data Set #6): youtu.be/4TRC_Yvb12E
Circular Motion Lab (CONCLUSION DISCUSSION): youtu.be/iZAf6sx1Kes
NOTE: The conclusion discussion video discusses a different method for collecting the velocity and sum of the forces data, but the conclusions are the same we reached using the data collection videos.
The first linked video is an introduction to the lab which explains the type of data which needs to be collected and how to collect that data. The last linked video below is a summary of the conclusion discussion to make sense of the collected and analyzed data.
Circular Motion Lab (Introduction): youtu.be/FYWaDjXrJhg
TIP: Use the period key to move the video 1 frame forward and the comma key to move the video 1 frame backwards.
Circular Motion Lab (Data Set #1): youtu.be/B4gGojdUr1c
Circular Motion Lab (Data Set #2): youtu.be/_b6YTIW7oBA
Circular Motion Lab (Data Set #3): youtu.be/xVSEEIeSaCI
Circular Motion Lab (Data Set #4): youtu.be/sdK33dR58XQ
Circular Motion Lab (Data Set #5): youtu.be/GPFyoperoFk
Circular Motion Lab (Data Set #6): youtu.be/4TRC_Yvb12E
Circular Motion Lab (CONCLUSION DISCUSSION): youtu.be/iZAf6sx1Kes
NOTE: The conclusion discussion video discusses a different method for collecting the velocity and sum of the forces data, but the conclusions are the same we reached using the data collection videos.
The first linked video is an introduction to the lab which explains the type of data which needs to be collected and how to collect that data. The last linked video below is a summary of the conclusion discussion to make sense of the collected and analyzed data.
Circular Motion Lab (Introduction): youtu.be/FYWaDjXrJhg
TIP: Use the period key to move the video 1 frame forward and the comma key to move the video 1 frame backwards.
Circular Motion Lab (Data Set #1): youtu.be/B4gGojdUr1c
Circular Motion Lab (Data Set #2): youtu.be/_b6YTIW7oBA
Circular Motion Lab (Data Set #3): youtu.be/xVSEEIeSaCI
Circular Motion Lab (Data Set #4): youtu.be/sdK33dR58XQ
Circular Motion Lab (Data Set #5): youtu.be/GPFyoperoFk
Circular Motion Lab (Data Set #6): youtu.be/4TRC_Yvb12E
Circular Motion Lab (CONCLUSION DISCUSSION): youtu.be/iZAf6sx1Kes
NOTE: The conclusion discussion video discusses a different method for collecting the velocity and sum of the forces data, but the conclusions are the same we reached using the data collection videos.
Problem Statement:
A book of mass m slides up a ramp with significant friction. What is the size of the book’s acceleration while decreasing speed? Solve symbolically using only m, θ, μs , μk, and/or g.
Problem Statement:
A 2 kg book is placed on a flat surface and pushed to the right with 5N of force. Assume the coefficient of static friction is 0.3 and the coefficient of kinetic friction is 0.2. What is the box’s acceleration? What is the box's acceleration if 12N is used?
In this video, I will walk you through a lab that allows students to develop a model of the relationship between an object’s acceleration and its mass.
Featured Blog: bit.ly/2XTrz5A
Download the Acceleration Lab Guide: bit.ly/3imfhu3
Featured Products from Arbor Scientific
- Fan Cart: bit.ly/3AfqjIO
- Slotted Mass Set with hanger: bit.ly/3kBRNSa
- Digital Newton Meter: bit.ly/36vF50t
- Whiteboard 6 Pack: bit.ly/3j6o4S0
Join the CoolStuff Insider List: bit.ly/34HbfVO
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Video Chapters
0:00 Video Introduction
2:11 Prelab Discussion
5:13 Data Collection
6:58 Data Analysis
10:27 Conclusion Discussion
Featured Blog: bit.ly/3sPxDrq
Download the Mass and Weight Lab Guide / Slides: bit.ly/3z6yiWJ
Featured Products
- Slotted Mass Set with hanger: bit.ly/3kBRNSa
- Spring Set: bit.ly/3kzIhij
- 1000g/10 N Spring Scale: bit.ly/3jmKVZ8
- Digital Newton Meter: bit.ly/36vF50t
- Whiteboard 6 Pack: bit.ly/3j6o4S0
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About Arbor Scientific
For more than three and a half decades, we’ve been committed to supporting science educators with meaningful and engaging lab demonstrations and hands-on experiences that not only inspire students but educators as well. We understand school budgets are limited, so we only provide products that offer value, without sacrificing quality. That’s our promise.
Join our CoolStuff Insider List: bit.ly/34HbfVO
--
Video Chapters
0:00 Video Introduction
1:17 Prelab Discussion
4:15 Data Collection
6:13 Data Analysis
7:49 Conclusion Discussion
Featured Blog: bit.ly/2VAXTck
Download the Toy Car Lab Lab Guide/Slides: bit.ly/38mgatf
Featured Products
- Constant Velocity Car: bit.ly/3ig31vO
- Whiteboard 6 Pack: bit.ly/3j6o4S0
--
About Arbor Scientific
For more than three and a half decades, we’ve been committed to supporting science educators with meaningful and engaging lab demonstrations and hands-on experiences that not only inspire students but educators as well. We understand school budgets are limited, so we only provide products that offer value, without sacrificing quality. That’s our promise.
Join the Arbor Scientific CoolStuff Insider List: bit.ly/34HbfVO
- new videos will be released each month.
--
Video Chapters
0:00 Video Introduction
0:56 Introductory Physics Lab
1:40 Prelab Discussion
3:10 Data Collection
5:56 Data Analysis
6:40 Conclusion Discussion
In this video I discuss how standing waves can be used to explain the sound produced by a wind instrument like a flute or trumpet. Animations are used to explain the different types of standing waves present in a vibrating columns of air, and an experimental setup is used to demonstrate and discuss many different standing waves which can be created in a column of air with one closed end and one open end.
Part 1: Music and Standing Waves (Part 1) Transverse Standing Waves in Strings
youtu.be/nQ_xIvUxGME
Data Set Video #1: youtu.be/L5-sjLfx84I
Data Set Video #2: youtu.be/6i-UjKoN0_Q
Data Set Video #3: youtu.be/6kWsMcPPqtA
Chapters:
0:00 Lab Procedure
4:41 Meaning of Y-INTERCEPT
7:47 Meaning of SLOPE
11:33 General Equation and Definitions
19:30 Example Problem
Data Set Video #1: youtu.be/L5-sjLfx84I
Data Set Video #2: youtu.be/6i-UjKoN0_Q
Data Set Video #3: youtu.be/6kWsMcPPqtA
Data Set Video #1: youtu.be/L5-sjLfx84I
Data Set Video #2: youtu.be/6i-UjKoN0_Q
Data Set Video #3: youtu.be/6kWsMcPPqtA
Data Set Video #1: youtu.be/L5-sjLfx84I
Data Set Video #2: youtu.be/6i-UjKoN0_Q
Data Set Video #3: youtu.be/6kWsMcPPqtA
Off-the-Grid day is the final day of a unit on energy and power free from the use of conventional electricity. The students get to create and implement a fun activity, but whatever activity they design and choose must involve at least one device that runs on electricity, and that electricity must be supplied solely by a bicycle generator. The energy must be stored in a battery beforehand and then used on our “Off-the-Grid Day”. Each lab group designs an activity, calculates energy needs, and estimates the amount of time it would take to store the needed energy using a bicycle generator. After the proposed activities are presented, each class votes for their favorite. The winning proposal then becomes that class's “Off-the-Grid” day activity”, but we will only do the activity if the students work together to come in before and after school to store the needed amount of energy in a car battery using a bicycle generator.
For an overview of the whole design project see the following...
Off-the-Grid Day Project Summary: youtu.be/-LzH_SHlRCc
Rotation Lab (Data Set #1): youtu.be/PhO1N1xRKlI
Rotation Lab (Data Set #2): youtu.be/MfYrkx0zjdw
Rotation Lab (Data Set #3): youtu.be/_7C92zbifRw
Data Collection:
Measure the size of the force applied to each side of the bar at different times in the video. Make note of the distance each force is applied from the pivot point.
Data Analysis:
Graph the size of the force applied to the right side of the bar on the y-axis and the size of the force applied to the left side of the bar on the x-axis. Consider the significance or meaning of the slope of the graph and the y-intercept of the graph.
Rotation Lab (Data Set #1): youtu.be/PhO1N1xRKlI
Rotation Lab (Data Set #2): youtu.be/MfYrkx0zjdw
Rotation Lab (Data Set #3): youtu.be/_7C92zbifRw
Data Collection:
Measure the size of the force applied to each side of the bar at different times in the video. Make note of the distance each force is applied from the pivot point.
Data Analysis:
Graph the size of the force applied to the right side of the bar on the y-axis and the size of the force applied to the left side of the bar on the x-axis. Consider the significance or meaning of the slope of the graph and the y-intercept of the graph.
Rotation Lab (Data Set #1): youtu.be/PhO1N1xRKlI
Rotation Lab (Data Set #2): youtu.be/MfYrkx0zjdw
Rotation Lab (Data Set #3): youtu.be/_7C92zbifRw
Data Collection:
Measure the size of the force applied to each side of the bar at different times in the video. Make note of the distance each force is applied from the pivot point.
Data Analysis:
Graph the size of the force applied to the right side of the bar on the y-axis and the size of the force applied to the left side of the bar on the x-axis. Consider the significance or meaning of the slope of the graph and the y-intercept of the graph.


