Intro Physics (Each individual student will complete his or her own lab report)

Similar documents
Intro Physics (Each individual student will complete his or her own lab report)

Newton s 2 nd Law If an unbalanced (net) force acts on an object, that object will accelerate (or decelerate) in the direction of the force.

Name: Block: Date: / / Engineering Design Challenge: Balloon Rocket Race!

Model Rocketry. The Science Behind the Fun

Principles of Rocketry

Class 4 Newton s laws of motion. I : Newton s laws of motion

This IS Rocket Science - A Teaching Module Adaptable K 12. Dr. John F. Dilley, Senior Aerospace Consultant Aerospace Research Center (ARC) April, 2017

Introductory Physics, High School Learning Standards for a Full First-Year Course

Space Travel. 01/09/2016 V6.2 AZ Science Lab 1

Fin design mission. Team Members

Introductory Physics, High School Learning Standards for a Full First-Year Course

UC Irvine FOCUS! 5 E Lesson Plan

Chapter 4 Dynamics: Newton s Laws of Motion

Engage 1. When you exert a force on a balloon, what does the balloon exert on you?

How To Complete and Experiment and Write a Lab Report: Using Questions to Write a Hypothesis With Clear Independent and Dependent Variables

Can anyone think of an example of an action-reaction pair? [jumping, rowing...]

Conservation of Momentum in One Dimension

Technology of Rocket

Lecture 4: Newton s Laws & Galilean Relativity

KEY NNHS Introductory Physics: MCAS Review Packet #1 Introductory Physics, High School Learning Standards for a Full First-Year Course

Projectiles: Target Practice Teacher Version

ROCKET LABTM. Up and Down and All Around with Newton

Michael Fowler, UVa Physics, 12/1/07. Momentum has Direction

Newton's Laws of Motion

Thank you for your purchase!

If there is nothing pushing on an object, it will not move. If there is nothing pushing on an object, it will not stop. The List:

ideas with idea packet Kaboom... Up, Up, and Away IMPACT

ESTESTM EDUCATOR SCIENCE AND MODEL ROCKETS

Kinematics 2D ~ Lab. Part 1: Type 1 Projectile Launch. BCLN PHYSICS - Rev. Sept/2011

Engage 1. When you exert a force on a balloon, what does the balloon exert on you?

Physics Final Practice Exam Part 1

CO2 Powered Bottle Rocket Lab Report Chemistry Period 3. Crater School of BIS March 2 nd, 2016 Mallory Heard, Griffin Hokanson & Joshua Idiart

High-Power Rocketry. Calculating the motion of a rocket for purely vertical flight.

Circular Motion and Gravitation Notes 1 Centripetal Acceleration and Force

Science 10. Unit 4:Physics. Block: Name: Book 1: Kinetic & Potential Energy

Projectiles: Target Practice Student Advanced Version

Projectiles: Target Practice Teacher Advanced Version

Practice Honors Physics Test: Newtons Laws

Isaac Newton. What is the acceleration of the car? "If I have seen further it is by standing on the shoulders of giants" Isaac Newton to Robert Hooke

Newton Car Lab. Newton s 1 st Law - Every object in a state of uniform motion

Newton s Wagon. Materials. friends rocks wagon balloon fishing line tape stopwatch measuring tape. Lab Time Part 1

End-of-Chapter Exercises

Activity One Force, Mass, and Acceleration

8. The graph below shows a beetle s movement along a plant stem.

Forces and Motion in One Dimension

Physical Science Capstone Instructional Segment This is a two-week summative designed to give students an opportunity to review and re-examine the

Newton s Laws Pre-Test

A Collection of Learning Experiences on ROCKETRY

WEATHER ON WHEELS Middle School Program

6 TH GRADE ACCURATE PLANET SIZES AND DISTANCE FROM THE SUN ACTIVITY

WSGC Collegiate Rocket Competition Design Analysis Team ChlAM. Max Strassman, Chloe Tinius, Andrew Udelhoven

F = ma W = mg v = D t

Newton Car. Rocket Activity

Physics Mid-Term Practice Exam

For each of the following questions, give clear and complete evidence for your choice in the space provided.

Newton s Laws of Motion Lynn Cominsky and Kevin McLin NASA Education and Public Outreach Sonoma State University

Year 10 Physics - Forces and Energy - Test

AP Physics II Summer Packet

Physics for Scientists and Engineers. Chapter 5 Force and Motion

Forces and Newton s Laws

Why Do Birds of Prey Fly in Circles? Does the Eagle Make It? p. 1/3

Forces & Newton s Laws FR Practice Problems

Circular Motion and Gravitation Notes 1 Centripetal Acceleration and Force

Tim Martin Spacecraft Engineer, Propulsion Lead, Juno. Chapter 7 Rocket Propulsion Physics

have tried with your racer that are working well? you would like to make to your car?

2010 Pearson Education, Inc. Chapter 4 Making Sense of the Universe: Understanding Motion, Energy, and Gravity

Catalysts. The effect of various catalysts on the rate of decomposition of hydrogen peroxide (H 2 O 2 )

Overview The Laws of Motion

Whether a Soyuz Spacecraft really needs a parachute or is there an alternative?

Physics Lesson 1 to Prepare for UIL Physics Portion of Science Test

Rockets and Range Teacher Notes

4 Newton s Third Law of Motion Action and Reaction. For every force, there is an equal and opposite force.

Unit 5 ICM/AB Applications of the Derivative Fall Nov 10 Learn Velocity and Acceleration: HW p P ,103 p.

7.1 Forces and Interactions. A force is always part of a mutual action that involves another force. For every force, there. opposite force.

Newton s Laws of Motion. I. Law of Inertia II. F=ma III. Action-Reaction

PROJECT COLLECT INFORMATION ABOUT THE APPLICATIONS OF NEWTON S THIRD LAW

Solving two-body problems with Newton s Second Law. Example Static and Kinetic Friction. Section 5.1 Friction 10/15/13

The Physics of Boomerangs By Darren Tan

Lesson Study Final Report (Short Form)

AP Physics C 2015 Summer Assignment

PHYSICS. Chapter 11 Lecture FOR SCIENTISTS AND ENGINEERS A STRATEGIC APPROACH 4/E RANDALL D. KNIGHT Pearson Education, Inc.

Forces. Unit 2. Why are forces important? In this Unit, you will learn: Key words. Previously PHYSICS 219

Using the computer simulation, be able to define and apply vectors appropriately.

Lab 2. Projectile Motion

Rocket Propulsion. Combustion chamber Throat Nozzle

Lab 5: Projectile Motion

Chemistry. End of Year Cornerstone Assessment

Circular Motion Ch. 10 in your text book

Physics 207 Lecture 7. Lecture 7

5 In a factory, regular stacks, each containing 150 pieces of paper, are measured using a pair of vernier calipers. The reading of one stack is shown.

Newton s Laws of Motion. I. Law of Inertia II. F=ma III. Action-Reaction

TEK 8.6C: Newton s Laws

Figure 1. The distance the train travels between A and B is not the same as the displacement of the train.

PHY131H1F - Class 9. Today, finishing Chapter 5: Kinetic Friction Static Friction Rolling without slipping (intro) Drag

Station 1 Block, spring scale

Gravity Pre-Lab 1. Why do you need an inclined plane to measure the effects due to gravity?

Topic 2.1: Kinematics. How do we analyze the motion of objects?

Astronomy Picture of the Day

Vocabulary. Centripetal Force. Centripetal Acceleration. Rotate. Revolve. Linear Speed. Angular Speed. Center of Gravity. 1 Page

Forces. A force is a push or a pull on an object

Transcription:

Intro Physics May/June 204 Name (Each individual student will complete his or her own lab report) Bottle Rocket Lab - Target Launch Date: Group Members: Pre Launch questions (max 26 points) - Due date: launch date Questions -3 are worth 2 point each, ( point for accuracy and point for completeness) Challenge questions are worth point each, based on effort and thought Construction and Design reflection paragraph (max 2 points) - Due date: launch date Prototype Round (4 points) o Explain your design o Include a labeled diagram of your design o Explains how the prototype performed Design (4 points) o Explain your design o o Include a labeled diagram of your design Explain how you implemented any improvements after the prototype launch Format (4 points) o Make sure it is typed o Properly formatted (.5 interline space) o Includes a title in bigger font Performance (max 9 points) You get 3 points for attaining each of the following: Looks like a rocket Launches Flies true (doesn t tumble or go out of control) Post Launch questions (max 8 points) Due date: Day 7 Questions -2 worth 4 points each based on accuracy and completeness In class work and focus ( points each day) Max. 6 points record When you work on the project make sure you: Stay focus in class (teacher doesn t have to call your attention to stay on task) Bring all necessary materials for the completion of the project Teacher will mark this rubric by the end of each day to take one or two points off if you need to improve Day work on hand out Day 2 work on hand out Day 3 build prototype rocket Day 4 launch prototype rocket Day 5 build second rocket Day 6 launch second rocket Total : / 6

Water Rockets In 99 Robert Goddard, a professor at Clark University in Worcester, Massachusetts, claimed that a multistage rocket weighing only ten tons could land on the Moon. After years of research, Goddard built the first liquid-fueled rocket, achieving a height of 90 feet before angry neighbors and local police ordered him to cease rocket experiments in Massachusetts. He moved to New Mexico where he continued his pioneering work in rocketry. It is difficult to say what is impossible, for the dream of yesterday is the hope of today and the reality of tomorrow -- Robert H. Goddard NASA The Introductory Physics students at NNHS are going to revive the Massachusetts tradition of rocket innovation by building and launching our own low-tech rockets, using 2-liter plastic soda bottles, cardboard, and water. We will use a bicycle pump rocket launcher and release the rockets in one of the fields outside.

Bottle Rocket Construction Procedure Materials (please bring plastic 2 liter soda bottles to school) One 2 liter bottle (Two 2-liter bottles if you are planning to make a taller rocket) Tape / glue Cardboard / poster board / manila folders Clay Optional for parachute (if you make a second rocket!) String Garbage Bag Rubber Bands Balloon Procedure (look at the diagram in the previous page). Cut out nose cone from cardboard. Place a small handful of clay into tip of nose to vary the location of the center of mass. 2. Cut and tape fins onto nozzle end of bottle. Shape and orient the fins so that they will increase aerodynamic stability. 3. Optional: Using the top, bottom, or a cylindrical section of your second 2-liter bottle to make your rocket longer. Make sure you attach this extra part to the bottom of the intact bottle, leaving the opening of the intact bottle free (this will be used to pump air inside and pressurize the rocket) 4. Optional: Create an extra compartment for a parachute under the nosecone. Attach the nosecone with a string. As you build the rocket, be sure that the center of mass is above the center of pressure.

Bottle Rocket Pre Launch Questions: These questions should be answered before the launch day, individually. When Robert Goddard proposed a rocket to the Moon in 99, the New York Times ridiculed the idea, claiming that a rocket could not possibly propel itself through the vacuum of space: after the rocket quits our air and really starts on its longer journey it will neither be accelerated nor maintained by the explosion [Professor Goddard] does not know of the relation of action to reaction and the need to have something better than a vacuum against which to react [He] only seems to lack the knowledge ladled out daily in high schools. The New York Times, 920. Define Newton s Third Law (N3L): 2. Explain how N3L applies to rockets and why Goddard was correct and the New York Times was wrong. 3. Consider the following diagram of a V-2 rocket. Each part of the rocket has a specific function. The nose cone reduces drag. The fins add stability. Answer: what is the function of the propulsion system?

4. Draw the direction that the net force points in each part of the trajectory. Remember that net force implies acceleration. 5. Draw a free body diagram of the bottle rocket at each of the following stages: At rest on launch pad, during launch, coasting ascent (still rising, but rockets are no longer firing), maximum altitude, coasting descent (rocket is falling, rocket is not firing). At rest During launch (engine firing) Coasting ascent (engine no longer firing) Maximum Altitude Coasting descent 6. Describe the gravitational potential energy and kinetic energy changes at each part of the trajectory. At rest During launch (engine firing) Maximum Altitude Coasting ascent (engine no longer firing) Coasting descent

7. Describe how high would the rocket go on the moon compared to earth and explain why. 8. Define Newton s 2 nd Law (N2L) here. 9. If you want your rocket to go as fast and high as possible (to attain the maximum possible acceleration), explain what design decisions you should make. Support your design choices with N2L. 0. Based on the law of conservation of momentum, the momentum that the rocket attains is equal and opposite to the momentum of the escaping fluid. Explain why we can achieve greater speed using a combination of water and air as opposed to just air.

Use the Forces on a Rocket Diagram on the right to answer the next 2 questions:. Describe how changing the mass would affect the flight of the rocket. 2. If the forces on the rocket are balanced, state what acceleration will the rocket experience. Explain your reasoning using one of Newton s three laws of motion. 3. Explain: how can we tell if the forces are balanced once the rocket is in flight? Challenge questions - If you want to answer these questions, you may do some research (see resources in the next page) or get together with a class mate to tackle them, but your answer must be your own and you must cite your sources. I will not answer them for you! 4. Describe how the rocket would fly without a nose cone. Use CER to explain your answer.

5. Describe how the rocket would fly without fins. Use CER to explain your answer. 6. Explain how the function of the fins and nose cone would be different on the moon. 7. Show how you can calculate the height using the measured time the rocket was in the air. References: Most of the NASA pictures in this handout are taken from: http://exploration.grc.nasa.gov/education/rocket/bottlerocket/about.htm More information on water bottle rockets (not all these links work properly) http://quest.nasa.gov/space/teachers/rockets/act.html http://www.lnhs.org/hayhurst/rockets/ http://www.scioly.org/eventpages/bottlerockets.htm http://ourworld.compuserve.com/homepages/pagrosse/h2orocketbottlemods.htm http://www.instructables.com/id/soda-bottle-rocket./ http://www.makezine.com/05/rocket/

Intro Physics June/May 204 Name (Each individual student will complete his or her own lab report) Bottle Rocket Lab: After launch Questions (due by the end of class) Group Members:. Describe in detail how your group s rocket performed. Was it able to lift off the ground? How high did it go? What trajectory did it follow? Did it maintain stability? How did your rocket compare with rockets made by your classmates? 2. How could you improve your rocket to make it travel higher and farther? What are some specific things you would change/alter? 3. Calculate the maximum height reached by your rocket. (Prototype or second round, it does not matter)