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TEACHER GUIDE Last updated: 13 Jan 2015
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INTRODUCTION Click to play on YouTube
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THE DESIGN PROCESS
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STEP 1: Identify the Problem – State the problem in your own words STEP 2: Identify Criteria and Constraints – Identify the specific requirements THE DESIGN PROCESS
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STEP 3: Brainstorm Possible Solutions – Discuss ways to solve the problem STEP 4: Generate Ideas – Each member comes up with their own plan STEP 5: Explore Possibilities – Group members discuss the various approaches THE DESIGN PROCESS
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EXAMPLES FROM PAST COMPETITIONS
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Moon: Surveyor 1,3,5,6,7 Apollo 11,12,14, 15,16,17 Mars: Viking 1,2 Pathfinder Spirit Opportunity Phoenix Curiosity Comet: Rosetta Venus: Venera 7-14 Vega 1-2 Titan Huygens Asteroid NEAR Shoemaker Hayabusa HISTORIC LANDING EXAMPLES
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Mars Science Laboratory – Launch Nov 2011 – Landed Aug 2012 CURRENT MISSIONS
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Rosetta – Launch March 2004 – Began Orbit Aug 2014 – Philae Landing Nov 2014 Images credit: ESA CURRENT MISSIONS
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Free fall TYPES OF LANDINGS
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Rockets/propulsion TYPES OF LANDINGS
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Parachutes Click to play on YouTube TYPES OF LANDINGS
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Wings/Glider Click to play on YouTube TYPES OF LANDINGS
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Ramp Click to play online TYPES OF LANDINGS
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Bouncing Click to play online TYPES OF LANDINGS
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Sky Crane Click to play on YouTube TYPES OF LANDINGS
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Morpheus Click to play on YouTube OTHER LANDING ACTIVITY
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Moon Express OTHER LANDING ACTIVITY
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XCOR Aerospace OTHER LANDING ACTIVITY
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SpaceX’s Grasshopper Click to play on YouTube video credit: SpaceX OTHER LANDING ACTIVITY
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SpaceX’s Dragon Capsue v2 Click to play on YouTube video credit: SpaceX OTHER LANDING ACTIVITY
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Boeing CST-100 Click to play on YouTube video credit: Boeing OTHER LANDING ACTIVITY
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Masten OTHER LANDING ACTIVITY Armadillo
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Fundamental forces of flight HOW PHYSICS CONTRIBUTES
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For our consideration HOW PHYSICS CONTRIBUTES
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momentum (P) = velocity (V) x mass (M) V = rate of travel (r) & direction r = distance (d) / time (t) d = 6 meters HOW PHYSICS CONTRIBUTES
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V² = V₀² + (2)(a)(d) V² = 0² + (2)(9.8 m/s²)(6 m) V² = 117.6 m²/s² V = 10.84 m/s down = 24 mph down HOW PHYSICS CONTRIBUTES
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V = 10.84 m/s down P = V x M Mass is between 226.8 g and 1000 g P = (10.84 m/s) x (.5 kg) P = 5.42 N*s HOW PHYSICS CONTRIBUTES
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STEP 6: Select an Approach – Decide which approach to take STEP 7: Build a Model or Prototype – Construct a model based on the idea selected STEP 8: Refine the Design – Evaluate the product and decide if a redesign is needed and what to change THE DESIGN PROCESS
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Competition Questions: info@spaceflorida.govinfo@spaceflorida.gov http://spaceflorida.gov/eggdrop Presentation Questions: Joshua Santora 321.867.6357 joshua.santora@nasa.gov KSC Educator resource center: 321.867.4090
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NASA e-clips NASA Launchpad: In Case of Emergency Space Math V – Volcanoes are a Blast Space Math VI – LRO Spots a Rolling Lunar Boulder with No Moss! NASA RESOURCES
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GOOD LUCK!!!
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