Surveillance MAV Project – Road Map – Senior Design I Research Testing & Documentation Finalize with Propulsion Team Wing Stability Analysis Wing Development.

Slides:



Advertisements
Similar presentations
 A radio controlled aircraft (model) is controlled remotely by a hand held transmitter & receiver within the aircraft.  The.
Advertisements

Team Shane Stumvoll, Alex Willard, Robert Yarnell, Hubert Jayakumar, Tim Teal 1.
ES100 MICRO AIR VEHICLE Ryan Goldberg Brett Keenan Loryn Chen Tiffany Khong Erica Edney Dani Battle Harris Benjamin.
Daniel Graves –Project Lead James Reepmeyer – Lead Engineer Brian Smaszcz– Airframe Design Alex Funiciello – Airfoil Design Michael Hardbarger – Control.
6th grade Springton Lake
Gilbert Islas Feb. 25, 2012 SYSM  A micro air vehicle (MAV) is a class of unmanned aerial vehicles (UAV). unmanned aerial vehicles  Size restrictions.
October 28, 2011 Christopher Schumacher (Team Lead) Brian Douglas Christopher Erickson Brad Lester Nathan Love Patrick Mischke Traci Moe Vince Zander.
ME 480 Introduction To Aerospace: Chapter 2 Prof. Doug Cairns.
Vertical Launch UAV Project Plan. ∞ Construct an unmanned aerial vehicle (UAV) with a camera payload ∞ UAV must autonomously navigate with real-time video.
GPS Vehicle Tracking/Payload Release System For Small UAV Project Team
SAE Aero Design Guidelines Rev A, 2013 Aero Design Oral Presentation Guidelines How to Deliver a Presentation The Judges will Notice.
Aerodynamic Modeling for the Ohio University UAV For the Quarterly Review of the NASA/FAA Joint University Program for Air Transportation Research Wednesday.
Chase Beatty (Team Leader) Brian Martinez (Organizer) Mohammed Ramadan (Financial Officer) Noe Caro (Historian) SAE AERO Chase Beatty.
Alex Funiciello Dan Graves Mike Hardbarger Jim Reepmeyer Brian Smaszcz May 14, 2010.
AME 441: Conceptual Design Presentation
Oculus Superne. 2 System Definition Review Mission Objectives Concept of Operations Aircraft Concept Selection Payload Constraint Analysis and Diagrams.
Click to edit Master title style Click to edit Master text styles Second level Third level Fourth level Fifth level 1.
Christopher Cottingham
Concept Design Review Micro Air Vehicle Project: P Sponsored by Impact Technologies The Boeing Company Mark Baybutt Electrical Engineering.
Design Review Three Micro Air Vehicle Project: P Sponsored by Impact Technologies The Boeing Company Mark Baybutt Electrical Engineering.
Micro Air Vehicle Senior Design team Zach Kilcer, Bill Strong, Joe Olles, Sean Dittrich, Brian Stumper, Doug Brown.
Concept Design Review Kozak Micro Air Vehicle Project: P Mark Baybutt Electrical Engineering David Blonski Industrial Engineering Team Leader.
Project Review Micro Air Vehicle Project: P Sponsored by Impact Technologies The Boeing Company Mark Baybutt Electrical Engineering David.
Surveillance MAV Project – Road Map – Senior Design I Research Testing & Documentation Finalize with Propulsion Team Wing Stability Analysis Wing Development.
Surveillance MAV Project – Road Map Research Testing & Documentation Finalize with Propulsion Team Wing Stability Analysis Wing Development Research –
Surveillance MAV Project – Road Map Research Testing & Documentation Finalize with Propulsion Team Wing Stability Analysis Wing Development Research –
EDGE™ MAV Control System - P09122 Final Project Review Erik Bellandi – Project Manager Ben Wager – Lead Engineer Garrett Argenna – Mechanical Engineering.
By: Brett Palaschak, Thibaud Le Merdy. The race Worldwide race located in Monaco Know as Monte Carlo Cup Solar powered boat race Only second year Goal.
Acknowledgments Summary of MAVs Design Criteria Design Solution Conclusions and Future Work Energy Harvesting for Micro-Air Vehicles Testing Harvesting.
Stability and Flight Controls
CLARKSON UNIVERSITY Department of Mechanical and Aeronautical Engineering Introduction to AIRCRAFT STRUCTURES Ratan Jha (CAMP 364, ,
 Model airplanes are sized down models of an aircraft  The calculations are easy and the importance is given to building of the plane.
Recent and Future Research for Bird-like Flapping MAVs of NPU Prof. B.F.Song Aeronautics School of Northwestern Polytechnical University.
Team 6: “Soldier Portable UAV” David Neira TJ Worden Matthew Martin Joshua Mellen Ona Okonkwo Josiah Shearon A IR HERCULES 1.
Flight Concept Web Project By: Josh Science #
Student Unmanned Aerial System FAMU/FSU College of Engineering Mechanical Engineering Department (1) Electrical and Computer Engineering Department (2)
HALE UAV Preliminary Design AERSP 402B Spring 2014 Team: NSFW Nisherag GandhiThomas Gempp Doug RohrbaughGregory Snyder Steve StanekVictor Thomas SAURON.
BASICS OF RC PLANE. Overview  What is RC Plane?  RC Planes’ Parts and their Role  How planes fly?  Concepts and Terminologies of RC Plane  Stability.
Group 13 Heavy Lift Cargo Plane Richard-Marc Hernandez Yoosuk Kee Stephen McNulty Jessica Pisano Chi Yan Project Advisor: Siva Thangam.
Interim Design Review Group 13 – Flapping Wing MAV NASA Parker Cook George Heller Joshua Nguyen Brittney Theis.
Miguel Jimenez Ricardo Lugo Carlos Rojas Advisor: Andres Tremante.
MICRO AIR VEHICLES. WHAT ARE MAVS(  AV’S)? Multi functional, militarily capable, small flight vehicles. size should be less than15cms. Reynolds's no.
 PROFESSOR: CHARLES KUNG  GROUP MEMBERS: AKRAM GERIES, JEEVEN HUGH, MICHAEL LADAS, BRAD LONG.
ES 100 Micro Aerial Vehicle Group 1 Michelle Helsel, Austin Dickey, Alsia Plybeah, Dylan Carlson, Peter, Lucilla Calderon.
AAE 451 Aircraft Design First Flight Boiler Xpress November 21, 2000
Introduction to IWA. The IWA is based on a patented, next generation design called the Internal Wing Aircraft. The concept brings three separate wings.
P15462 – TETHERED WIND ENERGY PLANE Devin Bunce Matthew Kennedy Matthew Maginn Carl Stahoviak Matthew Zebert.
Final Design Team 6 December 2 nd, UAV Team Specializations David Neira – Power & Propulsion Josiah Shearon – Materials Selection & Fabrication.
1 SOARS Matt Edwards Arseny Dolgov John Shelton Johnny Jannetto Galina Dvorkina Nick Driver Eric Kohut Kevin Eberhart Self Organizing Aerial Reconnaissance.
Surveillance MAV Project – Road Map Research Testing & Documentation Finalize with Propulsion Team Wing Stability Analysis Wing Development Research –
ES 100 Micro Air Vehicle Project Montgomery College Professor: Dr. Charles Kung Summer I 2012 Team Members: Andrew Joe Laura Mohammed Nathelie Noella Stephanie.
P07108: METEOR Instrumentation Recovery System. Team Bash Nanayakkara – Project Manager (ISE) Scott Defisher – Fuselage Design (ME) Mike Kochanski – Software.
Airfoil Selection and Tail Design Jose Pedrego ASCEND Team 4/19/2008.
Introduction to Aerospace – Historical Perspective Dr. Doug Cairns.
Team 3 Ashwin Shankar Upsham Dawra Samit Sura Joe Katz.
1 ASU Satellite Laboratory Fuselage Design Presenter: Eric Chen.
Aircraft Motion and Control
Mini Autonomous Flying Vehicle CASDE is part of the National effort to develop a Micro Air Vehicle. CASDE has chosen a Mini Vehicle, in the short term,
RIT MAV System Review (P08121) Dr. Jeffrey Kozak – Faculty Guide Michael Reeder – Team Leader Kevin Hand – Lead Engineer Todd Fernandez – ME.
Remote control steering Considering a normal configuration of the airship like in the picture below:
P07122: Autonomous Quadcopter Jason Enslin – EE: Team Leader, Circuit Design/Testing Glenn Kitchell – CE: Programming, Software Design Richard Nichols.
Yaqoub Almounes John Cowan Josh Gomez Michael Medulla Mohammad Qasem
Sae – aero micro capstone
Key Performance Characteristics
SAE Aero 2017 Midterm Presentation Joe Zongolowicz, Nick Montana, Frank Dixon, Kevin Scheventer, Kathy Hansen, Marquis Ward, Gerald Short, Zhangsiwen Xiao,
AUTONOMOUS LONG-ENDURANCE UAV (SMART INTERN PROJECT)
SAE Heavy Lift Cargo Plane
Sae – aero micro capstone
Aeronautics K Sudhakar H Arya A Isaacs
Functional Decomposition: Part 1
Presentation transcript:

Surveillance MAV Project – Road Map – Senior Design I Research Testing & Documentation Finalize with Propulsion Team Wing Stability Analysis Wing Development Research – Wing Shape and Stability Airfoil Analysis Research - Airfoils Research – Flight Envelope Research – Materials, Manufacturing, Connectivity Documentation – Materials, Manufacturing, Connectivity Feasibility Analysis Build/Test – Materials, Manufacturing, Connectivity ElectronicsAerodynamicsIntegration Final MAV Design – Design Concepts, Bill of Materials Feedback Flight Models Feedback Week 1, 2, 3Week 10Week 4Week 5Week 6,7Week 8,9

Surveillance MAV Project – Road Map – Senior Design II Research – Materials, Manufacturing, Connectivity ElectronicsAerodynamicsIntegration Feedback Week 1, 2, 3Week 10Week 4Week 5Week 6,7Week 8,9

Surveillance MAV Project – Gantt Chart – Senior Design I Aerodynamics Electronics Integration W 1 Wing Stability Analysis Wing Development Research – Wing Shape and Stability Airfoil Analysis Research – Flight Envelope Flight Models Research – Airfoils Research Testing & Documentation Finalize with Propulsion Team Research – Materials, Manufacturing, Connectivity Documentation – Materials, Manufacturing, Connectivity Feasibility Analysis Build/Test – Materials, Manufacturing, Connectivity Final MAV Design – Design Concepts, Bill of Materials W 2W 3W 4W 5W 6W 7W 8W 9W 10

Surveillance MAV Project – Gantt Chart – Senior Design I Aerodynamics Electronics Integration W 1 Wing Stability Analysis Wing Development Research – Wing Shape and Stability Airfoil Analysis Research – Flight Envelope Flight Models Research – Airfoils Research Testing & Documentation Finalize with Propulsion Team Research – Materials, Manufacturing, Connectivity Documentation – Materials, Manufacturing, Connectivity Feasibility Analysis Build/Test – Materials, Manufacturing, Connectivity Final MAV Design – Design Concepts, Bill of Materials W 2W 3W 4W 5W 6W 7W 8W 9W 10

Surveillance MAV Project – Gantt Chart – Senior Design I Aerodynamics Electronics Integration W 1 Wing Stability Analysis Wing Development Research – Wing Shape and Stability Airfoil Analysis Research – Flight Envelope Flight Models Research – Airfoils Research Testing & Documentation Finalize with Propulsion Team Research – Materials, Manufacturing, Connectivity Documentation – Materials, Manufacturing, Connectivity Feasibility Analysis Build/Test – Materials, Manufacturing, Connectivity Final MAV Design – Design Concepts, Bill of Materials W 2W 3W 4W 5W 6W 7W 8W 9W 10

Surveillance MAV Project – Gantt Chart – Senior Design I Aerodynamics Electronics Integration W 1 Wing Stability Analysis Wing Development Research – Wing Shape and Stability Airfoil Analysis Research – Flight Envelope Flight Models Research – Airfoils Research Testing & Documentation Finalize with Propulsion Team Research – Materials, Manufacturing, Connectivity Documentation – Materials, Manufacturing, Connectivity Feasibility Analysis Build/Test – Materials, Manufacturing, Connectivity Final MAV Design – Design Concepts, Bill of Materials W 2W 3W 4W 5W 6W 7W 8W 9W 10

Surveillance MAV Project – Gantt Chart – Senior Design I Aerodynamics Electronics Integration W 1 Wing Stability Analysis Wing Development Research – Wing Shape and Stability Airfoil Analysis Research – Flight Envelope Flight Models Research – Airfoils Research Testing & Documentation Finalize with Propulsion Team Research – Materials, Manufacturing, Connectivity Documentation – Materials, Manufacturing, Connectivity Feasibility Analysis Build/Test – Materials, Manufacturing, Connectivity Final MAV Design – Design Concepts, Bill of Materials W 2W 3W 4W 5W 6W 7W 8W 9W 10

Surveillance MAV Project – Gantt Chart – Senior Design I Aerodynamics Electronics Integration W 1 Wing Stability Analysis Wing Development Research – Wing Shape and Stability Airfoil Analysis Research – Flight Envelope Flight Models Research – Airfoils Research Testing & Documentation Finalize with Propulsion Team Research – Materials, Manufacturing, Connectivity Documentation – Materials, Manufacturing, Connectivity Feasibility Analysis Build/Test – Materials, Manufacturing, Connectivity Final MAV Design – Design Concepts, Bill of Materials W 2W 3W 4W 5W 6W 7W 8W 9W 10

Surveillance MAV Project – Gantt Chart – Senior Design I Aerodynamics Electronics Integration W 1 Wing Stability Analysis Wing Development Research – Wing Shape and Stability Airfoil Analysis Research – Flight Envelope Flight Models Research – Airfoils Research Testing & Documentation Finalize with Propulsion Team Research – Materials, Manufacturing, Connectivity Documentation – Materials, Manufacturing, Connectivity Feasibility Analysis Build/Test – Materials, Manufacturing, Connectivity Final MAV Design – Design Concepts, Bill of Materials W 2W 3W 4W 5W 6W 7W 8W 9W 10

Surveillance MAV Project – Gantt Chart – Senior Design I Aerodynamics Electronics Integration W 1 Wing Stability Analysis Wing Development Research – Wing Shape and Stability Airfoil Analysis Research – Flight Envelope Flight Models Research – Airfoils Research Testing & Documentation Finalize with Propulsion Team Research – Materials, Manufacturing, Connectivity Documentation – Materials, Manufacturing, Connectivity Feasibility Analysis Build/Test – Materials, Manufacturing, Connectivity Final MAV Design – Design Concepts, Bill of Materials W 2W 3W 4W 5W 6W 7W 8W 9W 10

Surveillance MAV Project – Gantt Chart – Senior Design I Aerodynamics Electronics Integration W 1 Wing Stability Analysis Wing Development Research – Wing Shape and Stability Airfoil Analysis Research – Flight Envelope Flight Models Research – Airfoils Research Testing & Documentation Finalize with Propulsion Team Research – Materials, Manufacturing, Connectivity Documentation – Materials, Manufacturing, Connectivity Feasibility Analysis Build/Test – Materials, Manufacturing, Connectivity Final MAV Design – Design Concepts, Bill of Materials W 2W 3W 4W 5W 6W 7W 8W 9W 10

Surveillance MAV Project – Gantt Chart – Senior Design I Aerodynamics Electronics Integration W 1 Wing Stability Analysis Wing Development Research – Wing Shape and Stability Airfoil Analysis Research – Flight Envelope Flight Models Research – Airfoils Research Testing & Documentation Finalize with Propulsion Team Research – Materials, Manufacturing, Connectivity Documentation – Materials, Manufacturing, Connectivity Feasibility Analysis Build/Test – Materials, Manufacturing, Connectivity Final MAV Design – Design Concepts, Bill of Materials W 2W 3W 4W 5W 6W 7W 8W 9W 10

Surveillance MAV Project – Gantt Chart – Senior Design I Aerodynamics Electronics Integration W 1 Wing Stability Analysis Wing Development Research – Wing Shape and Stability Airfoil Analysis Research – Flight Envelope Flight Models Research – Airfoils Research Testing & Documentation Finalize with Propulsion Team Research – Materials, Manufacturing, Connectivity Documentation – Materials, Manufacturing, Connectivity Feasibility Analysis Build/Test – Materials, Manufacturing, Connectivity Final MAV Design – Design Concepts, Bill of Materials W 2W 3W 4W 5W 6W 7W 8W 9W 10

Surveillance MAV Project – Gantt Chart – Senior Design II

Surveillance MAV Project – Objectives List NecessaryDesirable Able to fly 600 meters (linear) Able to take a “legible” picture of a 1.5 square-meter symbol located on the ground Wireless remote control (human operator) Stay within budget (~$4500) Stable, consistent launching Able to be flown accurately 500 meters from the target symbol Must be durable Must be able to deliver a hard copy of the photo to judges within 45 minutes of launch Black and white photo Onboard power supply Capture and transmit live video Capture and record video onboard Able to rotate camera Able to fly 1.2 kilometers or more Smallest possible maximum linear dimension Lightest possible weight MAV able to be reproduced consistently Color photo GPS Autonomous flight Stability Augmentation System Use Fall/Winter Senior Design Team’s Propulsion System/Data

Surveillance MAV Project – Objective Tree The MAV must complete the mission outlined by the IMAVC. Aerodynamics Electronics Integration Picture Propulsion Remote Control MAV Stability Lift/Drag Size Endurance Size Endurance Size Endurance Manufacturability Connectivity See Requirements

Surveillance MAV Project – Requirements AerodynamicsIntegrationElectronics Stability Lift/Drag Size Endurance - Must be stable in pitch, yaw, roll - Aircraft will have a positive pitching moment intercept and a negative slope - Elevons shall be effective in controlling pitch rates - Aircraft shall be critically damped in yaw direction - Aircraft yawing moment curve must be positive and 0 intercept - Aircraft shall have a negative rolling moment and 0 intercept - Elevons shall be effective in controlling roll rates - Force on control surfaces shall not exceed force provided by servo - The CG shall be located to ensure stability - Elevon operation shall have minimal effect on yaw - Planform must minimize tip vortices Picture Propulsion Remote Control Size Endurance - Take photo - Record photo - Transmit photo - Receive photo - Minimize power consumption - Radio - Receiver - As small and compact as possible (within the scope of the project) - Sufficient battery - Lasting parts Size Endurance Manufacturability Connectivity - As small and compact as possible, but still able to carry all necessary components - Drop test (10’ vertical drop) - Static load test - Pod shock/compression test - Maximum Dynamic Loading Case - Construction tools - Material documentation/knowledge/experience - “High” precision and tolerances - Connect wing to pod - Shear landing test - Maintain stability/lift/drag for the duration of the flight - Planform that optimizes lift for small maximum linear dimension

Surveillance MAV Project – Specifications AerodynamicsIntegrationElectronics Stability Lift/Drag Size Endurance - C mo > 0 - C mα < 0 - C mδev > ? - ξn < 0 - C n0 = 0 - C n > 0 - C lδev > ? - N.P. < Xcg - Span Efficiency Factor e > ? - Span b <= 25.4 cm - AR > 1 Picture Propulsion Remote Control Size Endurance - Camera Resolution: 380 lines - Power Supplied: 450 mA; 11 V - Thrust Supplied: 70 g - Transmitter Frequency: 2.4 GHz - Transmitter RF Power Output: 80 mW - Receiver Frequency: 2.4 GHz - Receiver Gain: -83 dB - Receiver Impedance: 50 ohms - Antenna Frequency: 2.4 GHz - Antenna Gain: 24 dB - Antenna Beam Width: 8º - Antenna Impedance: 50 ohms - Camera Dimensions: 1024 mm 3 - Camera Weight: 2.5 g - Transmitter Dimensions: 985 mm 3 - Transmitter Weight: 3 g - Servo Dimensions: 2010 mm 3 - Servo Weight: 4.5 g - Propulsion System Dimensions: ??? - Propulsion System Weight: ??? - Camera Power Consumption:.42 W - Transmitter Power Consumption:.54 W - Servo Power Consumption: 1 W Size Endurance Manufacturability Connectivity - Capable of holding 60 g in minimal volume - Drop Test: MAV must withstand 10 ft vertical drop (from tail, left/right wing, nose, and center) with no apparent damage - Static Loading Test: MAV must withstand suspension from outer wing tips, loading with “factor of safety” of 1.5, with no apparent damage - Maximum Dynamic Loading Test: MAV attached to rod through CG, exposed to simulated flight speeds until time of fatigue - Rapid Prototyping Resolution: Up to 0.03 inches - Machining Precision: Up to inches - Shearing: Perform compression test to determine shear strength of connection between wing/pod - Minimum Flight Thrust = x

Control Power Camera System Skin Propu- lsion Wing/ Pod Flight - Yaw Flight - Pitch Flight - Roll Surveillance MAV Project – Morphological Analysis Remote Control (Human Operator) Remote Control (Computer/ Human Operator) Stability Augmenta- tion Autonomo- us None Lithium Polymer Battery GasMicroturbi- ne Alkaline Batteries Capacitor Camera with Film Storage Camera with Digital Storage Camera with Transmitter Infrared Camera with Transmitter Night Vision Camera with Transmitter Movable Camera with Transmitter Shrink- wrap Tissue Paper Parylene-CResin/Epo- xy MylarDurobaticsFabricPolymersLatexChemical Resin Dip Electric Motor/Pro- pellor Gas Motor/Pro- pellor Compress- ed Air OrnithopterElectric Motor/Pro- pellor/Shr- oud PolymersRapid Prototyping DurobaticsAramidCarbon Fiber FiberglassComposite Rods Composite Tow Aramid/Ca- rbon Combo Titanium Alloy BalsaCarbon/La- tex Combo RudderSpoilersMorphingThrust Vectoring (Drag) Differential Morphing Elevon Movable C.G. Thrust ElevatorElevonsThrust Vectoring MorphingMovable C.G. Elevons FlaperonsAileronsThrust Vectoring Spoilers Morphing Movable C.G. Fiberglass None

Surveillance MAV Project – QFD Analysis (Phase I) Key 0 = not important 1 = slightly important 3 = important 9 = very important Customer Requirements Able to fly 600 meters (linear) Able to take a “legible” picture Wireless remote control Stay within budget Stable, consistent launching unnecessary Able to be flown accurately Must be durable Must provide hard copy of photo Onboard power supply Customer Weight Engineering Metrics Weight (g) Dimensions (cm) Resolution (lines) Power (mAh)Thrust (g) RF Power (mW) Voice of the Customer Technical Target 80 Weight (g) Dimensions (cm) Resolution (lines) Power (mAh ) Thrust (g) RF Power (mW) Optimization Key 0 = not correlated 1 = slightly correlated 3 = correlated 9 = highly correlated Raw Score Relative Weight

Surveillance MAV Project – QFD Analysis (Phase II) Engineering Metrics Phase I Relative Weights Weight (g) Dimensions (cm) Resolution (lines) Power (mAh) Thrust (g) RF Power (mW) Raw Score Relative Weight WingPodPropulsion SystemCamera SystemServosMAV Parts Key 0 = no contribution 1 = slight contribution 3 = notable contribution 9 = large contribution

Surveillance MAV Project – Pugh Analysis (page 1) Design Concepts 01 Control Power Camera System Skin Propulsion Wing/Pod Flight - Yaw Flight - Pitch Flight - Roll Sub- Functions Remote Control (Human Operator) Lithium Polymer Battery Camera with Transmitter Parylene-C Electric Motor/Propeller Carbon Fiber Rudder Elevons Remote Control (Human Operator) Lithium Polymer Battery Camera with Transmitter Shrink-wrap Electric Motor/Propeller/Shroud Aramid/Carbon Combo Rudder Elevons Remote Control (Human Operator) Lithium Polymer Battery Camera with Digital Storage Fiberglass Electric Motor/Propeller Aramid/Carbon Combo None Elevons Remote Control (Human Operator) Lithium Polymer Battery Movable Camera with Transmitter Latex Electric Motor/Propeller Carbon/Latex Combo None Morphing Criteria Able to fly 600 meters (linear) Able to take a “legible” picture Wireless remote control Stay within budget Stable, consistent launching unnecessary Able to be flown accurately Must be durable Must provide hard copy of photo Onboard power supply Score # +’s # S’s # -’s Design Concepts SS+ ++ SSS S+ S-S S-S SSS Criteria Able to fly 600 meters (linear) Able to take a “legible” picture Wireless remote control Stay within budget Stable, consistent launching unnecessary Able to be flown accurately Must be durable Must provide hard copy of photo Onboard power supply Score # +’s # S’s # -’s Design Concepts SSS --S SSS S --S S-S S-S SSS REFERENCEREFERENCE REFERENCEREFERENCE + -

Surveillance MAV Project – Pugh Analysis (page 2) Criteria Able to fly 600 meters (linear) Able to take a “legible” picture Wireless remote control Stay within budget Stable, consistent launching unnecessary Able to be flown accurately Must be durable Must provide hard copy of photo Onboard power supply Score # +’s # S’s # -’s Design Concepts SSS +++ SSS SSS Criteria Able to fly 600 meters (linear) Able to take a “legible” picture Wireless remote control Stay within budget Stable, consistent launching unnecessary Able to be flown accurately Must be durable Must provide hard copy of photo Onboard power supply Score # +’s # S’s # -’s Design Concepts SSS S-- SSS +-+ S-- S-- S-S S-S SSS REFERENCEREFERENCE REFERENCEREFERENCE Control Power Camera System Skin Propulsion Wing/Pod Flight - Yaw Flight - Pitch Flight - Roll Sub- Functions Remote Control (Human Operator) Lithium Polymer Battery Camera with Transmitter Parylene-C Electric Motor/Propeller Carbon Fiber Rudder Elevons Remote Control (Human Operator) Lithium Polymer Battery Camera with Transmitter Shrink-wrap Electric Motor/Propeller/Shroud Aramid/Carbon Combo Rudder Elevons Remote Control (Human Operator) Lithium Polymer Battery Camera with Digital Storage Fiberglass Electric Motor/Propeller Aramid/Carbon Combo None Elevons Remote Control (Human Operator) Lithium Polymer Battery Movable Camera with Transmitter Latex Electric Motor/Propeller Carbon/Latex Combo None Morphing