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Natasha Hyare Ryan Benson Casey Carlin
Team Zero Natasha Hyare Ryan Benson Casey Carlin
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Project Overview Introduction Problem Criteria & Constraints
Preliminary Ideas Refinement Calculations Implementation/Final Design Results/Discussion Conclusion Suggested Improvements Acknowledgements
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Introduction Build an All-Terrain Vehicle that can complete the assigned course using only the materials provided. Use engineering concepts we learned, such as the design process and teamwork skills to complete our project.
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Problem Criteria & Constraints
Must Carry 3 golf balls Complete the course Must Not Use extraneous materials Leave the course Fall apart Criteria Balance Speed Torque Minimize Weight Size
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Preliminary Ideas Cardboard box siding/frame
Small profile and dimensions Reduce weight 2 small CDs as front wheels, 2 big CDs as rear wheels
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Preliminary Sketches Rubber band around wheels to increase traction
4 wheel drive to distribute motor power Rubber band ‘booster’ on front wheels
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Project Overview Refinement Introduction
Problem Criteria & Constraints Preliminary Ideas Refinement Calculations Implementation/Final Design Results/Discussion Conclusion Suggested Improvements Acknowledgements
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Refinement Minimize volume used to hold golf balls
Make entire vehicle smaller
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Refinement Use biggest gear as drive wheel
Use two small CDs as rear wheels 40 20 30 10
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Refinement Increased structural support
Repositioned motor, gears, and payload with the elimination of the ramp
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Calculations Angular Speed Calculation
V= Voltage, w = angular velocity, P = Power, I = Current, T = Torque M = mass F = Force, v = velocity, r = radius of drive wheel, a = acceleration.
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Calculations Power Calculation
V= Voltage, w = angular velocity, P = Power, I = Current, T = Torque M = mass F = Force, v = velocity, r = radius of drive wheel, a = acceleration.
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Calculations Torque Calculation
V= Voltage, w = angular velocity, P = Power, I = Current, T = Torque M = mass F = Force, v = velocity, r = radius of drive wheel, a = acceleration.
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Calculations Torque at 1:4 and 1:6 gear ratios
V= Voltage, w = angular velocity, P = Power, I = Current, T = Torque M = mass F = Force, v = velocity, r = radius of drive wheel, a = acceleration.
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Calculations Velocity
V= Voltage, w = angular velocity, P = Power, I = Current, T = Torque M = mass F = Force, v = velocity, r = radius of drive wheel, a = acceleration.
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Project Overview Implementation/ Final Design Introduction
Problem Criteria & Constraints Preliminary Ideas Refinement Calculations Implementation/ Final Design Results/Discussion Conclusion Suggested Improvements Acknowledgements
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Implementation of Final Design
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Final Design
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Final Design
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Final Design
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Final Design
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Final Design
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Results/Discussion 9.2 seconds 8.9 seconds 12.7 seconds 13.1 seconds
Team Zero’s Performance in Competition: Distance in heat #1 (ft) Distance in heat #2 (ft) Performance Total Rank (#/38) 5 ft 2 ft 4.5 36 Team Zero’s Performance in Testing: (60 ft/smooth terrain) (60 ft/rough terrain) Test Heat 1 Test Heat 2 Test Heat 3 Test Heat 4 9.2 seconds 8.9 seconds 12.7 seconds 13.1 seconds
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Project Overview Conclusion Introduction
Problem Criteria & Constraints Preliminary Ideas Refinement Calculations Implementation/Final Design Results/Discussion Conclusion Suggested Improvements Acknowledgements
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Conclusion Strengths Small/lightweight Sturdy Fast
Innovative 3-wheel design Weaknesses Wheel Alignment Poor Wire Design
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Suggested Improvements
Problem #1- Car was scraping and got caught along the side wall Adding a bumper along the sides as well as the front of the vehicle Problem #2- The wires disconnected during the second trial The wires could have been permanently attached to each other
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Acknowledgements DC Motor Torque/Speed Curve Tutorial Profs. Khoie, Saviz and Stark
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Questions?
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