The goal of this project is to provide inexpensive electricity to citizens of third world countries who have limited access to electricity. The scope of.

Slides:



Advertisements
Similar presentations
Working with Wind Energy Stirling: March 2011 Nico Beute 1.
Advertisements

Small Wind Production Wind power solutions at home.
1 Badger Gate INTEREGR 160 Team Amit Professor John Murphy S.A. Amit Nimunkar Client Mark Novak.
Investigating the Use of a Variable-Pitch Wind Turbine to Optimize Power Output Under Varying Wind Conditions. Galen Maly Yorktown High School.
Design of spur gear transmission
Wind Turbine Blade Design
Accelerometer’s for Wind Turbines Alternative Energy Wind turbines are a growing source of alternative clean energy sources. As individual machines, or.
Vertical-Axis Wind Turbine Kang Zheng Aaron Peterson Mohd Ramjis.
Wind Turbine Blade Design
AN-Najah National University Faculty Of Engineering Mechanical Engineering Department Graduation project2 1.
1 Senior Design Final Presentation Stevens Institute of Technology Mechanical Engineering Dept. Senior Design 2005~06 Date: December 14 th, 2005 Advisor:
Alternate Energy Activities A look at Wind Power.
Announcements Read Chapter 7 Quiz on HW 3 Today
Concept Design Review Pinwheel Technologies (C3) Heather Blaha Matt Fuxa Joey King Michael McConnell Domenic Tassoni.
By Misfer Almarri.  Have the main rotor shaft and electrical generator at the top of a tower, and must be pointed into the windrotor  Small turbines.
Working with Wind Energy 24 September 2010 Moshe Kam SEP
Wind Energy Chemical Engineering Seminar By: Jacqueline Milkovich.
By John Zavalney. Elaborate How can wind be used more efficiently? QUICK WRITE PROMPT In your notebook list as many factors that you can think of that.
Charging System Fundamentals
Andrew Howard Devin Handler Brett Moll EF 152 Project 2 Windmill Generator.
Hydro Power Plant Prepared by: Nimesh Gajjar
W IND –2– H 2 O MECH 4010: Design I Group 12: Jeffrey Allen Daniel Barker Andrew Hildebrand Supervised by: Dr. Alex Kalamkarov Client: Dr. Graham Gagnon.
Wind Turbine Project Recap Wind Power & Blade Aerodynamics
Wind Energy Shaw STEM Lab
Wind Turbine Blade Design Challenge KidWind Challenge: classroom version.
Wind Power Station Utilizing Lift of a Rotating Cylinder
Wind Energy Station Directions. Simple Wind Generator 1.Connect the LED to the motor in the pvc stand (using the red and black wires). 2.Place the motor.
Wind Energy.
Team 4 “Flying Wind Turbine” Jason Landry Bryan MacDonald Scott Montgomerie Daniel Pollock Robert Ringrose Dr. Dale Retallack Team Members Supervisor.
Answers to Windmill Project Research Questions
What is Electricity? Electricity is energy transported by the motion of electrons Electricity is energy transported by the motion of electrons **We.
Wind energy By Govind Singh Shekhawat
Nick Mellon. What is it? Wind energy is generated using big turbines that are on top of huge poles. They work like a household fan does, but there is.
Functional Requirements Generate an AC current Supply an output of 500 to 1000 Watts Supply power to the Coover Hall grid Turn off in high wind speeds.
Power and Power Measurement ENGR 10 – Intro to Engineering College of Engineering San Jose State University (Ping Hsu and Ken Youssefi) 1 Introduction.
ECE 7800: Renewable Energy Systems
Wind Power ! By Gareth Sweeney, Conor Lees, Gerald Stewart, Eoghan O’Carroll 9E.
Period 1 presentation. The ruins of a Persian windmill.
Wind Turbine Blade Design
Wind Turbine Design and Implementation. Team Members Members: Luke Donney Lindsay Short Nick Ries Dario Vazquez Chris Loots Advisor: Dr. Venkataramana.
Wind Energy. How does wind energy work? The wind blows on the blades and makes them turn. The blades turns a shaft inside the nacelle (the box at the.
Energy Tic-Tac-Toe Board Renewable Source - Wind Energy By: TJ Hoyt.
Working With Wind Energy.
Period 7.   The more curved side generates low air pressures, due to more surface area. While high pressure air, pushes on the other side of the design.
Power Generation Using Rumble humps
Aerodynamic forces on the blade, COP, Optimum blade profiles
Team Pain David Brundage, Kelli Byrne, Adam Watkins, and Benjamin Wing.
Development of a Mechanical Battery Texas A&M University - Kingsville Luis Muratalla – MEEN Senior Jonathan Boehm – CEEN Sophomore Gary Garcia & Richard.
Arms, Legs, Wheels, Tracks, and What Really Drives Them Effectors and Actuators.
Brandon Johnson, Kevin Dowling, Kerry Memory. Super Awesome Windmill.
Energy System Design: A Look at Renewable Energy Summary Lecture.
Power Generation Wind Power. Wind Power Wind turbine power has been around since 500 BC when the Persians used them for grain-grinding and water pumps.
Tube well pump using wind power Nishan Madushanka HND/CV/03/12.
References Conclusions Objectives Blade Profile Analysis For Wind Turbines With Ansys Software Ferit YILDIZ 1, Anıl Can TURKMEN 2, Cenk CELİK 3 Kocaeli.
HYDRO POWER PLANT PRESENTED PRESENTED BY B.yedukondalu v.manikanta.
Wind Turbine Blade Design Joseph Rand The Kidwind Project
 How does a windmill create energy?.  You should be able to understand the purpose of gearing in a windmill.  You should understand how electricity.
Small Scale Wind Turbine
Lakota CAET Team Capstone Design Presentation
Wind Energy Shaw STEM Lab
By: Nawaz Haider Bashir SESE_Science GHS Patti Bulanda
Wind Turbine Blade Design
By: Addison Duhon, Alex Lehocky, Elliot VanLandingham
Wind energy.
Vertical Axis Wind Turbine
PROBLEM RENEWABLE ELECTRICAL ENERGY GENERATION AND DISTRIBUTION
COMBINED DARRIEUS - SAVONIUS WIND TURBINE
Small Scale Hydropower Optimization
Windmill Generator Project
Introduction to Residential Wind Energy
Presentation transcript:

The goal of this project is to provide inexpensive electricity to citizens of third world countries who have limited access to electricity. The scope of this goal is to design an inexpensive, portable wind turbine system to harness wind energy and supply enough electricity to power a light and a fan (approximately 100 W combined) for five hours per day. The wind turbine system includes both a wind turbine to generate electricity and a means of storing the electricity generated. The final design is made from recycled and scrapped materials, including blades cut from PVC piping, a shaft from an evaporative cooler, a recycled generator, scrap lumber and sheet metal, and a car battery to store electricity. The turbine is five feet in diameter, and is designed to be mounted either on the roof or side of a house, or on a wooden post sunk into the ground. The prototype serves as an example to show individuals in remote locations how to create their own wind turbines, based on materials they can salvage. Harnessing Wind Energy with Recyclable Materials Katie Carroll, Margo Dufek, Andrew McCarthy, Leanne Willey Department of Mechanical Engineering, Northern Arizona University Requirements & Constraints Results Testing Procedure Acknowledgments The prototype stands 8’ tall, and has six 2.5’ long blades. The turbine hub can rotate approximately 180º to face into the wind. The turbine blades are cut from 6” diameter PVC pipes, and are shaped to roughly approximate an airfoil. PVC was chosen because it is lightweight, durable, and commonly available. The blades are attached to the generator through a pulley system, providing a 4:1 gear ratio. This causes the generator to spin four times faster than the blades, allowing the turbine to generate electricity with lower wind speeds. A weather vane and a caster wheel allow the turbine to rotate as the wind direction changes, increasing efficiency. As the wind changes direction, the normal force exerted on the weather vane causes the hub to rotate around the caster wheel, mounted between the hub and the post, until the turbine faces into the wind. Materials Requirements: Generate & store 0.5 kWh of energy per day. Able to withstand high wind speeds. Easy to assemble. Portable – can be transported to remote locations. Constraints: Maximum total weight of 100 lbs. Budget of $50. Final Design Figure 1 shows a picture of the final prototype: The test results were analyzed using linear regression to account for errors in the measurement process. Figure 2 shows both the measured power output from the turbine and the theoretical maximum power output (Betz limit) plotted versus wind speed. As expected, the measured output is less than the theoretical output, but both curves have the same overall shape. Figure 1: Final Prototype Figure 3: Coefficient of Performance vs. Wind Speed Table 1 lists the components used to construct the prototype and their associated costs. Engineering Design References Northern Arizona University - Dr. Srinivas Kosaraju - Professor David Willy Dr. Srinivas Kosaraju, Northern Arizona University. Jones, B A Brief Wind Power Tutorial. Knight, B DIY Wind Turbine Project. Professor David Willy, Northern Arizona University. PVC Pipe Size Dimensions, Identification & Pressure Ratings Sizing Your Wind Turbine Tail your-wind-turbine-tail. Sprague, J., Huff, S., Solomon, K., & Waggy, M. Research and Development of Small Wind Turbine Blades. Twidell, J, & Anthony D. W Renewable Energy Resources. (2nd ed.; London: E & FN Spon) Abstract To test the power output of the turbine, the prototype was fastened in the back of a truck and driven at various speeds while the voltage and current output was recorded using two multimeters. The power output was then calculated as: Power = voltage x current The measured power output was compared to the theoretical maximum output, called the Betz limit, to determine the efficiency of the turbine. The test was limited to wind speeds below 8 m/s (18 MPH), because the generator reached its maximum power output. However, if a larger generator were used, the output could be tested at higher wind speeds. Figure 2: Power Output vs. Wind Speed Figure 3 shows the efficiency of the turbine plotted versus wind speed. The efficiency ranges from 35% to 45% as the wind speed varies, which is equivalent to the efficiency of commercial two blade wind turbines. In comparison, the maximum efficiency (Betz limit) is 59%. Table 1 – Bill of Materials ComponentCost Generator$64 Battery$35 Pulleys$27 Bearings & Shaft Collars$25 Steel Bowl for Nose Cap$16 Shaft$10 Epoxy$9 Electrical wiring components$5 V-Belt$4 Caster WheelScrapped PVC PipeScrapped WoodScrapped Metal PostsScrapped Sheet MetalScrapped Car TireScrapped SolderScrapped Total Cost$195 As shown in Table 1, the total cost to construct the prototype was $195, which exceeded our budget of $50. The most expensive components were the generator and battery. These components proved difficult to find salvaged. Other components, including the pulleys, bearings, shaft, and shaft collars were purchased to save time, but could reasonably be found in junkyards.