Top Banner
Wind Generators Tom Rebold Monterey Peninsula College [email protected]
33

Wind Generators Tom Rebold Monterey Peninsula College [email protected].

Dec 29, 2015

Download

Documents

Percival Bishop
Welcome message from author
This document is posted to help you gain knowledge. Please leave a comment to let me know what you think about it! Share it to your friends and learn new things together.
Transcript
Page 1: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Wind GeneratorsTom ReboldMonterey Peninsula [email protected]

Page 2: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Need to know…•Basic Electricity Measurements

•Power Calculations ▫Power in wind, electricity, and movement of

water

•Wind Tower Design (engineering statics)

•Wind generator blade design (aerodynamics)

•Water Pump Design (hydraulics)

Page 3: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Electrity: Three Main Invisible Quantities

•Voltage, V, Volts▫Provides the “push”

•Current, I, Amperes (Amps)▫Flow of Electrons▫Amount of Current is dependent on Voltage

and Resistance•Resistance, R, Ohms ()

▫Limits the amount of current

Page 4: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Safe Levels

•Voltage: 30 V▫Voltages inside a computer do not exceed 12 V,

except at the power supply and power switch, which are at 120 V.Be careful in these areas!

•Current: 5 mA (0.005 Amperes)

Page 5: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Voltage Can Be Provided From…•A battery

Page 6: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Voltage Can Be Provided From…•A generator

Page 7: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Current•…is simply the flow of electrons•Direction depends on convention

Conventional Current Flow (+) to (-)

Electron Current Flow (-) to (+)Electron flow is from (-) to (+) (flow of electrons)Conventional flow is from (+) to (-) (hole flow)

Page 8: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Resistors – Basic Specs•Can be rated by…

▫Resistance (Ohms, )▫Tolerance (% of nominal value)▫Power Rating (Watts)

•Schematic Symbol…

Page 9: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Resistors – Types•Fixed

Variable (Potentiometer, Rheostat)

Page 10: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Resistors – Color Code

Page 11: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Resistors –Colour Code Example

3 3 102

5%(gold)

1st band: orange = 3 2nd band: orange = 3 3rd band: red = 2 (i.e. 102) 4th band: gold = 5%

33 x 102

= 3300

= 3.3 k

Page 12: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Resistors – Typical Power Ratings

Page 13: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Ohm’s Law

R

VI

“Current (I) is proportional to Voltage (V) and inversely proportional to

Resistance (R)”

RIV I

VR

UNITS: 1 Volt across 1 Ohm produces 1 Amp of current

Page 14: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Calculate the current in this circuit using Ohm’s Law

3

6VI

R

VI

Page 15: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Calculate the current in this circuit using Ohm’s Law

1.5

6VI

Page 16: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Calculate the current in this circuit using Ohm’s Law

3

3VI

Page 17: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Calculate the current in this circuit using Ohm’s Law

300

6VI

Page 18: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

How Many Volts across Resistor?

2A

300

Page 19: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Ohm’s Law, Including Power

Reproduced by permission of Tony van Roon, 2002 http://www.uoguelph.ca/~antoon

Page 20: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

How Many Watts dissipated by Resistor?

2A

300

P=I2R

Page 21: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

1.5

6VI

P=I2R = V2/R = IV

How Many Watts dissipated by Resistor?

Page 22: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Water Pump

Wind Generator

I

P=I2R = V2/R = IV

For your Wind generator, same calculations apply

To find the power delivered to our pump, we will have to measure V and I

Page 23: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Complete System Drawing

Fuse

Pump

10 ft wire

Page 24: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Wind and Hydro Power Calculations•How much power is in the wind?

•How much power does it take to pump a liter of water 2 m uphill in 5 minutes?

•How can we evaluate how effective our wind system is at pumping water?

Page 25: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Engineering a Power Conversion System

Wind Electrical Pumping

Power Power Power

Each conversion results in a loss of power

50 W 5 W 1 W

This system has an overall efficiency of 1/50 or 2%In subsequent designs, engineers would try to improve the efficiency

Page 26: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

The Power in the Wind • From basic physics we have “Kinetic Energy”

▫K = ½ M V2

K = energy in Joules (or N-m, or even KW-hr) M = mass, kg V = velocity of object, m/s

• In the context of wind, we can determine the mass of the cylinder of air that hits our generator in a certain time interval.

• Power is the amount of Kinetic Energy we capture divided by the time we are gathering it. ( Watts)

Page 27: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.
Page 28: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Hydraulic Power

•In order to pump a mass m kg of water h meters uphill, we require an amount of energy equal to ▫E = m g h (Joules) where g = 9.8

m/s2

•To pump uphill in T seconds, would require a power of ▫P = E/T (Watts)

•Suppose m = 1 kg, d = 2 m, T = 60 s▫P = 1 x 9.8 x 2 / 60 = .3 W

Page 29: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.
Page 30: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Tower Design

•In ENGR 8You can determinetension in cables!

•Keep tower simple. 2x4 with 4 cordsattached to stakes

•Mount motor using steel bands and screws

Page 31: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Thoughts on Propeller Blade Design•http://www.practicalaction.org/docs/energ

y/blades_manual.pdf

Page 32: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Balance

•By all means, make sure you balance your blades before testing!

•Use some small weights, coins, anything to make sure the blades are evenly weighted.

•Otherwise your generator could quickly destroy itself!

Page 33: Wind Generators Tom Rebold Monterey Peninsula College trebold@mpc.edu.

Pump Construction•http://www.ircwcc.org/manual/PUMP/PUMPS.

HTMhttp://bb_ops.tripod.com/RC_Combat/Hind_Pump.htm