Basics of Radiation Physics How Heat Can Travel Through the Vacuum of Space How Radiation Affects...

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Basics of Radiation Physics How Heat Can Travel Through the Vacuum of Space How Radiation Affects Heat Here on Earth
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Transcript of Basics of Radiation Physics How Heat Can Travel Through the Vacuum of Space How Radiation Affects...

Page 1: Basics of Radiation Physics How Heat Can Travel Through the Vacuum of Space How Radiation Affects Heat Here on Earth.

Basics of Radiation Physics

How Heat Can Travel Through the Vacuum of Space

How Radiation Affects Heat Here on Earth

Page 2: Basics of Radiation Physics How Heat Can Travel Through the Vacuum of Space How Radiation Affects Heat Here on Earth.

EM Spectrum

Page 3: Basics of Radiation Physics How Heat Can Travel Through the Vacuum of Space How Radiation Affects Heat Here on Earth.

Wavelength vs. Frequency

λν = cLambda*nu = C

wavelength*frequency = speed of light

C = 3.00 x 108 m/s (in a vacuum)

Page 4: Basics of Radiation Physics How Heat Can Travel Through the Vacuum of Space How Radiation Affects Heat Here on Earth.

Example 1

λν = cFrequency of green light?

Wavelength 500 nm = 5 x 10-7 mν = c/ λ = (3x108 m/s)/(5 x 10-7 m)

= 6 x1014 s-1 1 s-1 = 1/(2π) Hertz (cycles/sec)

ω = 3800 GHz

Page 5: Basics of Radiation Physics How Heat Can Travel Through the Vacuum of Space How Radiation Affects Heat Here on Earth.

Example 2

λν = cWavelength of FM radio waves?

Frequency 103 MHz1 s-1 = 1/(2π) Hertz

λ = c/ν = (3x108 m/s)/(1.6x107 s-1)= 18.3 meters (!)

Page 6: Basics of Radiation Physics How Heat Can Travel Through the Vacuum of Space How Radiation Affects Heat Here on Earth.

Planck Relation

E = hνE = energy of one photon

h = Planck Constant= 6.63 x 10-34 J s Can also write:

E = hc/λ

Page 7: Basics of Radiation Physics How Heat Can Travel Through the Vacuum of Space How Radiation Affects Heat Here on Earth.

Example: Energy of Green Photons

E = hc/λ

E = (6.6 x 10-34 J s)(3 x108 m/s)500 x 10-9 m

= 4.0 x 10-9 J/photon x 6.02 x 1023 photons/mole

= 2.4 x 105 J = 240 J/mole

Page 8: Basics of Radiation Physics How Heat Can Travel Through the Vacuum of Space How Radiation Affects Heat Here on Earth.

Compare to Carbon Fixation

CO2 + H2O -> Glucose G = +120 kJ/mole

Light has energy of ~200 kJ/mole

Can visible light provide enough energy to fix carbon?

Page 9: Basics of Radiation Physics How Heat Can Travel Through the Vacuum of Space How Radiation Affects Heat Here on Earth.
Page 10: Basics of Radiation Physics How Heat Can Travel Through the Vacuum of Space How Radiation Affects Heat Here on Earth.
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Stefan-Boltzmann Law

Page 13: Basics of Radiation Physics How Heat Can Travel Through the Vacuum of Space How Radiation Affects Heat Here on Earth.

Black Cadillac vs. White Cadillac

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Energy from Sun to Earth

Page 16: Basics of Radiation Physics How Heat Can Travel Through the Vacuum of Space How Radiation Affects Heat Here on Earth.

Solar Angle

Page 17: Basics of Radiation Physics How Heat Can Travel Through the Vacuum of Space How Radiation Affects Heat Here on Earth.

Solar Angle

Page 18: Basics of Radiation Physics How Heat Can Travel Through the Vacuum of Space How Radiation Affects Heat Here on Earth.
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Page 20: Basics of Radiation Physics How Heat Can Travel Through the Vacuum of Space How Radiation Affects Heat Here on Earth.

Effect of Solar Angle on Radiation at the Surface of the Earth

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Comparative Latitudes of 4 US Cities• Fairbanks, AK• Ithaca, NY• Madison, WI• Honolulu, HI

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Sunlight Flux, cal/cm2/day

Page 23: Basics of Radiation Physics How Heat Can Travel Through the Vacuum of Space How Radiation Affects Heat Here on Earth.

Local Solar Angle Effects