radiation. insolation in tercepted sol ar radi ation

36
RADIATION

Upload: gwen-gaines

Post on 17-Jan-2016

219 views

Category:

Documents


0 download

TRANSCRIPT

Page 1: RADIATION. Insolation in tercepted sol ar radi ation

RADIATION

Page 2: RADIATION. Insolation in tercepted sol ar radi ation

Insolation

intercepted solar

radiation

Page 3: RADIATION. Insolation in tercepted sol ar radi ation

Earth intercepts 0.0000000005 of the sun’s radiation

Page 4: RADIATION. Insolation in tercepted sol ar radi ation
Page 5: RADIATION. Insolation in tercepted sol ar radi ation

Solar constant

amount of radiation received at the top of the atmosphere (on a plane surface perpendicular to sun’s rays)

= 1372 Watts/m2

(reduced by half by the time it reaches surface of earth)

Page 6: RADIATION. Insolation in tercepted sol ar radi ation
Page 7: RADIATION. Insolation in tercepted sol ar radi ation

energy per unit area

amount of energy received at earth’s surface per unit of area (square meter, square inch, etc.)

Page 8: RADIATION. Insolation in tercepted sol ar radi ation

surface receives more energy per unit area (more concentrated) when the sun’s rays are vertical (direct)

less energy per unit area (less concentrated) when sun’s rays are oblique (slanted)

Page 9: RADIATION. Insolation in tercepted sol ar radi ation
Page 10: RADIATION. Insolation in tercepted sol ar radi ation
Page 11: RADIATION. Insolation in tercepted sol ar radi ation

Electromagnetic Radiation

• Radiant energy

Page 12: RADIATION. Insolation in tercepted sol ar radi ation

• Earth, sun, everything! radiates energy– tropical zones receive more

energy than they radiate

– polar zones radiate more energy than they receive

– excess heat transfer:•ocean currents, winds

Page 13: RADIATION. Insolation in tercepted sol ar radi ation

•Sun’s energy from atomic fusion: hydrogen atoms fused into helium atoms

– lost mass converted to energy

Page 14: RADIATION. Insolation in tercepted sol ar radi ation

•Electromagnetic radiation (EMR)–travels at speed of light

(93 million miles in 8.5 minutes)

–travels in wavesWavelength: size of wave

Page 15: RADIATION. Insolation in tercepted sol ar radi ation
Page 16: RADIATION. Insolation in tercepted sol ar radi ation

electromagnetic spectrum

• “ruler” to measure different types of energy

Page 17: RADIATION. Insolation in tercepted sol ar radi ation
Page 18: RADIATION. Insolation in tercepted sol ar radi ation

Solar (Sun) vs. Terrestrial (Earth) Radiation:

• sun’s SHORTWAVE :– gamma , X-ray, UV, visible,

infrared

• earth’s LONGWAVE :– infrared

Page 19: RADIATION. Insolation in tercepted sol ar radi ation
Page 20: RADIATION. Insolation in tercepted sol ar radi ation

Absorption of radiation in the atmosphere:

• Shortwave absorbers:•ozone, water vapor

• Longwave absorbers:•water vapor, carbon dioxide, ozone

• “The atmosphere is relatively transparent to shortwave radiation and opaque to longwave radiation”

Page 21: RADIATION. Insolation in tercepted sol ar radi ation

Types of heat energy

•Sensible heat• thermometer

•Latent heat•released or stored in a phase change

Page 22: RADIATION. Insolation in tercepted sol ar radi ation

• First Law of Thermodynamics:•energy cannot be created or destroyed, but can be:

CONVERTED

TRANSFERRED

Page 23: RADIATION. Insolation in tercepted sol ar radi ation

Energy Transfer Mechanisms:

• Conduction•energy transmitted within a substance by collision of molecules

• Convection•vertical motion of energy from one place to another through physical motion of air

Page 24: RADIATION. Insolation in tercepted sol ar radi ation

Energy Budget/Balance

• Exchange of energy between the sun, the earth, and the atmosphere

– balance between incoming and outgoing

Page 25: RADIATION. Insolation in tercepted sol ar radi ation

• radiation entering the atmosphere can be:

•absorbed•transformed, re-emitted

• reflected•“albedo” : percentage of incoming radiation that is reflected;

•earth/atmosphere albedo = 31 %

Page 26: RADIATION. Insolation in tercepted sol ar radi ation
Page 27: RADIATION. Insolation in tercepted sol ar radi ation

Incoming solar shortwave radiation

Page 28: RADIATION. Insolation in tercepted sol ar radi ation

Longwave exchanges between surface, atmosphere, and space:

Page 29: RADIATION. Insolation in tercepted sol ar radi ation

The Balancing Act• 95+48 = 143• energy leaves

surface as:– radiation

– latent heat (evaporation)

– sensible heat (conduction)

• losses: 114+23+7= 144

Page 30: RADIATION. Insolation in tercepted sol ar radi ation
Page 31: RADIATION. Insolation in tercepted sol ar radi ation

Counterradiation by the atmosphere:

Page 32: RADIATION. Insolation in tercepted sol ar radi ation

Greenhouse Effect

• atmosphere admits most shortwave; absorbs and counterradiates longwave

• allows average surface temperature to be 59oF rather than - 4oF

Page 34: RADIATION. Insolation in tercepted sol ar radi ation

Latitudinal differences in net radiation

Page 35: RADIATION. Insolation in tercepted sol ar radi ation

Seasonal and Diurnal (daily) differences in

insolation

Page 36: RADIATION. Insolation in tercepted sol ar radi ation

Seasonal and Diurnal (daily) differences in net

radiation