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Insolation and Temperature
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Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.

Dec 22, 2015

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Page 1: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.

Insolation and Temperature

Page 2: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.

Electromagnetic Radiation (EMR) can be described as waves.

Note the generation of a magnetic field at right angles to an electrical field and both are perpendicular to the direction of EMR propagation

http://micro.magnet.fsu.edu/primer/java/electromagnetic/index.html

 

Page 3: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.

The wavelength () of EMR is directly related to the amount of NRG in the radiation.

Short () (e.g. gamma rays) have a higher NRG content

Long () (e.g. thermal or microwave (Radio) have a lower NRG content

As the velocity of the propagation of EMR (the speed of light) is believed to be a constant (c)

The number of waves to pass a single point in a given period (the frequency, v) is much higher for shorter radiation

Page 4: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.
Page 5: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.

Atmospheric Windows

Some EMR passes through the atmosphere with no interference (an ‘atmospheric window’

Some EMR is absorbed (or blocked) by components in the atmosphere

The most significant absorbers of EMR in the atmosphere are O2 , N2, O3, CO2, H2O

 

Page 6: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.

Gamma radiation, X-rays, and UV radiation absorbed in the upper atmosphere

 Water vapor and Carbon Dioxide absorb portions of the EM spectrum in the thermal portions of the spectrum

Page 7: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.
Page 8: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.

Atmospheric scattering: (skylight or haze)

Rayleigh scatter (molecular scatter) primary factor in upper atmosphere (why the sky is blue)

Mie scatter (non-molecular scattering, water/ice/salt/smoke) primarly in lower atmosphere

Page 9: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.
Page 10: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.

When the sun is at very low angles, virtually all the shorter EMR is scattered, allowing only the longer, lower NRG waves (reds) to pass through.

Page 11: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.
Page 12: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.
Page 13: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.
Page 14: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.

Of the incoming EMR, a significant portion is simply reflected back into space… Albedo

Page 15: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.

Clouds and Ice have an Albedo approaching 100%

Page 16: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.

Global albedo is not constant… but the overall average is 35%

Page 17: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.

The atmosphere is heated primarily from below… from the surface.

Page 18: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.
Page 19: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.

Adiabatic cooling and the inverse… Adiabatic warming

Page 20: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.
Page 21: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.
Page 22: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.

Note the influence of clouds… which interrupts the latitudinal patterns

Page 23: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.
Page 24: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.
Page 25: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.
Page 26: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.
Page 27: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.
Page 28: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.
Page 29: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.
Page 30: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.

45 degrees N… halfway between equator and pole

Page 31: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.
Page 32: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.

57.5 degrees North (same latitude as Moscow and Hudson’s Bay… semi-tropical gardens on the coast of Scotland

Page 33: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.
Page 34: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.

Normal Atmospheric Conditions…

Page 35: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.

Temperature Inversion… warmer air slides over the cool air at the surface trapping the surface air beneath a very stable upper air mass

Page 36: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.
Page 37: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.
Page 38: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.
Page 39: Insolation and Temperature. Electromagnetic Radiation (EMR) can be described as waves. Note the generation of a magnetic field at right angles to an electrical.