5.7. For the "standard atmosphere" shown in Fig. 5.5, perform the following calculations (a) Derive the pressure-height relation for the troposphere. (b) Calculate the pressure at the troposphere-stratosphere boundary. (G) Periye the pressure-height relation for the stratosphere.

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5.7. For the "standard atmosphere" shown in Fig. 5.5, perform the following calculations=
(a) Derive the pressure-height relation for the troposphere.
(b) Calculate the pressure at the troposphere-stratosphere boundary.
(c) Derive the pressure-height relation for the stratosphere.
Transcribed Image Text:5.7. For the "standard atmosphere" shown in Fig. 5.5, perform the following calculations= (a) Derive the pressure-height relation for the troposphere. (b) Calculate the pressure at the troposphere-stratosphere boundary. (c) Derive the pressure-height relation for the stratosphere.
65 617 ft
20 000 m
36 O89 fi
I1 000 m
"Standard" atmosphere
Adiabatic atmosphere
-92.5°C
-56.5°C
15°C
-134.6°F
-69.7°F
59°F
Temperature
FIGURE 5.5
Comparison of the temperature-elevation relations in the adiabatic atmosphere and the standard atmosphere.
This plot shows only the two lowest sections of the Standard Atmosphere, containing 95% of the atmosphere's
mass, In the four more sections above these two the interaction of sunlight with individual molecules produces
Height above sca level, z
Troposphere
Stratosphere
Transcribed Image Text:65 617 ft 20 000 m 36 O89 fi I1 000 m "Standard" atmosphere Adiabatic atmosphere -92.5°C -56.5°C 15°C -134.6°F -69.7°F 59°F Temperature FIGURE 5.5 Comparison of the temperature-elevation relations in the adiabatic atmosphere and the standard atmosphere. This plot shows only the two lowest sections of the Standard Atmosphere, containing 95% of the atmosphere's mass, In the four more sections above these two the interaction of sunlight with individual molecules produces Height above sca level, z Troposphere Stratosphere
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