[183] | 1 | ''' |
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| 2 | Functions to calculate thermodynamic quantities for the International Standard |
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| 3 | Atmosphere. |
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| 4 | ''' |
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| 5 | |
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| 6 | from __future__ import division |
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| 7 | from sys import path |
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| 8 | path.append('/Users/val/projects/vapylib') |
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| 9 | import numpy as n |
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| 10 | import constants |
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| 11 | |
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| 12 | isa_levels = constants.isa_levels |
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| 13 | lower_boundaries = constants.isa_lower_boundaries |
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| 14 | upper_boundaries = constants.isa_upper_boundaries |
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| 15 | sea_level_temperature = constants.isa_sea_level_temperature |
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| 16 | sea_level_pressure = constants.isa_sea_level_pressure |
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| 17 | temperature_gradient = constants.isa_temperature_gradient |
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| 18 | g = constants.gravitational_acceleration |
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| 19 | R = constants.dry_air_gas_constant |
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| 20 | |
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| 21 | def which_level(geopotential_height): |
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| 22 | # basic check |
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| 23 | if geopotential_height < lower_boundaries[0] \ |
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| 24 | or geopotential_height > upper_boundaries[-1]: |
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| 25 | message = 'z must be > ' + str(lower_boundaries[0]) + ' and < ' \ |
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| 26 | + str(upper_boundaries[-1]) |
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| 27 | raise 'BadGeopHgt', message |
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| 28 | for level_idx in range(isa_levels): |
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| 29 | if geopotential_height <= upper_boundaries[level_idx]: |
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| 30 | return level_idx |
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| 31 | |
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| 32 | def temperature_calculator(geopotential_height): |
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| 33 | level = which_level(geopotential_height) |
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| 34 | temperature = sea_level_temperature |
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| 35 | for level_idx in range(level): |
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| 36 | temperature += temperature_gradient[level_idx] \ |
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| 37 | * (upper_boundaries[level_idx] - lower_boundaries[level_idx]) |
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| 38 | temperature += temperature_gradient[level] \ |
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| 39 | * (geopotential_height - lower_boundaries[level]) |
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| 40 | return temperature |
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| 41 | |
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| 42 | |
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| 43 | def pressure_calculator(geopotential_height): |
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| 44 | # following Richard's notes (eqn 3.3) |
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| 45 | level = which_level(geopotential_height) |
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| 46 | integral = 0 |
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| 47 | for level_idx in range(level): |
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| 48 | lower_boundary_temperature = \ |
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| 49 | temperature_calculator(lower_boundaries[level_idx]) |
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| 50 | if temperature_gradient[level_idx] != 0.: |
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| 51 | integral += n.log( \ |
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| 52 | (lower_boundary_temperature \ |
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| 53 | + (upper_boundaries[level_idx] - lower_boundaries[level_idx]) \ |
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| 54 | * temperature_gradient[level_idx]) / lower_boundary_temperature \ |
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| 55 | ) / temperature_gradient[level_idx] |
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| 56 | else: |
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| 57 | integral += \ |
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| 58 | (upper_boundaries[level_idx] -lower_boundaries[level_idx]) \ |
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| 59 | / lower_boundary_temperature |
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| 60 | lower_boundary_temperature = \ |
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| 61 | temperature_calculator(lower_boundaries[level]) |
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| 62 | if temperature_gradient[level] != 0.: |
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| 63 | integral += n.log( \ |
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| 64 | (lower_boundary_temperature \ |
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| 65 | + (geopotential_height - lower_boundaries[level]) \ |
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| 66 | * temperature_gradient[level]) / lower_boundary_temperature \ |
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| 67 | ) / temperature_gradient[level] |
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| 68 | else: |
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| 69 | integral += \ |
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| 70 | (geopotential_height -lower_boundaries[level]) \ |
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| 71 | / lower_boundary_temperature |
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| 72 | return sea_level_pressure * n.exp( -g / R * integral) |
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| 73 | |
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| 74 | def find_height(pressure,tolerance=1): |
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| 75 | residue = 1e6 |
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| 76 | top = upper_boundaries[-1] |
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| 77 | bottom = lower_boundaries[0] |
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| 78 | while abs(residue) > tolerance: |
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| 79 | midpoint = (top + bottom) / 2 |
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| 80 | midpoint_pressure = pressure_calculator(midpoint) |
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| 81 | residue = pressure - midpoint_pressure |
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| 82 | #print midpoint, top, bottom, midpoint_pressure, residue, abs(residue), tolerance |
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| 83 | # assuming p decreases with height... |
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| 84 | if residue > 0: |
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| 85 | top = midpoint |
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| 86 | else: |
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| 87 | bottom = midpoint |
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| 88 | return int(midpoint) |
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| 89 | |
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| 90 | |
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| 91 | |
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| 92 | |
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