序号 |
变量 |
单位 |
1 | Times | DF4._netCDF4.Variable'>
|S1 Times(Time, DateStrLen)
unlimited dimensions: Time
current shape = (73, 19)
filling on, default _FillValue of use | 'netCDF4._netCDF4.Variable'>
|S1 Times(Time, DateStrLen)
unlimited dimensions: Time
current shape = (73, 19)
filling on, default _FillValue of use |
2 | XLAT | LATITUDE, SOUTH IS NEGATIVE
| degree_north
|
3 | XLONG | LONGITUDE, WEST IS NEGATIVE
| degree_east
|
4 | LU_INDEX | LAND USE CATEGORY
|
|
5 | ZNU | eta values on half (mass) levels
|
|
6 | ZNW | eta values on full (w) levels
|
|
7 | ZS | DEPTHS OF CENTERS OF SOIL LAYERS
| m
|
8 | DZS | THICKNESSES OF SOIL LAYERS
| m
|
9 | VAR_SSO | variance of subgrid-scale orography
| m2
|
10 | U | x-wind component
| m s-1
|
11 | V | y-wind component
| m s-1
|
12 | W | z-wind component
| m s-1
|
13 | PH | perturbation geopotential
| m2 s-2
|
14 | PHB | base-state geopotential
| m2 s-2
|
15 | T | perturbation potential temperature theta-t0
| K
|
16 | THM | either 1) pert moist pot temp=(1+Rv/Rd Qv)*(theta)-T0, or 2) pert dry pot temp=t
| K
|
17 | HFX_FORCE | SCM ideal surface sensible heat flux
| W m-2
|
18 | LH_FORCE | SCM ideal surface latent heat flux
| W m-2
|
19 | TSK_FORCE | SCM ideal surface skin temperature
| W m-2
|
20 | HFX_FORCE_TEND | SCM ideal surface sensible heat flux tendency
| W m-2 s-1
|
21 | LH_FORCE_TEND | SCM ideal surface latent heat flux tendency
| W m-2 s-1
|
22 | TSK_FORCE_TEND | SCM ideal surface skin temperature tendency
| W m-2 s-1
|
23 | MU | perturbation dry air mass in column
| Pa
|
24 | MUB | base state dry air mass in column
| Pa
|
25 | NEST_POS | -
| -
|
26 | P | perturbation pressure
| Pa
|
27 | PB | BASE STATE PRESSURE
| Pa
|
28 | FNM | upper weight for vertical stretching
|
|
29 | FNP | lower weight for vertical stretching
|
|
30 | RDNW | inverse d(eta) values between full (w) levels
|
|
31 | RDN | inverse d(eta) values between half (mass) levels
|
|
32 | DNW | d(eta) values between full (w) levels
|
|
33 | DN | d(eta) values between half (mass) levels
|
|
34 | CFN | extrapolation constant
|
|
35 | CFN1 | extrapolation constant
|
|
36 | THIS_IS_AN_IDEAL_RUN | T/F flag: this is an ARW ideal simulation
| -
|
37 | P_HYD | hydrostatic pressure
| Pa
|
38 | Q2 | QV at 2 M
| kg kg-1
|
39 | T2 | TEMP at 2 M
| K
|
40 | TH2 | POT TEMP at 2 M
| K
|
41 | PSFC | SFC PRESSURE
| Pa
|
42 | U10 | U at 10 M
| m s-1
|
43 | V10 | V at 10 M
| m s-1
|
44 | RDX | INVERSE X GRID LENGTH
|
|
45 | RDY | INVERSE Y GRID LENGTH
|
|
46 | RESM | TIME WEIGHT CONSTANT FOR SMALL STEPS
|
|
47 | ZETATOP | ZETA AT MODEL TOP
|
|
48 | CF1 | 2nd order extrapolation constant
|
|
49 | CF2 | 2nd order extrapolation constant
|
|
50 | CF3 | 2nd order extrapolation constant
|
|
51 | ITIMESTEP |
|
|
52 | XTIME | minutes since 2023-01-15 12:00:00
| minutes since 2023-01-15 12:00:00
|
53 | QVAPOR | Water vapor mixing ratio
| kg kg-1
|
54 | QCLOUD | Cloud water mixing ratio
| kg kg-1
|
55 | QRAIN | Rain water mixing ratio
| kg kg-1
|
56 | QICE | Ice mixing ratio
| kg kg-1
|
57 | QSNOW | Snow mixing ratio
| kg kg-1
|
58 | QGRAUP | Graupel mixing ratio
| kg kg-1
|
59 | SHDMAX | ANNUAL MAX VEG FRACTION
|
|
60 | SHDMIN | ANNUAL MIN VEG FRACTION
|
|
61 | SNOALB | ANNUAL MAX SNOW ALBEDO IN FRACTION
|
|
62 | TSLB | SOIL TEMPERATURE
| K
|
63 | SMOIS | SOIL MOISTURE
| m3 m-3
|
64 | SH2O | SOIL LIQUID WATER
| m3 m-3
|
65 | SMCREL | RELATIVE SOIL MOISTURE
|
|
66 | SEAICE | SEA ICE FLAG
|
|
67 | XICEM | SEA ICE FLAG (PREVIOUS STEP)
|
|
68 | SFROFF | SURFACE RUNOFF
| mm
|
69 | UDROFF | UNDERGROUND RUNOFF
| mm
|
70 | IVGTYP | DOMINANT VEGETATION CATEGORY
|
|
71 | ISLTYP | DOMINANT SOIL CATEGORY
|
|
72 | VEGFRA | VEGETATION FRACTION
|
|
73 | GRDFLX | GROUND HEAT FLUX
| W m-2
|
74 | ACGRDFLX | ACCUMULATED GROUND HEAT FLUX
| J m-2
|
75 | ACSNOM | ACCUMULATED MELTED SNOW
| kg m-2
|
76 | SNOW | SNOW WATER EQUIVALENT
| kg m-2
|
77 | SNOWH | PHYSICAL SNOW DEPTH
| m
|
78 | CANWAT | CANOPY WATER
| kg m-2
|
79 | SSTSK | SKIN SEA SURFACE TEMPERATURE
| K
|
80 | COSZEN | COS of SOLAR ZENITH ANGLE
| dimensionless
|
81 | LAI | LEAF AREA INDEX
| m-2/m-2
|
82 | VAR | OROGRAPHIC VARIANCE
|
|
83 | MAPFAC_M | Map scale factor on mass grid
|
|
84 | MAPFAC_U | Map scale factor on u-grid
|
|
85 | MAPFAC_V | Map scale factor on v-grid
|
|
86 | MAPFAC_MX | Map scale factor on mass grid, x direction
|
|
87 | MAPFAC_MY | Map scale factor on mass grid, y direction
|
|
88 | MAPFAC_UX | Map scale factor on u-grid, x direction
|
|
89 | MAPFAC_UY | Map scale factor on u-grid, y direction
|
|
90 | MAPFAC_VX | Map scale factor on v-grid, x direction
|
|
91 | MF_VX_INV | Inverse map scale factor on v-grid, x direction
|
|
92 | MAPFAC_VY | Map scale factor on v-grid, y direction
|
|
93 | F | Coriolis sine latitude term
| s-1
|
94 | E | Coriolis cosine latitude term
| s-1
|
95 | SINALPHA | Local sine of map rotation
|
|
96 | COSALPHA | Local cosine of map rotation
|
|
97 | HGT | Terrain Height
| m
|
98 | TSK | SURFACE SKIN TEMPERATURE
| K
|
99 | P_TOP | PRESSURE TOP OF THE MODEL
| Pa
|
100 | T00 | BASE STATE TEMPERATURE
| K
|
101 | P00 | BASE STATE PRESURE
| Pa
|
102 | TLP | BASE STATE LAPSE RATE
|
|
103 | TISO | TEMP AT WHICH THE BASE T TURNS CONST
| K
|
104 | TLP_STRAT | BASE STATE LAPSE RATE (DT/D(LN(P)) IN STRATOSPHERE
| K
|
105 | P_STRAT | BASE STATE PRESSURE AT BOTTOM OF STRATOSPHERE
| Pa
|
106 | MAX_MSTFX | Max map factor in domain
|
|
107 | MAX_MSTFY | Max map factor in domain
|
|
108 | RAINC | ACCUMULATED TOTAL CUMULUS PRECIPITATION
| mm
|
109 | RAINSH | ACCUMULATED SHALLOW CUMULUS PRECIPITATION
| mm
|
110 | RAINNC | ACCUMULATED TOTAL GRID SCALE PRECIPITATION
| mm
|
111 | SNOWNC | ACCUMULATED TOTAL GRID SCALE SNOW AND ICE
| mm
|
112 | GRAUPELNC | ACCUMULATED TOTAL GRID SCALE GRAUPEL
| mm
|
113 | HAILNC | ACCUMULATED TOTAL GRID SCALE HAIL
| mm
|
114 | CLDFRA | CLOUD FRACTION
|
|
115 | SWDOWN | DOWNWARD SHORT WAVE FLUX AT GROUND SURFACE
| W m-2
|
116 | GLW | DOWNWARD LONG WAVE FLUX AT GROUND SURFACE
| W m-2
|
117 | SWNORM | NORMAL SHORT WAVE FLUX AT GROUND SURFACE (SLOPE-DEPENDENT)
| W m-2
|
118 | ACSWUPT | ACCUMULATED UPWELLING SHORTWAVE FLUX AT TOP
| J m-2
|
119 | ACSWUPTC | ACCUMULATED UPWELLING CLEAR SKY SHORTWAVE FLUX AT TOP
| J m-2
|
120 | ACSWDNT | ACCUMULATED DOWNWELLING SHORTWAVE FLUX AT TOP
| J m-2
|
121 | ACSWDNTC | ACCUMULATED DOWNWELLING CLEAR SKY SHORTWAVE FLUX AT TOP
| J m-2
|
122 | ACSWUPB | ACCUMULATED UPWELLING SHORTWAVE FLUX AT BOTTOM
| J m-2
|
123 | ACSWUPBC | ACCUMULATED UPWELLING CLEAR SKY SHORTWAVE FLUX AT BOTTOM
| J m-2
|
124 | ACSWDNB | ACCUMULATED DOWNWELLING SHORTWAVE FLUX AT BOTTOM
| J m-2
|
125 | ACSWDNBC | ACCUMULATED DOWNWELLING CLEAR SKY SHORTWAVE FLUX AT BOTTOM
| J m-2
|
126 | ACLWUPT | ACCUMULATED UPWELLING LONGWAVE FLUX AT TOP
| J m-2
|
127 | ACLWUPTC | ACCUMULATED UPWELLING CLEAR SKY LONGWAVE FLUX AT TOP
| J m-2
|
128 | ACLWDNT | ACCUMULATED DOWNWELLING LONGWAVE FLUX AT TOP
| J m-2
|
129 | ACLWDNTC | ACCUMULATED DOWNWELLING CLEAR SKY LONGWAVE FLUX AT TOP
| J m-2
|
130 | ACLWUPB | ACCUMULATED UPWELLING LONGWAVE FLUX AT BOTTOM
| J m-2
|
131 | ACLWUPBC | ACCUMULATED UPWELLING CLEAR SKY LONGWAVE FLUX AT BOTTOM
| J m-2
|
132 | ACLWDNB | ACCUMULATED DOWNWELLING LONGWAVE FLUX AT BOTTOM
| J m-2
|
133 | ACLWDNBC | ACCUMULATED DOWNWELLING CLEAR SKY LONGWAVE FLUX AT BOTTOM
| J m-2
|
134 | SWUPT | INSTANTANEOUS UPWELLING SHORTWAVE FLUX AT TOP
| W m-2
|
135 | SWUPTC | INSTANTANEOUS UPWELLING CLEAR SKY SHORTWAVE FLUX AT TOP
| W m-2
|
136 | SWDNT | INSTANTANEOUS DOWNWELLING SHORTWAVE FLUX AT TOP
| W m-2
|
137 | SWDNTC | INSTANTANEOUS DOWNWELLING CLEAR SKY SHORTWAVE FLUX AT TOP
| W m-2
|
138 | SWUPB | INSTANTANEOUS UPWELLING SHORTWAVE FLUX AT BOTTOM
| W m-2
|
139 | SWUPBC | INSTANTANEOUS UPWELLING CLEAR SKY SHORTWAVE FLUX AT BOTTOM
| W m-2
|
140 | SWDNB | INSTANTANEOUS DOWNWELLING SHORTWAVE FLUX AT BOTTOM
| W m-2
|
141 | SWDNBC | INSTANTANEOUS DOWNWELLING CLEAR SKY SHORTWAVE FLUX AT BOTTOM
| W m-2
|
142 | LWUPT | INSTANTANEOUS UPWELLING LONGWAVE FLUX AT TOP
| W m-2
|
143 | LWUPTC | INSTANTANEOUS UPWELLING CLEAR SKY LONGWAVE FLUX AT TOP
| W m-2
|
144 | LWDNT | INSTANTANEOUS DOWNWELLING LONGWAVE FLUX AT TOP
| W m-2
|
145 | LWDNTC | INSTANTANEOUS DOWNWELLING CLEAR SKY LONGWAVE FLUX AT TOP
| W m-2
|
146 | LWUPB | INSTANTANEOUS UPWELLING LONGWAVE FLUX AT BOTTOM
| W m-2
|
147 | LWUPBC | INSTANTANEOUS UPWELLING CLEAR SKY LONGWAVE FLUX AT BOTTOM
| W m-2
|
148 | LWDNB | INSTANTANEOUS DOWNWELLING LONGWAVE FLUX AT BOTTOM
| W m-2
|
149 | LWDNBC | INSTANTANEOUS DOWNWELLING CLEAR SKY LONGWAVE FLUX AT BOTTOM
| W m-2
|
150 | OLR | TOA OUTGOING LONG WAVE
| W m-2
|
151 | XLAT_U | LATITUDE, SOUTH IS NEGATIVE
| degree_north
|
152 | XLONG_U | LONGITUDE, WEST IS NEGATIVE
| degree_east
|
153 | XLAT_V | LATITUDE, SOUTH IS NEGATIVE
| degree_north
|
154 | XLONG_V | LONGITUDE, WEST IS NEGATIVE
| degree_east
|
155 | ALBEDO | ALBEDO
| -
|
156 | CLAT | COMPUTATIONAL GRID LATITUDE, SOUTH IS NEGATIVE
| degree_north
|
157 | ALBBCK | BACKGROUND ALBEDO
|
|
158 | EMISS | SURFACE EMISSIVITY
|
|
159 | NOAHRES | RESIDUAL OF THE NOAH SURFACE ENERGY BUDGET
| W m{-2}
|
160 | TMN | SOIL TEMPERATURE AT LOWER BOUNDARY
| K
|
161 | XLAND | LAND MASK (1 FOR LAND, 2 FOR WATER)
|
|
162 | UST | U* IN SIMILARITY THEORY
| m s-1
|
163 | PBLH | PBL HEIGHT
| m
|
164 | HFX | UPWARD HEAT FLUX AT THE SURFACE
| W m-2
|
165 | QFX | UPWARD MOISTURE FLUX AT THE SURFACE
| kg m-2 s-1
|
166 | LH | LATENT HEAT FLUX AT THE SURFACE
| W m-2
|
167 | ACHFX | ACCUMULATED UPWARD HEAT FLUX AT THE SURFACE
| J m-2
|
168 | ACLHF | ACCUMULATED UPWARD LATENT HEAT FLUX AT THE SURFACE
| J m-2
|
169 | SNOWC | FLAG INDICATING SNOW COVERAGE (1 FOR SNOW COVER)
|
|
170 | SR | fraction of frozen precipitation
| -
|
171 | SAVE_TOPO_FROM_REAL | 1=original topo from real/0=topo modified by WRF
| flag
|
172 | ISEEDARR_SPPT | Array to hold seed for restart, SPPT
|
|
173 | ISEEDARR_SKEBS | Array to hold seed for restart, SKEBS
|
|
174 | ISEEDARR_RAND_PERTURB | Array to hold seed for restart, RAND_PERT
|
|
175 | ISEEDARRAY_SPP_CONV | Array to hold seed for restart, RAND_PERT2
|
|
176 | ISEEDARRAY_SPP_PBL | Array to hold seed for restart, RAND_PERT3
|
|
177 | ISEEDARRAY_SPP_LSM | Array to hold seed for restart, RAND_PERT4
|
|
178 | C1H | half levels, c1h = d bf / d eta, using znw
| Dimensionless
|
179 | C2H | half levels, c2h = (1-c1h)*(p0-pt)
| Pa
|
180 | C1F | full levels, c1f = d bf / d eta, using znu
| Dimensionless
|
181 | C2F | full levels, c2f = (1-c1f)*(p0-pt)
| Pa
|
182 | C3H | half levels, c3h = bh
| Dimensionless
|
183 | C4H | half levels, c4h = (eta-bh)*(p0-pt)+pt, using znu
| Pa
|
184 | C3F | full levels, c3f = bf
| Dimensionless
|
185 | C4F | full levels, c4f = (eta-bf)*(p0-pt)+pt, using znw
| Pa
|
186 | PCB | base state dry air mass in column
| Pa
|
187 | PC | perturbation dry air mass in column
| Pa
|
188 | LANDMASK | LAND MASK (1 FOR LAND, 0 FOR WATER)
|
|
189 | LAKEMASK | LAKE MASK (1 FOR LAKE, 0 FOR NON-LAKE)
|
|
190 | SST | SEA SURFACE TEMPERATURE
| K
|
191 | SST_INPUT | SEA SURFACE TEMPERATURE FROM WRFLOWINPUT FILE
| K
|