Variables

From WikiROMS
Jump to navigationJump to search

Contents

A B C D E F G H I J K L M N O P Q R S T U V W X Y Z


A

B

C

D

E

F

G

H

Hz
Vertical level thicknesses, .
dimension = Hz(LBi:UBi,LBj:UBj,N(ng))
pointer = GRID(ng)%Hz
tangent = tl_Hz
adjoint = ad_Hz
units = meter
grid = ρ-points
option = SOLVE3D
routine = set_depths.F

I

Iend
Non-overlaping upper bound tile index in the i-direction. Its value depends on the tile rank (sub-domain patition).
routine = tile.h, get_tile.F
Istr
Non-overlaping lower bound tile index in the i-direction. Its value depends on the tile rank (sub-domain patition).
routine = tile.h, get_tile.F
idbio
Identification indeces for biological tracer variables, t(:,:,:,:,idbio(:)).
dimension = idbio(NBT)
option = BIOLOGY
routine = mod_scalars.F
idsed
Identification indeces for biological tracer variables, t(:,:,:,:,idsed(:)).
dimension = idsed(NST)
option = SEDIMENT
routine = mod_scalars.F
inert
Identification indeces for inert tracer variables, t(:,:,:,:,inert(:)).
dimension = inert(NPT)
option = T_PASSIVE
routine = mod_scalars.F
isalt
Tracer identification index for salinity, t(:,:,:,:,isalt).
routine = mod_scalars.F
itemp
Tracer identification index for potential temperature, t(:,:,:,:,itemp).
routine = mod_scalars.F

J

Jend
Non-overlaping upper bound tile index in the j-direction. Its value depends on the tile rank (sub-domain patition).
routine = tile.h, get_tile.F
Jstr
Non-overlaping lower bound tile index in the j-direction. Its value depends on the tile rank (sub-domain patition).
routine = tile.h, get_tile.F

K

L

LBi
Array lower bound dimension in the i-direction. In serial and shared-memory applications its value is LBi=-2 for East-West periodic grids or LBi=0 for non-periodic grids . In distributed-memory its value is a function of the tile partition, LBi=Istr-NghostPoints.
option = LOWER_BOUND_I
routine = get_bounds.F, get_tile.F
LBj
Array lower bound dimension in the j-direction. In serial and shared-memory applications its value is LBj=-2 for North-South periodic grids or LBj=0 for non-periodic grids . In distributed-memory its value is a function of the tile partition, LBj=Jstr-NghostPoints.
option = LOWER_BOUND_J
routine = get_bounds.F, get_tile.F

M

N

N
Number of vertical levels for each nested grid.
dimension = N(Ngrids)
routine = mod_param.F
NAT
Number of active tracer-type variables. Usually, it has a value of two for potential temperature and salinty.
option = SOLVE3D
routine = mod_param.F
NBT
Number of biological tracer-type variables.
option = BIOLOGY
routine = mod_param.F
NCS
Number of cohesive (mud) sediment tracer-type variables.
option = SEDIMENT
routine = mod_param.F
NghostPoints
Number of ghost points in the halo region used in distributed-memory configurations.
option = GHOST_POINTS
routine = mod_param.F
Ngrids
Number of nested and/or multiple connected grids to solve.
routine = mod_param.F
NNS
Number of non-cohesive (sand) sediment tracer-type variables.
option = SEDIMENT
routine = mod_param.F
NPT
Number of inert tracer-type variables. Currently, an inert passive tracer is one that it is only advected and diffused. Other processes are ignored. These tracers include, for example, dyes, pollutants, oil spills, etc.
option = T_PASSIVE
routine = mod_param.F
NST
Number of sediment tracer-type variables, NST=NCS+NNS.
option = SEDIMENT
routine = mod_param.F
NT
Total number of tracer-type variables for each nested grid. Currently, NT=NAT+NPT+NST+NBT.
dimension = NT(Ngrids)
option = SOLVE3D
routine = mod_param.F

O

P

Q

R

rho
In situ density anomaly computed as a function of potential temperature, salinity, and depth.
.
dimension = rho(LBi:UBi,LBj:UBj,N(ng))
pointer = OCEAN(ng)%rho
tangent = tl_rho
adjoint = ad_rho
units = kilogram meter-3
grid = ρ-points
option = SOLVE3D, NONLIN_EOS
routine = rho_eos.F
It can computed using a linear or nonlinear equation of state. The nonlinear equation of state is based on Jackett and McDougall (1992) polynomial expressions.

S

T

t
Tracer-type variables, .
dimension = t(LBi:UBi,LBj:UBj,N(ng),3,NT(ng))
pointer = OCEAN(ng)%t
tangent = tl_t
adjoint = ad_t
grid = ρ-points
option = SOLVE3D
routine = step3d_t.F
This array contains all the tracer fields. They are classified as active (potential temperature, salinity), inert (dyes, pollutants, oil spills, etc), passive (sediment, biology). There is a index identifier for each tracer field (see table below). Notice that salinity does not have physical units. Usually PSU is used to indicate that the practical salinity scale was used to determine conductivity.
Index Field Units CPP
itemp Potential temperature Celsius SOLVE3D
isalt Salinity None SALINITY
inert(1:NPT) NPT inert tracers kilogram meter-3 T_PASSIVE
idsed(1:NST) NST sediment tracers kilogram meter-3 SEDIMENT
idbio(1:NBT) NBT biology tracers millimole meter-3 BIOLOGY

U

UBi
Array upper bound dimension in the i-direction. In serial and shared-memory applications its value is govern by the value of UPPER_BOUND_I. In distributed-memory its value is a function of the tile partition, UBi=Iend+NghostPoints.
option = UPPER_BOUND_I
routine = get_bounds.F, get_tile.F
UBj
Array upper bound dimension in the j-direction. In serial and shared-memory applications its value is govern by the value of UPPER_BOUND_J. In distributed-memory its value is a function of the tile partition, UBj=Jend+NghostPoints.
option = UPPER_BOUND_J
routine = get_bounds.F, get_tile.F
u
Total momentum component in the ξ-direction, .
dimension = u(LBi:UBi,LBj:UBj,N(ng),2)
pointer = OCEAN(ng)%u
tangent = tl_u
adjoint = ad_u
units = meter second-1
grid = u-points
option = SOLVE3D
routine = step3d_uv.F
ubar
Vertically-integrated momentum component in the ξ-direction, .
dimension = ubar(LBi:UBi,LBj:UBj,3)
pointer = OCEAN(ng)%ubar
tangent = tl_ubar
adjoint = ad_ubar
units = meter second-1
grid = u-points
routine = step2d.F

V

v
3D momentum component in the η-direction, .
dimension = v(LBi:UBi,LBj:UBj,N(ng),2)
pointer = OCEAN(ng)%v
tangent = tl_u
adjoint = ad_u
units = meter second-1
grid = v-points
option = SOLVE3D
routine = step3d_uv.F
vbar
Vertically-integrated momentum component in the η-direction, .
dimension = vbar(LBi:UBi,LBj:UBj,3)
pointer = OCEAN(ng)%vbar
tangent = tl_vbar
adjoint = ad_vbar
units = meter second-1
grid = v-points
routine = step2d.F

W

W
Terrain-following, vertical velocity component, .
dimension = W(LBi:UBi,LBj:UBj,0:N(ng))
pointer = OCEAN(ng)%W
tangent = tl_W
adjoint = ad_W
units = meter3 second-1
sign = positive downwards (downwelling), negative upwards (upwelling)
grid = w-points
option = SOLVE3D
routine = omega.F
wvel
True vertical velocity component, . It is computed only for output purposes.
dimension = wvel(LBi:UBi,LBj:UBj,0:N(ng))
pointer = OCEAN(ng)%wvel
units = meter second-1
sign = positive downwards (downwelling), negative upwards (upwelling
grid = w-points
option = SOLVE3D
routine = wvelocity.F

X

Y

Z

zeta
Free-surface, .
dimension = zeta(LBi:UBi,LBj:UBj,3)
pointer = OCEAN(ng)%zeta
tangent = tl_zeta
adjoint = ad_zeta
units = meter
grid = ρ-points
routine = step2d.F
z_r
Actual depths of variables at ρ-points, .
dimension = z_r(LBi:UBi,LBj:UBj,N(ng))
pointer = GRID(ng)%z_r
units = meter
sign = negative downwards
grid = ρ-points
option = SOLVE3D
routine = set_depths.F
z_w
Actual depths of variables at w-points, .
dimension = z_w(LBi:UBi,LBj:UBj,0:N(ng))
pointer = GRID(ng)%z_w
units = meter
sign = negative downwards
grid = w-points
option = SOLVE3D
routine = set_depths.F