218 |
numdiags set to 1. In order for the User to enable more than 1 two-dimensional diagnostic, |
numdiags set to 1. In order for the User to enable more than 1 two-dimensional diagnostic, |
219 |
the size of the diagnostics common must be expanded to accomodate the desired diagnostics. |
the size of the diagnostics common must be expanded to accomodate the desired diagnostics. |
220 |
This can be accomplished by manually changing the parameter numdiags in the |
This can be accomplished by manually changing the parameter numdiags in the |
221 |
file \filelink{pkg/diagnostics/diagnostics\_SIZE.h}{pkg-diagnostics-diagnostics_SIZE.h}. |
file \filelink{pkg/diagnostics/diagnostics\_SIZE.h}{pkg-diagnostics-diagnostics\_SIZE.h}. |
222 |
numdiags should be set greater than or equal to the sum of all the diagnostics activated |
numdiags should be set greater than or equal to the sum of all the diagnostics activated |
223 |
for output each multiplied by the number of levels defined for that diagnostic quantity. |
for output each multiplied by the number of levels defined for that diagnostic quantity. |
224 |
This is illustrated in the example below: |
This is illustrated in the example below: |
270 |
\subsubsection{GCM Diagnostic Menu} |
\subsubsection{GCM Diagnostic Menu} |
271 |
\label{sec:diagnostics:menu} |
\label{sec:diagnostics:menu} |
272 |
|
|
273 |
\begin{tabular}{lllll} |
\begin{tabular}{llll} |
274 |
\hline\hline |
\hline\hline |
275 |
N & NAME & UNITS & LEVELS & DESCRIPTION \\ |
NAME & UNITS & LEVELS & DESCRIPTION \\ |
276 |
\hline |
\hline |
277 |
|
|
278 |
&\\ |
&\\ |
279 |
84 & SDIAG1 & & 1 |
SDIAG1 & & 1 |
280 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
281 |
{User-Defined Surface Diagnostic-1} |
{User-Defined Surface Diagnostic-1} |
282 |
\end{minipage}\\ |
\end{minipage}\\ |
283 |
85 & SDIAG2 & & 1 |
SDIAG2 & & 1 |
284 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
285 |
{User-Defined Surface Diagnostic-2} |
{User-Defined Surface Diagnostic-2} |
286 |
\end{minipage}\\ |
\end{minipage}\\ |
287 |
86 & UDIAG1 & & Nrphys |
UDIAG1 & & Nrphys |
288 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
289 |
{User-Defined Upper-Air Diagnostic-1} |
{User-Defined Upper-Air Diagnostic-1} |
290 |
\end{minipage}\\ |
\end{minipage}\\ |
291 |
87 & UDIAG2 & & Nrphys |
UDIAG2 & & Nrphys |
292 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
293 |
{User-Defined Upper-Air Diagnostic-2} |
{User-Defined Upper-Air Diagnostic-2} |
294 |
\end{minipage}\\ |
\end{minipage}\\ |
295 |
124& SDIAG3 & & 1 |
SDIAG3 & & 1 |
296 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
297 |
{User-Defined Surface Diagnostic-3} |
{User-Defined Surface Diagnostic-3} |
298 |
\end{minipage}\\ |
\end{minipage}\\ |
299 |
125& SDIAG4 & & 1 |
SDIAG4 & & 1 |
300 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
301 |
{User-Defined Surface Diagnostic-4} |
{User-Defined Surface Diagnostic-4} |
302 |
\end{minipage}\\ |
\end{minipage}\\ |
303 |
126& SDIAG5 & & 1 |
SDIAG5 & & 1 |
304 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
305 |
{User-Defined Surface Diagnostic-5} |
{User-Defined Surface Diagnostic-5} |
306 |
\end{minipage}\\ |
\end{minipage}\\ |
307 |
127& SDIAG6 & & 1 |
SDIAG6 & & 1 |
308 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
309 |
{User-Defined Surface Diagnostic-6} |
{User-Defined Surface Diagnostic-6} |
310 |
\end{minipage}\\ |
\end{minipage}\\ |
311 |
128& SDIAG7 & & 1 |
SDIAG7 & & 1 |
312 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
313 |
{User-Defined Surface Diagnostic-7} |
{User-Defined Surface Diagnostic-7} |
314 |
\end{minipage}\\ |
\end{minipage}\\ |
315 |
129& SDIAG8 & & 1 |
SDIAG8 & & 1 |
316 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
317 |
{User-Defined Surface Diagnostic-8} |
{User-Defined Surface Diagnostic-8} |
318 |
\end{minipage}\\ |
\end{minipage}\\ |
319 |
130& SDIAG9 & & 1 |
SDIAG9 & & 1 |
320 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
321 |
{User-Defined Surface Diagnostic-9} |
{User-Defined Surface Diagnostic-9} |
322 |
\end{minipage}\\ |
\end{minipage}\\ |
323 |
131& SDIAG10 & & 1 |
SDIAG10 & & 1 |
324 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
325 |
{User-Defined Surface Diagnostic-1-} |
{User-Defined Surface Diagnostic-1-} |
326 |
\end{minipage}\\ |
\end{minipage}\\ |
327 |
132& UDIAG3 & & Nrphys |
UDIAG3 & & Nrphys |
328 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
329 |
{User-Defined Multi-Level Diagnostic-3} |
{User-Defined Multi-Level Diagnostic-3} |
330 |
\end{minipage}\\ |
\end{minipage}\\ |
331 |
133& UDIAG4 & & Nrphys |
UDIAG4 & & Nrphys |
332 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
333 |
{User-Defined Multi-Level Diagnostic-4} |
{User-Defined Multi-Level Diagnostic-4} |
334 |
\end{minipage}\\ |
\end{minipage}\\ |
335 |
134& UDIAG5 & & Nrphys |
UDIAG5 & & Nrphys |
336 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
337 |
{User-Defined Multi-Level Diagnostic-5} |
{User-Defined Multi-Level Diagnostic-5} |
338 |
\end{minipage}\\ |
\end{minipage}\\ |
339 |
135& UDIAG6 & & Nrphys |
UDIAG6 & & Nrphys |
340 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
341 |
{User-Defined Multi-Level Diagnostic-6} |
{User-Defined Multi-Level Diagnostic-6} |
342 |
\end{minipage}\\ |
\end{minipage}\\ |
343 |
136& UDIAG7 & & Nrphys |
UDIAG7 & & Nrphys |
344 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
345 |
{User-Defined Multi-Level Diagnostic-7} |
{User-Defined Multi-Level Diagnostic-7} |
346 |
\end{minipage}\\ |
\end{minipage}\\ |
347 |
137& UDIAG8 & & Nrphys |
UDIAG8 & & Nrphys |
348 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
349 |
{User-Defined Multi-Level Diagnostic-8} |
{User-Defined Multi-Level Diagnostic-8} |
350 |
\end{minipage}\\ |
\end{minipage}\\ |
351 |
138& UDIAG9 & & Nrphys |
UDIAG9 & & Nrphys |
352 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
353 |
{User-Defined Multi-Level Diagnostic-9} |
{User-Defined Multi-Level Diagnostic-9} |
354 |
\end{minipage}\\ |
\end{minipage}\\ |
355 |
139& UDIAG10 & & Nrphys |
UDIAG10 & & Nrphys |
356 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
357 |
{User-Defined Multi-Level Diagnostic-10} |
{User-Defined Multi-Level Diagnostic-10} |
358 |
\end{minipage}\\ |
\end{minipage}\\ |
359 |
|
SDIAGC & & 1 |
360 |
|
&\begin{minipage}[t]{3in} |
361 |
|
{User-Defined Counted Surface Diagnostic} |
362 |
|
\end{minipage}\\ |
363 |
|
SDIAGCC & & 1 |
364 |
|
&\begin{minipage}[t]{3in} |
365 |
|
{User-Defined Counted Surface Diagnostic Counter} |
366 |
|
\end{minipage}\\ |
367 |
|
ETAN & $(hPa,m)$ & 1 |
368 |
|
&\begin{minipage}[t]{3in} |
369 |
|
{Perturbation of Surface (pressure, height)} |
370 |
|
\end{minipage}\\ |
371 |
|
ETANSQ & $(hPa^2,m^2)$ & 1 |
372 |
|
&\begin{minipage}[t]{3in} |
373 |
|
{Square of Perturbation of Surface (pressure, height)} |
374 |
|
\end{minipage}\\ |
375 |
|
DETADT2 & ${r-unit}^2/s^2$ & 1 |
376 |
|
&\begin{minipage}[t]{3in} |
377 |
|
{Square of Eta (Surf.P,SSH) Tendency} |
378 |
|
\end{minipage}\\ |
379 |
|
THETA & $deg K$ & Nr |
380 |
|
&\begin{minipage}[t]{3in} |
381 |
|
{Potential Temperature} |
382 |
|
\end{minipage}\\ |
383 |
|
SST & $deg K$ & 1 |
384 |
|
&\begin{minipage}[t]{3in} |
385 |
|
{Sea Surface Temperature} |
386 |
|
\end{minipage}\\ |
387 |
|
SALT & $g/kg$ & Nr |
388 |
|
&\begin{minipage}[t]{3in} |
389 |
|
{Salt (or Water Vapor Mixing Ratio)} |
390 |
|
\end{minipage}\\ |
391 |
|
SSS & $g/kg$ & 1 |
392 |
|
&\begin{minipage}[t]{3in} |
393 |
|
{Sea Surface Salinity} |
394 |
|
\end{minipage}\\ |
395 |
|
SALTanom & $g/kg$ & Nr |
396 |
|
&\begin{minipage}[t]{3in} |
397 |
|
{Salt anomaly (=SALT-35)} |
398 |
|
\end{minipage}\\ |
399 |
\end{tabular} |
\end{tabular} |
400 |
\vspace{1.5in} |
\vspace{1.5in} |
401 |
\vfill |
\vfill |
402 |
|
|
403 |
\newpage |
\newpage |
404 |
\vspace*{\fill} |
\vspace*{\fill} |
405 |
\begin{tabular}{lllll} |
\begin{tabular}{llll} |
406 |
\hline\hline |
\hline\hline |
407 |
N & NAME & UNITS & LEVELS & DESCRIPTION \\ |
NAME & UNITS & LEVELS & DESCRIPTION \\ |
408 |
\hline |
\hline |
409 |
|
|
410 |
&\\ |
&\\ |
411 |
238& ETAN & $(hPa,m)$ & 1 |
UVEL & $m/sec$ & Nr |
|
&\begin{minipage}[t]{3in} |
|
|
{Perturbation of Surface (pressure, height)} |
|
|
\end{minipage}\\ |
|
|
239& ETANSQ & $(hPa^2,m^2)$ & 1 |
|
412 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
413 |
{Square of Perturbation of Surface (pressure, height)} |
{U-Velocity} |
|
\end{minipage}\\ |
|
|
240& THETA & $deg K$ & Nr |
|
|
&\begin{minipage}[t]{3in} |
|
|
{Potential Temperature} |
|
414 |
\end{minipage}\\ |
\end{minipage}\\ |
415 |
241& SALT & $g/kg$ & Nr |
VVEL & $m/sec$ & Nr |
416 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
417 |
{Salt (or Water Vapor Mixing Ratio)} |
{V-Velocity} |
418 |
\end{minipage}\\ |
\end{minipage}\\ |
419 |
242& UVEL & $m/sec$ & Nr |
UVEL\_k2 & $m/sec$ & 1 |
420 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
421 |
{U-Velocity} |
{U-Velocity} |
422 |
\end{minipage}\\ |
\end{minipage}\\ |
423 |
243& VVEL & $m/sec$ & Nr |
VVEL\_k2 & $m/sec$ & 1 |
424 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
425 |
{V-Velocity} |
{V-Velocity} |
426 |
\end{minipage}\\ |
\end{minipage}\\ |
427 |
244& WVEL & $m/sec$ & Nr |
WVEL & $m/sec$ & Nr |
428 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
429 |
{Vertical-Velocity} |
{Vertical-Velocity} |
430 |
\end{minipage}\\ |
\end{minipage}\\ |
431 |
245& THETASQ & $deg^2$ & Nr |
THETASQ & $deg^2$ & Nr |
432 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
433 |
{Square of Potential Temperature} |
{Square of Potential Temperature} |
434 |
\end{minipage}\\ |
\end{minipage}\\ |
435 |
246& SALTSQ & $g^2/{kg}^2$ & Nr |
SALTSQ & $g^2/{kg}^2$ & Nr |
436 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
437 |
{Square of Salt (or Water Vapor Mixing Ratio)} |
{Square of Salt (or Water Vapor Mixing Ratio)} |
438 |
\end{minipage}\\ |
\end{minipage}\\ |
439 |
247& UVELSQ & $m^2/sec^2$ & Nr |
SALTSQan & $g^2/{kg}^2$ & Nr |
440 |
|
&\begin{minipage}[t]{3in} |
441 |
|
{Square of Salt anomaly (=SALT-35)} |
442 |
|
\end{minipage}\\ |
443 |
|
UVELSQ & $m^2/sec^2$ & Nr |
444 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
445 |
{Square of U-Velocity} |
{Square of U-Velocity} |
446 |
\end{minipage}\\ |
\end{minipage}\\ |
447 |
248& VVELSQ & $m^2/sec^2$ & Nr |
VVELSQ & $m^2/sec^2$ & Nr |
448 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
449 |
{Square of V-Velocity} |
{Square of V-Velocity} |
450 |
\end{minipage}\\ |
\end{minipage}\\ |
451 |
249& WVELSQ & $m^2/sec^2$ & Nr |
WVELSQ & $m^2/sec^2$ & Nr |
452 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
453 |
{Square of Vertical-Velocity} |
{Square of Vertical-Velocity} |
454 |
\end{minipage}\\ |
\end{minipage}\\ |
455 |
250& UVELVVEL & $m^2/sec^2$ & Nr |
UV\_VEL\_C & $m^2/sec^2$ & Nr |
456 |
|
&\begin{minipage}[t]{3in} |
457 |
|
{Meridional Transport of Zonal Momentum (cell center)} |
458 |
|
\end{minipage}\\ |
459 |
|
UV\_VEL\_Z & $m^2/sec^2$ & Nr |
460 |
|
&\begin{minipage}[t]{3in} |
461 |
|
{Meridional Transport of Zonal Momentum (corner)} |
462 |
|
\end{minipage}\\ |
463 |
|
WU\_VEL & $m^2/sec^2$ & Nr |
464 |
|
&\begin{minipage}[t]{3in} |
465 |
|
{Vertical Transport of Zonal Momentum (cell center)} |
466 |
|
\end{minipage}\\ |
467 |
|
WV\_VEL & $m^2/sec^2$ & Nr |
468 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
469 |
{Meridional Transport of Zonal Momentum} |
{Vertical Transport of Meridional Momentum (cell center)} |
470 |
\end{minipage}\\ |
\end{minipage}\\ |
471 |
251& UVELMASS & $m/sec$ & Nr |
UVELMASS & $m/sec$ & Nr |
472 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
473 |
{Zonal Mass-Weighted Component of Velocity} |
{Zonal Mass-Weighted Component of Velocity} |
474 |
\end{minipage}\\ |
\end{minipage}\\ |
475 |
252& VVELMASS & $m/sec$ & Nr |
VVELMASS & $m/sec$ & Nr |
476 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
477 |
{Meridional Mass-Weighted Component of Velocity} |
{Meridional Mass-Weighted Component of Velocity} |
478 |
\end{minipage}\\ |
\end{minipage}\\ |
479 |
253& WVELMASS & $m/sec$ & Nr |
WVELMASS & $m/sec$ & Nr |
480 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
481 |
{Vertical Mass-Weighted Component of Velocity} |
{Vertical Mass-Weighted Component of Velocity} |
482 |
\end{minipage}\\ |
\end{minipage}\\ |
483 |
254& UTHMASS & $m-deg/sec$ & Nr |
UTHMASS & $m-deg/sec$ & Nr |
484 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
485 |
{Zonal Mass-Weight Transp of Pot Temp} |
{Zonal Mass-Weight Transp of Pot Temp} |
486 |
\end{minipage}\\ |
\end{minipage}\\ |
487 |
255& VTHMASS & $m-deg/sec$ & Nr |
VTHMASS & $m-deg/sec$ & Nr |
488 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
489 |
{Meridional Mass-Weight Transp of Pot Temp} |
{Meridional Mass-Weight Transp of Pot Temp} |
490 |
\end{minipage}\\ |
\end{minipage}\\ |
491 |
256& WTHMASS & $m-deg/sec$ & Nr |
WTHMASS & $m-deg/sec$ & Nr |
492 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
493 |
{Vertical Mass-Weight Transp of Pot Temp} |
{Vertical Mass-Weight Transp of Pot Temp} |
494 |
\end{minipage}\\ |
\end{minipage}\\ |
495 |
257& USLTMASS & $m-kg/sec-kg$ & Nr |
USLTMASS & $m-kg/sec-kg$ & Nr |
496 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
497 |
{Zonal Mass-Weight Transp of Salt (or W.Vap Mix Rat.)} |
{Zonal Mass-Weight Transp of Salt (or W.Vap Mix Rat.)} |
498 |
\end{minipage}\\ |
\end{minipage}\\ |
499 |
258& VSLTMASS & $m-kg/sec-kg$ & Nr |
VSLTMASS & $m-kg/sec-kg$ & Nr |
500 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
501 |
{Meridional Mass-Weight Transp of Salt (or W.Vap Mix Rat.)} |
{Meridional Mass-Weight Transp of Salt (or W.Vap Mix Rat.)} |
502 |
\end{minipage}\\ |
\end{minipage}\\ |
503 |
259& WSLTMASS & $m-kg/sec-kg$ & Nr |
WSLTMASS & $m-kg/sec-kg$ & Nr |
504 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
505 |
{Vertical Mass-Weight Transp of Salt (or W.Vap Mix Rat.)} |
{Vertical Mass-Weight Transp of Salt (or W.Vap Mix Rat.)} |
506 |
\end{minipage}\\ |
\end{minipage}\\ |
507 |
260& UVELTH & $m-deg/sec$ & Nr |
UVELTH & $m-deg/sec$ & Nr |
508 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
509 |
{Zonal Transp of Pot Temp} |
{Zonal Transp of Pot Temp} |
510 |
\end{minipage}\\ |
\end{minipage}\\ |
511 |
261& VVELTH & $m-deg/sec$ & Nr |
VVELTH & $m-deg/sec$ & Nr |
512 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
513 |
{Meridional Transp of Pot Temp} |
{Meridional Transp of Pot Temp} |
514 |
\end{minipage}\\ |
\end{minipage}\\ |
515 |
262& WVELTH & $m-deg/sec$ & Nr |
WVELTH & $m-deg/sec$ & Nr |
516 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
517 |
{Vertical Transp of Pot Temp} |
{Vertical Transp of Pot Temp} |
518 |
\end{minipage}\\ |
\end{minipage}\\ |
519 |
263& UVELSLT & $m-kg/sec-kg$ & Nr |
UVELSLT & $m-kg/sec-kg$ & Nr |
520 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
521 |
{Zonal Transp of Salt (or W.Vap Mix Rat.)} |
{Zonal Transp of Salt (or W.Vap Mix Rat.)} |
522 |
\end{minipage}\\ |
\end{minipage}\\ |
523 |
264& VVELSLT & $m-kg/sec-kg$ & Nr |
VVELSLT & $m-kg/sec-kg$ & Nr |
524 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
525 |
{Meridional Transp of Salt (or W.Vap Mix Rat.)} |
{Meridional Transp of Salt (or W.Vap Mix Rat.)} |
526 |
\end{minipage}\\ |
\end{minipage}\\ |
527 |
265& WVELSLT & $m-kg/sec-kg$ & Nr |
WVELSLT & $m-kg/sec-kg$ & Nr |
528 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
529 |
{Vertical Transp of Salt (or W.Vap Mix Rat.)} |
{Vertical Transp of Salt (or W.Vap Mix Rat.)} |
530 |
\end{minipage}\\ |
\end{minipage}\\ |
531 |
275& WSLTMASS & $m-kg/sec-kg$ & Nr |
\end{tabular} |
532 |
|
\vspace{1.5in} |
533 |
|
\vfill |
534 |
|
|
535 |
|
\newpage |
536 |
|
\vspace*{\fill} |
537 |
|
\begin{tabular}{llll} |
538 |
|
\hline\hline |
539 |
|
NAME & UNITS & LEVELS & DESCRIPTION \\ |
540 |
|
\hline |
541 |
|
|
542 |
|
&\\ |
543 |
|
RHOAnoma & $kg/m^3 $ & Nr |
544 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
545 |
{Vertical Mass-Weight Transp of Salt (or W.Vap Mix Rat.)} |
{Density Anomaly (=Rho-rhoConst)} |
546 |
|
\end{minipage}\\ |
547 |
|
RHOANOSQ & $kg^2/m^6$ & Nr |
548 |
|
&\begin{minipage}[t]{3in} |
549 |
|
{Square of Density Anomaly (=(Rho-rhoConst))} |
550 |
\end{minipage}\\ |
\end{minipage}\\ |
551 |
298& VISCA4 & $m^4/sec$ & 1 |
URHOMASS & $kg/m^2/s$ & Nr |
552 |
|
&\begin{minipage}[t]{3in} |
553 |
|
{Zonal Transport of Density} |
554 |
|
\end{minipage}\\ |
555 |
|
VRHOMASS & $kg/m^2/s$ & Nr |
556 |
|
&\begin{minipage}[t]{3in} |
557 |
|
{Meridional Transport of Density} |
558 |
|
\end{minipage}\\ |
559 |
|
WRHOMASS & $kg/m^2/s$ & Nr |
560 |
|
&\begin{minipage}[t]{3in} |
561 |
|
{Vertical Transport of Potential Density} |
562 |
|
\end{minipage}\\ |
563 |
|
PHIHYD & $m^2/s^2 $ & Nr |
564 |
|
&\begin{minipage}[t]{3in} |
565 |
|
{Hydrostatic (ocean) pressure / (atmos) geo-Potential} |
566 |
|
\end{minipage}\\ |
567 |
|
PHIHYDSQ & $m^4/s^4 $ & Nr |
568 |
|
&\begin{minipage}[t]{3in} |
569 |
|
{Square of Hyd. (ocean) press / (atmos) geoPotential} |
570 |
|
\end{minipage}\\ |
571 |
|
PHIBOT & $m^2/s^2 $ & Nr |
572 |
|
&\begin{minipage}[t]{3in} |
573 |
|
{ocean bottom pressure / top. atmos geo-Potential} |
574 |
|
\end{minipage}\\ |
575 |
|
PHIBOTSQ & $m^4/s^4 $ & Nr |
576 |
|
&\begin{minipage}[t]{3in} |
577 |
|
{Square of ocean bottom pressure / top. geo-Potential} |
578 |
|
\end{minipage}\\ |
579 |
|
DRHODR & $kg/m^3/{r-unit}$ & Nr |
580 |
|
&\begin{minipage}[t]{3in} |
581 |
|
{Stratification: d.Sigma/dr} |
582 |
|
\end{minipage}\\ |
583 |
|
VISCA4 & $m^4/sec$ & 1 |
584 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
585 |
{Biharmonic Viscosity Coefficient} |
{Biharmonic Viscosity Coefficient} |
586 |
\end{minipage}\\ |
\end{minipage}\\ |
587 |
299& VISCAH & $m^2/sec$ & 1 |
VISCAH & $m^2/sec$ & 1 |
588 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
589 |
{Harmonic Viscosity Coefficient} |
{Harmonic Viscosity Coefficient} |
590 |
\end{minipage}\\ |
\end{minipage}\\ |
591 |
300& DRHODR & $kg/m^3/{r-unit}$ & Nr |
TAUX & $N/m^2 $ & 1 |
592 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
593 |
{Stratification: d.Sigma/dr} |
{zonal surface wind stress, >0 increases uVel} |
594 |
\end{minipage}\\ |
\end{minipage}\\ |
595 |
301& DETADT2 & ${r-unit}^2/s^2$ & 1 |
TAUY & $N/m^2 $ & 1 |
596 |
&\begin{minipage}[t]{3in} |
&\begin{minipage}[t]{3in} |
597 |
{Square of Eta (Surf.P,SSH) Tendency} |
{meridional surf. wind stress, >0 increases vVel} |
598 |
|
\end{minipage}\\ |
599 |
|
TFLUX & $W/m^2 $ & 1 |
600 |
|
&\begin{minipage}[t]{3in} |
601 |
|
{net surface heat flux, >0 increases theta} |
602 |
|
\end{minipage}\\ |
603 |
|
TRELAX & $W/m^2 $ & 1 |
604 |
|
&\begin{minipage}[t]{3in} |
605 |
|
{surface temperature relaxation, >0 increases theta} |
606 |
|
\end{minipage}\\ |
607 |
|
TICE & $W/m^2 $ & 1 |
608 |
|
&\begin{minipage}[t]{3in} |
609 |
|
{heat from melt/freeze of sea-ice, >0 increases theta} |
610 |
|
\end{minipage}\\ |
611 |
|
SFLUX & $g/m^2/s $ & 1 |
612 |
|
&\begin{minipage}[t]{3in} |
613 |
|
{net surface salt flux, >0 increases salt} |
614 |
|
\end{minipage}\\ |
615 |
|
SRELAX & $g/m^2/s $ & 1 |
616 |
|
&\begin{minipage}[t]{3in} |
617 |
|
{surface salinity relaxation, >0 increases salt} |
618 |
|
\end{minipage}\\ |
619 |
|
PRESSURE & $Pa $ & Nr |
620 |
|
&\begin{minipage}[t]{3in} |
621 |
|
{Atmospheric Pressure (Pa)} |
622 |
|
\end{minipage}\\ |
623 |
|
ADVr\_TH & $K.Pa.m^2/s $ & Nr |
624 |
|
&\begin{minipage}[t]{3in} |
625 |
|
{Vertical Advective Flux of Pot.Temperature} |
626 |
|
\end{minipage}\\ |
627 |
|
ADVx\_TH & $K.Pa.m^2/s $ & Nr |
628 |
|
&\begin{minipage}[t]{3in} |
629 |
|
{Zonal Advective Flux of Pot.Temperature} |
630 |
|
\end{minipage}\\ |
631 |
|
ADVy\_TH & $K.Pa.m^2/s $ & Nr |
632 |
|
&\begin{minipage}[t]{3in} |
633 |
|
{Meridional Advective Flux of Pot.Temperature} |
634 |
|
\end{minipage}\\ |
635 |
|
DFrE\_TH & $K.Pa.m^2/s $ & Nr |
636 |
|
&\begin{minipage}[t]{3in} |
637 |
|
{Vertical Diffusive Flux of Pot.Temperature (Explicit part)} |
638 |
|
\end{minipage}\\ |
639 |
|
DIFx\_TH & $K.Pa.m^2/s $ & Nr |
640 |
|
&\begin{minipage}[t]{3in} |
641 |
|
{Zonal Diffusive Flux of Pot.Temperature} |
642 |
|
\end{minipage}\\ |
643 |
|
DIFy\_TH & $K.Pa.m^2/s $ & Nr |
644 |
|
&\begin{minipage}[t]{3in} |
645 |
|
{Meridional Diffusive Flux of Pot.Temperature} |
646 |
|
\end{minipage}\\ |
647 |
|
DFrI\_TH & $K.Pa.m^2/s $ & Nr |
648 |
|
&\begin{minipage}[t]{3in} |
649 |
|
{Vertical Diffusive Flux of Pot.Temperature (Implicit part)} |
650 |
|
\end{minipage}\\ |
651 |
|
ADVr\_SLT & $g/kg.Pa.m^2/s$ & Nr |
652 |
|
&\begin{minipage}[t]{3in} |
653 |
|
{Vertical Advective Flux of Water-Vapor} |
654 |
|
\end{minipage}\\ |
655 |
|
ADVx\_SLT & $g/kg.Pa.m^2/s$ & Nr |
656 |
|
&\begin{minipage}[t]{3in} |
657 |
|
{Zonal Advective Flux of Water-Vapor} |
658 |
|
\end{minipage}\\ |
659 |
|
ADVy\_SLT & $g/kg.Pa.m^2/s$ & Nr |
660 |
|
&\begin{minipage}[t]{3in} |
661 |
|
{Meridional Advective Flux of Water-Vapor} |
662 |
|
\end{minipage}\\ |
663 |
|
\end{tabular} |
664 |
|
\vspace{1.5in} |
665 |
|
\vfill |
666 |
|
|
667 |
|
\newpage |
668 |
|
\vspace*{\fill} |
669 |
|
\begin{tabular}{llll} |
670 |
|
\hline\hline |
671 |
|
NAME & UNITS & LEVELS & DESCRIPTION \\ |
672 |
|
\hline |
673 |
|
|
674 |
|
&\\ |
675 |
|
DFrE\_SLT & $g/kg.Pa.m^2/s$ & Nr |
676 |
|
&\begin{minipage}[t]{3in} |
677 |
|
{Vertical Diffusive Flux of Water-Vapor (Explicit part)} |
678 |
|
\end{minipage}\\ |
679 |
|
DIFx\_SLT & $g/kg.Pa.m^2/s$ & Nr |
680 |
|
&\begin{minipage}[t]{3in} |
681 |
|
{Zonal Diffusive Flux of Water-Vapor} |
682 |
|
\end{minipage}\\ |
683 |
|
DIFy\_SLT & $g/kg.Pa.m^2/s$ & Nr |
684 |
|
&\begin{minipage}[t]{3in} |
685 |
|
{Meridional Diffusive Flux of Water-Vapor} |
686 |
|
\end{minipage}\\ |
687 |
|
DFrI\_SLT & $g/kg.Pa.m^2/s$ & Nr |
688 |
|
&\begin{minipage}[t]{3in} |
689 |
|
{Vertical Diffusive Flux of Water-Vapor (Implicit part)} |
690 |
\end{minipage}\\ |
\end{minipage}\\ |
691 |
\end{tabular} |
\end{tabular} |
692 |
\vspace{1.5in} |
\vspace{1.5in} |