Article (Scientific journals)
Consistent Boundary Conditions for Age Calculations
Deleersnijder, Eric; Draoui, Insaf; Lambrechts, Jonathan et al.
2020In Water, 12 (5 : 1274)
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Abstract :
[en] Age can be evaluated at any time and position to understand transport processes taking place in the aquatic environment, including for reactive tracers. In the framework of the Constituent-oriented Age and Residence time Theory (CART), the age of a constituent or an aggregate of constituents, including the water itself, is usually defined as the time elapsed since leaving the boundary where the age is set or reset to zero. The age is evaluated as the ratio of the age concentration to the concentration, which are the solution of partial differential equations. The boundary conditions for the concentration and age concentration cannot be prescribed independently of each other. Instead, they must be derived from boundary conditions designed beforehand for the age distribution function (the histogram of the ages, the age theory core variable), even when this variable is not calculated explicitly. Consistent boundary conditions are established for insulating, departure and arrival boundaries. Gas exchanges through the water–air interface are also considered. Age fields ensuing from consistent boundary conditions and, occasionally, non-consistent ones are discussed, suggesting that the methodology advocated herein can be utilized by most age calculations, be they used for diagnosing the results of idealised models or realistic ones.
Disciplines :
Earth sciences & physical geography
Author, co-author :
Deleersnijder, Eric
Draoui, Insaf
Lambrechts, Jonathan
Legat, Vincent
Mouchet, Anne ;  Université de Liège - ULiège > Département d'astrophys., géophysique et océanographie (AGO) > GeoHydrodynamics and Environment Research (GHER)
Language :
English
Title :
Consistent Boundary Conditions for Age Calculations
Publication date :
2020
Journal title :
Water
eISSN :
2073-4441
Publisher :
MDPI, Basel, Switzerland
Special issue title :
Tracer and Timescale Methods for Passive and Reactive Transport in Fluid Flows
Volume :
12
Issue :
5 : 1274
Peer reviewed :
Peer Reviewed verified by ORBi
European Projects :
H2020 - 660893 - OCTANT - Modeling the chronology of deep ocean circulation changes during abrupt climate transitions
Funders :
CE - Commission Européenne [BE]
Available on ORBi :
since 03 July 2020

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