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CANARINA:
DESCAR:
INPUT DATA:
ALGORITHMS:
POLLUTANTS:
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Mathematical algorithms:
The application uses two different mathematical models: Buoyant jet model or Stratified model. The Buoyant model is ideal for pollutant discharges located in the proximities of the coast and in rivers, (using little depth). This model is based on a time-independent Gaussian equation which simulates the pollutant dispersion in the water. The Stratified model takes into account the formation of the picnocline in the sea. This model is ideal for outfall discharges in the sea (using a lot of depth). The program calculates the pollutant concentration in each point of the water considering each one of the pollutant sources and the conditions of the water.
1. Buoyant jet model A type of mathematical model that has been developed for sumerged round buoyant jets is the length-scale model. Discharges flows can be divided into different regimes each dominated by particular flow properties. Within each regime, the flow may be approximated with simple mathematical relations describing the simplified problem. A model that uses asymptotic solutions is refered to as length-scale model because of length scales to delineate the extent of the regimes for which the mathematical expressions are valid. The pollutant concentration, in a certain instant, and at a distance x (meters) in the X-Axis and at a distance y(meters) in the Y-Axis will be given by:
c =cc exp[-(r/b)2] (1)
where c is the pollutant concentration, r is the distance from the point (that we are calculating) to the center of the line that forms the polluting plume, cc is the pollutant concentration in the center of the plume line and b is the plume half-width. We attempt to link the momentum dominated and buoyanvy dominated regimes into one relationship by using proposed relations for the transition where:
z/Lb =24/3[(1/2)(x/Lb)2+(Lm/Lb)(x/Lb)]1/3 (2) b/Lb =cb[(1/2)(x/Lb)2+(Lm/Lb)(x/Lb)]1/3 (3) S=cs(uo/ua)[(1/2)(Lb/Lm)(x/Lm)2+(x/Lm)]1/3 (4)
We obtain solutions for a vertical buoyant jet in a crossflow. And buoyant jets discharged horizontally perpendiculat to crossflow. z/Lb =cxy(x/Lm)1/3 (5)
This model performs satisfactorily for simple flows with no shoreline interaction or attachment. Strong crosscurrents or limited depths causing attachment with the downstrean bank or strong initial buoyancy render this model invalid. In addition, they are incapable of simulating any far-field processes that occur after a certain distance.
ALGORITHMS: Algorithms I - Algorithms II - Algorithms III - Algorithms IV - Algorithms V - Algorithms VI
Canarina Algoritmos Numéricos, S.L. Environmental software solutions Software para contaminación del medio ambiente Canary Islands, Spain e-mail: contact us
European network on pollution · European Union Member of MAPO: European network on Marine Pollution. Project funded by the European Commission through the 6th Framework Programme for Research and Development marine pollution
CANARINA: Home - Air pollution · DISPER - Noise pollution · CUSTIC - Water pollution · DESCAR - Contact us DESCAR: DESCAR: water pollution - Data I - Algorithms I - Pollutants I SOLUTIONS: DESCAR: water pollution - Advantages - Price INPUT DATA: Data I - Data II - Data III - Import - Commands - Graphs I - Graphs II ALGORITHMS: Algorithms I - Algorithms II - Algorithms III - Algorithms IV - Algorithms V - Algorithms VI POLLUTANTS: Pollutants I - Pollutants II - The sea I - The sea II - Pycnocline
DESCAR software solutions: This application has been used in great number of environmental reports, courses and water pollution studies in the last years. We currently have users in more than 10 countries. Derbyshire - thermal simulation - dispersion simulation -Dorset - water quality -Plymouth - flat water discharge hose - oil water separator discharge - brown water discharge - Portsmouth - water pollution discharge - oil water discharge - sea water discharge - Preston - effluent water discharge - process water discharge - water discharge laws - Ripon - water discharge data - waste water discharge regulations - water discharge license -Salford - discharge of surface water - waste water discharge limits - submarine ground water discharge - Salisbury - water flow discharge - discharge where the water table intersects the ground surface - Sheffield - water discharge measurements - discharge of ground water - salt water discharge - St Albans - water discharge guidelines - storm water discharge permits - surface water discharge limits - St David's - foul water discharge - mine water discharge - wash water discharge - Stirling - surface water discharge permit - water discharge monitoring - water discharge definition - Stoke-on-Trent - water discharge unit - water heater discharge line - water based discharge - Sunderland - effluent reuse - municipal discharge - effluent contamination - Swansea - effluent equipment - effluent pollution - activated sludge effluent - Truro - effluent recycling - industrial discharge - effluent waste water - Wakefield - sewage treatment effluent - effluent sludge - lime discharge - Wells - effluent treatment plant - river discharge - discharge water - Westminster - effluent water treatment plant - effluent waste - effluent wastewater - Winchester - effluent sewerage - effluent sewage - effluent sewer - water pollution solutions Wolverhampton - effluent plant - effluent filter - effluent treatment - Worcester - effluent tanks - effluent filtration - sewage treatment discharge - water pollution solutions York - effluent waste water treatment - effluent removal - effluent pumps - Aberdeen - simulation modeling - heat transfer flow - fluent flow modeling - Armagh - fluid diffusion - fluid flow visualization - fluid flow heat transfer - water pollution solutions Cornualles - fluid flow equation -
Somerset - modeling theory - fluid equation -Nottingham - thermal flow - unsteady flow modeling - fluid flow study - Bangor - fluid flow cylinder - turbulence flow - fluid flow simulations - Bath - flow dynamics - fluid simulation - fluid flow dynamic - Belfast - fluid flow analysis - heat transfer fluid - fluid flow mechanics - Birmingham - heat transfer modeling - fluid flow theory - fluid flow simulation - Bristol - fluid transport - heat flow - flow simulation - Cambridge - flow equations - dynamic modeling - analysis modeling - Bradford - temperature flow - flow method - fluid flow modeling - water pollution solutions Brighton & Hove - modeling methods - flow calculation - flow analysis - Cumbria - fluid dynamics modeling -Suffolk - fluid models - modeling method - pipe flow -Suffolk - diffusion simulation - water pollution solutionsCornualles - flow visualization - thermal simulation -Somerset - fluid flow simulator - numerical flow simulation - heat transfer simulation -Shropshire - hydrodynamic simulation - flow mechanics -Bangor - simulation dynamics - simulation modelling - physics simulation - Bath - flow models - liquid flow - flow transient -Belfast - fluid flow simulation - water flow simulation - fluid flow simulation software - Aberdeen - mixing simulation - simulation engineering - simulation models - Armagh - computational simulation - dynamic simulation - dispersion simulation - water pollution solutions Cumbria - fflow simulation software -North Yorkshire - flow calculation - flow viscosity -Norfolk - sewage water treatment -Suffolk - water treatment works - water treatment supply - Derbyshire - water treatment process - industrial water treatment -
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