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a1f94c1e4d
| Author | SHA1 | Date | |
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| a1f94c1e4d | |||
| f81c42a6da | |||
| f35d613808 | |||
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| 9f7b73054b | |||
| 12b427eaa0 | |||
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| 40163a0056 | |||
| 2291236efb | |||
| 1b864d6bed |
8 changed files with 307 additions and 51 deletions
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@ -626,6 +626,15 @@ make
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File must be located in \textbf{output.path}.
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The first column is the time in $\unit{s}$.
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The second column is the factor that will multiply the value set in \textbf{potential}.
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\item \textbf{floating}: The potential is adjusted over time to maintain a zero current on the surface, \textit{i. e.}, the surface is \textit{floating}.
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\textbf{potential}: Real.
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Initial potential of the surface.
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The initial charge value for the simulation will be calculated by the potential times the capacitance.
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\textbf{capacitance}: Real.
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Capacitance of the surface in Farads.
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If none is provided, a default value of $1$ nF is used.
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\end{itemize}
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@ -25,7 +25,6 @@ PROGRAM fpakc
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doAverage, &
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doInjects
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use moduleMesh, only: boundariesEM_update, &
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boundariesEM_update, &
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boundariesParticle_update, &
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mesh, &
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meshForMCC, &
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@ -493,6 +493,7 @@ MODULE moduleInput
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CALL config%get(object // '.numColl', collOutput, found)
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CALL config%get(object // '.EMField', emOutput, found)
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call config%get(object // '.boundariesParticle', boundaryParticleOutput, found)
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call config%get(object // '.boundariesEM', boundaryEMOutput, found)
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call config%get(object // '.injects', injectOutput, found)
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CALL config%get(object // '.triggerCPUTime', triggerCPUTime, found)
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@ -969,17 +970,20 @@ MODULE moduleInput
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select case(bType)
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case ("dirichlet")
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! Allocate boundary edge
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allocate(boundaryEMDirichlet:: self)
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CALL initDirichlet(self, config, object)
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case ("dirichlettime")
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! Allocate boundary edge
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allocate(boundaryEMDirichletTime:: self)
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call initDirichletTime(self, config, object)
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case ("floating")
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allocate(boundaryEMFloating:: self)
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call initFloating(self, config, object)
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case default
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call criticalError('Boundary type ' // bType // ' not supported', 'readBoundaryEM')
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@ -1358,6 +1362,18 @@ MODULE moduleInput
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end do
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type is(boundaryEMFloating)
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! Loop over all physical surfaces
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do ps = 1, nPhysicalSurfaces
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! If the boundary for the species is linked to the one analysing, add the edges
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if (associated(physicalSurfaces(ps)%EM, bound)) then
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bound%nodes = [bound%nodes, physicalSurfaces(ps)%nodes]
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bound%edges = [bound%edges, physicalSurfaces(ps)%edges]
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end if
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end do
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end select
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bound%nNodes = size(bound%nodes)
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@ -963,7 +963,8 @@ MODULE moduleMesh
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integer:: nNodes
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type(meshNodePointer), allocatable:: nodes(:)
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procedure(updateEM_interface), pointer, pass:: update => null()
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procedure(updateEM_interface), pointer, pass:: update => null()
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procedure(printEMboundary_interface), pointer, pass:: print => null()
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contains
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procedure(applyEM_interface), deferred, pass:: apply
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@ -987,9 +988,19 @@ MODULE moduleMesh
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end subroutine updateEM_interface
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! Write the values of the particle boundary model
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subroutine printEMboundary_interface(self, fileID)
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import boundaryEMGeneric
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class(boundaryEMGeneric), intent(inout):: self
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integer, intent(in):: fileID
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end subroutine printEMboundary_interface
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end interface
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! Extended types
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! Dirichlet: Constant potential value
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TYPE, EXTENDS(boundaryEMGeneric):: boundaryEMDirichlet
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REAL(8):: potential
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CONTAINS
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@ -1016,6 +1027,7 @@ MODULE moduleMesh
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end interface
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! Dirichlet time: time-dependent potential value
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TYPE, EXTENDS(boundaryEMGeneric):: boundaryEMDirichletTime
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real(8):: potential
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real(8):: timeFactor
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@ -1044,6 +1056,36 @@ MODULE moduleMesh
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end interface
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! Floating: Floating surface, ie, zero net current
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type, extends(boundaryEMGeneric):: boundaryEMFloating
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real(8):: potential
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real(8):: invC ! Inverse of the capacitance of the surface
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real(8):: charge ! Charge accumulated on surface
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type(meshEdgePointer), allocatable:: edges(:) !Array with edges
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contains
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! boundaryEMGeneric DEFERRED PROCEDURES
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procedure, pass:: apply => applyFloating
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end type boundaryEMFloating
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interface
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module subroutine initFloating(self, config, object)
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use json_module
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class(boundaryEMGeneric), allocatable, intent(inout):: self
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type(json_file), intent(inout):: config
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character(:), allocatable, intent(in):: object
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end subroutine initFloating
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module subroutine applyFloating(self, vectorF)
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class(boundaryEMFloating), intent(in):: self
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real(8), intent(inout):: vectorF(:)
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end subroutine applyFloating
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end interface
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! Container for boundary conditions
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TYPE:: boundaryEMCont
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CLASS(boundaryEMGeneric), ALLOCATABLE:: obj
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@ -1068,6 +1110,10 @@ MODULE moduleMesh
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end subroutine boundariesEM_update
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module subroutine boundariesEM_write()
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end subroutine boundariesEM_write
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end interface
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! PHYSICAL SURFACES LINKING TO MESH ELEMENTS
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@ -1,30 +1,7 @@
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submodule(moduleMesh) boundaryEM
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CONTAINS
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module function boundaryEMName_to_Index(boundaryName) result(bp)
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use moduleErrors
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implicit none
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character(:), allocatable:: boundaryName
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integer:: bp
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integer:: b
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bp = 0
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do b = 1, nBoundariesEM
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if (boundaryName == boundariesEM(b)%obj%name) then
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bp = boundariesEM(b)%obj%n
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end if
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end do
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if (bp == 0) then
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call criticalError('Boundary ' // boundaryName // ' not found', 'boundaryEMName_to_Index')
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end if
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end function boundaryEMName_to_Index
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! Initialize Dirichlet boundary condition
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! Dirichlet boundary condition
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! Init
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module SUBROUTINE initDirichlet(self, config, object)
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use json_module
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USE moduleRefParam, ONLY: Volt_ref
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@ -51,7 +28,25 @@ submodule(moduleMesh) boundaryEM
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end subroutine initDirichlet
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! Initialize Dirichlet boundary condition
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! Apply
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module SUBROUTINE applyDirichlet(self, vectorF)
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USE moduleMesh
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IMPLICIT NONE
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CLASS(boundaryEMDirichlet), INTENT(in):: self
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REAL(8), INTENT(inout):: vectorF(:)
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integer:: n
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DO n = 1, self%nNodes
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self%nodes(n)%obj%emData%phi = self%potential
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vectorF(self%nodes(n)%obj%n) = self%nodes(n)%obj%emData%phi
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END DO
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END SUBROUTINE applyDirichlet
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! Dirichlet time-dependent boundary condition
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! Init
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module subroutine initDirichletTime(self, config, object)
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use json_module
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use moduleRefParam, ONLY: Volt_ref, ti_ref
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@ -96,24 +91,7 @@ submodule(moduleMesh) boundaryEM
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END SUBROUTINE initDirichletTime
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!Apply Dirichlet boundary condition to the poisson equation
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module SUBROUTINE applyDirichlet(self, vectorF)
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USE moduleMesh
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IMPLICIT NONE
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CLASS(boundaryEMDirichlet), INTENT(in):: self
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REAL(8), INTENT(inout):: vectorF(:)
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integer:: n
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DO n = 1, self%nNodes
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self%nodes(n)%obj%emData%phi = self%potential
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vectorF(self%nodes(n)%obj%n) = self%nodes(n)%obj%emData%phi
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END DO
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END SUBROUTINE applyDirichlet
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!Apply Dirichlet boundary condition with time temporal profile
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! Apply
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module SUBROUTINE applyDirichletTime(self, vectorF)
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USE moduleMesh
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USE moduleCaseParam, ONLY: timeStep, tauMin
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@ -131,7 +109,8 @@ submodule(moduleMesh) boundaryEM
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END SUBROUTINE applyDirichletTime
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module subroutine updateDirichletTime(self)
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! Update
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subroutine updateDirichletTime(self)
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implicit none
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class(boundaryEMGeneric), intent(inout):: self
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@ -144,6 +123,170 @@ submodule(moduleMesh) boundaryEM
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end subroutine updateDirichletTime
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! Floating surface
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! Init
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module subroutine initFloating(self, config, object)
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use json_module
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use moduleRefParam, only: Volt_ref, L_ref
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use moduleConstParam, only: eps_0
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use moduleErrors
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implicit none
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class(boundaryEMGeneric), allocatable, intent(inout):: self
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type(json_file), intent(inout):: config
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character(:), allocatable, intent(in):: object
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real(8):: potential, capacitance
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logical:: found
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select type(self)
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type is(boundaryEMFloating)
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call config%get(object // '.potential', potential, found)
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if (.not. found) then
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call criticalError('Required parameter "potential" for Floating boundary condition not found', &
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'readBoundaryEM')
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end if
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self%potential = potential / Volt_ref
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call config%get(object // '.capacitance', capacitance, found)
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if (.not. found) then
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call warningError('Parameter "capacitance" for floating boundary condition not found. Using the default value of 1 nF.')
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capacitance = 1.0d-9
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end if
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! Inverse of non-dimensional capacitance
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self%invC = 1.0d0 / (capacitance / (eps_0 * L_ref))
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self%charge = self%potential / self%invC
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self%update => updateFloating
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self%print => writeFloating
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allocate(self%edges(0))
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end select
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end subroutine initFloating
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! Apply
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module subroutine applyFloating(self, vectorF)
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use moduleMesh
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implicit none
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class(boundaryEMFloating), intent(in):: self
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real(8), intent(inout):: vectorF(:)
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integer:: n
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do n = 1, self%nNodes
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self%nodes(n)%obj%emData%phi = self%potential
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vectorF(self%nodes(n)%obj%n) = self%nodes(n)%obj%emData%phi
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end do
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end subroutine applyFloating
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! Update
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subroutine updateFloating(self)
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use moduleMesh, only: qSpecies, meshNode
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use moduleCaseParam, only: tauMin
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implicit none
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class(boundaryEMGeneric), intent(inout):: self
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integer:: e, n, s
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integer, allocatable:: nodes(:)
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class(meshEdge), pointer:: edge
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real(8), allocatable:: mom_nodes(:)
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class(meshNode), pointer:: node
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real(8):: mom_center, edgeDensityCurrent
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select type(self)
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type is(boundaryEMFloating)
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do e = 1, size(self%edges)
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edge => self%edges(e)%obj
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edgeDensityCurrent = 0.0d0
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nodes = edge%getNodes(edge%nNodes)
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allocate(mom_nodes(1:edge%nNodes))
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do s = 1, nSpecies
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mom_center = 0.0d0
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do n = 1, self%nNodes
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node => mesh%nodes(nodes(n))%obj
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! Minus sign to get the flux exiting the edge
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mom_nodes(n) = - dot_product(node%output(s)%mom, edge%normal)
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end do
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mom_center = edge%gatherF(edge%centerXi(), edge%nNodes, mom_nodes)
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! Only account for charge exiting the surface
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mom_center = max(mom_center, 0.0d0)
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edgeDensityCurrent = edgeDensityCurrent + qSpecies(s) * mom_center
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end do
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! Accumulate charge of speceis on surface
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self%charge = self%charge + edgeDensityCurrent * edge%surface * tauMin
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end do
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self%potential = self%charge * self%invC
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end select
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end subroutine updateFloating
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! Write
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subroutine writeFloating(self, fileID)
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use moduleOutput, only: fmtColReal
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use moduleConstParam, only: qe
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use moduleRefParam, only: Volt_ref, v_ref, n_ref, L_ref, ti_ref
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implicit none
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class(boundaryEMGeneric), intent(inout):: self
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integer, intent(in):: fileID
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write(fileID, '(A)') self%name
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select type(self)
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type is(boundaryEMFloating)
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write(fileID, '(A,",",A)') 'Total charge (C)', 'Potential (V)'
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write(fileID, '(*('//fmtColReal//'))') self%charge*qe*v_ref*n_ref*L_ref**2*ti_ref, self%potential * Volt_ref
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end select
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end subroutine writeFloating
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! Get the index of the boundary based on the name
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module function boundaryEMName_to_Index(boundaryName) result(bp)
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use moduleErrors
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implicit none
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character(:), allocatable:: boundaryName
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integer:: bp
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integer:: b
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bp = 0
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do b = 1, nBoundariesEM
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if (boundaryName == boundariesEM(b)%obj%name) then
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bp = boundariesEM(b)%obj%n
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end if
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end do
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if (bp == 0) then
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call criticalError('Boundary ' // boundaryName // ' not found', 'boundaryEMName_to_Index')
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end if
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end function boundaryEMName_to_Index
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! Update all EM boundaries
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module subroutine boundariesEM_update()
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implicit none
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@ -151,7 +294,7 @@ submodule(moduleMesh) boundaryEM
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do b = 1, nBoundariesEM
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if (associated(boundariesEM(b)%obj%update)) then
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call boundariesEM(b)%obj%update
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call boundariesEM(b)%obj%update()
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end if
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@ -159,4 +302,37 @@ submodule(moduleMesh) boundaryEM
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end subroutine boundariesEM_update
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! Write all EM boundaries
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module subroutine boundariesEM_write()
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use moduleCaseparam, only: timeStep
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use moduleOutput, only: fileID_boundaryEM, &
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formatFileName, &
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informFileCreation,&
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boundaryEMOutput,&
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generateFilePath, &
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prefix
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implicit none
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integer:: b
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character(:), allocatable:: fileName
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if (boundaryEMOutput) then
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fileName = formatFileName(prefix, 'boundariesEM', 'csv', timeStep)
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call informFileCreation(fileName)
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open(fileID_boundaryEM, file = generateFilePath(fileName))
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do b = 1, nBoundariesEM
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if (associated(boundariesEM(b)%obj%update)) then
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call boundariesEM(b)%obj%print(fileID_boundaryEM)
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end if
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end do
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close(fileID_boundaryEM)
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end if
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end subroutine boundariesEM_write
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end submodule boundaryEM
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|
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@ -176,6 +176,14 @@ submodule(moduleMesh) elements
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END DO
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TYPE IS(boundaryEMFloating)
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DO n = 1, boundary%nNodes
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ni = boundary%nodes(n)%obj%n
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self%K(ni, :) = 0.D0
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self%K(ni, ni) = 1.D0
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END DO
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END SELECT
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END DO
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|
|
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@ -14,6 +14,7 @@ MODULE moduleOutput
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LOGICAL:: collOutput = .FALSE.
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LOGICAL:: emOutput = .FALSE.
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logical:: boundaryParticleOutput = .false.
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logical:: boundaryEMOutput = .false.
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logical:: injectOutput = .false.
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! Prefix for iteration files
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@ -34,7 +35,7 @@ MODULE moduleOutput
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integer, parameter:: fileID_output = 20 ! Base id for species/collisions/EM output
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integer, parameter:: fileID_boundaryParticle = 30 ! Particle boundaries
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integer, parameter:: fileID_boundaryEM = 31 ! EM boundaries
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integer, parameter:: fileID_inject = 32 ! Injects
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integer, parameter:: fileID_inject = 32 ! Injects
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integer, parameter:: fileID_reference = 40 ! Reference values
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integer, parameter:: fileID_time =50 ! Computation time
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||||
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@ -548,6 +548,7 @@ MODULE moduleSolver
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||||
! Output of boundaries
|
||||
call boundariesParticle_write()
|
||||
call boundariesEM_write()
|
||||
|
||||
! Output of inejcts
|
||||
call writeInjects()
|
||||
|
|
|
|||
Loading…
Add table
Add a link
Reference in a new issue