1 |
gezelter |
115 |
module shapes |
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use force_globals |
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use definitions |
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use atype_module |
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use vector_class |
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use simulation |
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use status |
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gezelter |
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use lj |
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gezelter |
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#ifdef IS_MPI |
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use mpiSimulation |
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#endif |
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implicit none |
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PRIVATE |
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INTEGER, PARAMETER:: CHEBYSHEV_TN = 1 |
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INTEGER, PARAMETER:: CHEBYSHEV_UN = 2 |
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INTEGER, PARAMETER:: LAGUERRE = 3 |
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INTEGER, PARAMETER:: HERMITE = 4 |
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INTEGER, PARAMETER:: SH_COS = 0 |
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INTEGER, PARAMETER:: SH_SIN = 1 |
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logical, save :: haveShapeMap = .false. |
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public :: do_shape_pair |
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public :: newShapeType |
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chrisfen |
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public :: complete_Shape_FF |
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gezelter |
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type, private :: Shape |
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integer :: atid |
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integer :: nContactFuncs |
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integer :: nRangeFuncs |
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integer :: nStrengthFuncs |
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integer :: bigL |
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integer :: bigM |
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integer, pointer, dimension(:) :: ContactFuncLValue => null() |
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integer, pointer, dimension(:) :: ContactFuncMValue => null() |
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integer, pointer, dimension(:) :: ContactFunctionType => null() |
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real(kind=dp), pointer, dimension(:) :: ContactFuncCoefficient => null() |
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integer, pointer, dimension(:) :: RangeFuncLValue => null() |
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integer, pointer, dimension(:) :: RangeFuncMValue => null() |
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integer, pointer, dimension(:) :: RangeFunctionType => null() |
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real(kind=dp), pointer, dimension(:) :: RangeFuncCoefficient => null() |
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integer, pointer, dimension(:) :: StrengthFuncLValue => null() |
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integer, pointer, dimension(:) :: StrengthFuncMValue => null() |
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integer, pointer, dimension(:) :: StrengthFunctionType => null() |
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real(kind=dp), pointer, dimension(:) :: StrengthFuncCoefficient => null() |
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logical :: isLJ |
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real ( kind = dp ) :: epsilon |
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real ( kind = dp ) :: sigma |
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end type Shape |
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type, private :: ShapeList |
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integer :: n_shapes = 0 |
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integer :: currentShape = 0 |
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type (Shape), pointer :: Shapes(:) => null() |
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integer, pointer :: atidToShape(:) => null() |
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end type ShapeList |
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type(ShapeList), save :: ShapeMap |
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integer :: lmax |
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contains |
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subroutine newShapeType(nContactFuncs, ContactFuncLValue, & |
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ContactFuncMValue, ContactFunctionType, ContactFuncCoefficient, & |
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nRangeFuncs, RangeFuncLValue, RangeFuncMValue, RangeFunctionType, & |
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RangeFuncCoefficient, nStrengthFuncs, StrengthFuncLValue, & |
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StrengthFuncMValue, StrengthFunctionType, StrengthFuncCoefficient, & |
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chrisfen |
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myATID, status) |
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gezelter |
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integer :: nContactFuncs |
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integer :: nRangeFuncs |
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integer :: nStrengthFuncs |
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integer :: shape_ident |
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integer :: status |
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chrisfen |
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integer :: myATID |
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gezelter |
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integer :: bigL |
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integer :: bigM |
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integer :: j, me, nShapeTypes, nLJTypes, ntypes, current, alloc_stat |
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integer, pointer :: MatchList(:) => null() |
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integer, dimension(nContactFuncs) :: ContactFuncLValue |
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integer, dimension(nContactFuncs) :: ContactFuncMValue |
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integer, dimension(nContactFuncs) :: ContactFunctionType |
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real(kind=dp), dimension(nContactFuncs) :: ContactFuncCoefficient |
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integer, dimension(nRangeFuncs) :: RangeFuncLValue |
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integer, dimension(nRangeFuncs) :: RangeFuncMValue |
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integer, dimension(nRangeFuncs) :: RangeFunctionType |
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real(kind=dp), dimension(nRangeFuncs) :: RangeFuncCoefficient |
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integer, dimension(nStrengthFuncs) :: StrengthFuncLValue |
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integer, dimension(nStrengthFuncs) :: StrengthFuncMValue |
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integer, dimension(nStrengthFuncs) :: StrengthFunctionType |
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real(kind=dp), dimension(nStrengthFuncs) :: StrengthFuncCoefficient |
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status = 0 |
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! check to see if this is the first time into this routine... |
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if (.not.associated(ShapeMap%Shapes)) then |
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call getMatchingElementList(atypes, "is_Shape", .true., & |
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nShapeTypes, MatchList) |
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gezelter |
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call getMatchingElementList(atypes, "is_LennardJones", .true., & |
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gezelter |
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nLJTypes, MatchList) |
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ShapeMap%n_shapes = nShapeTypes + nLJTypes |
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allocate(ShapeMap%Shapes(nShapeTypes + nLJTypes)) |
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ntypes = getSize(atypes) |
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chrisfen |
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allocate(ShapeMap%atidToShape(0:ntypes)) |
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gezelter |
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end if |
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ShapeMap%currentShape = ShapeMap%currentShape + 1 |
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current = ShapeMap%currentShape |
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call allocateShape(nContactFuncs, nRangeFuncs, nStrengthFuncs, & |
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ShapeMap%Shapes(current), stat=alloc_stat) |
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if (alloc_stat .ne. 0) then |
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status = -1 |
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return |
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endif |
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chrisfen |
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call getElementProperty(atypes, myATID, 'c_ident', me) |
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gezelter |
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ShapeMap%atidToShape(me) = current |
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ShapeMap%Shapes(current)%atid = me |
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ShapeMap%Shapes(current)%nContactFuncs = nContactFuncs |
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ShapeMap%Shapes(current)%nRangeFuncs = nRangeFuncs |
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ShapeMap%Shapes(current)%nStrengthFuncs = nStrengthFuncs |
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ShapeMap%Shapes(current)%ContactFuncLValue = ContactFuncLValue |
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ShapeMap%Shapes(current)%ContactFuncMValue = ContactFuncMValue |
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ShapeMap%Shapes(current)%ContactFunctionType = ContactFunctionType |
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ShapeMap%Shapes(current)%ContactFuncCoefficient = ContactFuncCoefficient |
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ShapeMap%Shapes(current)%RangeFuncLValue = RangeFuncLValue |
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ShapeMap%Shapes(current)%RangeFuncMValue = RangeFuncMValue |
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ShapeMap%Shapes(current)%RangeFunctionType = RangeFunctionType |
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ShapeMap%Shapes(current)%RangeFuncCoefficient = RangeFuncCoefficient |
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ShapeMap%Shapes(current)%StrengthFuncLValue = StrengthFuncLValue |
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ShapeMap%Shapes(current)%StrengthFuncMValue = StrengthFuncMValue |
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ShapeMap%Shapes(current)%StrengthFunctionType = StrengthFunctionType |
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ShapeMap%Shapes(current)%StrengthFuncCoefficient = StrengthFuncCoefficient |
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bigL = -1 |
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bigM = -1 |
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do j = 1, ShapeMap%Shapes(current)%nContactFuncs |
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if (ShapeMap%Shapes(current)%ContactFuncLValue(j) .gt. bigL) then |
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bigL = ShapeMap%Shapes(current)%ContactFuncLValue(j) |
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endif |
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if (ShapeMap%Shapes(current)%ContactFuncMValue(j) .gt. bigM) then |
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bigM = ShapeMap%Shapes(current)%ContactFuncMValue(j) |
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endif |
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enddo |
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do j = 1, ShapeMap%Shapes(current)%nRangeFuncs |
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if (ShapeMap%Shapes(current)%RangeFuncLValue(j) .gt. bigL) then |
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bigL = ShapeMap%Shapes(current)%RangeFuncLValue(j) |
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endif |
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if (ShapeMap%Shapes(current)%RangeFuncMValue(j) .gt. bigM) then |
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bigM = ShapeMap%Shapes(current)%RangeFuncMValue(j) |
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endif |
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enddo |
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do j = 1, ShapeMap%Shapes(current)%nStrengthFuncs |
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if (ShapeMap%Shapes(current)%StrengthFuncLValue(j) .gt. bigL) then |
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bigL = ShapeMap%Shapes(current)%StrengthFuncLValue(j) |
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endif |
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if (ShapeMap%Shapes(current)%StrengthFuncMValue(j) .gt. bigM) then |
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bigM = ShapeMap%Shapes(current)%StrengthFuncMValue(j) |
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endif |
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enddo |
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ShapeMap%Shapes(current)%bigL = bigL |
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ShapeMap%Shapes(current)%bigM = bigM |
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end subroutine newShapeType |
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subroutine allocateShape(nContactFuncs, nRangeFuncs, nStrengthFuncs, & |
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myShape, stat) |
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integer, intent(in) :: nContactFuncs, nRangeFuncs, nStrengthFuncs |
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type(Shape), intent(inout) :: myShape |
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integer, intent(out) :: stat |
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integer :: alloc_stat |
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chrisfen |
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stat = 0 |
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gezelter |
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if (associated(myShape%contactFuncLValue)) then |
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deallocate(myShape%contactFuncLValue) |
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endif |
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allocate(myShape%contactFuncLValue(nContactFuncs), stat = alloc_stat) |
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if (alloc_stat .ne. 0) then |
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stat = -1 |
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return |
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endif |
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if (associated(myShape%contactFuncMValue)) then |
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deallocate(myShape%contactFuncMValue) |
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endif |
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allocate(myShape%contactFuncMValue(nContactFuncs), stat = alloc_stat) |
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if (alloc_stat .ne. 0) then |
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stat = -1 |
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return |
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endif |
206 |
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if (associated(myShape%contactFunctionType)) then |
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deallocate(myShape%contactFunctionType) |
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endif |
209 |
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allocate(myShape%contactFunctionType(nContactFuncs), stat = alloc_stat) |
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if (alloc_stat .ne. 0) then |
211 |
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stat = -1 |
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return |
213 |
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endif |
214 |
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if (associated(myShape%contactFuncCoefficient)) then |
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deallocate(myShape%contactFuncCoefficient) |
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endif |
217 |
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allocate(myShape%contactFuncCoefficient(nContactFuncs), stat = alloc_stat) |
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if (alloc_stat .ne. 0) then |
219 |
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stat = -1 |
220 |
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return |
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endif |
222 |
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223 |
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if (associated(myShape%rangeFuncLValue)) then |
224 |
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deallocate(myShape%rangeFuncLValue) |
225 |
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endif |
226 |
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allocate(myShape%rangeFuncLValue(nRangeFuncs), stat = alloc_stat) |
227 |
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if (alloc_stat .ne. 0) then |
228 |
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stat = -1 |
229 |
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return |
230 |
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endif |
231 |
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if (associated(myShape%rangeFuncMValue)) then |
232 |
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deallocate(myShape%rangeFuncMValue) |
233 |
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endif |
234 |
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allocate(myShape%rangeFuncMValue(nRangeFuncs), stat = alloc_stat) |
235 |
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if (alloc_stat .ne. 0) then |
236 |
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stat = -1 |
237 |
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return |
238 |
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endif |
239 |
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if (associated(myShape%rangeFunctionType)) then |
240 |
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deallocate(myShape%rangeFunctionType) |
241 |
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endif |
242 |
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allocate(myShape%rangeFunctionType(nRangeFuncs), stat = alloc_stat) |
243 |
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if (alloc_stat .ne. 0) then |
244 |
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stat = -1 |
245 |
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return |
246 |
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endif |
247 |
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if (associated(myShape%rangeFuncCoefficient)) then |
248 |
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deallocate(myShape%rangeFuncCoefficient) |
249 |
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endif |
250 |
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allocate(myShape%rangeFuncCoefficient(nRangeFuncs), stat = alloc_stat) |
251 |
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if (alloc_stat .ne. 0) then |
252 |
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stat = -1 |
253 |
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return |
254 |
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endif |
255 |
chrisfen |
195 |
|
256 |
gezelter |
115 |
if (associated(myShape%strengthFuncLValue)) then |
257 |
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deallocate(myShape%strengthFuncLValue) |
258 |
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endif |
259 |
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allocate(myShape%strengthFuncLValue(nStrengthFuncs), stat = alloc_stat) |
260 |
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if (alloc_stat .ne. 0) then |
261 |
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stat = -1 |
262 |
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return |
263 |
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endif |
264 |
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if (associated(myShape%strengthFuncMValue)) then |
265 |
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deallocate(myShape%strengthFuncMValue) |
266 |
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endif |
267 |
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allocate(myShape%strengthFuncMValue(nStrengthFuncs), stat = alloc_stat) |
268 |
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if (alloc_stat .ne. 0) then |
269 |
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stat = -1 |
270 |
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return |
271 |
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endif |
272 |
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if (associated(myShape%strengthFunctionType)) then |
273 |
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deallocate(myShape%strengthFunctionType) |
274 |
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endif |
275 |
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allocate(myShape%strengthFunctionType(nStrengthFuncs), stat = alloc_stat) |
276 |
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if (alloc_stat .ne. 0) then |
277 |
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stat = -1 |
278 |
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return |
279 |
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endif |
280 |
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if (associated(myShape%strengthFuncCoefficient)) then |
281 |
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deallocate(myShape%strengthFuncCoefficient) |
282 |
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endif |
283 |
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allocate(myShape%strengthFuncCoefficient(nStrengthFuncs), stat=alloc_stat) |
284 |
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if (alloc_stat .ne. 0) then |
285 |
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stat = -1 |
286 |
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return |
287 |
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endif |
288 |
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289 |
chrisfen |
195 |
return |
290 |
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291 |
gezelter |
115 |
end subroutine allocateShape |
292 |
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293 |
chrisfen |
154 |
subroutine complete_Shape_FF(status) |
294 |
gezelter |
115 |
integer :: status |
295 |
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integer :: i, j, l, m, lm, function_type |
296 |
chrisfen |
154 |
real(kind=dp) :: thisDP, sigma |
297 |
gezelter |
115 |
integer :: alloc_stat, iTheta, iPhi, nSteps, nAtypes, thisIP, current |
298 |
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logical :: thisProperty |
299 |
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300 |
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status = 0 |
301 |
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if (ShapeMap%currentShape == 0) then |
302 |
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call handleError("init_Shape_FF", "No members in ShapeMap") |
303 |
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status = -1 |
304 |
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return |
305 |
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end if |
306 |
chrisfen |
154 |
|
307 |
gezelter |
115 |
nAtypes = getSize(atypes) |
308 |
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309 |
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if (nAtypes == 0) then |
310 |
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status = -1 |
311 |
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return |
312 |
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end if |
313 |
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314 |
chrisfen |
195 |
! atypes comes from c side |
315 |
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do i = 0, nAtypes |
316 |
gezelter |
115 |
|
317 |
gezelter |
140 |
call getElementProperty(atypes, i, "is_LennardJones", thisProperty) |
318 |
gezelter |
115 |
|
319 |
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if (thisProperty) then |
320 |
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321 |
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ShapeMap%currentShape = ShapeMap%currentShape + 1 |
322 |
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current = ShapeMap%currentShape |
323 |
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324 |
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call getElementProperty(atypes, i, "c_ident", thisIP) |
325 |
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ShapeMap%atidToShape(thisIP) = current |
326 |
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ShapeMap%Shapes(current)%atid = thisIP |
327 |
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328 |
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ShapeMap%Shapes(current)%isLJ = .true. |
329 |
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330 |
gezelter |
140 |
ShapeMap%Shapes(current)%epsilon = getEpsilon(thisIP) |
331 |
chrisfen |
154 |
ShapeMap%Shapes(current)%sigma = getSigma(thisIP) |
332 |
gezelter |
115 |
|
333 |
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endif |
334 |
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335 |
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end do |
336 |
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337 |
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haveShapeMap = .true. |
338 |
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339 |
chrisfen |
154 |
end subroutine complete_Shape_FF |
340 |
gezelter |
115 |
|
341 |
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subroutine do_shape_pair(atom1, atom2, d, rij, r2, sw, vpair, fpair, & |
342 |
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pot, A, f, t, do_pot) |
343 |
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344 |
chrisfen |
195 |
INTEGER, PARAMETER:: LMAX = 64 |
345 |
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INTEGER, PARAMETER:: MMAX = 64 |
346 |
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347 |
gezelter |
115 |
integer, intent(in) :: atom1, atom2 |
348 |
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real (kind=dp), intent(inout) :: rij, r2 |
349 |
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real (kind=dp), dimension(3), intent(in) :: d |
350 |
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real (kind=dp), dimension(3), intent(inout) :: fpair |
351 |
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real (kind=dp) :: pot, vpair, sw |
352 |
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real (kind=dp), dimension(9,nLocal) :: A |
353 |
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real (kind=dp), dimension(3,nLocal) :: f |
354 |
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real (kind=dp), dimension(3,nLocal) :: t |
355 |
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logical, intent(in) :: do_pot |
356 |
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357 |
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real (kind=dp) :: r3, r5, rt2, rt3, rt5, rt6, rt11, rt12, rt126 |
358 |
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integer :: atid1, atid2, st1, st2 |
359 |
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integer :: l, m, lm, id1, id2, localError, function_type |
360 |
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real (kind=dp) :: sigma_i, s_i, eps_i, sigma_j, s_j, eps_j |
361 |
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real (kind=dp) :: coeff |
362 |
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363 |
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real (kind=dp) :: dsigmaidx, dsigmaidy, dsigmaidz |
364 |
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real (kind=dp) :: dsigmaidux, dsigmaiduy, dsigmaiduz |
365 |
|
|
real (kind=dp) :: dsigmajdx, dsigmajdy, dsigmajdz |
366 |
|
|
real (kind=dp) :: dsigmajdux, dsigmajduy, dsigmajduz |
367 |
|
|
|
368 |
|
|
real (kind=dp) :: dsidx, dsidy, dsidz |
369 |
|
|
real (kind=dp) :: dsidux, dsiduy, dsiduz |
370 |
|
|
real (kind=dp) :: dsjdx, dsjdy, dsjdz |
371 |
|
|
real (kind=dp) :: dsjdux, dsjduy, dsjduz |
372 |
|
|
|
373 |
|
|
real (kind=dp) :: depsidx, depsidy, depsidz |
374 |
|
|
real (kind=dp) :: depsidux, depsiduy, depsiduz |
375 |
|
|
real (kind=dp) :: depsjdx, depsjdy, depsjdz |
376 |
|
|
real (kind=dp) :: depsjdux, depsjduy, depsjduz |
377 |
|
|
|
378 |
|
|
real (kind=dp) :: xi, yi, zi, xj, yj, zj, xi2, yi2, zi2, xj2, yj2, zj2 |
379 |
|
|
|
380 |
|
|
real (kind=dp) :: proji, proji3, projj, projj3 |
381 |
|
|
real (kind=dp) :: cti, ctj, cpi, cpj, spi, spj |
382 |
|
|
real (kind=dp) :: Phunc, sigma, s, eps, rtdenom, rt |
383 |
|
|
|
384 |
|
|
real (kind=dp) :: dctidx, dctidy, dctidz |
385 |
|
|
real (kind=dp) :: dctidux, dctiduy, dctiduz |
386 |
|
|
real (kind=dp) :: dctjdx, dctjdy, dctjdz |
387 |
|
|
real (kind=dp) :: dctjdux, dctjduy, dctjduz |
388 |
|
|
|
389 |
|
|
real (kind=dp) :: dcpidx, dcpidy, dcpidz |
390 |
|
|
real (kind=dp) :: dcpidux, dcpiduy, dcpiduz |
391 |
|
|
real (kind=dp) :: dcpjdx, dcpjdy, dcpjdz |
392 |
|
|
real (kind=dp) :: dcpjdux, dcpjduy, dcpjduz |
393 |
|
|
|
394 |
|
|
real (kind=dp) :: dspidx, dspidy, dspidz |
395 |
|
|
real (kind=dp) :: dspidux, dspiduy, dspiduz |
396 |
|
|
real (kind=dp) :: dspjdx, dspjdy, dspjdz |
397 |
|
|
real (kind=dp) :: dspjdux, dspjduy, dspjduz |
398 |
|
|
|
399 |
|
|
real (kind=dp) :: dPhuncdX, dPhuncdY, dPhuncdZ |
400 |
|
|
real (kind=dp) :: dPhuncdUx, dPhuncdUy, dPhuncdUz |
401 |
|
|
|
402 |
|
|
real (kind=dp) :: dsigmadxi, dsigmadyi, dsigmadzi |
403 |
|
|
real (kind=dp) :: dsigmaduxi, dsigmaduyi, dsigmaduzi |
404 |
|
|
real (kind=dp) :: dsigmadxj, dsigmadyj, dsigmadzj |
405 |
|
|
real (kind=dp) :: dsigmaduxj, dsigmaduyj, dsigmaduzj |
406 |
|
|
|
407 |
|
|
real (kind=dp) :: dsdxi, dsdyi, dsdzi |
408 |
|
|
real (kind=dp) :: dsduxi, dsduyi, dsduzi |
409 |
|
|
real (kind=dp) :: dsdxj, dsdyj, dsdzj |
410 |
|
|
real (kind=dp) :: dsduxj, dsduyj, dsduzj |
411 |
|
|
|
412 |
|
|
real (kind=dp) :: depsdxi, depsdyi, depsdzi |
413 |
|
|
real (kind=dp) :: depsduxi, depsduyi, depsduzi |
414 |
|
|
real (kind=dp) :: depsdxj, depsdyj, depsdzj |
415 |
|
|
real (kind=dp) :: depsduxj, depsduyj, depsduzj |
416 |
|
|
|
417 |
|
|
real (kind=dp) :: drtdxi, drtdyi, drtdzi |
418 |
|
|
real (kind=dp) :: drtduxi, drtduyi, drtduzi |
419 |
|
|
real (kind=dp) :: drtdxj, drtdyj, drtdzj |
420 |
|
|
real (kind=dp) :: drtduxj, drtduyj, drtduzj |
421 |
|
|
|
422 |
|
|
real (kind=dp) :: drdxi, drdyi, drdzi |
423 |
|
|
real (kind=dp) :: drduxi, drduyi, drduzi |
424 |
|
|
real (kind=dp) :: drdxj, drdyj, drdzj |
425 |
|
|
real (kind=dp) :: drduxj, drduyj, drduzj |
426 |
|
|
|
427 |
|
|
real (kind=dp) :: dvdxi, dvdyi, dvdzi |
428 |
|
|
real (kind=dp) :: dvduxi, dvduyi, dvduzi |
429 |
|
|
real (kind=dp) :: dvdxj, dvdyj, dvdzj |
430 |
|
|
real (kind=dp) :: dvduxj, dvduyj, dvduzj |
431 |
|
|
|
432 |
|
|
real (kind=dp) :: fxi, fyi, fzi, fxj, fyj, fzj |
433 |
|
|
real (kind=dp) :: txi, tyi, tzi, txj, tyj, tzj |
434 |
|
|
real (kind=dp) :: fxii, fyii, fzii, fxij, fyij, fzij |
435 |
|
|
real (kind=dp) :: fxji, fyji, fzji, fxjj, fyjj, fzjj |
436 |
|
|
real (kind=dp) :: fxradial, fyradial, fzradial |
437 |
|
|
|
438 |
chrisfen |
198 |
real (kind=dp) :: plm_i(0:LMAX,0:MMAX), dlm_i(0:LMAX,0:MMAX) |
439 |
|
|
real (kind=dp) :: plm_j(0:LMAX,0:MMAX), dlm_j(0:LMAX,0:MMAX) |
440 |
|
|
real (kind=dp) :: tm_i(0:MMAX), dtm_i(0:MMAX), um_i(0:MMAX), dum_i(0:MMAX) |
441 |
|
|
real (kind=dp) :: tm_j(0:MMAX), dtm_j(0:MMAX), um_j(0:MMAX), dum_j(0:MMAX) |
442 |
chrisfen |
195 |
|
443 |
gezelter |
115 |
if (.not.haveShapeMap) then |
444 |
|
|
call handleError("calc_shape", "NO SHAPEMAP!!!!") |
445 |
|
|
return |
446 |
|
|
endif |
447 |
|
|
|
448 |
|
|
!! We assume that the rotation matrices have already been calculated |
449 |
|
|
!! and placed in the A array. |
450 |
chrisfen |
195 |
|
451 |
gezelter |
115 |
r3 = r2*rij |
452 |
|
|
r5 = r3*r2 |
453 |
|
|
|
454 |
|
|
drdxi = -d(1) / rij |
455 |
|
|
drdyi = -d(2) / rij |
456 |
|
|
drdzi = -d(3) / rij |
457 |
|
|
|
458 |
|
|
drdxj = d(1) / rij |
459 |
|
|
drdyj = d(2) / rij |
460 |
|
|
drdzj = d(3) / rij |
461 |
|
|
|
462 |
|
|
! find the atom type id (atid) for each atom: |
463 |
|
|
#ifdef IS_MPI |
464 |
|
|
atid1 = atid_Row(atom1) |
465 |
|
|
atid2 = atid_Col(atom2) |
466 |
|
|
#else |
467 |
|
|
atid1 = atid(atom1) |
468 |
|
|
atid2 = atid(atom2) |
469 |
|
|
#endif |
470 |
|
|
|
471 |
|
|
! use the atid to find the shape type (st) for each atom: |
472 |
|
|
st1 = ShapeMap%atidToShape(atid1) |
473 |
|
|
st2 = ShapeMap%atidToShape(atid2) |
474 |
chrisfen |
195 |
|
475 |
gezelter |
115 |
if (ShapeMap%Shapes(st1)%isLJ) then |
476 |
chrisfen |
195 |
|
477 |
gezelter |
115 |
sigma_i = ShapeMap%Shapes(st1)%sigma |
478 |
|
|
s_i = ShapeMap%Shapes(st1)%sigma |
479 |
|
|
eps_i = ShapeMap%Shapes(st1)%epsilon |
480 |
|
|
dsigmaidx = 0.0d0 |
481 |
|
|
dsigmaidy = 0.0d0 |
482 |
|
|
dsigmaidz = 0.0d0 |
483 |
|
|
dsigmaidux = 0.0d0 |
484 |
|
|
dsigmaiduy = 0.0d0 |
485 |
|
|
dsigmaiduz = 0.0d0 |
486 |
|
|
dsidx = 0.0d0 |
487 |
|
|
dsidy = 0.0d0 |
488 |
|
|
dsidz = 0.0d0 |
489 |
|
|
dsidux = 0.0d0 |
490 |
|
|
dsiduy = 0.0d0 |
491 |
|
|
dsiduz = 0.0d0 |
492 |
|
|
depsidx = 0.0d0 |
493 |
|
|
depsidy = 0.0d0 |
494 |
|
|
depsidz = 0.0d0 |
495 |
|
|
depsidux = 0.0d0 |
496 |
|
|
depsiduy = 0.0d0 |
497 |
|
|
depsiduz = 0.0d0 |
498 |
|
|
else |
499 |
|
|
|
500 |
|
|
#ifdef IS_MPI |
501 |
|
|
! rotate the inter-particle separation into the two different |
502 |
|
|
! body-fixed coordinate systems: |
503 |
|
|
|
504 |
|
|
xi = A_row(1,atom1)*d(1) + A_row(2,atom1)*d(2) + A_row(3,atom1)*d(3) |
505 |
|
|
yi = A_row(4,atom1)*d(1) + A_row(5,atom1)*d(2) + A_row(6,atom1)*d(3) |
506 |
|
|
zi = A_row(7,atom1)*d(1) + A_row(8,atom1)*d(2) + A_row(9,atom1)*d(3) |
507 |
|
|
|
508 |
|
|
#else |
509 |
|
|
! rotate the inter-particle separation into the two different |
510 |
|
|
! body-fixed coordinate systems: |
511 |
|
|
|
512 |
|
|
xi = a(1,atom1)*d(1) + a(2,atom1)*d(2) + a(3,atom1)*d(3) |
513 |
|
|
yi = a(4,atom1)*d(1) + a(5,atom1)*d(2) + a(6,atom1)*d(3) |
514 |
|
|
zi = a(7,atom1)*d(1) + a(8,atom1)*d(2) + a(9,atom1)*d(3) |
515 |
|
|
|
516 |
|
|
#endif |
517 |
chrisfen |
195 |
|
518 |
gezelter |
115 |
xi2 = xi*xi |
519 |
|
|
yi2 = yi*yi |
520 |
|
|
zi2 = zi*zi |
521 |
|
|
|
522 |
|
|
proji = sqrt(xi2 + yi2) |
523 |
|
|
proji3 = proji*proji*proji |
524 |
|
|
|
525 |
|
|
cti = zi / rij |
526 |
chrisfen |
195 |
|
527 |
gezelter |
115 |
dctidx = - zi * xi / r3 |
528 |
|
|
dctidy = - zi * yi / r3 |
529 |
|
|
dctidz = 1.0d0 / rij - zi2 / r3 |
530 |
|
|
dctidux = yi / rij |
531 |
|
|
dctiduy = -xi / rij |
532 |
|
|
dctiduz = 0.0d0 |
533 |
|
|
|
534 |
|
|
cpi = xi / proji |
535 |
|
|
dcpidx = 1.0d0 / proji - xi2 / proji3 |
536 |
|
|
dcpidy = - xi * yi / proji3 |
537 |
|
|
dcpidz = 0.0d0 |
538 |
|
|
dcpidux = xi * yi * zi / proji3 |
539 |
|
|
dcpiduy = -zi * (1.0d0 / proji - xi2 / proji3) |
540 |
|
|
dcpiduz = -yi * (1.0d0 / proji - xi2 / proji3) - (xi2 * yi / proji3) |
541 |
|
|
|
542 |
|
|
spi = yi / proji |
543 |
|
|
dspidx = - xi * yi / proji3 |
544 |
|
|
dspidy = 1.0d0 / proji - yi2 / proji3 |
545 |
|
|
dspidz = 0.0d0 |
546 |
|
|
dspidux = -zi * (1.0d0 / proji - yi2 / proji3) |
547 |
|
|
dspiduy = xi * yi * zi / proji3 |
548 |
|
|
dspiduz = xi * (1.0d0 / proji - yi2 / proji3) + (xi * yi2 / proji3) |
549 |
|
|
|
550 |
chrisfen |
198 |
call Associated_Legendre(cti, ShapeMap%Shapes(st1)%bigM, & |
551 |
|
|
ShapeMap%Shapes(st1)%bigL, LMAX, & |
552 |
chrisfen |
195 |
plm_i, dlm_i) |
553 |
gezelter |
115 |
|
554 |
chrisfen |
195 |
call Orthogonal_Polynomial(cpi, ShapeMap%Shapes(st1)%bigM, MMAX, & |
555 |
gezelter |
115 |
CHEBYSHEV_TN, tm_i, dtm_i) |
556 |
chrisfen |
195 |
call Orthogonal_Polynomial(cpi, ShapeMap%Shapes(st1)%bigM, MMAX, & |
557 |
gezelter |
115 |
CHEBYSHEV_UN, um_i, dum_i) |
558 |
|
|
|
559 |
|
|
sigma_i = 0.0d0 |
560 |
|
|
s_i = 0.0d0 |
561 |
|
|
eps_i = 0.0d0 |
562 |
|
|
dsigmaidx = 0.0d0 |
563 |
|
|
dsigmaidy = 0.0d0 |
564 |
|
|
dsigmaidz = 0.0d0 |
565 |
|
|
dsigmaidux = 0.0d0 |
566 |
|
|
dsigmaiduy = 0.0d0 |
567 |
|
|
dsigmaiduz = 0.0d0 |
568 |
|
|
dsidx = 0.0d0 |
569 |
|
|
dsidy = 0.0d0 |
570 |
|
|
dsidz = 0.0d0 |
571 |
|
|
dsidux = 0.0d0 |
572 |
|
|
dsiduy = 0.0d0 |
573 |
|
|
dsiduz = 0.0d0 |
574 |
|
|
depsidx = 0.0d0 |
575 |
|
|
depsidy = 0.0d0 |
576 |
|
|
depsidz = 0.0d0 |
577 |
|
|
depsidux = 0.0d0 |
578 |
|
|
depsiduy = 0.0d0 |
579 |
|
|
depsiduz = 0.0d0 |
580 |
|
|
|
581 |
|
|
do lm = 1, ShapeMap%Shapes(st1)%nContactFuncs |
582 |
|
|
l = ShapeMap%Shapes(st1)%ContactFuncLValue(lm) |
583 |
|
|
m = ShapeMap%Shapes(st1)%ContactFuncMValue(lm) |
584 |
|
|
coeff = ShapeMap%Shapes(st1)%ContactFuncCoefficient(lm) |
585 |
|
|
function_type = ShapeMap%Shapes(st1)%ContactFunctionType(lm) |
586 |
|
|
|
587 |
|
|
if ((function_type .eq. SH_COS).or.(m.eq.0)) then |
588 |
|
|
Phunc = coeff * tm_i(m) |
589 |
|
|
dPhuncdX = coeff * dtm_i(m) * dcpidx |
590 |
|
|
dPhuncdY = coeff * dtm_i(m) * dcpidy |
591 |
|
|
dPhuncdZ = coeff * dtm_i(m) * dcpidz |
592 |
|
|
dPhuncdUz = coeff * dtm_i(m) * dcpidux |
593 |
|
|
dPhuncdUy = coeff * dtm_i(m) * dcpiduy |
594 |
|
|
dPhuncdUz = coeff * dtm_i(m) * dcpiduz |
595 |
|
|
else |
596 |
|
|
Phunc = coeff * spi * um_i(m-1) |
597 |
|
|
dPhuncdX = coeff * (spi * dum_i(m-1) * dcpidx + dspidx *um_i(m-1)) |
598 |
|
|
dPhuncdY = coeff * (spi * dum_i(m-1) * dcpidy + dspidy *um_i(m-1)) |
599 |
|
|
dPhuncdZ = coeff * (spi * dum_i(m-1) * dcpidz + dspidz *um_i(m-1)) |
600 |
|
|
dPhuncdUx = coeff*(spi * dum_i(m-1)*dcpidux + dspidux *um_i(m-1)) |
601 |
|
|
dPhuncdUy = coeff*(spi * dum_i(m-1)*dcpiduy + dspiduy *um_i(m-1)) |
602 |
|
|
dPhuncdUz = coeff*(spi * dum_i(m-1)*dcpiduz + dspiduz *um_i(m-1)) |
603 |
|
|
endif |
604 |
|
|
|
605 |
chrisfen |
198 |
sigma_i = sigma_i + plm_i(m,l)*Phunc |
606 |
|
|
|
607 |
|
|
dsigmaidx = dsigmaidx + plm_i(m,l)*dPhuncdX + & |
608 |
|
|
Phunc * dlm_i(m,l) * dctidx |
609 |
|
|
dsigmaidy = dsigmaidy + plm_i(m,l)*dPhuncdY + & |
610 |
|
|
Phunc * dlm_i(m,l) * dctidy |
611 |
|
|
dsigmaidz = dsigmaidz + plm_i(m,l)*dPhuncdZ + & |
612 |
|
|
Phunc * dlm_i(m,l) * dctidz |
613 |
gezelter |
115 |
|
614 |
chrisfen |
198 |
dsigmaidux = dsigmaidux + plm_i(m,l)* dPhuncdUx + & |
615 |
|
|
Phunc * dlm_i(m,l) * dctidux |
616 |
|
|
dsigmaiduy = dsigmaiduy + plm_i(m,l)* dPhuncdUy + & |
617 |
|
|
Phunc * dlm_i(m,l) * dctiduy |
618 |
|
|
dsigmaiduz = dsigmaiduz + plm_i(m,l)* dPhuncdUz + & |
619 |
|
|
Phunc * dlm_i(m,l) * dctiduz |
620 |
gezelter |
115 |
|
621 |
|
|
end do |
622 |
|
|
|
623 |
|
|
do lm = 1, ShapeMap%Shapes(st1)%nRangeFuncs |
624 |
|
|
l = ShapeMap%Shapes(st1)%RangeFuncLValue(lm) |
625 |
|
|
m = ShapeMap%Shapes(st1)%RangeFuncMValue(lm) |
626 |
|
|
coeff = ShapeMap%Shapes(st1)%RangeFuncCoefficient(lm) |
627 |
|
|
function_type = ShapeMap%Shapes(st1)%RangeFunctionType(lm) |
628 |
|
|
|
629 |
|
|
if ((function_type .eq. SH_COS).or.(m.eq.0)) then |
630 |
|
|
Phunc = coeff * tm_i(m) |
631 |
|
|
dPhuncdX = coeff * dtm_i(m) * dcpidx |
632 |
|
|
dPhuncdY = coeff * dtm_i(m) * dcpidy |
633 |
|
|
dPhuncdZ = coeff * dtm_i(m) * dcpidz |
634 |
|
|
dPhuncdUz = coeff * dtm_i(m) * dcpidux |
635 |
|
|
dPhuncdUy = coeff * dtm_i(m) * dcpiduy |
636 |
|
|
dPhuncdUz = coeff * dtm_i(m) * dcpiduz |
637 |
|
|
else |
638 |
|
|
Phunc = coeff * spi * um_i(m-1) |
639 |
|
|
dPhuncdX = coeff * (spi * dum_i(m-1) * dcpidx + dspidx *um_i(m-1)) |
640 |
|
|
dPhuncdY = coeff * (spi * dum_i(m-1) * dcpidy + dspidy *um_i(m-1)) |
641 |
|
|
dPhuncdZ = coeff * (spi * dum_i(m-1) * dcpidz + dspidz *um_i(m-1)) |
642 |
|
|
dPhuncdUx = coeff*(spi * dum_i(m-1)*dcpidux + dspidux *um_i(m-1)) |
643 |
|
|
dPhuncdUy = coeff*(spi * dum_i(m-1)*dcpiduy + dspiduy *um_i(m-1)) |
644 |
|
|
dPhuncdUz = coeff*(spi * dum_i(m-1)*dcpiduz + dspiduz *um_i(m-1)) |
645 |
|
|
endif |
646 |
|
|
|
647 |
chrisfen |
198 |
s_i = s_i + plm_i(m,l)*Phunc |
648 |
gezelter |
115 |
|
649 |
chrisfen |
198 |
dsidx = dsidx + plm_i(m,l)*dPhuncdX + & |
650 |
|
|
Phunc * dlm_i(m,l) * dctidx |
651 |
|
|
dsidy = dsidy + plm_i(m,l)*dPhuncdY + & |
652 |
|
|
Phunc * dlm_i(m,l) * dctidy |
653 |
|
|
dsidz = dsidz + plm_i(m,l)*dPhuncdZ + & |
654 |
|
|
Phunc * dlm_i(m,l) * dctidz |
655 |
gezelter |
115 |
|
656 |
chrisfen |
198 |
dsidux = dsidux + plm_i(m,l)* dPhuncdUx + & |
657 |
|
|
Phunc * dlm_i(m,l) * dctidux |
658 |
|
|
dsiduy = dsiduy + plm_i(m,l)* dPhuncdUy + & |
659 |
|
|
Phunc * dlm_i(m,l) * dctiduy |
660 |
|
|
dsiduz = dsiduz + plm_i(m,l)* dPhuncdUz + & |
661 |
|
|
Phunc * dlm_i(m,l) * dctiduz |
662 |
gezelter |
115 |
|
663 |
|
|
end do |
664 |
|
|
|
665 |
|
|
do lm = 1, ShapeMap%Shapes(st1)%nStrengthFuncs |
666 |
|
|
l = ShapeMap%Shapes(st1)%StrengthFuncLValue(lm) |
667 |
|
|
m = ShapeMap%Shapes(st1)%StrengthFuncMValue(lm) |
668 |
|
|
coeff = ShapeMap%Shapes(st1)%StrengthFuncCoefficient(lm) |
669 |
|
|
function_type = ShapeMap%Shapes(st1)%StrengthFunctionType(lm) |
670 |
|
|
|
671 |
|
|
if ((function_type .eq. SH_COS).or.(m.eq.0)) then |
672 |
|
|
Phunc = coeff * tm_i(m) |
673 |
|
|
dPhuncdX = coeff * dtm_i(m) * dcpidx |
674 |
|
|
dPhuncdY = coeff * dtm_i(m) * dcpidy |
675 |
|
|
dPhuncdZ = coeff * dtm_i(m) * dcpidz |
676 |
|
|
dPhuncdUz = coeff * dtm_i(m) * dcpidux |
677 |
|
|
dPhuncdUy = coeff * dtm_i(m) * dcpiduy |
678 |
|
|
dPhuncdUz = coeff * dtm_i(m) * dcpiduz |
679 |
|
|
else |
680 |
|
|
Phunc = coeff * spi * um_i(m-1) |
681 |
|
|
dPhuncdX = coeff * (spi * dum_i(m-1) * dcpidx + dspidx *um_i(m-1)) |
682 |
|
|
dPhuncdY = coeff * (spi * dum_i(m-1) * dcpidy + dspidy *um_i(m-1)) |
683 |
|
|
dPhuncdZ = coeff * (spi * dum_i(m-1) * dcpidz + dspidz *um_i(m-1)) |
684 |
|
|
dPhuncdUx = coeff*(spi * dum_i(m-1)*dcpidux + dspidux *um_i(m-1)) |
685 |
|
|
dPhuncdUy = coeff*(spi * dum_i(m-1)*dcpiduy + dspiduy *um_i(m-1)) |
686 |
|
|
dPhuncdUz = coeff*(spi * dum_i(m-1)*dcpiduz + dspiduz *um_i(m-1)) |
687 |
|
|
endif |
688 |
chrisfen |
198 |
|
689 |
|
|
eps_i = eps_i + plm_i(m,l)*Phunc |
690 |
gezelter |
115 |
|
691 |
chrisfen |
198 |
depsidx = depsidx + plm_i(m,l)*dPhuncdX + & |
692 |
|
|
Phunc * dlm_i(m,l) * dctidx |
693 |
|
|
depsidy = depsidy + plm_i(m,l)*dPhuncdY + & |
694 |
|
|
Phunc * dlm_i(m,l) * dctidy |
695 |
|
|
depsidz = depsidz + plm_i(m,l)*dPhuncdZ + & |
696 |
|
|
Phunc * dlm_i(m,l) * dctidz |
697 |
gezelter |
115 |
|
698 |
chrisfen |
198 |
depsidux = depsidux + plm_i(m,l)* dPhuncdUx + & |
699 |
|
|
Phunc * dlm_i(m,l) * dctidux |
700 |
|
|
depsiduy = depsiduy + plm_i(m,l)* dPhuncdUy + & |
701 |
|
|
Phunc * dlm_i(m,l) * dctiduy |
702 |
|
|
depsiduz = depsiduz + plm_i(m,l)* dPhuncdUz + & |
703 |
|
|
Phunc * dlm_i(m,l) * dctiduz |
704 |
gezelter |
115 |
|
705 |
|
|
end do |
706 |
|
|
|
707 |
|
|
endif |
708 |
|
|
|
709 |
|
|
! now do j: |
710 |
|
|
|
711 |
|
|
if (ShapeMap%Shapes(st2)%isLJ) then |
712 |
|
|
sigma_j = ShapeMap%Shapes(st2)%sigma |
713 |
|
|
s_j = ShapeMap%Shapes(st2)%sigma |
714 |
|
|
eps_j = ShapeMap%Shapes(st2)%epsilon |
715 |
|
|
dsigmajdx = 0.0d0 |
716 |
|
|
dsigmajdy = 0.0d0 |
717 |
|
|
dsigmajdz = 0.0d0 |
718 |
|
|
dsigmajdux = 0.0d0 |
719 |
|
|
dsigmajduy = 0.0d0 |
720 |
|
|
dsigmajduz = 0.0d0 |
721 |
|
|
dsjdx = 0.0d0 |
722 |
|
|
dsjdy = 0.0d0 |
723 |
|
|
dsjdz = 0.0d0 |
724 |
|
|
dsjdux = 0.0d0 |
725 |
|
|
dsjduy = 0.0d0 |
726 |
|
|
dsjduz = 0.0d0 |
727 |
|
|
depsjdx = 0.0d0 |
728 |
|
|
depsjdy = 0.0d0 |
729 |
|
|
depsjdz = 0.0d0 |
730 |
|
|
depsjdux = 0.0d0 |
731 |
|
|
depsjduy = 0.0d0 |
732 |
|
|
depsjduz = 0.0d0 |
733 |
|
|
else |
734 |
|
|
|
735 |
|
|
#ifdef IS_MPI |
736 |
|
|
! rotate the inter-particle separation into the two different |
737 |
|
|
! body-fixed coordinate systems: |
738 |
|
|
! negative sign because this is the vector from j to i: |
739 |
|
|
|
740 |
|
|
xj = -(A_Col(1,atom2)*d(1) + A_Col(2,atom2)*d(2) + A_Col(3,atom2)*d(3)) |
741 |
|
|
yj = -(A_Col(4,atom2)*d(1) + A_Col(5,atom2)*d(2) + A_Col(6,atom2)*d(3)) |
742 |
|
|
zj = -(A_Col(7,atom2)*d(1) + A_Col(8,atom2)*d(2) + A_Col(9,atom2)*d(3)) |
743 |
|
|
#else |
744 |
|
|
! rotate the inter-particle separation into the two different |
745 |
|
|
! body-fixed coordinate systems: |
746 |
|
|
! negative sign because this is the vector from j to i: |
747 |
|
|
|
748 |
|
|
xj = -(a(1,atom2)*d(1) + a(2,atom2)*d(2) + a(3,atom2)*d(3)) |
749 |
|
|
yj = -(a(4,atom2)*d(1) + a(5,atom2)*d(2) + a(6,atom2)*d(3)) |
750 |
|
|
zj = -(a(7,atom2)*d(1) + a(8,atom2)*d(2) + a(9,atom2)*d(3)) |
751 |
|
|
#endif |
752 |
|
|
|
753 |
|
|
xj2 = xj*xj |
754 |
|
|
yj2 = yj*yj |
755 |
|
|
zj2 = zj*zj |
756 |
|
|
|
757 |
|
|
projj = sqrt(xj2 + yj2) |
758 |
|
|
projj3 = projj*projj*projj |
759 |
|
|
|
760 |
|
|
ctj = zj / rij |
761 |
|
|
dctjdx = - zj * xj / r3 |
762 |
|
|
dctjdy = - zj * yj / r3 |
763 |
|
|
dctjdz = 1.0d0 / rij - zj2 / r3 |
764 |
|
|
dctjdux = yj / rij |
765 |
|
|
dctjduy = -xj / rij |
766 |
|
|
dctjduz = 0.0d0 |
767 |
|
|
|
768 |
|
|
cpj = xj / projj |
769 |
|
|
dcpjdx = 1.0d0 / projj - xj2 / projj3 |
770 |
|
|
dcpjdy = - xj * yj / projj3 |
771 |
|
|
dcpjdz = 0.0d0 |
772 |
|
|
dcpjdux = xj * yj * zj / projj3 |
773 |
|
|
dcpjduy = -zj * (1.0d0 / projj - xj2 / projj3) |
774 |
|
|
dcpjduz = -yj * (1.0d0 / projj - xj2 / projj3) - (xj2 * yj / projj3) |
775 |
|
|
|
776 |
|
|
spj = yj / projj |
777 |
|
|
dspjdx = - xj * yj / projj3 |
778 |
|
|
dspjdy = 1.0d0 / projj - yj2 / projj3 |
779 |
|
|
dspjdz = 0.0d0 |
780 |
|
|
dspjdux = -zj * (1.0d0 / projj - yj2 / projj3) |
781 |
|
|
dspjduy = xj * yj * zj / projj3 |
782 |
|
|
dspjduz = xj * (1.0d0 / projj - yi2 / projj3) + (xj * yj2 / projj3) |
783 |
|
|
|
784 |
chrisfen |
198 |
call Associated_Legendre(ctj, ShapeMap%Shapes(st2)%bigM, & |
785 |
|
|
ShapeMap%Shapes(st2)%bigL, LMAX, & |
786 |
chrisfen |
195 |
plm_j, dlm_j) |
787 |
gezelter |
115 |
|
788 |
chrisfen |
195 |
call Orthogonal_Polynomial(cpj, ShapeMap%Shapes(st2)%bigM, MMAX, & |
789 |
gezelter |
115 |
CHEBYSHEV_TN, tm_j, dtm_j) |
790 |
chrisfen |
195 |
call Orthogonal_Polynomial(cpj, ShapeMap%Shapes(st2)%bigM, MMAX, & |
791 |
gezelter |
115 |
CHEBYSHEV_UN, um_j, dum_j) |
792 |
|
|
|
793 |
|
|
sigma_j = 0.0d0 |
794 |
|
|
s_j = 0.0d0 |
795 |
|
|
eps_j = 0.0d0 |
796 |
|
|
dsigmajdx = 0.0d0 |
797 |
|
|
dsigmajdy = 0.0d0 |
798 |
|
|
dsigmajdz = 0.0d0 |
799 |
|
|
dsigmajdux = 0.0d0 |
800 |
|
|
dsigmajduy = 0.0d0 |
801 |
|
|
dsigmajduz = 0.0d0 |
802 |
|
|
dsjdx = 0.0d0 |
803 |
|
|
dsjdy = 0.0d0 |
804 |
|
|
dsjdz = 0.0d0 |
805 |
|
|
dsjdux = 0.0d0 |
806 |
|
|
dsjduy = 0.0d0 |
807 |
|
|
dsjduz = 0.0d0 |
808 |
|
|
depsjdx = 0.0d0 |
809 |
|
|
depsjdy = 0.0d0 |
810 |
|
|
depsjdz = 0.0d0 |
811 |
|
|
depsjdux = 0.0d0 |
812 |
|
|
depsjduy = 0.0d0 |
813 |
|
|
depsjduz = 0.0d0 |
814 |
|
|
|
815 |
|
|
do lm = 1, ShapeMap%Shapes(st2)%nContactFuncs |
816 |
|
|
l = ShapeMap%Shapes(st2)%ContactFuncLValue(lm) |
817 |
|
|
m = ShapeMap%Shapes(st2)%ContactFuncMValue(lm) |
818 |
|
|
coeff = ShapeMap%Shapes(st2)%ContactFuncCoefficient(lm) |
819 |
|
|
function_type = ShapeMap%Shapes(st2)%ContactFunctionType(lm) |
820 |
|
|
|
821 |
|
|
if ((function_type .eq. SH_COS).or.(m.eq.0)) then |
822 |
|
|
Phunc = coeff * tm_j(m) |
823 |
|
|
dPhuncdX = coeff * dtm_j(m) * dcpjdx |
824 |
|
|
dPhuncdY = coeff * dtm_j(m) * dcpjdy |
825 |
|
|
dPhuncdZ = coeff * dtm_j(m) * dcpjdz |
826 |
|
|
dPhuncdUz = coeff * dtm_j(m) * dcpjdux |
827 |
|
|
dPhuncdUy = coeff * dtm_j(m) * dcpjduy |
828 |
|
|
dPhuncdUz = coeff * dtm_j(m) * dcpjduz |
829 |
|
|
else |
830 |
|
|
Phunc = coeff * spj * um_j(m-1) |
831 |
|
|
dPhuncdX = coeff * (spj * dum_j(m-1) * dcpjdx + dspjdx *um_j(m-1)) |
832 |
|
|
dPhuncdY = coeff * (spj * dum_j(m-1) * dcpjdy + dspjdy *um_j(m-1)) |
833 |
|
|
dPhuncdZ = coeff * (spj * dum_j(m-1) * dcpjdz + dspjdz *um_j(m-1)) |
834 |
|
|
dPhuncdUx = coeff*(spj * dum_j(m-1)*dcpjdux + dspjdux *um_j(m-1)) |
835 |
|
|
dPhuncdUy = coeff*(spj * dum_j(m-1)*dcpjduy + dspjduy *um_j(m-1)) |
836 |
|
|
dPhuncdUz = coeff*(spj * dum_j(m-1)*dcpjduz + dspjduz *um_j(m-1)) |
837 |
|
|
endif |
838 |
|
|
|
839 |
chrisfen |
198 |
sigma_j = sigma_j + plm_j(m,l)*Phunc |
840 |
gezelter |
115 |
|
841 |
chrisfen |
198 |
dsigmajdx = dsigmajdx + plm_j(m,l)*dPhuncdX + & |
842 |
|
|
Phunc * dlm_j(m,l) * dctjdx |
843 |
|
|
dsigmajdy = dsigmajdy + plm_j(m,l)*dPhuncdY + & |
844 |
|
|
Phunc * dlm_j(m,l) * dctjdy |
845 |
|
|
dsigmajdz = dsigmajdz + plm_j(m,l)*dPhuncdZ + & |
846 |
|
|
Phunc * dlm_j(m,l) * dctjdz |
847 |
gezelter |
115 |
|
848 |
chrisfen |
198 |
dsigmajdux = dsigmajdux + plm_j(m,l)* dPhuncdUx + & |
849 |
|
|
Phunc * dlm_j(m,l) * dctjdux |
850 |
|
|
dsigmajduy = dsigmajduy + plm_j(m,l)* dPhuncdUy + & |
851 |
|
|
Phunc * dlm_j(m,l) * dctjduy |
852 |
|
|
dsigmajduz = dsigmajduz + plm_j(m,l)* dPhuncdUz + & |
853 |
|
|
Phunc * dlm_j(m,l) * dctjduz |
854 |
gezelter |
115 |
|
855 |
|
|
end do |
856 |
|
|
|
857 |
|
|
do lm = 1, ShapeMap%Shapes(st2)%nRangeFuncs |
858 |
|
|
l = ShapeMap%Shapes(st2)%RangeFuncLValue(lm) |
859 |
|
|
m = ShapeMap%Shapes(st2)%RangeFuncMValue(lm) |
860 |
|
|
coeff = ShapeMap%Shapes(st2)%RangeFuncCoefficient(lm) |
861 |
|
|
function_type = ShapeMap%Shapes(st2)%RangeFunctionType(lm) |
862 |
|
|
|
863 |
|
|
if ((function_type .eq. SH_COS).or.(m.eq.0)) then |
864 |
|
|
Phunc = coeff * tm_j(m) |
865 |
|
|
dPhuncdX = coeff * dtm_j(m) * dcpjdx |
866 |
|
|
dPhuncdY = coeff * dtm_j(m) * dcpjdy |
867 |
|
|
dPhuncdZ = coeff * dtm_j(m) * dcpjdz |
868 |
|
|
dPhuncdUz = coeff * dtm_j(m) * dcpjdux |
869 |
|
|
dPhuncdUy = coeff * dtm_j(m) * dcpjduy |
870 |
|
|
dPhuncdUz = coeff * dtm_j(m) * dcpjduz |
871 |
|
|
else |
872 |
|
|
Phunc = coeff * spj * um_j(m-1) |
873 |
|
|
dPhuncdX = coeff * (spj * dum_j(m-1) * dcpjdx + dspjdx *um_j(m-1)) |
874 |
|
|
dPhuncdY = coeff * (spj * dum_j(m-1) * dcpjdy + dspjdy *um_j(m-1)) |
875 |
|
|
dPhuncdZ = coeff * (spj * dum_j(m-1) * dcpjdz + dspjdz *um_j(m-1)) |
876 |
|
|
dPhuncdUx = coeff*(spj * dum_j(m-1)*dcpjdux + dspjdux *um_j(m-1)) |
877 |
|
|
dPhuncdUy = coeff*(spj * dum_j(m-1)*dcpjduy + dspjduy *um_j(m-1)) |
878 |
|
|
dPhuncdUz = coeff*(spj * dum_j(m-1)*dcpjduz + dspjduz *um_j(m-1)) |
879 |
|
|
endif |
880 |
|
|
|
881 |
chrisfen |
198 |
s_j = s_j + plm_j(m,l)*Phunc |
882 |
gezelter |
115 |
|
883 |
chrisfen |
198 |
dsjdx = dsjdx + plm_j(m,l)*dPhuncdX + & |
884 |
|
|
Phunc * dlm_j(m,l) * dctjdx |
885 |
|
|
dsjdy = dsjdy + plm_j(m,l)*dPhuncdY + & |
886 |
|
|
Phunc * dlm_j(m,l) * dctjdy |
887 |
|
|
dsjdz = dsjdz + plm_j(m,l)*dPhuncdZ + & |
888 |
|
|
Phunc * dlm_j(m,l) * dctjdz |
889 |
gezelter |
115 |
|
890 |
chrisfen |
198 |
dsjdux = dsjdux + plm_j(m,l)* dPhuncdUx + & |
891 |
|
|
Phunc * dlm_j(m,l) * dctjdux |
892 |
|
|
dsjduy = dsjduy + plm_j(m,l)* dPhuncdUy + & |
893 |
|
|
Phunc * dlm_j(m,l) * dctjduy |
894 |
|
|
dsjduz = dsjduz + plm_j(m,l)* dPhuncdUz + & |
895 |
|
|
Phunc * dlm_j(m,l) * dctjduz |
896 |
gezelter |
115 |
|
897 |
|
|
end do |
898 |
|
|
|
899 |
|
|
do lm = 1, ShapeMap%Shapes(st2)%nStrengthFuncs |
900 |
|
|
l = ShapeMap%Shapes(st2)%StrengthFuncLValue(lm) |
901 |
|
|
m = ShapeMap%Shapes(st2)%StrengthFuncMValue(lm) |
902 |
|
|
coeff = ShapeMap%Shapes(st2)%StrengthFuncCoefficient(lm) |
903 |
|
|
function_type = ShapeMap%Shapes(st2)%StrengthFunctionType(lm) |
904 |
|
|
|
905 |
|
|
if ((function_type .eq. SH_COS).or.(m.eq.0)) then |
906 |
|
|
Phunc = coeff * tm_j(m) |
907 |
|
|
dPhuncdX = coeff * dtm_j(m) * dcpjdx |
908 |
|
|
dPhuncdY = coeff * dtm_j(m) * dcpjdy |
909 |
|
|
dPhuncdZ = coeff * dtm_j(m) * dcpjdz |
910 |
|
|
dPhuncdUz = coeff * dtm_j(m) * dcpjdux |
911 |
|
|
dPhuncdUy = coeff * dtm_j(m) * dcpjduy |
912 |
|
|
dPhuncdUz = coeff * dtm_j(m) * dcpjduz |
913 |
|
|
else |
914 |
|
|
Phunc = coeff * spj * um_j(m-1) |
915 |
|
|
dPhuncdX = coeff * (spj * dum_j(m-1) * dcpjdx + dspjdx *um_j(m-1)) |
916 |
|
|
dPhuncdY = coeff * (spj * dum_j(m-1) * dcpjdy + dspjdy *um_j(m-1)) |
917 |
|
|
dPhuncdZ = coeff * (spj * dum_j(m-1) * dcpjdz + dspjdz *um_j(m-1)) |
918 |
|
|
dPhuncdUx = coeff*(spj * dum_j(m-1)*dcpjdux + dspjdux *um_j(m-1)) |
919 |
|
|
dPhuncdUy = coeff*(spj * dum_j(m-1)*dcpjduy + dspjduy *um_j(m-1)) |
920 |
|
|
dPhuncdUz = coeff*(spj * dum_j(m-1)*dcpjduz + dspjduz *um_j(m-1)) |
921 |
|
|
endif |
922 |
|
|
|
923 |
chrisfen |
198 |
eps_j = eps_j + plm_j(m,l)*Phunc |
924 |
gezelter |
115 |
|
925 |
chrisfen |
198 |
depsjdx = depsjdx + plm_j(m,l)*dPhuncdX + & |
926 |
|
|
Phunc * dlm_j(m,l) * dctjdx |
927 |
|
|
depsjdy = depsjdy + plm_j(m,l)*dPhuncdY + & |
928 |
|
|
Phunc * dlm_j(m,l) * dctjdy |
929 |
|
|
depsjdz = depsjdz + plm_j(m,l)*dPhuncdZ + & |
930 |
|
|
Phunc * dlm_j(m,l) * dctjdz |
931 |
gezelter |
115 |
|
932 |
chrisfen |
198 |
depsjdux = depsjdux + plm_j(m,l)* dPhuncdUx + & |
933 |
|
|
Phunc * dlm_j(m,l) * dctjdux |
934 |
|
|
depsjduy = depsjduy + plm_j(m,l)* dPhuncdUy + & |
935 |
|
|
Phunc * dlm_j(m,l) * dctjduy |
936 |
|
|
depsjduz = depsjduz + plm_j(m,l)* dPhuncdUz + & |
937 |
|
|
Phunc * dlm_j(m,l) * dctjduz |
938 |
gezelter |
115 |
|
939 |
|
|
end do |
940 |
|
|
|
941 |
|
|
endif |
942 |
|
|
|
943 |
|
|
! phew, now let's assemble the potential energy: |
944 |
|
|
|
945 |
|
|
sigma = 0.5*(sigma_i + sigma_j) |
946 |
|
|
|
947 |
|
|
dsigmadxi = 0.5*dsigmaidx |
948 |
|
|
dsigmadyi = 0.5*dsigmaidy |
949 |
|
|
dsigmadzi = 0.5*dsigmaidz |
950 |
|
|
dsigmaduxi = 0.5*dsigmaidux |
951 |
|
|
dsigmaduyi = 0.5*dsigmaiduy |
952 |
|
|
dsigmaduzi = 0.5*dsigmaiduz |
953 |
|
|
|
954 |
|
|
dsigmadxj = 0.5*dsigmajdx |
955 |
|
|
dsigmadyj = 0.5*dsigmajdy |
956 |
|
|
dsigmadzj = 0.5*dsigmajdz |
957 |
|
|
dsigmaduxj = 0.5*dsigmajdux |
958 |
|
|
dsigmaduyj = 0.5*dsigmajduy |
959 |
|
|
dsigmaduzj = 0.5*dsigmajduz |
960 |
|
|
|
961 |
|
|
s = 0.5*(s_i + s_j) |
962 |
|
|
|
963 |
|
|
dsdxi = 0.5*dsidx |
964 |
|
|
dsdyi = 0.5*dsidy |
965 |
|
|
dsdzi = 0.5*dsidz |
966 |
|
|
dsduxi = 0.5*dsidux |
967 |
|
|
dsduyi = 0.5*dsiduy |
968 |
|
|
dsduzi = 0.5*dsiduz |
969 |
|
|
|
970 |
|
|
dsdxj = 0.5*dsjdx |
971 |
|
|
dsdyj = 0.5*dsjdy |
972 |
|
|
dsdzj = 0.5*dsjdz |
973 |
|
|
dsduxj = 0.5*dsjdux |
974 |
|
|
dsduyj = 0.5*dsjduy |
975 |
|
|
dsduzj = 0.5*dsjduz |
976 |
chrisfen |
198 |
|
977 |
gezelter |
115 |
eps = sqrt(eps_i * eps_j) |
978 |
|
|
|
979 |
|
|
depsdxi = eps_j * depsidx / (2.0d0 * eps) |
980 |
|
|
depsdyi = eps_j * depsidy / (2.0d0 * eps) |
981 |
|
|
depsdzi = eps_j * depsidz / (2.0d0 * eps) |
982 |
|
|
depsduxi = eps_j * depsidux / (2.0d0 * eps) |
983 |
|
|
depsduyi = eps_j * depsiduy / (2.0d0 * eps) |
984 |
|
|
depsduzi = eps_j * depsiduz / (2.0d0 * eps) |
985 |
|
|
|
986 |
|
|
depsdxj = eps_i * depsjdx / (2.0d0 * eps) |
987 |
|
|
depsdyj = eps_i * depsjdy / (2.0d0 * eps) |
988 |
|
|
depsdzj = eps_i * depsjdz / (2.0d0 * eps) |
989 |
|
|
depsduxj = eps_i * depsjdux / (2.0d0 * eps) |
990 |
|
|
depsduyj = eps_i * depsjduy / (2.0d0 * eps) |
991 |
|
|
depsduzj = eps_i * depsjduz / (2.0d0 * eps) |
992 |
|
|
|
993 |
|
|
rtdenom = rij-sigma+s |
994 |
|
|
rt = s / rtdenom |
995 |
|
|
|
996 |
|
|
drtdxi = (dsdxi + rt * (drdxi - dsigmadxi + dsdxi)) / rtdenom |
997 |
|
|
drtdyi = (dsdyi + rt * (drdyi - dsigmadyi + dsdyi)) / rtdenom |
998 |
|
|
drtdzi = (dsdzi + rt * (drdzi - dsigmadzi + dsdzi)) / rtdenom |
999 |
|
|
drtduxi = (dsduxi + rt * (drduxi - dsigmaduxi + dsduxi)) / rtdenom |
1000 |
|
|
drtduyi = (dsduyi + rt * (drduyi - dsigmaduyi + dsduyi)) / rtdenom |
1001 |
|
|
drtduzi = (dsduzi + rt * (drduzi - dsigmaduzi + dsduzi)) / rtdenom |
1002 |
|
|
drtdxj = (dsdxj + rt * (drdxj - dsigmadxj + dsdxj)) / rtdenom |
1003 |
|
|
drtdyj = (dsdyj + rt * (drdyj - dsigmadyj + dsdyj)) / rtdenom |
1004 |
|
|
drtdzj = (dsdzj + rt * (drdzj - dsigmadzj + dsdzj)) / rtdenom |
1005 |
|
|
drtduxj = (dsduxj + rt * (drduxj - dsigmaduxj + dsduxj)) / rtdenom |
1006 |
|
|
drtduyj = (dsduyj + rt * (drduyj - dsigmaduyj + dsduyj)) / rtdenom |
1007 |
|
|
drtduzj = (dsduzj + rt * (drduzj - dsigmaduzj + dsduzj)) / rtdenom |
1008 |
|
|
|
1009 |
|
|
rt2 = rt*rt |
1010 |
|
|
rt3 = rt2*rt |
1011 |
|
|
rt5 = rt2*rt3 |
1012 |
|
|
rt6 = rt3*rt3 |
1013 |
|
|
rt11 = rt5*rt6 |
1014 |
|
|
rt12 = rt6*rt6 |
1015 |
|
|
rt126 = rt12 - rt6 |
1016 |
|
|
|
1017 |
|
|
if (do_pot) then |
1018 |
|
|
#ifdef IS_MPI |
1019 |
|
|
pot_row(atom1) = pot_row(atom1) + 2.0d0*eps*rt126*sw |
1020 |
|
|
pot_col(atom2) = pot_col(atom2) + 2.0d0*eps*rt126*sw |
1021 |
|
|
#else |
1022 |
|
|
pot = pot + 4.0d0*eps*rt126*sw |
1023 |
|
|
#endif |
1024 |
|
|
endif |
1025 |
|
|
|
1026 |
|
|
dvdxi = 24.0d0*eps*(2.0d0*rt11 - rt5)*drtdxi + 4.0d0*depsdxi*rt126 |
1027 |
|
|
dvdyi = 24.0d0*eps*(2.0d0*rt11 - rt5)*drtdyi + 4.0d0*depsdyi*rt126 |
1028 |
|
|
dvdzi = 24.0d0*eps*(2.0d0*rt11 - rt5)*drtdzi + 4.0d0*depsdzi*rt126 |
1029 |
|
|
dvduxi = 24.0d0*eps*(2.0d0*rt11 - rt5)*drtduxi + 4.0d0*depsduxi*rt126 |
1030 |
|
|
dvduyi = 24.0d0*eps*(2.0d0*rt11 - rt5)*drtduyi + 4.0d0*depsduyi*rt126 |
1031 |
|
|
dvduzi = 24.0d0*eps*(2.0d0*rt11 - rt5)*drtduzi + 4.0d0*depsduzi*rt126 |
1032 |
|
|
|
1033 |
|
|
dvdxj = 24.0d0*eps*(2.0d0*rt11 - rt5)*drtdxj + 4.0d0*depsdxj*rt126 |
1034 |
|
|
dvdyj = 24.0d0*eps*(2.0d0*rt11 - rt5)*drtdyj + 4.0d0*depsdyj*rt126 |
1035 |
|
|
dvdzj = 24.0d0*eps*(2.0d0*rt11 - rt5)*drtdzj + 4.0d0*depsdzj*rt126 |
1036 |
|
|
dvduxj = 24.0d0*eps*(2.0d0*rt11 - rt5)*drtduxj + 4.0d0*depsduxj*rt126 |
1037 |
|
|
dvduyj = 24.0d0*eps*(2.0d0*rt11 - rt5)*drtduyj + 4.0d0*depsduyj*rt126 |
1038 |
|
|
dvduzj = 24.0d0*eps*(2.0d0*rt11 - rt5)*drtduzj + 4.0d0*depsduzj*rt126 |
1039 |
|
|
|
1040 |
|
|
! do the torques first since they are easy: |
1041 |
|
|
! remember that these are still in the body fixed axes |
1042 |
|
|
|
1043 |
|
|
txi = dvduxi * sw |
1044 |
|
|
tyi = dvduyi * sw |
1045 |
|
|
tzi = dvduzi * sw |
1046 |
|
|
|
1047 |
|
|
txj = dvduxj * sw |
1048 |
|
|
tyj = dvduyj * sw |
1049 |
|
|
tzj = dvduzj * sw |
1050 |
|
|
|
1051 |
|
|
! go back to lab frame using transpose of rotation matrix: |
1052 |
|
|
|
1053 |
|
|
#ifdef IS_MPI |
1054 |
|
|
t_Row(1,atom1) = t_Row(1,atom1) + a_Row(1,atom1)*txi + & |
1055 |
|
|
a_Row(4,atom1)*tyi + a_Row(7,atom1)*tzi |
1056 |
|
|
t_Row(2,atom1) = t_Row(2,atom1) + a_Row(2,atom1)*txi + & |
1057 |
|
|
a_Row(5,atom1)*tyi + a_Row(8,atom1)*tzi |
1058 |
|
|
t_Row(3,atom1) = t_Row(3,atom1) + a_Row(3,atom1)*txi + & |
1059 |
|
|
a_Row(6,atom1)*tyi + a_Row(9,atom1)*tzi |
1060 |
|
|
|
1061 |
|
|
t_Col(1,atom2) = t_Col(1,atom2) + a_Col(1,atom2)*txj + & |
1062 |
|
|
a_Col(4,atom2)*tyj + a_Col(7,atom2)*tzj |
1063 |
|
|
t_Col(2,atom2) = t_Col(2,atom2) + a_Col(2,atom2)*txj + & |
1064 |
|
|
a_Col(5,atom2)*tyj + a_Col(8,atom2)*tzj |
1065 |
|
|
t_Col(3,atom2) = t_Col(3,atom2) + a_Col(3,atom2)*txj + & |
1066 |
|
|
a_Col(6,atom2)*tyj + a_Col(9,atom2)*tzj |
1067 |
|
|
#else |
1068 |
|
|
t(1,atom1) = t(1,atom1) + a(1,atom1)*txi + a(4,atom1)*tyi + a(7,atom1)*tzi |
1069 |
|
|
t(2,atom1) = t(2,atom1) + a(2,atom1)*txi + a(5,atom1)*tyi + a(8,atom1)*tzi |
1070 |
|
|
t(3,atom1) = t(3,atom1) + a(3,atom1)*txi + a(6,atom1)*tyi + a(9,atom1)*tzi |
1071 |
|
|
|
1072 |
|
|
t(1,atom2) = t(1,atom2) + a(1,atom2)*txj + a(4,atom2)*tyj + a(7,atom2)*tzj |
1073 |
|
|
t(2,atom2) = t(2,atom2) + a(2,atom2)*txj + a(5,atom2)*tyj + a(8,atom2)*tzj |
1074 |
|
|
t(3,atom2) = t(3,atom2) + a(3,atom2)*txj + a(6,atom2)*tyj + a(9,atom2)*tzj |
1075 |
|
|
#endif |
1076 |
|
|
! Now, on to the forces: |
1077 |
|
|
|
1078 |
|
|
! first rotate the i terms back into the lab frame: |
1079 |
|
|
|
1080 |
|
|
fxi = dvdxi * sw |
1081 |
|
|
fyi = dvdyi * sw |
1082 |
|
|
fzi = dvdzi * sw |
1083 |
|
|
|
1084 |
|
|
fxj = dvdxj * sw |
1085 |
|
|
fyj = dvdyj * sw |
1086 |
|
|
fzj = dvdzj * sw |
1087 |
|
|
|
1088 |
|
|
#ifdef IS_MPI |
1089 |
|
|
fxii = a_Row(1,atom1)*fxi + a_Row(4,atom1)*fyi + a_Row(7,atom1)*fzi |
1090 |
|
|
fyii = a_Row(2,atom1)*fxi + a_Row(5,atom1)*fyi + a_Row(8,atom1)*fzi |
1091 |
|
|
fzii = a_Row(3,atom1)*fxi + a_Row(6,atom1)*fyi + a_Row(9,atom1)*fzi |
1092 |
|
|
|
1093 |
|
|
fxjj = a_Col(1,atom2)*fxj + a_Col(4,atom2)*fyj + a_Col(7,atom2)*fzj |
1094 |
|
|
fyjj = a_Col(2,atom2)*fxj + a_Col(5,atom2)*fyj + a_Col(8,atom2)*fzj |
1095 |
|
|
fzjj = a_Col(3,atom2)*fxj + a_Col(6,atom2)*fyj + a_Col(9,atom2)*fzj |
1096 |
|
|
#else |
1097 |
|
|
fxii = a(1,atom1)*fxi + a(4,atom1)*fyi + a(7,atom1)*fzi |
1098 |
|
|
fyii = a(2,atom1)*fxi + a(5,atom1)*fyi + a(8,atom1)*fzi |
1099 |
|
|
fzii = a(3,atom1)*fxi + a(6,atom1)*fyi + a(9,atom1)*fzi |
1100 |
|
|
|
1101 |
|
|
fxjj = a(1,atom2)*fxj + a(4,atom2)*fyj + a(7,atom2)*fzj |
1102 |
|
|
fyjj = a(2,atom2)*fxj + a(5,atom2)*fyj + a(8,atom2)*fzj |
1103 |
|
|
fzjj = a(3,atom2)*fxj + a(6,atom2)*fyj + a(9,atom2)*fzj |
1104 |
|
|
#endif |
1105 |
|
|
|
1106 |
|
|
fxij = -fxii |
1107 |
|
|
fyij = -fyii |
1108 |
|
|
fzij = -fzii |
1109 |
|
|
|
1110 |
|
|
fxji = -fxjj |
1111 |
|
|
fyji = -fyjj |
1112 |
|
|
fzji = -fzjj |
1113 |
|
|
|
1114 |
|
|
fxradial = fxii + fxji |
1115 |
|
|
fyradial = fyii + fyji |
1116 |
|
|
fzradial = fzii + fzji |
1117 |
|
|
|
1118 |
|
|
#ifdef IS_MPI |
1119 |
|
|
f_Row(1,atom1) = f_Row(1,atom1) + fxradial |
1120 |
|
|
f_Row(2,atom1) = f_Row(2,atom1) + fyradial |
1121 |
|
|
f_Row(3,atom1) = f_Row(3,atom1) + fzradial |
1122 |
|
|
|
1123 |
|
|
f_Col(1,atom2) = f_Col(1,atom2) - fxradial |
1124 |
|
|
f_Col(2,atom2) = f_Col(2,atom2) - fyradial |
1125 |
|
|
f_Col(3,atom2) = f_Col(3,atom2) - fzradial |
1126 |
|
|
#else |
1127 |
|
|
f(1,atom1) = f(1,atom1) + fxradial |
1128 |
|
|
f(2,atom1) = f(2,atom1) + fyradial |
1129 |
|
|
f(3,atom1) = f(3,atom1) + fzradial |
1130 |
|
|
|
1131 |
|
|
f(1,atom2) = f(1,atom2) - fxradial |
1132 |
|
|
f(2,atom2) = f(2,atom2) - fyradial |
1133 |
|
|
f(3,atom2) = f(3,atom2) - fzradial |
1134 |
|
|
#endif |
1135 |
|
|
|
1136 |
|
|
#ifdef IS_MPI |
1137 |
|
|
id1 = AtomRowToGlobal(atom1) |
1138 |
|
|
id2 = AtomColToGlobal(atom2) |
1139 |
|
|
#else |
1140 |
|
|
id1 = atom1 |
1141 |
|
|
id2 = atom2 |
1142 |
|
|
#endif |
1143 |
|
|
|
1144 |
|
|
if (molMembershipList(id1) .ne. molMembershipList(id2)) then |
1145 |
|
|
|
1146 |
|
|
fpair(1) = fpair(1) + fxradial |
1147 |
|
|
fpair(2) = fpair(2) + fyradial |
1148 |
|
|
fpair(3) = fpair(3) + fzradial |
1149 |
|
|
|
1150 |
|
|
endif |
1151 |
|
|
|
1152 |
|
|
end subroutine do_shape_pair |
1153 |
|
|
|
1154 |
chrisfen |
195 |
SUBROUTINE Associated_Legendre(x, l, m, lmax, plm, dlm) |
1155 |
|
|
|
1156 |
gezelter |
115 |
! Purpose: Compute the associated Legendre functions |
1157 |
|
|
! Plm(x) and their derivatives Plm'(x) |
1158 |
|
|
! Input : x --- Argument of Plm(x) |
1159 |
|
|
! l --- Order of Plm(x), l = 0,1,2,...,n |
1160 |
|
|
! m --- Degree of Plm(x), m = 0,1,2,...,N |
1161 |
|
|
! lmax --- Physical dimension of PLM and DLM |
1162 |
|
|
! Output: PLM(l,m) --- Plm(x) |
1163 |
|
|
! DLM(l,m) --- Plm'(x) |
1164 |
|
|
! |
1165 |
|
|
! adapted from the routines in |
1166 |
|
|
! COMPUTATION OF SPECIAL FUNCTIONS by Shanjie Zhang and Jianming Jin |
1167 |
|
|
! ISBN 0-471-11963-6 |
1168 |
|
|
! |
1169 |
|
|
! The original Fortran77 codes can be found here: |
1170 |
|
|
! http://iris-lee3.ece.uiuc.edu/~jjin/routines/routines.html |
1171 |
|
|
|
1172 |
chrisfen |
195 |
real (kind=dp), intent(in) :: x |
1173 |
gezelter |
115 |
integer, intent(in) :: l, m, lmax |
1174 |
chrisfen |
195 |
real (kind=dp), dimension(0:lmax,0:m), intent(out) :: PLM, DLM |
1175 |
gezelter |
115 |
integer :: i, j, ls |
1176 |
chrisfen |
195 |
real (kind=dp) :: xq, xs |
1177 |
gezelter |
115 |
|
1178 |
|
|
! zero out both arrays: |
1179 |
|
|
DO I = 0, m |
1180 |
|
|
DO J = 0, l |
1181 |
chrisfen |
195 |
PLM(J,I) = 0.0_dp |
1182 |
|
|
DLM(J,I) = 0.0_dp |
1183 |
gezelter |
115 |
end DO |
1184 |
|
|
end DO |
1185 |
|
|
|
1186 |
|
|
! start with 0,0: |
1187 |
|
|
PLM(0,0) = 1.0D0 |
1188 |
|
|
|
1189 |
|
|
! x = +/- 1 functions are easy: |
1190 |
|
|
IF (abs(X).EQ.1.0D0) THEN |
1191 |
|
|
DO I = 1, m |
1192 |
|
|
PLM(0, I) = X**I |
1193 |
|
|
DLM(0, I) = 0.5D0*I*(I+1.0D0)*X**(I+1) |
1194 |
|
|
end DO |
1195 |
|
|
DO J = 1, m |
1196 |
|
|
DO I = 1, l |
1197 |
|
|
IF (I.EQ.1) THEN |
1198 |
|
|
DLM(I, J) = 1.0D+300 |
1199 |
|
|
ELSE IF (I.EQ.2) THEN |
1200 |
|
|
DLM(I, J) = -0.25D0*(J+2)*(J+1)*J*(J-1)*X**(J+1) |
1201 |
|
|
ENDIF |
1202 |
|
|
end DO |
1203 |
|
|
end DO |
1204 |
|
|
RETURN |
1205 |
|
|
ENDIF |
1206 |
|
|
|
1207 |
|
|
LS = 1 |
1208 |
|
|
IF (abs(X).GT.1.0D0) LS = -1 |
1209 |
|
|
XQ = sqrt(LS*(1.0D0-X*X)) |
1210 |
|
|
XS = LS*(1.0D0-X*X) |
1211 |
|
|
|
1212 |
|
|
DO I = 1, l |
1213 |
|
|
PLM(I, I) = -LS*(2.0D0*I-1.0D0)*XQ*PLM(I-1, I-1) |
1214 |
|
|
enddo |
1215 |
chrisfen |
195 |
|
1216 |
gezelter |
115 |
DO I = 0, l |
1217 |
|
|
PLM(I, I+1)=(2.0D0*I+1.0D0)*X*PLM(I, I) |
1218 |
|
|
enddo |
1219 |
chrisfen |
195 |
|
1220 |
gezelter |
115 |
DO I = 0, l |
1221 |
|
|
DO J = I+2, m |
1222 |
|
|
PLM(I, J)=((2.0D0*J-1.0D0)*X*PLM(I,J-1) - & |
1223 |
|
|
(I+J-1.0D0)*PLM(I,J-2))/(J-I) |
1224 |
|
|
end DO |
1225 |
|
|
end DO |
1226 |
chrisfen |
195 |
|
1227 |
gezelter |
115 |
DLM(0, 0)=0.0D0 |
1228 |
|
|
DO J = 1, m |
1229 |
|
|
DLM(0, J)=LS*J*(PLM(0,J-1)-X*PLM(0,J))/XS |
1230 |
|
|
end DO |
1231 |
chrisfen |
195 |
|
1232 |
gezelter |
115 |
DO I = 1, l |
1233 |
|
|
DO J = I, m |
1234 |
|
|
DLM(I,J) = LS*I*X*PLM(I, J)/XS + (J+I)*(J-I+1.0D0)/XQ*PLM(I-1, J) |
1235 |
|
|
end DO |
1236 |
|
|
end DO |
1237 |
chrisfen |
195 |
|
1238 |
gezelter |
115 |
RETURN |
1239 |
|
|
END SUBROUTINE Associated_Legendre |
1240 |
|
|
|
1241 |
|
|
|
1242 |
chrisfen |
195 |
subroutine Orthogonal_Polynomial(x, m, mmax, function_type, pl, dpl) |
1243 |
gezelter |
115 |
|
1244 |
|
|
! Purpose: Compute orthogonal polynomials: Tn(x) or Un(x), |
1245 |
|
|
! or Ln(x) or Hn(x), and their derivatives |
1246 |
|
|
! Input : function_type --- Function code |
1247 |
|
|
! =1 for Chebyshev polynomial Tn(x) |
1248 |
|
|
! =2 for Chebyshev polynomial Un(x) |
1249 |
|
|
! =3 for Laguerre polynomial Ln(x) |
1250 |
|
|
! =4 for Hermite polynomial Hn(x) |
1251 |
|
|
! n --- Order of orthogonal polynomials |
1252 |
|
|
! x --- Argument of orthogonal polynomials |
1253 |
|
|
! Output: PL(n) --- Tn(x) or Un(x) or Ln(x) or Hn(x) |
1254 |
|
|
! DPL(n)--- Tn'(x) or Un'(x) or Ln'(x) or Hn'(x) |
1255 |
|
|
! |
1256 |
|
|
! adapted from the routines in |
1257 |
|
|
! COMPUTATION OF SPECIAL FUNCTIONS by Shanjie Zhang and Jianming Jin |
1258 |
|
|
! ISBN 0-471-11963-6 |
1259 |
|
|
! |
1260 |
|
|
! The original Fortran77 codes can be found here: |
1261 |
|
|
! http://iris-lee3.ece.uiuc.edu/~jjin/routines/routines.html |
1262 |
|
|
|
1263 |
|
|
real(kind=8), intent(in) :: x |
1264 |
chrisfen |
195 |
integer, intent(in):: m, mmax |
1265 |
gezelter |
115 |
integer, intent(in):: function_type |
1266 |
chrisfen |
195 |
real(kind=8), dimension(0:mmax), intent(inout) :: pl, dpl |
1267 |
gezelter |
115 |
|
1268 |
|
|
real(kind=8) :: a, b, c, y0, y1, dy0, dy1, yn, dyn |
1269 |
|
|
integer :: k |
1270 |
|
|
|
1271 |
|
|
A = 2.0D0 |
1272 |
|
|
B = 0.0D0 |
1273 |
|
|
C = 1.0D0 |
1274 |
|
|
Y0 = 1.0D0 |
1275 |
|
|
Y1 = 2.0D0*X |
1276 |
|
|
DY0 = 0.0D0 |
1277 |
|
|
DY1 = 2.0D0 |
1278 |
|
|
PL(0) = 1.0D0 |
1279 |
|
|
PL(1) = 2.0D0*X |
1280 |
|
|
DPL(0) = 0.0D0 |
1281 |
|
|
DPL(1) = 2.0D0 |
1282 |
|
|
IF (function_type.EQ.CHEBYSHEV_TN) THEN |
1283 |
|
|
Y1 = X |
1284 |
|
|
DY1 = 1.0D0 |
1285 |
|
|
PL(1) = X |
1286 |
|
|
DPL(1) = 1.0D0 |
1287 |
|
|
ELSE IF (function_type.EQ.LAGUERRE) THEN |
1288 |
|
|
Y1 = 1.0D0-X |
1289 |
|
|
DY1 = -1.0D0 |
1290 |
|
|
PL(1) = 1.0D0-X |
1291 |
|
|
DPL(1) = -1.0D0 |
1292 |
|
|
ENDIF |
1293 |
|
|
DO K = 2, m |
1294 |
|
|
IF (function_type.EQ.LAGUERRE) THEN |
1295 |
|
|
A = -1.0D0/K |
1296 |
|
|
B = 2.0D0+A |
1297 |
|
|
C = 1.0D0+A |
1298 |
|
|
ELSE IF (function_type.EQ.HERMITE) THEN |
1299 |
|
|
C = 2.0D0*(K-1.0D0) |
1300 |
|
|
ENDIF |
1301 |
|
|
YN = (A*X+B)*Y1-C*Y0 |
1302 |
|
|
DYN = A*Y1+(A*X+B)*DY1-C*DY0 |
1303 |
|
|
PL(K) = YN |
1304 |
|
|
DPL(K) = DYN |
1305 |
|
|
Y0 = Y1 |
1306 |
|
|
Y1 = YN |
1307 |
|
|
DY0 = DY1 |
1308 |
|
|
DY1 = DYN |
1309 |
|
|
end DO |
1310 |
chrisfen |
198 |
|
1311 |
|
|
|
1312 |
gezelter |
115 |
RETURN |
1313 |
|
|
|
1314 |
|
|
end subroutine Orthogonal_Polynomial |
1315 |
|
|
|
1316 |
|
|
end module shapes |
1317 |
|
|
|
1318 |
|
|
subroutine makeShape(nContactFuncs, ContactFuncLValue, & |
1319 |
|
|
ContactFuncMValue, ContactFunctionType, ContactFuncCoefficient, & |
1320 |
|
|
nRangeFuncs, RangeFuncLValue, RangeFuncMValue, RangeFunctionType, & |
1321 |
|
|
RangeFuncCoefficient, nStrengthFuncs, StrengthFuncLValue, & |
1322 |
|
|
StrengthFuncMValue, StrengthFunctionType, StrengthFuncCoefficient, & |
1323 |
chrisfen |
195 |
myATID, status) |
1324 |
gezelter |
115 |
|
1325 |
|
|
use definitions |
1326 |
|
|
use shapes, only: newShapeType |
1327 |
|
|
|
1328 |
|
|
integer :: nContactFuncs |
1329 |
|
|
integer :: nRangeFuncs |
1330 |
|
|
integer :: nStrengthFuncs |
1331 |
|
|
integer :: status |
1332 |
chrisfen |
195 |
integer :: myATID |
1333 |
gezelter |
115 |
|
1334 |
|
|
integer, dimension(nContactFuncs) :: ContactFuncLValue |
1335 |
|
|
integer, dimension(nContactFuncs) :: ContactFuncMValue |
1336 |
|
|
integer, dimension(nContactFuncs) :: ContactFunctionType |
1337 |
|
|
real(kind=dp), dimension(nContactFuncs) :: ContactFuncCoefficient |
1338 |
|
|
integer, dimension(nRangeFuncs) :: RangeFuncLValue |
1339 |
|
|
integer, dimension(nRangeFuncs) :: RangeFuncMValue |
1340 |
|
|
integer, dimension(nRangeFuncs) :: RangeFunctionType |
1341 |
|
|
real(kind=dp), dimension(nRangeFuncs) :: RangeFuncCoefficient |
1342 |
|
|
integer, dimension(nStrengthFuncs) :: StrengthFuncLValue |
1343 |
|
|
integer, dimension(nStrengthFuncs) :: StrengthFuncMValue |
1344 |
|
|
integer, dimension(nStrengthFuncs) :: StrengthFunctionType |
1345 |
|
|
real(kind=dp), dimension(nStrengthFuncs) :: StrengthFuncCoefficient |
1346 |
|
|
|
1347 |
|
|
call newShapeType(nContactFuncs, ContactFuncLValue, & |
1348 |
|
|
ContactFuncMValue, ContactFunctionType, ContactFuncCoefficient, & |
1349 |
|
|
nRangeFuncs, RangeFuncLValue, RangeFuncMValue, RangeFunctionType, & |
1350 |
|
|
RangeFuncCoefficient, nStrengthFuncs, StrengthFuncLValue, & |
1351 |
|
|
StrengthFuncMValue, StrengthFunctionType, StrengthFuncCoefficient, & |
1352 |
chrisfen |
195 |
myATID, status) |
1353 |
gezelter |
115 |
|
1354 |
|
|
return |
1355 |
|
|
end subroutine makeShape |
1356 |
chrisfen |
154 |
|
1357 |
|
|
subroutine completeShapeFF(status) |
1358 |
|
|
|
1359 |
|
|
use shapes, only: complete_Shape_FF |
1360 |
|
|
|
1361 |
|
|
integer, intent(out) :: status |
1362 |
|
|
integer :: myStatus |
1363 |
|
|
|
1364 |
|
|
myStatus = 0 |
1365 |
|
|
|
1366 |
|
|
call complete_Shape_FF(myStatus) |
1367 |
|
|
|
1368 |
|
|
status = myStatus |
1369 |
|
|
|
1370 |
|
|
return |
1371 |
|
|
end subroutine completeShapeFF |
1372 |
|
|
|