Checked indices for Jacobi calculation
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trunk/CPFEM.f90
225
trunk/CPFEM.f90
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@ -1,32 +1,32 @@
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!##############################################################
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MODULE CPFEM
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MODULE CPFEM
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!##############################################################
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! *** CPFEM engine ***
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!
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use prec, only: pReal,pInt
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implicit none
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!
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! ****************************************************************
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! *** General variables for the material behaviour calculation ***
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! ****************************************************************
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real(pReal), dimension (:,:,:), allocatable :: CPFEM_stress_all
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real(pReal), dimension (:,:,:,:), allocatable :: CPFEM_jacobi_all
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! *** CPFEM engine ***
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!
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use prec, only: pReal,pInt
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implicit none
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!
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! ****************************************************************
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! *** General variables for the material behaviour calculation ***
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! ****************************************************************
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real(pReal), dimension (:,:,:), allocatable :: CPFEM_stress_all
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real(pReal), dimension (:,:,:,:), allocatable :: CPFEM_jacobi_all
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real(pReal), dimension (:,:,:,:), allocatable :: CPFEM_ffn_all
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real(pReal), dimension (:,:,:,:), allocatable :: CPFEM_ffn1_all
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real(pReal), dimension (:,:,:,:), allocatable :: CPFEM_results
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real(pReal), dimension (:,:,:,:), allocatable :: CPFEM_ini_ori
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real(pReal), dimension (:,:,:,:), allocatable :: CPFEM_sigma_old
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real(pReal), dimension (:,:,:,:), allocatable :: CPFEM_sigma_new
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real(pReal), dimension (:,:,:,:,:), allocatable :: CPFEM_Fp_old
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real(pReal), dimension (:,:,:,:,:), allocatable :: CPFEM_Fp_new
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real(pReal), dimension (:,:,:,:), allocatable :: CPFEM_jaco_old
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integer(pInt) :: CPFEM_inc_old = 0_pInt
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real(pReal), dimension (:,:,:,:), allocatable :: CPFEM_results
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real(pReal), dimension (:,:,:,:), allocatable :: CPFEM_ini_ori
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real(pReal), dimension (:,:,:,:), allocatable :: CPFEM_sigma_old
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real(pReal), dimension (:,:,:,:), allocatable :: CPFEM_sigma_new
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real(pReal), dimension (:,:,:,:,:), allocatable :: CPFEM_Fp_old
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real(pReal), dimension (:,:,:,:,:), allocatable :: CPFEM_Fp_new
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real(pReal), dimension (:,:,:,:), allocatable :: CPFEM_jaco_old
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integer(pInt) :: CPFEM_inc_old = 0_pInt
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integer(pInt) :: CPFEM_subinc_old = 1_pInt
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integer(pInt) :: CPFEM_Nresults = 3_pInt
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logical :: CPFEM_first_call = .true.
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logical :: CPFEM_first_call = .true.
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CONTAINS
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CONTAINS
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!*********************************************************
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!*** allocate the arrays defined in module CPFEM ***
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@ -57,12 +57,12 @@
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allocate(CPFEM_sigma_old(6,constitutive_maxNgrains,mesh_maxNips,mesh_NcpElems)) ; CPFEM_sigma_old = 0.0_pReal
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allocate(CPFEM_sigma_new(6,constitutive_maxNgrains,mesh_maxNips,mesh_NcpElems)) ; CPFEM_sigma_new = 0.0_pReal
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!
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! *** Plastic deformation gradient at (t=t0) and (t=t1) ***
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! *** Plastic deformation gradient at (t=t0) and (t=t1) ***
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allocate(CPFEM_Fp_old(3,3,constitutive_maxNgrains,mesh_maxNips,mesh_NcpElems))
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forall (e=1:mesh_NcpElems,i=1:mesh_maxNips,g=1:constitutive_maxNgrains) &
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CPFEM_Fp_old(:,:,g,i,e) = math_EulerToR(constitutive_EulerAngles(:,g,i,e)) ! plastic def gradient reflects init orientation
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allocate(CPFEM_Fp_new(3,3,constitutive_maxNgrains,mesh_maxNips,mesh_NcpElems)) ; CPFEM_Fp_new = 0.0_pReal
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!
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!
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! *** Old jacobian (consistent tangent) ***
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allocate(CPFEM_jaco_old(6,6,mesh_maxNips,mesh_NcpElems)) ; CPFEM_jaco_old = 0.0_pReal
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!
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@ -83,7 +83,7 @@
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call flush(6)
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return
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END SUBROUTINE
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END SUBROUTINE
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!
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!
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!***********************************************************************
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@ -118,7 +118,7 @@
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constitutive_state_old = constitutive_state_new
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CPFEM_subinc_old = CPFEM_subinc
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endif
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else ! new increment
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else ! new increment
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CPFEM_sigma_old = CPFEM_sigma_new
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CPFEM_Fp_old = CPFEM_Fp_new
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constitutive_state_old = constitutive_state_new
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@ -133,23 +133,23 @@
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END SUBROUTINE
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!**********************************************************
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!*** calculate the material behaviour at IP level ***
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!**********************************************************
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SUBROUTINE CPFEM_stressIP(&
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CPFEM_cn,& ! Cycle number
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CPFEM_dt,& ! Time increment (dt)
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cp_en,& ! Element number
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CPFEM_in) ! Integration point number
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SUBROUTINE CPFEM_stressIP(&
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CPFEM_cn,& ! Cycle number
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CPFEM_dt,& ! Time increment (dt)
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cp_en,& ! Element number
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CPFEM_in) ! Integration point number
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use prec, only: pReal,pInt,ijaco,nCutback
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use math, only: math_pDecomposition,math_RtoEuler
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use IO, only: IO_error
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use mesh, only: mesh_element
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use constitutive
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!
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implicit none
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use math, only: math_pDecomposition,math_RtoEuler
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use IO, only: IO_error
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use mesh, only: mesh_element
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use constitutive
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!
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implicit none
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integer(pInt), parameter :: i_now = 1_pInt,i_then = 2_pInt
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character(len=128) msg
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@ -163,28 +163,28 @@
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real(pReal), dimension(3,3,2) :: Fg,Fp
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real(pReal), dimension(constitutive_maxNstatevars,2) :: state
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updateJaco = (mod(CPFEM_cn,ijaco)==0) ! update consistent tangent every ijaco'th iteration
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updateJaco = (mod(CPFEM_cn,ijaco)==0) ! update consistent tangent every ijaco'th iteration
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CPFEM_stress_all(:,CPFEM_in,cp_en) = 0.0_pReal ! average Cauchy stress
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if (updateJaco) CPFEM_jaco_old(:,:,CPFEM_in,cp_en) = 0.0_pReal ! average consistent tangent
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CPFEM_stress_all(:,CPFEM_in,cp_en) = 0.0_pReal ! average Cauchy stress
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if (updateJaco) CPFEM_jaco_old(:,:,CPFEM_in,cp_en) = 0.0_pReal ! average consistent tangent
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! -------------- grain loop -----------------
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! -------------- grain loop -----------------
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do grain = 1,constitutive_Ngrains(CPFEM_in,cp_en)
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! -------------------------------------------
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i = 0_pInt ! cutback counter
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state(:,i_now) = constitutive_state_old(:,grain,CPFEM_in,cp_en)
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Fg(:,:,i_now) = CPFEM_ffn_all(:,:,CPFEM_in,cp_en)
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Fp(:,:,i_now) = CPFEM_Fp_old(:,:,grain,CPFEM_in,cp_en)
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deltaFg = CPFEM_ffn1_all(:,:,CPFEM_in,cp_en)-CPFEM_ffn_all(:,:,CPFEM_in,cp_en)
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dt = CPFEM_dt
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Tstar_v = 0.0_pReal ! fully elastic initial guess
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Fg(:,:,i_then) = Fg(:,:,i_now)
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state(:,i_then) = 0.0_pReal ! state_old as initial guess
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state(:,i_then) = 0.0_pReal ! state_old as initial guess
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t = 0.0_pReal
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! ------- crystallite integration -----------
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do
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! -------------------------------------------
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t = CPFEM_dt ! final time
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Fg(:,:,i_then) = CPFEM_ffn_all(:,:,CPFEM_in,cp_en) ! final Fg
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endif
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call CPFEM_stressCrystallite(msg,cs,cd,Tstar_v,Fp(:,:,i_then),Fe,state(:,i_then),&
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dt,cp_en,CPFEM_in,grain,updateJaco .and. t==CPFEM_dt,&
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Fg(:,:,i_now),Fg(:,:,i_then),Fp(:,:,i_now),state(:,i_now))
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endif
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endif
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enddo ! crystallite integration (cutback loop)
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! ---- update crystallite matrices at t = t1 ----
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! ---- update crystallite matrices at t = t1 ----
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CPFEM_Fp_new(:,:,grain,CPFEM_in,cp_en) = Fp(:,:,i_then)
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constitutive_state_new(:,grain,CPFEM_in,cp_en) = state(:,i_then)
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CPFEM_sigma_new(:,grain,CPFEM_in,cp_en) = Tstar_v
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! ---- update results plotted in MENTAT ----
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! ---- update results plotted in MENTAT ----
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call math_pDecomposition(Fe,U,R,error) ! polar decomposition
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if (error) then
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write(6,*) 'polar decomposition'
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CPFEM_results(4:3+constitutive_Nresults(grain,CPFEM_in,cp_en),grain,CPFEM_in,cp_en) = &
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constitutive_post_results(Tstar_v,state(:,i_then),CPFEM_dt,grain,CPFEM_in,cp_en)
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! ---- contribute to IP result ----
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volfrac = constitutive_matVolFrac(grain,CPFEM_in,cp_en)*constitutive_texVolFrac(grain,CPFEM_in,cp_en)
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! ---- contribute to IP result ----
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volfrac = constitutive_matVolFrac(grain,CPFEM_in,cp_en)*constitutive_texVolFrac(grain,CPFEM_in,cp_en)
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CPFEM_stress_all(:,CPFEM_in,cp_en) = CPFEM_stress_all(:,CPFEM_in,cp_en)+volfrac*cs ! average Cauchy stress
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if (updateJaco) CPFEM_jaco_old(:,:,CPFEM_in,cp_en) = CPFEM_jaco_old(:,:,CPFEM_in,cp_en)+volfrac*cd ! average consistent tangent
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enddo ! grain loop
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return
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END SUBROUTINE
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return
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END SUBROUTINE
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!********************************************************************
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! J. Mech. Phys, Solids Vol. 40, No. 3, pp. 537-569, 1992
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! it is modified to use anisotropic elasticity matrix
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!********************************************************************
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subroutine CPFEM_stressCrystallite(&
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subroutine CPFEM_stressCrystallite(&
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msg,& ! return message
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cs,& ! Cauchy stress vector
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dcs_de,& ! consistent tangent
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Fe_new,& ! new "elastic" deformation gradient
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state_new,& ! new state variable array
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!
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dt,& ! time increment
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dt,& ! time increment
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cp_en,& ! element number
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CPFEM_in,& ! integration point number
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grain,& ! grain number
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updateJaco,& ! boolean to calculate Jacobi matrix
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Fg_old,& ! old global deformation gradient
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Fg_new,& ! new global deformation gradient
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Fp_old,& ! old plastic deformation gradient
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state_old) ! old state variable array
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Fg_old,& ! old global deformation gradient
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Fg_new,& ! new global deformation gradient
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Fp_old,& ! old plastic deformation gradient
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state_old) ! old state variable array
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use prec, only: pReal,pInt,pert_e
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use constitutive, only: constitutive_Nstatevars
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use math, only: math_Mandel6to33,mapMandel
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implicit none
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use math, only: math_Mandel6to33,mapMandel
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implicit none
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character(len=*) msg
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logical updateJaco,error
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@ -288,20 +288,20 @@
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real(pReal), dimension(constitutive_Nstatevars(grain,CPFEM_in,cp_en)) :: state_old,state_new,state_pert
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call CPFEM_timeIntegration(msg,Fp_new,Fe_new,Tstar_v,state_new, & ! def gradients and PK2 at end of time step
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dt,cp_en,CPFEM_in,grain,Fg_new,Fp_old,state_old)
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dt,cp_en,CPFEM_in,grain,Fg_new,Fp_old,state_old)
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if (msg /= 'ok') return
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cs = CPFEM_CauchyStress(Tstar_v,Fe_new) ! Cauchy stress
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if (updateJaco) then ! consistent tangent using numerical perturbation of Fg
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do i = 1,6 ! Fg component
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if (updateJaco) then ! consistent tangent using numerical perturbation of Fg
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do i = 1,6 ! Fg component
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E_pert = 0.0_pReal
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E_pert(mapMandel(1,i),mapMandel(2,i)) = E_pert(mapMandel(1,i),mapMandel(2,i)) + pert_e/2.0_pReal
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E_pert(mapMandel(2,i),mapMandel(1,i)) = E_pert(mapMandel(2,i),mapMandel(1,i)) + pert_e/2.0_pReal
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Fg_pert = Fg_new+matmul(E_pert,Fg_old) ! perturbated Fg
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Tstar_v_pert = Tstar_v ! initial guess from end of time step
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state_pert = state_new ! initial guess from end of time step
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Fg_pert = Fg_new+matmul(E_pert,Fg_old) ! perturbated Fg
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Tstar_v_pert = Tstar_v ! initial guess from end of time step
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state_pert = state_new ! initial guess from end of time step
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call CPFEM_timeIntegration(msg,Fp_pert,Fe_pert,Tstar_v_pert,state_pert, &
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dt,cp_en,CPFEM_in,grain,Fg_pert,Fp_old,state_old)
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if (msg /= 'ok') then
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return
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endif
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! Remark: (perturbated) Cauchy stress is Mandel hence dcs_de(:,4:6) is too large by sqrt(2)
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dcs_de(:,i) = (CPFEM_CauchyStress(Tstar_v_pert,Fe_pert)-cs)/pert_e
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enddo
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dcs_de(:,i) = (CPFEM_CauchyStress(Tstar_v_pert,Fe_pert)-cs)/pert_e
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enddo
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endif
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return
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return
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END SUBROUTINE
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END SUBROUTINE
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!***********************************************************************
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!*** fully-implicit two-level time integration ***
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!***********************************************************************
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SUBROUTINE CPFEM_timeIntegration(&
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SUBROUTINE CPFEM_timeIntegration(&
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msg,& ! return message
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Fp_new,& ! new plastic deformation gradient
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Fe_new,& ! new "elastic" deformation gradient
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Tstar_v,& ! 2nd PK stress (taken as initial guess if /= 0)
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state_new,& ! current microstructure at end of time inc (taken as guess if /= 0)
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!
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dt,& ! time increment
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dt,& ! time increment
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cp_en,& ! element number
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CPFEM_in,& ! integration point number
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grain,& ! grain number
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Fg_new,& ! new total def gradient
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Fp_old,& ! former plastic def gradient
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Fg_new,& ! new total def gradient
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Fp_old,& ! former plastic def gradient
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state_old) ! former microstructure
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use prec, only: pReal,pInt, nState,tol_State,nStress,tol_Stress, crite, nReg
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use constitutive, only: constitutive_Nstatevars,&
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constitutive_homogenizedC,constitutive_dotState,constitutive_LpAndItsTangent
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use math
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use math
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implicit none
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character(len=*) msg
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real(pReal), dimension(3,3,3,3) :: dLp, LTL
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real(pReal), dimension(constitutive_Nstatevars(grain, CPFEM_in, cp_en)) :: state_old,state_new,dstate,Rstate,RstateS
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logical failed
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msg = 'ok' ! error-free so far
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call math_invert3x3(Fp_old,invFp_old,det,failed) ! inversion of Fp
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if (failed) then
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msg = 'inversion Fp_old'
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return
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endif
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msg = 'ok' ! error-free so far
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C_66 = constitutive_HomogenizedC(grain, CPFEM_in, cp_en)
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call math_invert3x3(Fp_old,invFp_old,det,failed) ! inversion of Fp
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if (failed) then
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msg = 'inversion Fp_old'
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return
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endif
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C_66 = constitutive_HomogenizedC(grain, CPFEM_in, cp_en)
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A = matmul(Fg_new,invFp_old) ! actually Fe
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A = matmul(transpose(A), A)
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@ -380,8 +380,8 @@ state: do ! outer iteration: state
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if (iState > nState) then
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msg = 'limit state iteration'
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return
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endif
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stress: do ! inner iteration: stress
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endif
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stress: do ! inner iteration: stress
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iStress = iStress+1
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if (iStress > nStress) then ! too many loops required
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msg = 'limit stress iteration'
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@ -390,7 +390,7 @@ stress: do ! inner iteration: stress
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call constitutive_LpAndItsTangent(Lp,dLp, Tstar_v,state_new,grain,CPFEM_in,cp_en)
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B = math_I3-dt*Lp
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Rstress = Tstar_v - 0.5_pReal*matmul(C_66,math_Mandel33to6(matmul(transpose(B),matmul(A,B))-math_I3))
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if (maxval(abs(Rstress/maxval(abs(Tstar_v)))) < tol_Stress) exit stress
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if (maxval(abs(Tstar_v)) == 0.0_pReal .or. maxval(abs(Rstress/maxval(abs(Tstar_v)))) < tol_Stress) exit stress
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! update stress guess using inverse of dRes/dTstar (Newton--Raphson)
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AB = matmul(A,B)
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@ -401,7 +401,7 @@ stress: do ! inner iteration: stress
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do l=1,3
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do m=1,3
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! LTL(i,j,k,l) = LTL(i,j,k,l) + AB(i,m)*dLp(m,j,k,l) + AB(j,m)*dLp(m,i,l,k) ! old
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LTL(i,j,k,l) = LTL(i,j,k,l) + dLp(j,i,k,m)*AB(m,l) + AB(m,i)*dLp(m,j,k,l) ! new (and correct??)
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LTL(i,j,k,l) = LTL(i,j,k,l) + dLp(j,i,m,k)*AB(m,l) + AB(m,i)*dLp(m,j,k,l) ! new (and correct??)
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enddo
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enddo
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enddo
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@ -412,44 +412,44 @@ stress: do ! inner iteration: stress
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|||
j = 0_pInt ; failed = .true.
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||||
do while (failed .and. j <= nReg)
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||||
call math_invert6x6(Jacobi,invJacobi,dummy,failed)
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||||
forall (i=1:6) Jacobi(i,i) = 1.05_pReal*maxval(Jacobi(i,:)) ! regularization
|
||||
j = j+1
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||||
forall (i=1:6) Jacobi(i,i) = 1.05_pReal*maxval(Jacobi(i,:)) ! regularization
|
||||
j = j+1
|
||||
enddo
|
||||
if (failed) then
|
||||
msg = 'regularization Jacobi'
|
||||
return
|
||||
endif
|
||||
|
||||
dTstar_v = matmul(invJacobi,Rstress) ! correction to Tstar
|
||||
endif
|
||||
|
||||
dTstar_v = matmul(invJacobi,Rstress) ! correction to Tstar
|
||||
forall(i=1:6, abs(dTstar_v(i)) > crite*maxval(abs(Tstar_v))) &
|
||||
dTstar_v(i) = sign(crite*maxval(abs(Tstar_v)),dTstar_v(i)) ! cap to maximum correction
|
||||
Tstar_v = Tstar_v-dTstar_v
|
||||
Tstar_v = Tstar_v-dTstar_v
|
||||
|
||||
enddo stress
|
||||
enddo stress
|
||||
|
||||
dstate = dt*constitutive_dotState(Tstar_v,state_new,grain,CPFEM_in,cp_en) ! evolution of microstructure
|
||||
Rstate = state_new - (state_old+dstate)
|
||||
dstate = dt*constitutive_dotState(Tstar_v,state_new,grain,CPFEM_in,cp_en) ! evolution of microstructure
|
||||
Rstate = state_new - (state_old+dstate)
|
||||
RstateS = 0.0_pReal
|
||||
forall (i=1:constitutive_Nstatevars(grain,CPFEM_in,cp_en), state_new(i)/=0.0_pReal) &
|
||||
RstateS(i) = Rstate(i)/state_new(i)
|
||||
if (maxval(abs(RstateS)) < tol_State) exit state
|
||||
state_new = state_old+dstate
|
||||
if (maxval(abs(RstateS)) < tol_State) exit state
|
||||
state_new = state_old+dstate
|
||||
|
||||
enddo state
|
||||
|
||||
invFp_new = matmul(invFp_old,B)
|
||||
|
||||
invFp_new = matmul(invFp_old,B)
|
||||
call math_invert3x3(invFp_new,Fp_new,det,failed)
|
||||
if (failed) then
|
||||
msg = 'inversion Fp_new'
|
||||
return
|
||||
endif
|
||||
Fp_new = Fp_new*det**(1.0_pReal/3.0_pReal) ! det = det(InvFp_new) !!
|
||||
Fe_new = matmul(Fg_new,invFp_new)
|
||||
Fp_new = Fp_new*det**(1.0_pReal/3.0_pReal) ! det = det(InvFp_new) !!
|
||||
Fe_new = matmul(Fg_new,invFp_new)
|
||||
|
||||
return
|
||||
return
|
||||
END SUBROUTINE
|
||||
|
||||
|
||||
|
||||
|
||||
FUNCTION CPFEM_CauchyStress(PK_v,Fe)
|
||||
!***********************************************************************
|
||||
!*** Cauchy stress calculation ***
|
||||
|
@ -463,7 +463,6 @@ stress: do ! inner iteration: stress
|
|||
CPFEM_CauchyStress = math_Mandel33to6(matmul(matmul(Fe,math_Mandel6to33(PK_v)),transpose(Fe))/math_det3x3(Fe))
|
||||
return
|
||||
END FUNCTION
|
||||
|
||||
|
||||
|
||||
|
||||
END MODULE
|
||||
|
Loading…
Reference in New Issue