prepared for merging postResults rate calculation in one loop
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@ -1722,12 +1722,11 @@ function constitutive_dislokmc_postResults(Tstar_v,Temperature,ipc,ip,el)
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ph, &
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of
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real(pReal) :: sumf,tau_slip_pos,tau_twin,StressRatio_p,StressRatio_pminus1,&
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BoltzmannRatio,DotGamma0,StressRatio_r,Ndot0,dgdot_dtauslip,stressRatio
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real(pReal) :: dvel_slip
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BoltzmannRatio,DotGamma0,StressRatio_r,Ndot0,dgdot_dtauslip_pos,stressRatio
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real(pReal) :: dvel_slip, vel_slip
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real(pReal) :: StressRatio_u,StressRatio_uminus1
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real(preal), dimension(constitutive_dislokmc_totalNslip(phase_plasticityInstance(material_phase(ipc,ip,el)))) :: &
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gdot_slip_pos, vel_slip
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logical :: error
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real(pReal), dimension(constitutive_dislokmc_totalNslip(phase_plasticityInstance(material_phase(ipc,ip,el)))) :: &
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gdot_slip_pos
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!* Shortened notation
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of = mappingConstitutive(1,ipc,ip,el)
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@ -1756,36 +1755,51 @@ function constitutive_dislokmc_postResults(Tstar_v,Temperature,ipc,ip,el)
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gdot_slip_pos = 0.0_pReal
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j = 0_pInt
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do f = 1_pInt,lattice_maxNslipFamily ! loop over all slip families
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index_myFamily = sum(lattice_NslipSystem(1:f-1_pInt,ph)) ! at which index starts my family
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do i = 1_pInt,constitutive_dislokmc_Nslip(f,instance) ! process each (active) slip system in family
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j = j + 1_pInt
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!* Resolved shear stress on slip system
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tau_slip_pos = dot_product(Tstar_v,lattice_Sslip_v(:,1,index_myFamily+i,ph))
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if((abs(tau_slip_pos)-plasticState(ph)%state(6*ns+4*nt+j, of)) > tol_math_check) then
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!* Boltzmann ratio
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BoltzmannRatio = constitutive_dislokmc_QedgePerSlipSystem(j,instance)/(kB*Temperature)
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!* Initial shear rates
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DotGamma0 = &
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plasticState(ph)%state(j, of)*constitutive_dislokmc_burgersPerSlipSystem(j,instance)*&
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constitutive_dislokmc_v0PerSlipSystem(j,instance)
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!* Stress ratios
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stressRatio = ((abs(tau_slip_pos)-plasticState(ph)%state(6*ns+4*nt+j, of))/&
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index_myFamily = sum(lattice_NslipSystem(1:f-1_pInt,ph)) ! at which index starts my family
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do i = 1_pInt,constitutive_dislokmc_Nslip(f,instance) ! process each (active) slip system in family
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j = j + 1_pInt
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!* Resolved shear stress on slip system
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tau_slip_pos = dot_product(Tstar_v,lattice_Sslip_v(:,1,index_myFamily+i,ph))
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if((abs(tau_slip_pos)-plasticState(ph)%state(6*ns+4*nt+j, of)) > tol_math_check) then
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!* Boltzmann ratio
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BoltzmannRatio = constitutive_dislokmc_QedgePerSlipSystem(j,instance)/(kB*Temperature)
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!* Initial shear rates
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DotGamma0 = &
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plasticState(ph)%state(j, of)*constitutive_dislokmc_burgersPerSlipSystem(j,instance)*&
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constitutive_dislokmc_v0PerSlipSystem(j,instance)
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!* Stress ratios
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stressRatio = ((abs(tau_slip_pos)-plasticState(ph)%state(6*ns+4*nt+j, of))/&
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(constitutive_dislokmc_SolidSolutionStrength(instance)+&
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constitutive_dislokmc_tau_peierlsPerSlipFamily(f,instance)))
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stressRatio_p = stressRatio** constitutive_dislokmc_pPerSlipFamily(f,instance)
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stressRatio_pminus1 = stressRatio**(constitutive_dislokmc_pPerSlipFamily(f,instance)-1.0_pReal)
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stressRatio_u = stressRatio** constitutive_dislokmc_uPerSlipFamily(f,instance)
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stressRatio_uminus1 = stressRatio**(constitutive_dislokmc_uPerSlipFamily(f,instance)-1.0_pReal)
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!* Shear rates due to slip
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vel_slip(j) = exp(-BoltzmannRatio*(1.0_pReal-StressRatio_p) ** constitutive_dislokmc_qPerSlipFamily(f,instance)) &
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stressRatio_p = stressRatio** constitutive_dislokmc_pPerSlipFamily(f,instance)
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stressRatio_pminus1 = stressRatio**(constitutive_dislokmc_pPerSlipFamily(f,instance)-1.0_pReal)
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stressRatio_u = stressRatio** constitutive_dislokmc_uPerSlipFamily(f,instance)
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stressRatio_uminus1 = stressRatio**(constitutive_dislokmc_uPerSlipFamily(f,instance)-1.0_pReal)
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!* Shear rates due to slip
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vel_slip = exp(-BoltzmannRatio*(1.0_pReal-StressRatio_p) ** constitutive_dislokmc_qPerSlipFamily(f,instance)) &
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* (1.0_pReal-constitutive_dislokmc_sPerSlipFamily(f,instance) &
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* exp(-BoltzmannRatio*(1.0_pReal-StressRatio_p) ** constitutive_dislokmc_qPerSlipFamily(f,instance)))
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gdot_slip_pos(j) = DotGamma0 &
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* StressRatio_u * vel_slip(j) &
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gdot_slip_pos(j) = DotGamma0 &
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* StressRatio_u * vel_slip &
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* sign(1.0_pReal,tau_slip_pos)
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endif
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constitutive_dislokmc_postResults(c+j) = gdot_slip_pos(j)
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!* Derivatives of shear rates
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dvel_slip = &
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(abs(exp(-BoltzmannRatio*(1.0_pReal-StressRatio_p) ** constitutive_dislokmc_qPerSlipFamily(f,instance)))&
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*BoltzmannRatio*constitutive_dislokmc_pPerSlipFamily(f,instance)&
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*constitutive_dislokmc_qPerSlipFamily(f,instance)/&
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(constitutive_dislokmc_SolidSolutionStrength(instance)+constitutive_dislokmc_tau_peierlsPerSlipFamily(f,instance))*&
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StressRatio_pminus1*(1.0_pReal-StressRatio_p)**(constitutive_dislokmc_qPerSlipFamily(f,instance)-1.0_pReal) )&
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*(1.0_pReal - 2.0_pReal*constitutive_dislokmc_sPerSlipFamily(f,instance)&
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*abs(exp(-BoltzmannRatio*(1-StressRatio_p) ** constitutive_dislokmc_qPerSlipFamily(f,instance))))
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dgdot_dtauslip_pos = DotGamma0 * &
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( constitutive_dislokmc_uPerSlipFamily(f,instance)*StressRatio_uminus1 &
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/(constitutive_dislokmc_SolidSolutionStrength(instance)+constitutive_dislokmc_tau_peierlsPerSlipFamily(f,instance))&
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* vel_slip &
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+ StressRatio_u * dvel_slip)
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endif
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constitutive_dislokmc_postResults(c+j) = gdot_slip_pos(j)
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enddo ; enddo
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c = c + ns
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case (accumulated_shear_slip_ID)
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@ -1852,20 +1866,20 @@ function constitutive_dislokmc_postResults(Tstar_v,Temperature,ipc,ip,el)
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stressRatio_u = stressRatio** constitutive_dislokmc_uPerSlipFamily(f,instance)
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stressRatio_uminus1 = stressRatio**(constitutive_dislokmc_uPerSlipFamily(f,instance)-1.0_pReal)
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!* Shear rates due to slip
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vel_slip(j) = exp(-BoltzmannRatio*(1.0_pReal-StressRatio_p) ** constitutive_dislokmc_qPerSlipFamily(f,instance)) &
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vel_slip = exp(-BoltzmannRatio*(1.0_pReal-StressRatio_p) ** constitutive_dislokmc_qPerSlipFamily(f,instance)) &
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* (1.0_pReal-constitutive_dislokmc_sPerSlipFamily(f,instance) &
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* exp(-BoltzmannRatio*(1.0_pReal-StressRatio_p) ** constitutive_dislokmc_qPerSlipFamily(f,instance)))
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gdot_slip_pos(j) = DotGamma0 &
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* StressRatio_u * vel_slip(j) &
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* StressRatio_u * vel_slip &
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* sign(1.0_pReal,tau_slip_pos)
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endif
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enddo;enddo
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j = 0_pInt
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do f = 1_pInt,lattice_maxNtwinFamily ! loop over all twin families
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twinFamilies1: do f = 1_pInt,lattice_maxNtwinFamily
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index_myFamily = sum(lattice_NtwinSystem(1:f-1_pInt,ph)) ! at which index starts my family
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do i = 1,constitutive_dislokmc_Ntwin(f,instance) ! process each (active) twin system in family
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twinSystems1: do i = 1,constitutive_dislokmc_Ntwin(f,instance)
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j = j + 1_pInt
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!* Resolved shear stress on twin system
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@ -1898,7 +1912,7 @@ function constitutive_dislokmc_postResults(Tstar_v,Temperature,ipc,ip,el)
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plasticState(ph)%state(7_pInt*ns+5_pInt*nt+j, of)*Ndot0*exp(-StressRatio_r)
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endif
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enddo ; enddo
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enddo twinSystems1; enddo twinFamilies1
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endif
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c = c + nt
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@ -1913,12 +1927,12 @@ function constitutive_dislokmc_postResults(Tstar_v,Temperature,ipc,ip,el)
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case (resolved_stress_twin_ID)
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if (nt > 0_pInt) then
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j = 0_pInt
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do f = 1_pInt,lattice_maxNtwinFamily ! loop over all slip families
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twinFamilies2: do f = 1_pInt,lattice_maxNtwinFamily
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index_myFamily = sum(lattice_NtwinSystem(1:f-1_pInt,ph)) ! at which index starts my family
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do i = 1_pInt,constitutive_dislokmc_Ntwin(f,instance) ! process each (active) slip system in family
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twinSystems2: do i = 1_pInt,constitutive_dislokmc_Ntwin(f,instance)
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j = j + 1_pInt
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constitutive_dislokmc_postResults(c+j) = dot_product(Tstar_v,lattice_Stwin_v(:,index_myFamily+i,ph))
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enddo; enddo
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enddo twinSystems2; enddo twinFamilies2
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endif
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c = c + nt
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case (threshold_stress_twin_ID)
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@ -1933,7 +1947,7 @@ function constitutive_dislokmc_postResults(Tstar_v,Temperature,ipc,ip,el)
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do i = 1_pInt,constitutive_dislokmc_Nslip(f,instance) ! process each (active) slip system in family
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j = j + 1_pInt
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tau_slip_pos = dot_product(Tstar_v,lattice_Sslip_v(:,1,index_myFamily+i,ph))
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dgdot_dtauslip = 0.0_pReal
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dgdot_dtauslip_pos = 0.0_pReal
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if((abs(tau_slip_pos)-plasticState(ph)%state(6*ns+4*nt+j, of)) > tol_math_check) then
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!* Boltzmann ratio
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BoltzmannRatio = constitutive_dislokmc_QedgePerSlipSystem(j,instance)/(kB*Temperature)
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@ -1950,12 +1964,12 @@ function constitutive_dislokmc_postResults(Tstar_v,Temperature,ipc,ip,el)
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stressRatio_u = stressRatio** constitutive_dislokmc_uPerSlipFamily(f,instance)
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stressRatio_uminus1 = stressRatio**(constitutive_dislokmc_uPerSlipFamily(f,instance)-1.0_pReal)
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!* Shear rates due to slip
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vel_slip(j) = exp(-BoltzmannRatio*(1-StressRatio_p) ** constitutive_dislokmc_qPerSlipFamily(f,instance)) &
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vel_slip = exp(-BoltzmannRatio*(1-StressRatio_p) ** constitutive_dislokmc_qPerSlipFamily(f,instance)) &
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* (1.0_pReal-constitutive_dislokmc_sPerSlipFamily(f,instance) &
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* exp(-BoltzmannRatio*(1-StressRatio_p) ** constitutive_dislokmc_qPerSlipFamily(f,instance)))
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gdot_slip_pos(j) = DotGamma0 &
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* StressRatio_u * vel_slip(j) &
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* StressRatio_u * vel_slip &
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* sign(1.0_pReal,tau_slip_pos)
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!* Derivatives of shear rates
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dvel_slip = &
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@ -1967,10 +1981,10 @@ function constitutive_dislokmc_postResults(Tstar_v,Temperature,ipc,ip,el)
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*(1.0_pReal - 2.0_pReal*constitutive_dislokmc_sPerSlipFamily(f,instance)&
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*abs(exp(-BoltzmannRatio*(1-StressRatio_p) ** constitutive_dislokmc_qPerSlipFamily(f,instance))))
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dgdot_dtauslip = DotGamma0 * &
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dgdot_dtauslip_pos = DotGamma0 * &
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( constitutive_dislokmc_uPerSlipFamily(f,instance)*StressRatio_uminus1 &
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/(constitutive_dislokmc_SolidSolutionStrength(instance)+constitutive_dislokmc_tau_peierlsPerSlipFamily(f,instance))&
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* vel_slip(j) &
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* vel_slip &
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+ StressRatio_u * dvel_slip )
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endif
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@ -1978,7 +1992,7 @@ function constitutive_dislokmc_postResults(Tstar_v,Temperature,ipc,ip,el)
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if (gdot_slip_pos(j)==0.0_pReal) then
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constitutive_dislokmc_postResults(c+j) = 0.0_pReal
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else
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constitutive_dislokmc_postResults(c+j) = (tau_twin/gdot_slip_pos(j))*dgdot_dtauslip
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constitutive_dislokmc_postResults(c+j) = (tau_twin/gdot_slip_pos(j))*dgdot_dtauslip_pos
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endif
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enddo ; enddo
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c = c + ns
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