Merge branch 'dislotwin-parameters' into 'development'
example files for TWIP/TRIP See merge request damask/DAMASK!636
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PRIVATE
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PRIVATE
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Subproject commit 36c2fe3cde7fc1397ddd0fef71b2f4b40b72bba8
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Subproject commit 7b1ad767256f796f56514d8888027499fe777132
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@ -13,7 +13,7 @@ output: [rho_dip, rho_mob]
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N_sl: [12, 12]
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N_sl: [12, 12]
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b_sl: [2.49e-10, 2.49e-10]
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b_sl: [2.49e-10, 2.49e-10]
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rho_mob_0: [2.81e12, 2.8e+12]
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rho_mob_0: [2.81e+12, 2.8e+12]
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rho_dip_0: [1.0, 1.0] # not given
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rho_dip_0: [1.0, 1.0] # not given
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v_0: [1.4e+3, 1.4e+3]
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v_0: [1.4e+3, 1.4e+3]
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Q_sl: [1.57e-19, 1.57e-19] # Delta_F
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Q_sl: [1.57e-19, 1.57e-19] # Delta_F
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@ -0,0 +1,72 @@
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type: dislotwin
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references:
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- S.L. Wong et al.,
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Acta Materialia 118:140-151, 2016,
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https://doi.org/10.1016/j.actamat.2016.07.032
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- K. Sedighiani et al.,
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Mechanics of Materials, 164:104117, 2022,
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https://doi.org/10.1016/j.mechmat.2021.104117
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- L. Kubin et al.,
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Acta Materialia 56:6040-6049,
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https://doi.org/10.1016/j.actamat.2008.08.012
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output: [rho_mob, rho_dip, gamma_sl, Lambda_sl, tau_pass, f_tw, Lambda_tw, f_tr]
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# Glide
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N_sl: [12]
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b_sl: [2.56e-10] # a/sqrt(2)
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Q_sl: [3.5e-19]
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p_sl: [0.325]
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q_sl: [1.55]
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B: [0.001]
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i_sl: [30.0]
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v_0: [1.4e+3]
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tau_0: [5.5e+8] # adjusted
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D_a: 2.0
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Q_cl: 3.0e-19
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rho_mob_0: [5.0e+10]
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rho_dip_0: [5.0e+10]
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h_sl-sl: [0.122, 0.122, 0.625, 0.07, 0.137, 0.137, 0.122]
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# Twin
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N_tw: [12]
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b_tw: [1.47e-10] # a_cF/sqrt(6)
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L_tw: 1.91e-7 # 1300 *b_tw
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i_tw: 10.0
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t_tw: [5.0e-8]
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p_tw: [7] # A, adjusted
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h_tw-tw: [1.0, 1.0]
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h_sl-tw: [1.0, 1.0, 1.0]
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# Transformation
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N_tr: [12]
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b_tr: [1.47e-10] # a_cF/sqrt(6)
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L_tr: 2.21e-7 # 1500 *b_tr
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i_tr: 10.0 # adjusted
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t_tr: [1.0e-7]
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p_tr: [4] # B, adjusted
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V_mol: 7.09e-6
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c/a_hP: 1.633
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Delta_G: 1.2055e+2
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Delta_G,T: 2.5515
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Delta_G,T^2: 1.4952e-3
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h_tr-tr: [1.0, 1.0]
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h_sl-tr: [1.5, 1.5, 1.5]
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# Twin & Transformation
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T_ref: 293.15
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Gamma_sf: 2.833e-2
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Gamma_sf,T: 1.214e-4
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Gamma_sf,T^2: 1.473e-7
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x_c: 1.0e-9
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V_cs: 1.67e-29
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# Slip & Twin & Transformation
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D: 5.0e-5
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@ -27,7 +27,6 @@ submodule(phase:plastic) dislotwin
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gamma_0_sb = 1.0_pReal, & !< value for shearband velocity_0
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gamma_0_sb = 1.0_pReal, & !< value for shearband velocity_0
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E_sb = 1.0_pReal, & !< activation energy for shear bands
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E_sb = 1.0_pReal, & !< activation energy for shear bands
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h = 1.0_pReal, & !< stack height of hex nucleus
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h = 1.0_pReal, & !< stack height of hex nucleus
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a_cF = 1.0_pReal, &
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cOverA_hP = 1.0_pReal, &
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cOverA_hP = 1.0_pReal, &
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V_mol = 1.0_pReal, &
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V_mol = 1.0_pReal, &
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rho = 1.0_pReal
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rho = 1.0_pReal
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@ -55,8 +54,8 @@ submodule(phase:plastic) dislotwin
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real(pReal), allocatable, dimension(:,:) :: &
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real(pReal), allocatable, dimension(:,:) :: &
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h_sl_sl, & !< components of slip-slip interaction matrix
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h_sl_sl, & !< components of slip-slip interaction matrix
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h_sl_tw, & !< components of slip-twin interaction matrix
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h_sl_tw, & !< components of slip-twin interaction matrix
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h_tw_tw, & !< components of twin-twin interaction matrix
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h_sl_tr, & !< components of slip-trans interaction matrix
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h_sl_tr, & !< components of slip-trans interaction matrix
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h_tw_tw, & !< components of twin-twin interaction matrix
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h_tr_tr, & !< components of trans-trans interaction matrix
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h_tr_tr, & !< components of trans-trans interaction matrix
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n0_sl, & !< slip system normal
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n0_sl, & !< slip system normal
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forestProjection
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forestProjection
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@ -302,7 +301,7 @@ module function plastic_dislotwin_init() result(myPlasticity)
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prm%i_tr = pl%get_asFloat('i_tr')
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prm%i_tr = pl%get_asFloat('i_tr')
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prm%Delta_G = polynomial(pl%asDict(),'Delta_G','T')
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prm%Delta_G = polynomial(pl%asDict(),'Delta_G','T')
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prm%L_tr = pl%get_asFloat('L_tr')
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prm%L_tr = pl%get_asFloat('L_tr')
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a_cF = pl%get_asFloat('a_cF')
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a_cF = prm%b_tr(1)*sqrt(6.0_pReal) ! b_tr is Shockley partial
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prm%h = 5.0_pReal * a_cF/sqrt(3.0_pReal)
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prm%h = 5.0_pReal * a_cF/sqrt(3.0_pReal)
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prm%cOverA_hP = pl%get_asFloat('c/a_hP')
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prm%cOverA_hP = pl%get_asFloat('c/a_hP')
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prm%rho = 4.0_pReal/(sqrt(3.0_pReal)*a_cF**2)/N_A
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prm%rho = 4.0_pReal/(sqrt(3.0_pReal)*a_cF**2)/N_A
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@ -372,6 +371,10 @@ module function plastic_dislotwin_init() result(myPlasticity)
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if (prm%fccTwinTransNucleation .and. size(prm%N_tr) /= 1) extmsg = trim(extmsg)//' N_tr: nucleation'
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if (prm%fccTwinTransNucleation .and. size(prm%N_tr) /= 1) extmsg = trim(extmsg)//' N_tr: nucleation'
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end if slipAndTransActive
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end if slipAndTransActive
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twinAndTransActive: if (prm%sum_N_tw * prm%sum_N_tr > 0) then
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if (dNeq(prm%b_tw(1),prm%b_tr(1))) extmsg = trim(extmsg)//' b_tw != b_tr'
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end if twinAndTransActive
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!--------------------------------------------------------------------------------------------------
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!--------------------------------------------------------------------------------------------------
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! allocate state arrays
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! allocate state arrays
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Nmembers = count(material_phaseID == ph)
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Nmembers = count(material_phaseID == ph)
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