Comparing slab viscous dissipation under slab distributed weakening and slab segmentation scenarios
收藏资源简介:
This is the README file for the dataset of 'Comparing slab viscous dissipation under slab distributed weakening and slab segmentation scenarios'. The data file 'Segmentation_40 (60, 80).xlsx' contains the data from the segmentation model where the subducting slab age is 40 Myr (60, 80 Myr). The data file 'Sdw_40 (60, 80).xlsx' contains the data from the slab distributed weakening model where the subducting slab age is 40 Myr (60, 80 Myr). The file 'natural_subductionzone_para.xlsx' contains the dataset used to calculate natural subduction-slab dissipation. The script 'multifactor-regression.py' performs the multi-factor linear regression. The files 'Segmentation_40 (60, 80).xlsx' and 'Sdw_40 (60, 80).xlsx' are used as inputs for this regression. The script 'set_model.py' is the Underworld input script that we used for our simulations. The archive 'segmentation(Sdw)-40(60,80).zip' contains post-processing data used to describe the evolution of several slab parameters during subduction. These files share the same structure: (1) timestep.log — Model evolution time (simulation timestep log).==================== ## ======================== (2) EFP.npy — This dataset includes parameters for subducting-slab energy dissipation and release, subduction velocity, and effective viscosity, enabling analysis of the temporal evolution of the dissipation fraction. # 1--time 2--energy_gravity_potential 3-energy_visco_dissipation_slab;# 4-energy_visco_dissipation_mantle; 5-energy_visco_dissipation_crust; 6-energy_visco_dissipation_overriding;# 7-energy_visco_dissipation_litho; 8-energy_visco_dissipation; 9-vel_ad;# 10-vel_sink; 11-energy_gravity_potential_all; 12-energy_gravity_potential_all_delta;# 13-energy_kinetic; 14-energy_mantle_diff(temp effect); 15-energy_gravity_potential_1300_mantle;# 16-energy_pressure; 17-energy_gravity_potential_thermal_slab; 18-rho_shallow;# 19-rho_middle; 20-rho_deep; 21-energy_gravity_potential_craton;# 22-energy_gravity_potential_thermal_mantle;# 23-energy_gravity_potential_thermal_overriding;# 24-yita_f(strainRate); 25-yita_f_trenchLeft; 26-energy_visco_dissipation_slab_upper;# 27-Volume_eclogite 28-yita_f(Volume) 29-yita_f_nocrust(strainRate)# 30-yita_f_upper_200km(Volume) 31-yita_f_lower_200km(Volume) 32-vel_trench# 33-yita_f_upper(strainrate) 34-yita_f_lower(strainrate) 35-thickness_slab# 36-thickness_95%_dissipation 37-thckness_90%_dissipation 38-yita_f(Volume and StrainRate) # 39-temperature(slab)==================== ## ======================== (3) Bending.npy — This file contains energy dissipation in different compositional fields during slab subduction, partitioned into the crust and lithospheric mantle, as well as dissipation localized along the subduction interface. # 1--time; 2--energy_visco_dissipation_slab_bending; 3-energy_visco_dissipation_crust_bending;# 4-energy_visco_dissipation_litho_bending;# 5-energy_visco_dissipation_slab_iv; 6-energy_visco_dissipation_mantle_iv; 7-energy_visco_dissipation_crust_iv;# 8-energy_visco_dissipation_litho_iv; 9-decoupling_de_c; 10-decoupling_de_l;# 11-decoupling_de_c_nv; 12-decoupling_de_l_nv; 13-R_average;# 14-R2==================== ## ======================== (4) Integral.npy — It includes the time evolution of the plate’s curvature-gradient integral and the length of the subducted slab (sum((dk/ds)**2 ds)). # 1--integral_0(sum); 2--integral_1(trapz) 3--integral_2 (dkds**2*yita)# 4--length of subducted slab 5--length of subducted slab (2nd method) 6--trench location# 7--length of unsubduct slab(3rd) 8--length of unsubduct slab (4th method) 9--dkds_upper==================== ## ========================



