[1] | 1 | /*! \file Penta.h
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| 2 | * \brief: header file for penta object
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| 3 | */
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| 4 |
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| 5 | #ifndef _PENTA_H
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| 6 | #define _PENTA_H
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| 7 |
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| 8 | #include "./Object.h"
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| 9 | #include "./Element.h"
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| 10 | #include "./Matpar.h"
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| 11 | #include "./Matice.h"
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| 12 | #include "./Node.h"
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[96] | 13 | #include "./Tria.h"
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[246] | 14 | #include "./ParameterInputs.h"
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[1] | 15 |
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| 16 | class Penta: public Element{
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| 17 |
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| 18 | private:
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| 19 | int id;
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| 20 |
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| 21 | /*nodes: */
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| 22 | int node_ids[6]; //node ids
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| 23 | Node* nodes[6]; //node pointers
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| 24 | int node_offsets[6]; //node offsets in nodes dataset
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| 25 |
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| 26 | /*materials: */
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| 27 | int mid;
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| 28 | Matice* matice;
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| 29 | int matice_offset;
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| 30 |
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| 31 | int mparid;
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| 32 | Matpar* matpar;
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| 33 | int matpar_offset;
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| 34 |
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| 35 |
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| 36 | double h[6];
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| 37 | double s[6];
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| 38 | double b[6];
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| 39 | double k[6];
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[128] | 40 | double melting[6];
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| 41 | double accumulation[6];
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[1] | 42 | int friction_type;
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| 43 | double p;
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| 44 | double q;
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| 45 | int shelf;
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| 46 | int onbed;
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| 47 | int onsurface;
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| 48 | double meanvel;/*!scaling ratio for velocities*/
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| 49 | double epsvel; /*!minimum velocity to avoid infinite velocity ratios*/
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| 50 | int collapse;
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| 51 | double geothermalflux[6];
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| 52 | int artdiff;
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| 53 | int thermal_steadystate;
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[111] | 54 | double viscosity_overshoot;
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[387] | 55 | double stokesreconditioning;
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[1] | 56 |
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| 57 | public:
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| 58 |
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| 59 | Penta();
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[96] | 60 | Penta( int id, int mid, int mparid, int node_ids[6], double h[6], double s[6], double b[6], double k[6], int friction_type,
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[46] | 61 | double p, double q, int shelf, int onbed, int onsurface, double meanvel,double epsvel,
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| 62 | int collapse, double melting[6], double accumulation[6], double geothermalflux[6],
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[387] | 63 | int artdiff, int thermal_steadystate,double viscosity_overshoot,double stokesreconditioning);
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[1] | 64 | ~Penta();
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| 65 |
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| 66 | void Echo();
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| 67 | void Marshall(char** pmarshalled_dataset);
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| 68 | int MarshallSize();
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| 69 | char* GetName();
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| 70 | void Demarshall(char** pmarshalled_dataset);
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| 71 | int Enum();
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| 72 | int GetId();
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| 73 | int MyRank();
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| 74 | void Configure(void* loads,void* nodes,void* materials);
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[465] | 75 | void CreateKMatrix(Mat Kgg,void* inputs,int analysis_type,int sub_analysis_type);
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| 76 | void CreateKMatrixDiagnosticHoriz( Mat Kgg, void* inputs, int analysis_type,int sub_analysis_type);
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| 77 | void CreateKMatrixDiagnosticVert( Mat Kgg, void* inputs, int analysis_type,int sub_analysis_type);
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| 78 | void CreatePVector(Vec pg, void* inputs, int analysis_type,int sub_analysis_type);
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[246] | 79 | void UpdateFromInputs(void* inputs);
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[96] | 80 | void GetDofList(int* doflist,int* pnumberofdofs);
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[301] | 81 | void GetDofList1(int* doflist);
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[246] | 82 | void* GetMatPar();
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[1] | 83 | int GetShelf();
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[246] | 84 | void GetNodes(void** nodes);
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[1] | 85 | int GetOnBed();
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[465] | 86 | void Du(Vec du_g,double* u_g,double* u_g_obs,void* inputs,int analysis_type,int sub_analysis_type);
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| 87 | void Gradj(Vec grad_g,double* u_g,double* lambda_g,void* inputs,int analysis_type,int sub_analysis_type,char* control_type);
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| 88 | void GradjDrag(Vec grad_g,double* u_g,double* lambda_g,void* inputs,int analysis_type,int sub_analysis_type);
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| 89 | void GradjB(Vec grad_g,double* u_g,double* lambda_g,void* inputs,int analysis_type,int sub_analysis_type);
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| 90 | double Misfit(double* u_g,double* u_g_obs,void* inputs,int analysis_type,int sub_analysis_type);
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[1] | 91 |
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| 92 | void GetThicknessList(double* thickness_list);
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| 93 | void GetBedList(double* bed_list);
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| 94 | Object* copy();
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[246] | 95 | void* SpawnTria(int g0, int g1, int g2);
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[1] | 96 |
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[96] | 97 | void GetStrainRate(double* epsilon, double* velocity, double* xyz_list, double* gauss_l1l2l3l4);
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| 98 | void GetB(double* pB, double* xyz_list, double* gauss_l1l2l3l4);
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| 99 | void GetBPrime(double* B, double* xyz_list, double* gauss_l1l2l3l4);
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[128] | 100 | void GetB_vert(double* B, double* xyz_list, double* gauss_l1l2l3l4);
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| 101 | void GetBPrime_vert(double* B, double* xyz_list, double* gauss_l1l2l3l4);
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[96] | 102 | void GetJacobianDeterminant(double* Jdet, double* xyz_list,double* gauss_l1l2l3l4);
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| 103 | void GetNodalFunctionsDerivativesBasic(double* dh1dh2dh3dh4dh5dh6_basic,double* xyz_list, double* gauss_l1l2l3l4);
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| 104 | void GetJacobian(double* J, double* xyz_list,double* gauss_l1l2l3l4);
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| 105 | void GetNodalFunctionsDerivativesParams(double* dl1dl2dl3dl4dl5dl6,double* gauss_l1l2l3l4);
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| 106 | void GetJacobianInvert(double* Jinv, double* xyz_list,double* gauss_l1l2l3l4);
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[465] | 107 | void CreatePVectorDiagnosticHoriz( Vec pg, void* inputs,int analysis_type,int sub_analysis_type);
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| 108 | void CreatePVectorDiagnosticVert( Vec pg, void* inputs,int analysis_type,int sub_analysis_type);
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[96] | 109 | void GetParameterValue(double* pvalue, double* v_list,double* gauss_l1l2l3l4);
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| 110 | void GetParameterDerivativeValue(double* p, double* p_list,double* xyz_list, double* gauss_l1l2l3l4);
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| 111 | void GetNodalFunctions(double* l1l2l3l4l5l6, double* gauss_l1l2l3l4);
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| 112 | void VelocityExtrude(Vec ug,double* ug_serial);
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[358] | 113 | void SlopeExtrude(Vec sg,double* sg_serial);
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[301] | 114 | void ComputePressure(Vec p_g);
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[465] | 115 | void CreateKMatrixSlopeCompute(Mat Kgg,void* vinputs,int analysis_type,int sub_analysis_type);
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| 116 | void CreatePVectorSlopeCompute( Vec pg, void* vinputs, int analysis_type,int sub_analysis_type);
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[1] | 117 |
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[465] | 118 | void CreateKMatrixDiagnosticStokes( Mat Kgg, void* vinputs, int analysis_type,int sub_analysis_type);
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| 119 | void CreatePVectorDiagnosticStokes( Vec pg, void* vinputs,int analysis_type,int sub_analysis_type);
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[394] | 120 | void ReduceMatrixStokes(double* Ke_reduced, double* Ke_temp);
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| 121 | void GetMatrixInvert(double* Ke_invert, double* Ke);
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| 122 | void SurfaceNormal(double* surface_normal, double xyz_list[3][3]);
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| 123 | void GetStrainRateStokes(double* epsilon, double* velocity, double* xyz_list, double* gauss_coord);
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| 124 | void GetBStokes(double* B, double* xyz_list, double* gauss_coord);
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| 125 | void GetBprimeStokes(double* B_prime, double* xyz_list, double* gauss_coord);
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| 126 | void GetLStokes(double* LStokes, double* gauss_coord_tria);
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| 127 | void GetLprimeStokes(double* LprimeStokes, double* xyz_list, double* gauss_coord_tria, double* gauss_coord);
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| 128 | void GetNodalFunctionsDerivativesBasicStokes(double* dh1dh7_basic,double* xyz_list, double* gauss_coord);
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| 129 | void GetNodalFunctionsDerivativesParamsStokes(double* dl1dl7,double* gauss_coord);
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| 130 | void ReduceVectorStokes(double* Pe_reduced, double* Ke_temp, double* Pe_temp);
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| 131 | void GetNodalFunctionsStokes(double* l1l7, double* gauss_coord);
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[483] | 132 | void CreateKMatrixThermal(Mat Kgg,void* inputs,int analysis_type,int sub_analysis_type);
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| 133 | void GetB_conduct(double* B_conduct, double* xyz_list, double* gauss_coord);
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| 134 | void GetB_advec(double* B_advec, double* xyz_list, double* gauss_coord);
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| 135 | void GetBprime_advec(double* Bprime_advec, double* xyz_list, double* gauss_coord);
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| 136 | void CreateKMatrixMelting(Mat Kgg,void* inputs,int analysis_type,int sub_analysis_type);
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| 137 | void CreatePVectorThermal( Vec pg, void* vinputs,int analysis_type,int sub_analysis_type);
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| 138 | void CreatePVectorMelting( Vec pg, void* vinputs,int analysis_type,int sub_analysis_type);
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| 139 | void GetPhi(double* phi, double* epsilon, double viscosity);
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[358] | 140 |
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[394] | 141 |
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[1] | 142 | };
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| 143 | #endif /* _PENTA_H */
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[96] | 144 |
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| 145 |
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