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#pragma once
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#include <string>
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#include <vector>
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#include <unordered_set>
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#include <algorithm>
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namespace nglib {
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#include "nglib.h"
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}
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using namespace nglib;
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enum BOUND_TYPE {
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CLOSED,
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CONST_PRESSURE,
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CONST_RATE,
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};
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enum BOUND_SHAPE {
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CIRCLE,
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RECTANGLE,
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POLYGON
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};
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enum WELL_TYPE {
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VERTICAL,
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VERTICAL_FRACTURED,
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MULTI_FRACED_HORIZONTAL
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};
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struct Point {
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double x, y, z;
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std::vector<double> pointData;
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Point(double x0, double y0) {
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x = x0;
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y = y0;
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}
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Point() {};
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// 拷贝构造函数
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Point(const Point& other) {
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//std::cout << "Copy constructor called" << std::endl;
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x = other.x; // 复制数据
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y = other.y;
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z = other.z;
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pointData = other.pointData;
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}
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bool operator==(const Point& other) const {
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const double epsilon = 1e-4; // 误差范围
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return fabs(x - other.x) < epsilon &&
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fabs(y - other.y) < epsilon;
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}
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};
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struct TimeDis {
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int nLogNum;//每个对数周期的时间点数
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double dTB;//起始时间
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TimeDis() {
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nLogNum = 10; //默认为每个对数周期10个点
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dTB = 1.0e-4; //默认初始时刻为1e-4,如果计算的双对数曲线的井储段未显示,则需要减小该值
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}
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};
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class Cell {
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public:
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int type;
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std::vector<int> pointIndices;
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std::vector<double> cellData;
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Cell(const Cell& other) {
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type = other.type;
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pointIndices = other.pointIndices;
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cellData = other.cellData;
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}
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Cell() {}
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bool operator==(const Cell&other)const {
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if (type != other.type) {
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return false;
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}
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if (pointIndices.size() != other.pointIndices.size()) {
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return false;
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}
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std::vector<int> a_sorted(pointIndices);
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std::vector<int> b_sorted(other.pointIndices);
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std::sort(a_sorted.begin(), a_sorted.end());
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std::sort(b_sorted.begin(), b_sorted.end());
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return a_sorted == b_sorted;
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}
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};
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class hash_fun {
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public:
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int operator()(const Cell &A) const {
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return A.type;
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}
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};
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/*
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class CBoundLine
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{
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// DECLARE_SERIAL(CBoundLine)
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public:
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CBoundLine() {
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nNodeNum = 8;
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nboundtype = 0;
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ddl = 100;
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bisSel = false;
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};
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virtual ~CBoundLine() {};
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Point pPre, pOri;
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int nboundtype;
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int nNodeNum;
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double ddl;
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int nNodeMin;
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int nNodeMax;
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bool bisSel;
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};*/
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class Line {
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public:
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Point p1;
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Point p2;
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};
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// 裂缝线
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class Frac : public Line {
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public:
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Frac(Point p1, Point p2) {
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this->p1 = p1;
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this->p2 = p2;
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dE = 0.01;
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dW = 1;
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dFc = 1000;
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dKr = dFc / dE;
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}
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Frac() {
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dE = 0.01;
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dW = 1;
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dFc = 1000;
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dKr = dFc / dE;
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}
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// 交点
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int nIntersect; // 交点数量
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std::vector<Point> vector_interPoint; // 交点坐标
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//裂缝上的线单元
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std::vector<Cell> fracCells;
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double dE;//裂缝宽度
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double dKr;//裂缝渗透率比,Kf/K
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double dW;//裂缝储能比,(phi*Ct)f/(phi*Ct)
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double dFc;//裂缝导流能力,dFc=dKr*dE;
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//记录netgen的in2d文件中几何点的编号
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//一个裂缝只需要2个节点即可记录
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std::vector<int> ngPointIndex;
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};
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// 定义外边界的线
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class Segment : public Line {
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public:
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Segment(Point p1, Point p2) {
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this->p1 = p1;
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this->p2 = p2;
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}
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Segment() {}
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BOUND_TYPE boundType; // 边界线的边界条件类型
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double dConstPressure;//定义边界时的压力值
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int nNumNodes; // 边界线上的网格点数
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std::vector<int> vecNodes;//边界线上的网格节点编号
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};
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// 外边界的基类
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class CBoundShape {
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public:
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BOUND_SHAPE boundShape; // 定义外边界类型,0为圆形,1为四边形,2为多边形
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// 表示多边形(包括四边形)的参数
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int nNumSegs; // 边的数量
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std::vector<Segment> vecSegments; // 边
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// 表示圆形
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Point cCenter;
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double dRadius;
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int nNodeNum;
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BOUND_TYPE boundType;
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double dConstPressure;//圆形定压边界时的压力值
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std::vector<int> vecNodes;//圆形边界上的网格点编号
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//记录netgen的in2d文件中几何点的编号
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std::vector<int> ngPointIndex;
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};
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// 多边形,内部的复合区域
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class CBoundPolygon : public CBoundShape {
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public:
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CBoundPolygon() {
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bAnchor = false;
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}
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CBoundPolygon(std::vector<Point> points) { //按拟时针给定的点来构建多边形
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for (int i = 0; i < points.size() - 1; ++i) {
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vecSegments.push_back(Segment(points[i], points[i + 1]));
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}
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vecSegments.push_back(Segment(points[points.size() - 1], points[0]));
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nNumSegs = points.size();
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bAnchor = false;
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}
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int nNumSegs; // 边的数量
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std::vector<Segment> vecSegments; // 边
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double dComKr;//复合区的渗透率比
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double dComW;//复合区的储能比
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bool bAnchor;//是否作为复合区进行材料属性的分区赋值,false表示不进行复合区的材料编号赋值,即其材料编号与背景值相同
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//记录netgen的in2d文件中几何点的编号
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std::vector<int> ngPointIndex;
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};
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class CBoundWell {
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// DECLARE_SERIAL(CWell)
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public:
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CBoundWell() {
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nNodeNum = 12;
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// dRc = 0.1;
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nFlowType = 0;
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nTimeNumQ = 0;
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nTimeNumP = 0;
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dSkin = 0;
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dC = 0.01;
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dMinPress = 0.101325;
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bisSel = false;
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nDenseNum = 10;
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dDenseRadius[0] = 1;
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nDenseNodeNUm[0] = 18;
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dDenseRadius[1] = 10;
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nDenseNodeNUm[1] = 23;
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dDenseRadius[2] = 50;
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nDenseNodeNUm[2] = 22;
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dDenseRadius[3] = 100;
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nDenseNodeNUm[3] = 25;
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dDenseRadius[4] = 500;
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nDenseNodeNUm[4] = 26;
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dDenseRadius[5] = 1000;
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nDenseNodeNUm[5] = 27;
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dDenseRadius[6] = 2000;
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nDenseNodeNUm[6] = 32;
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dDenseRadius[7] = 3000;
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nDenseNodeNUm[7] = 34;
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dDenseRadius[8] = 4000;
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nDenseNodeNUm[8] = 35;
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dDenseRadius[9] = 5000;
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nDenseNodeNUm[9] = 47;
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dDenseRadius[10] = 10000;
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nDenseNodeNUm[10] = 48;
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dDenseRadius[11] = 20000;
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nDenseNodeNUm[11] = 48;
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bisAutoChoose = false;
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bisMultFlow = true;
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nInComNote = 0;
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wellType = VERTICAL;
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dWidth = 0.1;
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};
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virtual ~CBoundWell() {};
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void SetDenseValue();
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public:
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//void Serialize(CArchive& ar);
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std::string sWellname;
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Point pCenter;
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int nFlowType;
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int nNodeNum;
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//double dRc;
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double dSkin;
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double dC;
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double dMinPress;
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int nTimeNumQ;
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int nTimeNumP;
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double pdTimeQ[100];
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double pdTimeP[100];
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double pdQ[100];
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double pdP[100];
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int nNodeMin;
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int nNodeMax;
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bool bisSel;
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int nDenseNum;
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double dDenseRadius[20];
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int nDenseNodeNUm[20];
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double dS;
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bool bisAutoChoose;
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bool bisMultFlow;
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int nInComNote;
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std::vector<int> m_NodeIndex;//all the nodes index of the wellbore
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std::vector<Point> m_PressureData;//计算的井筒压力数据
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WELL_TYPE wellType;
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//直井的几何参数,wellType=VERTICAL
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Point cCenter;
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double dRadius;
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//int nNodeNum;
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BOUND_TYPE boundType;
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//直井压裂井独有的参数,wellType=VERTICAL_FRACTURED
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//直井的中心和半径仍然使用cCenter和dRaduis表示
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double dHf;//裂缝半长
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double dTheata;//裂缝角度(相对于x轴)
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Frac wFrac[2];//通过dHf和dTheata计算的裂缝存储在该变量中,用于后续的计算
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//多段压裂水平井的参数,cCenter表示水平井中心点坐标,wellType=MULTI_FRACED_HORIZONTAL
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double dLength;//长度
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double dBeta;//角度
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int nFracNum;//压裂裂缝的数量
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std::vector<Frac> vecFracs;//压裂裂缝
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double dWidth;//2d模型中水平井宽度
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CBoundPolygon wellPoly;//水平井的边界形状
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//记录netgen的in2d文件中几何点的编号
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std::vector<int> ngPointIndex;
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};
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/*
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class CBoundCir
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{
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// DECLARE_SERIAL(CBoundCir)
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public:
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CBoundCir() {
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nNodeNum = 24;
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nboundtype = 0;
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bisSel = false;
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dComKr = 10;
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dComW = 3;
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};
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virtual ~CBoundCir() {};
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public:
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Point pCenter;
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double dRc;
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int nboundtype;
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int nNodeNum;
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bool bisSel;
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int nNodeMin;
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int nNodeMax;
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int nMeshMin;
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int nMeshMax;
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double dComKr;
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double dComW;
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};*/
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#ifdef __cplusplus
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extern "C" {
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#endif
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//mesh generation API
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__declspec(dllexport) Ng_Mesh* NgMeshGen2D(std::string strFileIn2D);
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__declspec(dllexport) Ng_Mesh* NgMeshGen2DByIn2d(std::vector<CBoundWell>& wells, std::vector<CBoundPolygon> limits,
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std::vector<Frac>& faults, std::vector<Frac>& fracs, CBoundShape &shape);
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__declspec(dllexport) void Ng2VTK(Ng_Mesh *mesh);
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//singlePhase solver API
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__declspec(dllexport) int singlePhaseSolver(double* pBaseData, std::vector<Point> points, std::vector<Cell> cells,
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int m_nWellNum, CBoundWell* pwells, std::vector<std::vector<Point>>& vecBP,
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std::vector<std::pair<double, std::vector<double>>>& vecNodePre);
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__declspec(dllexport) int singlePhaseSolverNgmesh(const TimeDis time, double* m_pBaseData, nglib::Ng_Mesh* mesh,
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std::vector<CBoundWell>& m_wWell, const std::vector<CBoundPolygon>& comPolygon, const std::vector<Frac>& faultPolygon,
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std::vector<Frac>& fracs, CBoundShape &outBound, std::vector<std::pair<double, std::vector<double>>>& vecNodePre,
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int& timeStep, int& totalSteps);
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__declspec(dllexport) int singlePhaseGasSolverNgmesh(double* component, double temperature, const TimeDis time,
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double* m_pBaseData, nglib::Ng_Mesh* mesh, std::vector<CBoundWell>& m_wWell,
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const std::vector<CBoundPolygon>& comPolygon, const std::vector<Frac>& faultPolygon, std::vector<Frac>& fracs,
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CBoundShape &outBound, std::vector<std::pair<double, std::vector<double>>>& vecNodePre, int& timeStep, int& totalSteps);
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__declspec(dllexport) bool logLogPre(const std::vector<Point>& pressure, const int& nSection, double* pdTimeQ,
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double* pdQ, int nTimeQ, std::vector<Point>& logPre);
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#ifdef __cplusplus
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}
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#endif
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