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envi-code/SourceCode/Code2026/tg_shs/shs_pipebase/TAuxTools.h
T
gjm 164968b62e chore
把非utf8-bom编码的cpp/h文件改为 utf8 bom 编码, msvc识别utf8编码时,如果不是bom格式的,会使用当前cp_oem来解码.
2026-10-04 00:04:20 +08:00

265 lines
12 KiB
C++

#if !defined(__TAUXTOOLS_H__)
#define __TAUXTOOLS_H__
#if _MSC_VER > 1000
#pragma once
#endif // _MSC_VER > 1000
#include "dbpl.h"
#include <sstream>
extern Adesk::Boolean acedPostCommand(LPCTSTR);
class TAuxTools
{
public:
// 求中点
static AcGePoint3d Mid(AcGePoint3d ptGe1, AcGePoint3d ptGe2);
// 从圆得到投影到过ptCenter点的某个面的半个或整个椭圆多段线,两圆模拟法
// ptCenter:原圆心, dDia:原圆直径, vtOrigNormal:原圆法向
// vtNewNormal::投影面的法向,polyLine得到的多段线
// vtGet:指示返回哪半个部分, 默认返回整个
// 返回值:-1, 求椭圆时出错,0新旧法向平行,圆形 1:新旧法向垂直,直线 2;正常情况,椭圆
// Lixl 2011-11-24 10:53 重写了此函数,如果投影为椭圆,则返回polyline线是连续的线段,而不是之前的三个弧,投影为圆和直线保持不变
static int GetEllipseFromCircle(AcGePoint3d ptCenter, double dDia, AcGeVector3d vtOrigNormal,
AcGeVector3d vtNewNormal, AcDbPolyline &polyLine, AcGeVector3d vtGet = AcGeVector3d::kIdentity);
static void GetArcPoint(AcDbPolyline &polyLine, AcGePoint3dArray &ptArcArr);
// 功能: 得到圆截面向平面投影后,投影曲线的焦点
// [OUT]: arPtsOnCurve椭圆返回7个点,直线3个点,圆5个点
static int GetEllipsePtsFromCircle(AcGePoint3dArray& arPtsOnCurve, AcGePoint3d ptCenter, double dDia, AcGeVector3d vtOrigNormal,
AcGeVector3d vtNewNormal, AcDbPolyline &polyLine, AcGeVector3d vtGet = AcGeVector3d::kIdentity);
// 函数功能: 从空间多个圆截面,向得到平行于z轴的平面投影,返回投影椭圆的焦点,用于确定边界构件
// [IN]: ptArr中连续三个点确定一个圆截面
// [IN]: arPtJudge中一个元素对应ptArr中连续三个元素,这个点用于确定投影后得到的投影椭圆或者直线的焦点,那个在外,那个在内
// [OUT]: 函数清空arPtJudge,并将每个圆截面的两个焦点,按距离近和远依次添加到arPtJudge中
static BOOL GetPrjPtsFromCircle(AcGePoint3dArray& ptArr, AcGePoint3dArray& arPtJudge);
// pLine转换为TGGeCurveSegment,并添加到TDPtrList中
static void Poly2CurveSeg(AcDbPolyline* pLine, TDPtrList<TGGeCurveSegment>& segComs);
// 判断向量是否是倾斜向量(不垂直Z轴,也不平行于Z轴)
static BOOL IsIncline(AcGeVector3d& vt);
//合并两条Pline线第一个参数为添加后的Pline。
static BOOL MergerPline(AcDbPolyline* pPl, AcDbPolyline* pSrc);
//同线三点,判断ptBase在ptSta和ptEnd哪个位置。
static int PositionOnLine(AcGePoint3d ptSta, AcGePoint3d ptEnd, AcGePoint3d ptBase);
static BOOL isCodirectionalPt(AcGePoint3d ptSta, AcGePoint3d ptEnd, AcGeVector3d vtBase);
static AcGePlane GetHidePlane(AcGePoint3d pt1, AcGePoint3d pt2, AcGePoint3d pt3, AcGeVector3d vtNormal, double &dEle);
static BOOL InsertBlock(AcDbVoidPtrArray& entitySet,AcDbObjectId idBlock, AcGePoint3d ptBase, AcGeScale3d ScaleFactor, double dAngle = 0.0);
static BOOL GetIntersectWith(AcGePoint3d pt1, AcGePoint3d pt2, AcGePoint3d pt3, AcGePoint3d pt4, AcGePoint3d& ptIntersect);
static int Getquadrant(AcGePoint3d ptCenter, AcGePoint3d pt, AcGeVector3d vtMain, AcGeVector3d vtNormal = AcGeVector3d::kZAxis);
// 用户XYZ坐标向量
static AcGeVector3d GetUcsXvt();
static AcGeVector3d GetUcsYvt();
static AcGeVector3d GetUcsZvt();
// 圆管沿程阻力
static double CalFricLoss(double dTemp, double dRough, double dDia, double dLength, double dVelocity);
// 矩形沿程阻力
static double CalFricLoss(double dTemp, double dRough, double dWidth, double dHeight,
double dLength, double dVelocity);
// 用于特性表修改某些参数后,更新遮挡关系
static void SetAndUpdateCover(TDbInterfacesObj* pObj, LPCTSTR pszName, TDb::OPMInfo* pInfo);
// 获得当前数据库字体样式表
static void GetAllTextStyleNameArray(CStringArray& arTextStyle);
// 获取最小分度角(曲面分化成小平面,相邻平面法向量间最小夹角)
static double GetMinDiffAngle();
// 构造方截面管状碰撞实体
static void BuildRectDuct(const AcGePoint3d& ptStart, const AcGePoint3d& ptEnd, const AcGeVector3d& vtNormal, const double dSWidth,
const double dSThick, const double dEWidth, const double dEThick, TXShell& xShell, const AcGeVector3d* pvtSSide = NULL,
const AcGeVector3d* pvtESide = NULL);
// 构造圆截面管状碰撞实体
static void BuildCirDuct(const AcGePoint3d& ptStart, const AcGePoint3d& ptEnd, const double dSDiameter, const double dEDismeter,
TXShell& xShell, const AcGeVector3d* pvtSRot = NULL, const AcGeVector3d* pvtERot = NULL,
const AcGeVector3d* pvtSRotAxis = NULL, const AcGeVector3d* pvtERotAxis = NULL);
// 构造包含点集的最小长方体
static void BuildMinRectangle(const AcGePoint3dArray& arpt, AcDbExtents& ext);
// 构造一头方一头圆的碰撞实体
static void BuildCir2RectDuct(const AcGePoint3d& ptCir, const AcGePoint3d& ptRec, const AcGeVector3d& vtNormal,const double dDiameter,
const double dWidth, const double dThick, TXShell& xShell, const AcGeVector3d* pvtRot = NULL,
const AcGeVector3d* pvtCirOut = NULL);
// 构造一个矩形碰撞面
static void BuildRecFace(const AcGePoint3d& pt, const double dWidth, const double dThick, const AcGeVector3d& vtNormal,
const AcGeVector3d& vtFaceNormal, TXShell& xShell);
static void BuildRecFace(const AcGePoint3d& pt, const double dWidth, const double dThick, const AcGeVector3d& vtNormal,
const AcGeVector3d& vtFaceNormal, AcDbVoidPtrArray& dbPtArr);
// 构造一个圆形碰撞面
static void BuildCirFace(const AcGePoint3d& pt, const double dDiameter, const AcGeVector3d& vtNormal, const AcGeVector3d& vtFaceNormal,
TXShell& xShell);
static void BuildCirFace(const AcGePoint3d& pt, const double dDiameter, const AcGeVector3d& vtNormal,
const AcGeVector3d& vtFaceNormal, AcDbVoidPtrArray& dbPtArr);
// 是否联动取值,包括位移、连接、尺寸
static BOOL IsAutoWorkOffset();
static BOOL IsAutoWorkConnect();
static BOOL IsAutoWorkSize();
// 处理TDbInterfacesObj实体位移,
// vtOff:作用于改实体偏移向量 idFrom:从何实体传来的指令,ptFrom:从何点传来的指令
static void DealWithConEnt(AcDbObjectId idToDeal, const AcGeVector3d& vtOff,
AcDbObjectId idFrom, AcGePoint3d ptFrom);
// 处理TDbInterfacesObj实体位移,可以处理多个
static void DealWithConEnt(AcDbObjectIdArray idArrToDeal, const AcGePoint3dArray& ptArrOrig,
const AcGePoint3dArray& ptArrNew, AcDbObjectId idFrom);
// 获取各接口位置
static BOOL GetInterfacePoint(const TImpSpecFitting* pFit, AcGePoint3dArray &ptArr);
// 获取实体各接口连接其他id
static BOOL GetInterfaceId(const TImpSpecFitting* pFit, AcDbObjectIdArray &idArr);
// 获取面标高
static double GetPlaneEle( const AcGePlane &plan );
//写扩展数据
static BOOL WriteXdata(ads_name name, const TCHAR*szName, const TCHAR*szValue);
static BOOL WriteXdata(AcDbObjectId idEnt, const TCHAR*szName, const TCHAR*szValue);
//读扩展数据
static CString ReadXdata(ads_name name, const TCHAR*szName);
static CString ReadXdata( AcDbObjectId idEnt, const TCHAR*szName);
// 通过id获取文字样式名
static TCHAR* GetFontStyle(AcDbObjectId idTextStyle);
// 检查偏移向量是否合适以支持联动(判断跟所有接口垂直或平行即可)
static BOOL IsEquipAutoMove(TImpSpecEquipment* pImpEquip, AcGeVector3d vtOffset);
// 暂拿水力计算中风管提风口找风口方法
static void GetAirLetByDuct(const TDbHvacDuct* pDuct, AcDbObjectIdArray &idArrAir);
// 当前视图是不是二维的
static BOOL Is2DView();
// 按指定的精度转换double到字符串
static void DoubleToString(double dValue, int nPreci, CString &csValue);
static void Matrix3D2String( const AcGeMatrix3d &mat, CString &str );
// 取得用于剖切的图块ID,比例和图块范围方块 add by hh 2011-02-14
// idSrc:原始图块ID vtNor:法向量 vtMain:主方向 vtPlaneSec:剖切方向
// scale:输入实体与原始图块的比例,输出新比例 pExt:新图块范围 返回新图块ID
static AcDbObjectId GetProjBlockId(const AcDbObjectId& idSrc, AcGeVector3d vtNor,
AcGeVector3d vtMain, AcGeVector3d vtPlaneSec, AcGeScale3d& scale, AcDbExtents* pExt = NULL);
// 从数据库中取出接口记录指针
// 以Read模式打开;返回不为空时,使用后必须进行关闭,无须delete;写操作时需进行升级
static TDbInterfaceRecord* GetIntfPtrFromDB();
// 计算圆弧曲率
static double CalCurvature(const AcGePoint3d& pt1, const AcGePoint3d& pt2,
const AcGePoint3d& pt3, const AcGeVector3d* pVtNor);
//add by wc 13-12-16//
// 通过id得到图块名称
static LPCTSTR GetBlkNameById (AcDbObjectId id);
// 是否与Z轴垂直的直线
static BOOL IsVerticalLine(AcGePoint3d pt1, AcGePoint3d pt2);
// 计算曲线遮挡 用于水管遮挡风管的情况
static void GetCurveGeomExtentsEdge(AcDbEntity* pEnt, TComplexCurve& crLoop);
static void MakeCurvePolyFaces(AcDbEntity* pEnt, AcDbVoidPtrArray& arFaces);
private:
// 圆管沿程阻力 dFricCoef摩擦系数, dDia直径(mm), dLength:管长, dDensity密度 dVelocity流速(m/s)
static double CalCircleFricLoss(double dFricCoef, double dDia, double dLength,
double dDensity, double dVelocity);
// 摩擦系数:根据粗糙度(mm)、流速当量直径(mm)和雷诺数计算 用柯列勃洛克-怀特公式计算
static double CalFricCoef(double dRough, double dCalDia, double dRe);
// 根据管宽(mm)和管高(mm)计算流速当量直径(mm)
static double CalVelDia(double dWidth, double dHeight);
// 流速(m/s)、流速当量直径(mm)和黏度(m^2/s)计算雷诺数
static double CalRe(double dVelocity, double dVelDia, double dMoveVis) ;
// 根据温度计算空气密度
static double CalDesity(double dTemperature);
// 根据温度计算运动黏度
static double CalMoveVis(double dTemperature);
// 用插值法从一维表格中取值
static double CalTable(double dAbscissa[], double *pTable, double dX, int m);
// 暂拿水力计算中风管提风口找风口方法
static void GetAllAirFromModel(AcDbObjectIdArray& arAirId);
static BOOL AirIsOnDuct(const AcDbObjectId& idAir, const TDbHvacDuct* pDuct, int& nPos, AcGeVector3d& vtFlux);
static int CalPosBy3Point(const AcGePoint3d& pt1, const AcGePoint3d& pt2, const AcGePoint3d& pt3);
public:
// add by hh 2011-01-04
template <typename TYPE>
static BOOL GetTHvacDataFromDwg(LPCTSTR pszKey, TYPE& value) // 从图纸中读取暖通专业数据
{
if(NULL == pszKey)
return FALSE;
TDbConfig* pTHvacCfg = GetDwgGlobal(AcDb::kForRead);
if(NULL == pTHvacCfg)
return FALSE;
CString csKey = pszKey;
if(0 != csKey.Left(6).Compare(EXTENDDATAID))
{
csKey.Format(_T("%s%s"), EXTENDDATAID, pszKey);
}
BOOL bRes = pTHvacCfg->GetFields().GFD(csKey, value);
pTHvacCfg->close();
return bRes;
}
template <typename TYPE>
static BOOL SetTHvacDataToDwg(LPCTSTR pszKey, const TYPE& value) // 写入暖通专业数据到图纸
{
if(NULL == pszKey)
return FALSE;
TDbConfig* pTHvacCfg = GetDwgGlobal(AcDb::kForWrite);
if(NULL == pTHvacCfg)
return FALSE;
CString csKey = pszKey;
if(0 != csKey.Left(6).Compare(EXTENDDATAID))
{
csKey.Format(_T("%s%s"), EXTENDDATAID, pszKey);
}
BOOL bRes = pTHvacCfg->Fields().SFD(csKey, value);
pTHvacCfg->close();
return bRes;
}
// add by dyc on 2014-01-21 解决Y型三通在比较大坐标值情况下以后后变成T型问题,求两圆交点
static BOOL CircleInsertWith(const AcGeCircArc3d& circleS, const AcGeCircArc3d& circleE,
AcGePoint3d& ptInter1, AcGePoint3d& ptInter2);
// 字符串拆分
static int StrTokenize(LPCTSTR pszSrc, LPCTSTR pszDelimit, CStringArray& arSubs);
};
#endif // !defined(__TAUXTOOLS_H__)