Geant4-11
G4TwistTrapAlphaSide.hh
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25//
26// G4TwistTrapAlphaSide
27//
28// Class description:
29//
30// Class describing a twisted boundary surface for a trapezoid.
31
32// Author: 27-Oct-2004 - O.Link (Oliver.Link@cern.ch)
33// --------------------------------------------------------------------
34#ifndef G4TWISTTRAPALPHASIDE_HH
35#define G4TWISTTRAPALPHASIDE_HH
36
37#include "G4VTwistSurface.hh"
38
39#include <vector>
40
42{
43 public: // with description
44
46 G4double PhiTwist, // twist angle
47 G4double pDz, // half z lenght
48 G4double pTheta, // direction between end planes
49 G4double pPhi, // by polar and azimutal angles
50 G4double pDy1, // half y length at -pDz
51 G4double pDx1, // half x length at -pDz,-pDy
52 G4double pDx2, // half x length at -pDz,+pDy
53 G4double pDy2, // half y length at +pDz
54 G4double pDx3, // half x length at +pDz,-pDy
55 G4double pDx4, // half x length at +pDz,+pDy
56 G4double pAlph, // tilt angle at +pDz
57 G4double AngleSide // parity
58 );
59
60 virtual ~G4TwistTrapAlphaSide();
61
62 virtual G4ThreeVector GetNormal(const G4ThreeVector& xx,
63 G4bool isGlobal = false) ;
64
65 virtual G4int DistanceToSurface(const G4ThreeVector& gp,
66 const G4ThreeVector& gv,
67 G4ThreeVector gxx[],
68 G4double distance[],
69 G4int areacode[],
70 G4bool isvalid[],
71 EValidate validate = kValidateWithTol);
72
73 virtual G4int DistanceToSurface(const G4ThreeVector& gp,
74 G4ThreeVector gxx[],
75 G4double distance[],
76 G4int areacode[]);
77
78
79 public: // without description
80
81 G4TwistTrapAlphaSide(__void__&);
82 // Fake default constructor for usage restricted to direct object
83 // persistency for clients requiring preallocation of memory for
84 // persistifiable objects.
85
86 private:
87
88 virtual G4int GetAreaCode(const G4ThreeVector& xx,
89 G4bool withTol = true);
90 virtual void SetCorners();
91 virtual void SetBoundaries();
92
93 void GetPhiUAtX(G4ThreeVector p, G4double& phi, G4double& u);
95 G4bool isglobal = false);
96
98 G4bool isGlobal = false );
99 virtual G4double GetBoundaryMin(G4double phi);
100 virtual G4double GetBoundaryMax(G4double phi);
101 virtual G4double GetSurfaceArea();
102 virtual void GetFacets( G4int m, G4int n, G4double xyz[][3],
103 G4int faces[][4], G4int iside );
104
105 inline G4ThreeVector NormAng(G4double phi, G4double u);
106 inline G4double GetValueA(G4double phi);
107 inline G4double GetValueB(G4double phi);
108 inline G4double GetValueD(G4double phi);
109 inline G4double Xcoef(G4double u,G4double phi);
110 // To calculate the w(u) function
111
112 private:
113
116
120
124
125 G4double fDz; // Half-length along the z axis
126
128 G4double fTAlph; // std::tan(fAlph)
129
130 G4double fPhiTwist; // twist angle (dphi in surface equation)
131
133
134 G4double fDx4plus2; // fDx4 + fDx2 == a2/2 + a1/2
135 G4double fDx4minus2; // fDx4 - fDx2 -
136 G4double fDx3plus1; // fDx3 + fDx1 == d2/2 + d1/2
137 G4double fDx3minus1; // fDx3 - fDx1 -
138 G4double fDy2plus1; // fDy2 + fDy1 == b2/2 + b1/2
139 G4double fDy2minus1; // fDy2 - fDy1 -
140 G4double fa1md1; // 2 fDx2 - 2 fDx1 == a1 - d1
141 G4double fa2md2; // 2 fDx4 - 2 fDx3
142
145};
146
147//========================================================
148// inline functions
149//========================================================
150
151inline
153{
154 return ( fDx4plus2 + fDx4minus2 * ( 2 * phi ) / fPhiTwist ) ;
155}
156
157inline
159{
160 return ( fDx3plus1 + fDx3minus1 * ( 2 * phi) / fPhiTwist ) ;
161}
162
163inline
165{
166 return ( fDy2plus1 + fDy2minus1 * ( 2 * phi ) / fPhiTwist ) ;
167}
168
169
170inline
172{
173
174 return GetValueA(phi)/2. + (GetValueD(phi)-GetValueA(phi))/4.
175 - u*( ( GetValueD(phi)-GetValueA(phi) )/( 2 * GetValueB(phi) ) - fTAlph );
176
177}
178
179inline G4ThreeVector
181{
182 // function to calculate a point on the surface, given by parameters phi,u
183
184 G4ThreeVector SurfPoint ( Xcoef(u,phi) * std::cos(phi)
185 - u * std::sin(phi) + fdeltaX*phi/fPhiTwist,
186 Xcoef(u,phi) * std::sin(phi)
187 + u * std::cos(phi) + fdeltaY*phi/fPhiTwist,
188 2*fDz*phi/fPhiTwist );
189 if (isGlobal) { return (fRot * SurfPoint + fTrans); }
190 return SurfPoint;
191}
192
193inline
195{
196 return -0.5*GetValueB(phi) ;
197}
198
199inline
201{
202 return 0.5*GetValueB(phi) ;
203}
204
205inline
207{
208 return (fDz*(std::sqrt(16*fDy1*fDy1
209 + (fa1md1 + 4*fDy1*fTAlph)*(fa1md1 + 4*fDy1*fTAlph))
210 + std::sqrt(16*fDy2*fDy2 + (fa2md2 + 4*fDy2*fTAlph)
211 * (fa2md2 + 4*fDy2*fTAlph))))/2. ;
212}
213
214inline
216{
217 // function to calculate the norm at a given point on the surface
218 // replace a1-d1
219
220 G4ThreeVector nvec ( fDy1* fDz*(4*fDy1*std::cos(phi)
221 + (fa1md1 + 4*fDy1*fTAlph)*std::sin(phi)),
222 -(fDy1* fDz*((fa1md1 + 4*fDy1*fTAlph)*std::cos(phi)
223 - 4*fDy1*std::sin(phi))),
228 *(fa1md1 + 4*fDy1*fTAlph)*phi)
229 + fPhiTwist*(16*fDy1*fDy1
230 + (fa1md1 + 4*fDy1*fTAlph)
231 *(fa1md1 + 4*fDy1*fTAlph))*u
233 + 4*fdeltaY*fDy1*fTAlph)* std::cos(phi)
234 - 4*fDy1*(fa1md1*fdeltaX + 4*fDy1*(fdeltaY
235 + fdeltaX*fTAlph))*std::sin(phi))/ 8. ) ;
236 return nvec.unit();
237}
238
239#endif
static constexpr double m
Definition: G4SIunits.hh:109
double G4double
Definition: G4Types.hh:83
bool G4bool
Definition: G4Types.hh:86
int G4int
Definition: G4Types.hh:85
Hep3Vector unit() const
virtual G4double GetBoundaryMax(G4double phi)
virtual G4int GetAreaCode(const G4ThreeVector &xx, G4bool withTol=true)
virtual G4ThreeVector SurfacePoint(G4double phi, G4double u, G4bool isGlobal=false)
virtual G4int DistanceToSurface(const G4ThreeVector &gp, const G4ThreeVector &gv, G4ThreeVector gxx[], G4double distance[], G4int areacode[], G4bool isvalid[], EValidate validate=kValidateWithTol)
virtual G4double GetBoundaryMin(G4double phi)
virtual G4double GetSurfaceArea()
G4TwistTrapAlphaSide(const G4String &name, G4double PhiTwist, G4double pDz, G4double pTheta, G4double pPhi, G4double pDy1, G4double pDx1, G4double pDx2, G4double pDy2, G4double pDx3, G4double pDx4, G4double pAlph, G4double AngleSide)
virtual G4ThreeVector GetNormal(const G4ThreeVector &xx, G4bool isGlobal=false)
G4ThreeVector ProjectPoint(const G4ThreeVector &p, G4bool isglobal=false)
virtual void GetFacets(G4int m, G4int n, G4double xyz[][3], G4int faces[][4], G4int iside)
G4double Xcoef(G4double u, G4double phi)
G4double GetValueA(G4double phi)
void GetPhiUAtX(G4ThreeVector p, G4double &phi, G4double &u)
G4double GetValueB(G4double phi)
G4double GetValueD(G4double phi)
G4ThreeVector NormAng(G4double phi, G4double u)
G4RotationMatrix fRot
G4ThreeVector fTrans
const char * name(G4int ptype)