BDSIM
BDSIM is a Geant4 extension toolkit for simulation of particle transport in accelerator beamlines.
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BDSFieldMagMultipoleOuterOld.hh
1/*
2Beam Delivery Simulation (BDSIM) Copyright (C) Royal Holloway,
3University of London 2001 - 2024.
4
5This file is part of BDSIM.
6
7BDSIM is free software: you can redistribute it and/or modify
8it under the terms of the GNU General Public License as published
9by the Free Software Foundation version 3 of the License.
10
11BDSIM is distributed in the hope that it will be useful, but
12WITHOUT ANY WARRANTY; without even the implied warranty of
13MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14GNU General Public License for more details.
15
16You should have received a copy of the GNU General Public License
17along with BDSIM. If not, see <http://www.gnu.org/licenses/>.
18*/
19#ifndef BDSFIELDMAGMULTIPOLEOUTEROLD_H
20#define BDSFIELDMAGMULTIPOLEOUTEROLD_H
21
22#include "BDSFieldMag.hh"
23
24#include "globals.hh" // geant4 types / globals
25#include "G4RotationMatrix.hh"
26#include "G4ThreeVector.hh"
27#include "G4TwoVector.hh"
28
29#include <vector>
30
32
56{
57public:
58 BDSFieldMagMultipoleOuterOld(G4int orderIn,
59 G4double poleTipRadius,
60 const BDSFieldMag* innerFieldIn,
61 G4bool kPositive,
62 G4double arbitraryScaling = 1.0);
63
65
67 virtual G4ThreeVector GetField(const G4ThreeVector& position,
68 const double t = 0) const;
69
70private:
71 const G4int order;
72 G4double normalisation;
74 G4double poleTipRadius;
75 std::vector<G4TwoVector> currents;
76};
77
78#endif
A simple paramaterisation of N-Pole outer yoke magnetic field.
G4bool positiveField
Sign of magnetic field.
G4double poleTipRadius
Radius of transition between inner and outer fields.
virtual G4ThreeVector GetField(const G4ThreeVector &position, const double t=0) const
Access the field value.
std::vector< G4TwoVector > currents
Locations of inifite wire current sources.
G4double normalisation
Storage of the overal normalisation factor.
Interface for static magnetic fields that may or may not be local.
Efficient storage of magnet strengths.