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ChrPlasmaLens.H
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1/* Copyright 2022-2023 The Regents of the University of California, through Lawrence
2 * Berkeley National Laboratory (subject to receipt of any required
3 * approvals from the U.S. Dept. of Energy). All rights reserved.
4 *
5 * This file is part of ImpactX.
6 *
7 * Authors: Chad Mitchell, Axel Huebl, Kyrre Sjobak
8 * License: BSD-3-Clause-LBNL
9 */
10#ifndef IMPACTX_CHRPLASMALENS_H
11#define IMPACTX_CHRPLASMALENS_H
12
14#include "mixin/alignment.H"
15#include "mixin/pipeaperture.H"
16#include "mixin/beamoptic.H"
17#include "mixin/thick.H"
19#include "mixin/named.H"
20#include "mixin/nofinalize.H"
21
22#include <AMReX_Extension.H>
23#include <AMReX_Math.H>
24#include <AMReX_REAL.H>
25#include <AMReX_SIMD.H>
26
27#include <cmath>
28#include <stdexcept>
29
30
31namespace impactx::elements
32{
34 : public mixin::Named,
35 public mixin::BeamOptic<ChrPlasmaLens>,
36 public mixin::LinearTransport<ChrPlasmaLens>,
37 public mixin::Thick,
38 public mixin::Alignment,
40 public mixin::NoFinalize,
41 public amrex::simd::Vectorized<amrex::simd::native_simd_size_particlereal>
42 {
43 static constexpr auto type = "ChrPlasmaLens";
45
69 int unit,
72 amrex::ParticleReal rotation_degree = 0,
75 int nslice = 1,
76 std::optional<std::string> name = std::nullopt
77 )
78 : Named(std::move(name)),
79 Thick(ds, nslice),
80 Alignment(dx, dy, rotation_degree),
82 m_k(k), m_unit(unit)
83 {
84 }
85
87 void reverse () { Thick::reverse(); }
88
90 using BeamOptic::operator();
91
99 void compute_constants (RefPart const & refpart)
100 {
101 using namespace amrex::literals; // for _rt and _prt
102 using amrex::Math::powi;
103
104 Alignment::compute_constants(refpart);
105
106 // length of the current slice
107 m_slice_ds = m_ds / nslice();
108
109 // access reference particle values to find beta and gamma
110 m_beta = refpart.beta();
111 m_gamma = refpart.gamma();
112
113 // normalize focusing strength units to MAD-X convention if needed
114 m_g = m_unit == 1 ? m_k / refpart.rigidity_Tm() : m_k;
115
116 //For m_g=0 time propagation
117 m_const1 = 1_prt / (2_prt * powi<3>(m_beta) * powi<2>(m_gamma));
118 }
119
131 template<typename T_Real=amrex::ParticleReal, typename T_IdCpu=uint64_t>
134 T_Real & AMREX_RESTRICT x,
135 T_Real & AMREX_RESTRICT y,
136 T_Real & AMREX_RESTRICT t,
137 T_Real & AMREX_RESTRICT px,
138 T_Real & AMREX_RESTRICT py,
139 T_Real & AMREX_RESTRICT pt,
140 T_IdCpu & AMREX_RESTRICT idcpu,
141 [[maybe_unused]] RefPart const & AMREX_RESTRICT refpart
142 ) const
143 {
144 using namespace amrex::literals; // for _rt and _prt
145 using amrex::Math::powi;
146 using namespace std; // for cmath(float)
147
148 // shift due to alignment errors of the element
149 shift_in(x, y, px, py);
150
151 // compute particle momentum deviation delta + 1
152 T_Real const delta1 = sqrt(1_prt - 2_prt*pt/m_beta + powi<2>(pt));
153 T_Real const delta = delta1 - 1_prt;
154
155 // compute phase advance per unit length in s (in rad/m)
156 // chromatic dependence on delta is included
157 T_Real const omega = sqrt(abs(m_g)/delta1);
158
159 // initialize output values
160 T_Real xout = x;
161 T_Real yout = y;
162 T_Real tout = t;
163
164 // initialize output values of momenta
165 T_Real pxout = px;
166 T_Real pyout = py;
167 T_Real const ptout = pt;
168
169 // placeholder variables -- canonical position and momentum
170 T_Real q1 = x;
171 T_Real q2 = y;
172 T_Real p1 = px;
173 T_Real p2 = py;
174
175 if (m_g > 0_prt)
176 {
177 auto const [sin_ods, cos_ods] = amrex::Math::sincos(omega*m_slice_ds);
178
179 // advance transverse position and momentum (focusing)
180 xout = cos_ods * x + sin_ods / (omega * delta1) * px;
181 pxout = -omega * delta1 * sin_ods * x + cos_ods * px;
182
183 yout = cos_ods * y + sin_ods / (omega * delta1) * py;
184 pyout = -omega * delta1 * sin_ods * y + cos_ods * py;
185
186 // the corresponding symplectic update to t (focusing both x and y)
187 T_Real const term = pt + delta/m_beta;
188 T_Real const t0 = t - term*m_slice_ds/delta1;
189
190 T_Real const w = omega*delta1;
191 T_Real const term1 = -(powi<2>(p2) - powi<2>(q2) * powi<2>(w)) * sin(2_prt*m_slice_ds*omega);
192 T_Real const term2 = -(powi<2>(p1) - powi<2>(q1) * powi<2>(w)) * sin(2_prt*m_slice_ds*omega);
193 T_Real const term3 = -2_prt * q2 * p2 * w * cos(2_prt*m_slice_ds*omega);
194 T_Real const term4 = -2_prt * q1 * p1 * w * cos(2_prt*m_slice_ds*omega);
195 T_Real const term5 = 2_prt * omega * (q1*p1*delta1 + q2*p2*delta1
196 -(powi<2>(p1) + powi<2>(p2))*m_slice_ds - (powi<2>(q1) + powi<2>(q2)) * powi<2>(w)*m_slice_ds);
197 tout = t0 + (-1_prt+m_beta*pt)
198 / (8_prt*m_beta * powi<3>(delta1)*omega)
199 * (term1+term2+term3+term4+term5);
200
201 }
202 else if (m_g < 0_prt)
203 {
204 auto const sinh_ods = sinh(omega*m_slice_ds);
205 auto const cosh_ods = cosh(omega*m_slice_ds);
206
207 // advance transverse position and momentum (defocusing)
208 xout = cosh_ods * x + sinh_ods / (omega * delta1) * px;
209 pxout = +omega * delta1 * sinh_ods * x + cosh_ods * px;
210
211 yout = cosh_ods * y + sinh_ods / (omega * delta1) * py;
212 pyout = +omega * delta1 * sinh_ods * y + cosh_ods * py;
213
214 // the corresponding symplectic update to t (defocusing both x and y)
215 T_Real const term = pt + delta/m_beta;
216 T_Real const t0 = t - term*m_slice_ds/delta1;
217
218 T_Real const w = omega*delta1;
219 T_Real const term1 = -(powi<2>(p2) + powi<2>(q2) * powi<2>(w)) * sinh(2_prt*m_slice_ds*omega);
220 T_Real const term2 = -(powi<2>(p1) + powi<2>(q1) * powi<2>(w)) * sinh(2_prt*m_slice_ds*omega);
221 T_Real const term3 = -2_prt * q2 * p2 * w * cosh(2_prt*m_slice_ds*omega);
222 T_Real const term4 = -2_prt * q1 * p1 * w * cosh(2_prt*m_slice_ds*omega);
223 T_Real const term5 = 2_prt * omega * (q1*p1*delta1 + q2*p2*delta1
224 -(powi<2>(p1) + powi<2>(p2))*m_slice_ds - (powi<2>(q1) + powi<2>(q2)) * powi<2>(w)*m_slice_ds);
225 tout = t0 + (-1_prt+m_beta*pt)
226 / (8_prt*m_beta * powi<3>(delta1)*omega)
227 * (term1+term2+term3+term4+term5);
228 }
229 else {
230 xout = x + px*m_slice_ds / delta1;
231 pxout = px;
232
233 yout = y + py*m_slice_ds / delta1;
234 pyout = py;
235
236 // the corresponding symplectic update to t (zero strength = drift),
237 // avoiding division by 0
238 T_Real term = 2_prt * powi<2>(pt) + powi<2>(px) + powi<2>(py);
239 term = 2_prt - 4_prt * m_beta * pt + powi<2>(m_beta) * term;
240 term = -2_prt + powi<2>(m_gamma)*term;
241 term = (-1_prt + m_beta * pt) * term;
242 term = term * m_const1;
243 tout = t - m_slice_ds * (1_prt / m_beta + term / powi<3>(delta1));
244 }
245 // advance longitudinal position and momentum
246
247
248 // assign updated position & momenta
249 x = xout;
250 y = yout;
251 t = tout;
252 px = pxout;
253 py = pyout;
254 pt = ptout;
255
256 // apply transverse aperture
257 apply_aperture(x, y, idcpu);
258
259 // undo shift due to alignment errors of the element
260 shift_out(x, y, px, py);
261 }
262
268 void operator() (RefPart & AMREX_RESTRICT refpart) const
269 {
270 using namespace amrex::literals; // for _rt and _prt
271 using amrex::Math::powi;
272
273 // assign input reference particle values
274 amrex::ParticleReal const x = refpart.x;
275 amrex::ParticleReal const px = refpart.px;
276 amrex::ParticleReal const y = refpart.y;
277 amrex::ParticleReal const py = refpart.py;
278 amrex::ParticleReal const z = refpart.z;
279 amrex::ParticleReal const pz = refpart.pz;
280 amrex::ParticleReal const t = refpart.t;
281 amrex::ParticleReal const pt = refpart.pt;
282 amrex::ParticleReal const s = refpart.s;
283
284 // length of the current slice
285 amrex::ParticleReal const slice_ds = m_ds / nslice();
286
287 // assign intermediate parameter
288 amrex::ParticleReal const step = slice_ds / std::sqrt(powi<2>(pt)-1.0_prt);
289
290 // advance position and momentum (straight element)
291 refpart.x = x + step*px;
292 refpart.y = y + step*py;
293 refpart.z = z + step*pz;
294 refpart.t = t - step*pt;
295
296 // advance integrated path length
297 refpart.s = s + slice_ds;
298 }
299
301 using LinearTransport::operator();
302
309 Map6x6
310 transport_map (RefPart const & AMREX_RESTRICT refpart) const
311 {
312 using namespace amrex::literals; // for _rt and _prt
313 using amrex::Math::powi;
314
315 // length of the current slice
316 amrex::ParticleReal const slice_ds = m_ds / nslice();
317
318 // access reference particle values to find beta*gamma^2
319 amrex::ParticleReal const pt_ref = refpart.pt;
320 amrex::ParticleReal const betgam2 = powi<2>(pt_ref) - 1_prt;
321
322 // compute phase advance per unit length in s (in rad/m)
323 amrex::ParticleReal const omega = std::sqrt(std::abs(m_k));
324
325 // initialize linear map matrix elements
327
328 if (m_k > 0.0) {
329 R(1,1) = std::cos(omega*slice_ds);
330 R(1,2) = std::sin(omega*slice_ds)/omega;
331 R(2,1) = -omega*std::sin(omega*slice_ds);
332 R(2,2) = std::cos(omega*slice_ds);
333 R(3,3) = std::cos(omega*slice_ds);
334 R(3,4) = std::sin(omega*slice_ds)/omega;
335 R(4,3) = -omega*std::sin(omega*slice_ds);
336 R(4,4) = std::cos(omega*slice_ds);
337 R(5,6) = slice_ds/betgam2;
338 } else if (m_k < 0.0) {
339 R(1,1) = std::cosh(omega*slice_ds);
340 R(1,2) = std::sinh(omega*slice_ds)/omega;
341 R(2,1) = omega*std::sinh(omega*slice_ds);
342 R(2,2) = std::cosh(omega*slice_ds);
343 R(3,3) = std::cosh(omega*slice_ds);
344 R(3,4) = std::sinh(omega*slice_ds)/omega;
345 R(4,3) = omega*std::sinh(omega*slice_ds);
346 R(4,4) = std::cosh(omega*slice_ds);
347 R(5,6) = slice_ds/betgam2;
348 } else {
349 R(1,2) = slice_ds;
350 R(3,4) = slice_ds;
351 R(5,6) = slice_ds / betgam2;
352 }
353
354 return R;
355 }
356
358 int m_unit;
359
360 private:
361 // constants that are independent of the individually tracked particle,
362 // see: compute_constants() to refresh
368 };
369
370} // namespace impactx
371
373
374#endif // IMPACTX_CHRPLASMALENS_H
#define AMREX_FORCE_INLINE
#define AMREX_RESTRICT
#define AMREX_GPU_HOST_DEVICE
#define AMREX_GPU_HOST
#define IMPACTX_PUSH_EXTERN_TEMPLATE(ElementType)
Definition PushAll.H:78
amrex_particle_real ParticleReal
__host__ __device__ std::pair< double, double > sincos(double x)
constexpr T powi(T x) noexcept
__host__ __device__ T abs(const GpuComplex< T > &a_z) noexcept
__host__ __device__ GpuComplex< T > sqrt(const GpuComplex< T > &a_z) noexcept
Definition All.H:56
@ s
fixed s as the independent variable
Definition ImpactXParticleContainer.H:37
@ t
fixed t as the independent variable
Definition ImpactXParticleContainer.H:38
amrex::SmallMatrix< amrex::ParticleReal, 6, 6, amrex::Order::F, 1 > Map6x6
Definition CovarianceMatrix.H:20
static constexpr __host__ __device__ SmallMatrix< T, NRows, NCols, ORDER, StartIndex > Identity() noexcept
Definition ReferenceParticle.H:33
AMREX_GPU_HOST_DEVICE AMREX_FORCE_INLINE amrex::ParticleReal rigidity_Tm() const
Definition ReferenceParticle.H:261
AMREX_GPU_HOST_DEVICE AMREX_FORCE_INLINE amrex::ParticleReal beta() const
Definition ReferenceParticle.H:152
AMREX_GPU_HOST_DEVICE AMREX_FORCE_INLINE amrex::ParticleReal gamma() const
Definition ReferenceParticle.H:140
Definition ChrPlasmaLens.H:42
int m_unit
focusing strength in 1/m^2 (or T/m)
Definition ChrPlasmaLens.H:358
static constexpr auto type
Definition ChrPlasmaLens.H:43
void compute_constants(RefPart const &refpart)
Definition ChrPlasmaLens.H:99
amrex::ParticleReal m_beta
m_ds / nslice();
Definition ChrPlasmaLens.H:364
amrex::ParticleReal m_k
Definition ChrPlasmaLens.H:357
amrex::ParticleReal m_const1
Definition ChrPlasmaLens.H:367
amrex::ParticleReal m_gamma
Definition ChrPlasmaLens.H:365
amrex::ParticleReal m_g
Definition ChrPlasmaLens.H:366
AMREX_GPU_HOST_DEVICE AMREX_FORCE_INLINE void operator()(T_Real &AMREX_RESTRICT x, T_Real &AMREX_RESTRICT y, T_Real &AMREX_RESTRICT t, T_Real &AMREX_RESTRICT px, T_Real &AMREX_RESTRICT py, T_Real &AMREX_RESTRICT pt, T_IdCpu &AMREX_RESTRICT idcpu, RefPart const &AMREX_RESTRICT refpart) const
Definition ChrPlasmaLens.H:133
ChrPlasmaLens(amrex::ParticleReal ds, amrex::ParticleReal k, int unit, amrex::ParticleReal dx=0, amrex::ParticleReal dy=0, amrex::ParticleReal rotation_degree=0, amrex::ParticleReal aperture_x=0, amrex::ParticleReal aperture_y=0, int nslice=1, std::optional< std::string > name=std::nullopt)
Definition ChrPlasmaLens.H:66
amrex::ParticleReal m_slice_ds
unit specification for focusing strength
Definition ChrPlasmaLens.H:363
AMREX_GPU_HOST AMREX_FORCE_INLINE Map6x6 transport_map(RefPart const &AMREX_RESTRICT refpart) const
Definition ChrPlasmaLens.H:310
void reverse()
Definition ChrPlasmaLens.H:87
ImpactXParticleContainer::ParticleType PType
Definition ChrPlasmaLens.H:44
Definition alignment.H:27
AMREX_GPU_HOST_DEVICE AMREX_FORCE_INLINE void shift_out(T_Real &AMREX_RESTRICT x, T_Real &AMREX_RESTRICT y, T_Real &AMREX_RESTRICT px, T_Real &AMREX_RESTRICT py) const
Definition alignment.H:109
AMREX_GPU_HOST_DEVICE AMREX_FORCE_INLINE amrex::ParticleReal dy() const
Definition alignment.H:146
AMREX_GPU_HOST_DEVICE AMREX_FORCE_INLINE amrex::ParticleReal dx() const
Definition alignment.H:136
Alignment(amrex::ParticleReal dx, amrex::ParticleReal dy, amrex::ParticleReal rotation_degree)
Definition alignment.H:36
AMREX_GPU_HOST_DEVICE AMREX_FORCE_INLINE void shift_in(T_Real &AMREX_RESTRICT x, T_Real &AMREX_RESTRICT y, T_Real &AMREX_RESTRICT px, T_Real &AMREX_RESTRICT py) const
Definition alignment.H:78
Definition beamoptic.H:436
Definition lineartransport.H:50
Definition named.H:29
AMREX_GPU_HOST Named(std::optional< std::string > name)
Definition named.H:57
AMREX_FORCE_INLINE std::string name() const
Definition named.H:122
Definition nofinalize.H:22
Definition pipeaperture.H:26
AMREX_GPU_HOST_DEVICE AMREX_FORCE_INLINE void apply_aperture(T_Real &AMREX_RESTRICT x, T_Real &AMREX_RESTRICT y, T_IdCpu &AMREX_RESTRICT idcpu) const
Definition pipeaperture.H:59
AMREX_GPU_HOST_DEVICE AMREX_FORCE_INLINE amrex::ParticleReal aperture_x() const
Definition pipeaperture.H:90
AMREX_GPU_HOST_DEVICE AMREX_FORCE_INLINE amrex::ParticleReal aperture_y() const
Definition pipeaperture.H:101
PipeAperture(amrex::ParticleReal aperture_x, amrex::ParticleReal aperture_y)
Definition pipeaperture.H:32
Definition thick.H:24
Thick(amrex::ParticleReal ds, int nslice)
Definition thick.H:30
amrex::ParticleReal m_ds
Definition thick.H:68
AMREX_GPU_HOST_DEVICE AMREX_FORCE_INLINE amrex::ParticleReal ds() const
Definition thick.H:53
AMREX_GPU_HOST_DEVICE AMREX_FORCE_INLINE int nslice() const
Definition thick.H:43