source: sasmodels/sasmodels/sesans.py @ cf404cb

core_shell_microgelscostrafo411magnetic_modelrelease_v0.94release_v0.95ticket-1257-vesicle-productticket_1156ticket_1265_superballticket_822_more_unit_tests
Last change on this file since cf404cb was 3c56da87, checked in by Paul Kienzle <pkienzle@…>, 9 years ago

lint cleanup

  • Property mode set to 100644
File size: 2.3 KB
Line 
1"""
2Conversion of scattering cross section from SANS in absolute
3units into SESANS using a Hankel transformation
4
5Everything is in units of metres except specified otherwise
6
7Wim Bouwman (w.g.bouwman@tudelft.nl), June 2013
8"""
9
10from __future__ import division
11
12import numpy as np
13from numpy import pi, exp
14
15from scipy.special import jv as besselj
16
17def make_q(q_zmax, Rmax):
18    q_min = dq = 0.1 * 2*pi / Rmax
19    #q_min = 0.00003
20    return np.arange(q_min, q_zmax, dq)
21
22# TODO: dead code; for now the call to the hankel transform happens in BumpsModel
23class SesansCalculator:
24    def __init__(self, kernel, q_zmax, Rmax, SElength, wavelength, thickness):
25        self._set_kernel(kernel, q_zmax, Rmax)
26        self.SElength = SElength
27        self.wavelength = wavelength
28        self.thickness = thickness
29
30    def _set_kernel(self, kernel, q_zmax, Rmax):
31        kernel_input = kernel.make_input([make_q(q_zmax, Rmax)])
32        self.sans_calculator = kernel(kernel_input)
33
34    def __call__(self, pars, pd_pars, cutoff=1e-5):
35        Iq = self.sans_calculator(pars, pd_pars, cutoff)
36        P = hankel(self.SElength, self.wavelength, self.thickness, self.q, Iq)
37        self.Iq = Iq
38        return P
39
40def hankel(SElength, wavelength, thickness, q, Iq):
41    """
42    Compute the expected SESANS polarization for a given SANS pattern.
43
44    Uses the hankel transform followed by the exponential.  The values
45    for zz (or spin echo length, or delta), wavelength and sample thickness
46    information should come from the dataset.  *q* should be chosen such
47    that the oscillations in *I(q)* are well sampled (e.g., 5*2*pi/d_max).
48
49    *SElength* [A] is the set of z points at which to compute the hankel transform
50
51    *wavelength* [m]  is the wavelength of each individual point *zz*
52
53    *thickness* [cm] is the sample thickness.
54
55    *q* [A^{-1}] is the set of q points at which the model has been computed.
56    These should be equally spaced.
57
58    *I* [cm^{-1}] is the value of the SANS model at *q*
59    """
60    G = np.zeros(len(SElength), 'd')
61    for i in range(len(SElength)):
62        integr = besselj(0,q*SElength[i])*Iq*q
63        G[i] = np.sum(integr)
64    dq=(q[1]-q[0])*1e10   # [m^-1] step size in q, needed for integration
65    G *= dq*1e10*2*pi # integr step, conver q into [m**-1] and 2 pi circle integr
66    P = exp(thickness*wavelength**2/(4*pi**2)*(G-G[0]))
67
68    return P
Note: See TracBrowser for help on using the repository browser.