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197 lines
7.5 KiB
C++
197 lines
7.5 KiB
C++
//! \file mgxs.h
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//! A collection of classes for Multi-Group Cross Section data
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#ifndef OPENMC_MGXS_H
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#define OPENMC_MGXS_H
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#include <string>
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#include "openmc/tensor.h"
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#include "openmc/constants.h"
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#include "openmc/hdf5_interface.h"
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#include "openmc/particle.h"
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#include "openmc/vector.h"
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#include "openmc/xsdata.h"
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namespace openmc {
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//==============================================================================
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// MGXS contains the mgxs data for a nuclide/material
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//==============================================================================
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class Mgxs {
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private:
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tensor::Tensor<double> kTs; // temperature in eV (k * T)
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AngleDistributionType
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scatter_format; // flag for if this is legendre, histogram, or tabular
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int num_groups; // number of energy groups
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int num_delayed_groups; // number of delayed neutron groups
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vector<XsData> xs; // Cross section data
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// MGXS Incoming Flux Angular grid information
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int n_pol;
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int n_azi;
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vector<double> polar;
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vector<double> azimuthal;
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//! \brief Initializes the Mgxs object metadata
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//!
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//! @param in_name Name of the object.
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//! @param in_awr atomic-weight ratio.
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//! @param in_kTs temperatures (in units of eV) that data is available.
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//! @param in_fissionable Is this item fissionable or not.
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//! @param in_scatter_format Denotes whether Legendre, Tabular, or
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//! Histogram scattering is used.
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//! @param in_is_isotropic Is this an isotropic or angular with respect to
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//! the incoming particle.
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//! @param in_polar Polar angle grid.
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//! @param in_azimuthal Azimuthal angle grid.
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void init(const std::string& in_name, double in_awr,
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const vector<double>& in_kTs, bool in_fissionable,
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AngleDistributionType in_scatter_format, bool in_is_isotropic,
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const vector<double>& in_polar, const vector<double>& in_azimuthal);
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//! \brief Initializes the Mgxs object metadata from the HDF5 file
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//!
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//! @param xs_id HDF5 group id for the cross section data.
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//! @param temperature Temperatures to read.
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//! @param temps_to_read Resultant list of temperatures in the library
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//! to read which correspond to the requested temperatures.
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//! @param order_dim Resultant dimensionality of the scattering order.
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void metadata_from_hdf5(hid_t xs_id, const vector<double>& temperature,
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vector<int>& temps_to_read, int& order_dim);
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//! \brief Performs the actual act of combining the microscopic data for a
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//! single temperature.
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//!
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//! @param micros Microscopic objects to combine.
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//! @param scalars Scalars to multiply the microscopic data by.
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//! @param micro_ts The temperature index of the microscopic objects that
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//! corresponds to the temperature of interest.
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//! @param this_t The temperature index of the macroscopic object.
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void combine(const vector<Mgxs*>& micros, const vector<double>& scalars,
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const vector<int>& micro_ts, int this_t);
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//! \brief Checks to see if this and that are able to be combined
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//!
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//! This comparison is used when building macroscopic cross sections
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//! from microscopic cross sections.
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//! @param that The other Mgxs to compare to this one.
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//! @return True if they can be combined, False otherwise.
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bool equiv(const Mgxs& that);
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public:
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std::string name; // name of dataset, e.g., UO2
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double awr; // atomic weight ratio
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bool fissionable; // Is this fissionable
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bool is_isotropic {
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true}; // used to skip search for angle indices if isotropic
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bool exists_in_model {true}; // Is this present in model
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Mgxs() = default;
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Mgxs(bool exists) : exists_in_model(exists) {}
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//! \brief Constructor that loads the Mgxs object from the HDF5 file
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//!
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//! @param xs_id HDF5 group id for the cross section data.
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//! @param temperature Temperatures to read.
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//! @param num_group number of energy groups
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//! @param num_delay number of delayed groups
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Mgxs(hid_t xs_id, const vector<double>& temperature, int num_group,
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int num_delay);
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//! \brief Constructor that initializes and populates all data to build a
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//! macroscopic cross section from microscopic cross sections.
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//!
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//! @param in_name Name of the object.
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//! @param mat_kTs temperatures (in units of eV) that data is needed.
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//! @param micros Microscopic objects to combine.
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//! @param atom_densities Atom densities of those microscopic quantities.
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//! @param num_group number of energy groups
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//! @param num_delay number of delayed groups
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Mgxs(const std::string& in_name, const vector<double>& mat_kTs,
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const vector<Mgxs*>& micros, const vector<double>& atom_densities,
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int num_group, int num_delay);
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//! \brief Get the number of temperature data points.
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//!
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//! @return The number of temperature data points for this MGXS
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inline int n_temperature_points() { return kTs.size(); }
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//! \brief Provides a cross section value given certain parameters
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//!
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//! @param xstype Type of cross section requested, according to the
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//! enumerated constants.
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//! @param gin Incoming energy group.
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//! @param gout Outgoing energy group; use nullptr if irrelevant, or if a
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//! sum is requested.
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//! @param mu Cosine of the change-in-angle, for scattering quantities;
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//! use nullptr if irrelevant.
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//! @param dg delayed group index; use nullptr if irrelevant.
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//! @param t Temperature index.
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//! @param a Angle index.
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//! @return Requested cross section value.
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double get_xs(MgxsType xstype, int gin, const int* gout, const double* mu,
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const int* dg, int t, int a);
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inline double get_xs(MgxsType xstype, int gin, int t, int a)
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{
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return get_xs(xstype, gin, nullptr, nullptr, nullptr, t, a);
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}
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//! \brief Samples the fission neutron energy and if prompt or delayed.
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//!
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//! @param gin Incoming energy group.
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//! @param dg Sampled delayed group index.
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//! @param gout Sampled outgoing energy group.
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//! @param seed Pseudorandom seed pointer
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//! @param t Temperature index.
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//! @param a Angle index.
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void sample_fission_energy(
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int gin, int& dg, int& gout, uint64_t* seed, int t, int a);
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//! \brief Samples the outgoing energy and angle from a scatter event.
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//!
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//! @param gin Incoming energy group.
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//! @param gout Sampled outgoing energy group.
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//! @param mu Sampled cosine of the change-in-angle.
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//! @param wgt Weight of the particle to be adjusted.
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//! @param seed Pseudorandom seed pointer.
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//! @param t Temperature index.
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//! @param a Angle index.
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void sample_scatter(
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int gin, int& gout, double& mu, double& wgt, uint64_t* seed, int t, int a);
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//! \brief Calculates cross section quantities needed for tracking.
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//!
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//! @param p The particle whose attributes set which MGXS to get.
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void calculate_xs(Particle& p);
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//! \brief Sets the temperature index in the particle's cache.
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//!
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//! @param p Particle.
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void set_temperature_index(Particle& p);
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//! \brief Gets the temperature index given a temperature.
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//!
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//! @param sqrtkT Temperature of the material.
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//! @return The temperature index corresponding to sqrtkT.
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int get_temperature_index(double sqrtkT) const;
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//! \brief Sets the angle index in the particle's cache.
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//!
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//! @param p Particle.
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void set_angle_index(Particle& p);
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//! \brief Gets the angle index given a direction.
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//!
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//! @param u Incoming particle direction.
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//! @return The angle index corresponding to u.
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int get_angle_index(const Direction& u) const;
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//! \brief Provide const access to list of XsData held by this
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const vector<XsData>& get_xsdata() const { return xs; }
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};
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} // namespace openmc
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#endif // OPENMC_MGXS_H
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