Commit Graph

137 Commits

Author SHA1 Message Date
791e1ca2d2 Merged reactingParcelFilmFoam into reactingParcelFoam
The combined solver includes the most advanced and general functionality from
each solver including:

    Continuous phase
    Lagrangian multiphase parcels
    Optional film
    Continuous and Lagrangian phase reactions
    Radiation
    Strong buoyancy force support by solving for p_rgh

The reactingParcelFoam and reactingParcelFilmFoam tutorials have been combined
and updated.
2017-08-29 09:33:45 +01:00
65071b9598 ENH: Updated dpdt and K field construction 2017-06-21 12:20:58 +01:00
39476bde1c GIT: Resolve conflict associated with cherry-pick of Foundation commit 79ff91350
79ff91350 - rhoPimpleFoam: Improved support for compressible liquids
(2017-05-17 17:05:43 +0100) <Henry Weller>
2017-05-17 17:05:43 +01:00
9a864bdd85 GIT: Resolved merge conflict when merging develop branch 2017-05-24 12:30:09 +01:00
91b90da4f3 Integrated Foundation code to commit 104aac5 2017-05-17 16:35:18 +01:00
976ad36776 ENH: Initial attempt to track oriented surface fields 2017-04-24 10:34:05 +01:00
1805b3c98f radiationModel: Added "he" argument to the "Sh" function
for consistency with the other energy sources.
2017-04-13 13:57:33 +01:00
dcb1a95e35 MRG: Integrated Foundation code to commit 7d6845d 2017-03-23 14:33:33 +00:00
04c3d535b0 MRG: Integrated Foundation code to commit 47bd8e1 2017-03-23 10:12:38 +00:00
d2be645483 thermophysicalProperties: New base-class for liquidProperties and in the future gasProperties
Description
    Base-class for thermophysical properties of solids, liquids and gases
    providing an interface compatible with the templated thermodynamics
    packages.

liquidProperties, solidProperties and thermophysicalFunction libraries have been
combined with the new thermophysicalProperties class into a single
thermophysicalProperties library to simplify compilation and linkage of models,
libraries and applications dependent on these classes.
2017-02-18 21:53:20 +00:00
c52e4b58a1 thermophysicalModels: Changed specie thermodynamics from mole to mass basis
The fundamental properties provided by the specie class hierarchy were
mole-based, i.e. provide the properties per mole whereas the fundamental
properties provided by the liquidProperties and solidProperties classes are
mass-based, i.e. per unit mass.  This inconsistency made it impossible to
instantiate the thermodynamics packages (rhoThermo, psiThermo) used by the FV
transport solvers on liquidProperties.  In order to combine VoF with film and/or
Lagrangian models it is essential that the physical propertied of the three
representations of the liquid are consistent which means that it is necessary to
instantiate the thermodynamics packages on liquidProperties.  This requires
either liquidProperties to be rewritten mole-based or the specie classes to be
rewritten mass-based.  Given that most of OpenFOAM solvers operate
mass-based (solve for mass-fractions and provide mass-fractions to sub-models it
is more consistent and efficient if the low-level thermodynamics is also
mass-based.

This commit includes all of the changes necessary for all of the thermodynamics
in OpenFOAM to operate mass-based and supports the instantiation of
thermodynamics packages on liquidProperties.

Note that most users, developers and contributors to OpenFOAM will not notice
any difference in the operation of the code except that the confusing

    nMoles     1;

entries in the thermophysicalProperties files are no longer needed or used and
have been removed in this commet.  The only substantial change to the internals
is that species thermodynamics are now "mixed" with mass rather than mole
fractions.  This is more convenient except for defining reaction equilibrium
thermodynamics for which the molar rather than mass composition is usually know.
The consequence of this can be seen in the adiabaticFlameT, equilibriumCO and
equilibriumFlameT utilities in which the species thermodynamics are
pre-multiplied by their molecular mass to effectively convert them to mole-basis
to simplify the definition of the reaction equilibrium thermodynamics, e.g. in
equilibriumCO

    // Reactants (mole-based)
    thermo FUEL(thermoData.subDict(fuelName)); FUEL *= FUEL.W();

    // Oxidant (mole-based)
    thermo O2(thermoData.subDict("O2")); O2 *= O2.W();
    thermo N2(thermoData.subDict("N2")); N2 *= N2.W();

    // Intermediates (mole-based)
    thermo H2(thermoData.subDict("H2")); H2 *= H2.W();

    // Products (mole-based)
    thermo CO2(thermoData.subDict("CO2")); CO2 *= CO2.W();
    thermo H2O(thermoData.subDict("H2O")); H2O *= H2O.W();
    thermo CO(thermoData.subDict("CO")); CO *= CO.W();

    // Product dissociation reactions

    thermo CO2BreakUp
    (
        CO2 == CO + 0.5*O2
    );

    thermo H2OBreakUp
    (
        H2O == H2 + 0.5*O2
    );

Please report any problems with this substantial but necessary rewrite of the
thermodynamic at https://bugs.openfoam.org

Henry G. Weller
CFD Direct Ltd.
2017-02-17 11:22:14 +00:00
b99817d924 Rationalized heat release rate functions
Combined 'dQ()' and 'Sh()' into 'Qdot()' which returns the heat-release rate in
the normal units [kg/m/s3] and used as the heat release rate source term in
the energy equations, to set the field 'Qdot' in several combustion solvers
and for the evaluation of the local time-step when running LTS.
2016-12-15 17:10:21 +00:00
bd0e982d99 MRG: Initial commit after latest Foundation merge 2016-09-30 11:16:28 +01:00
9fbd612672 GIT: Initial state after latest Foundation merge 2016-09-20 14:49:08 +01:00
b32bd3f295 solvers: Moved createRDeltaT.H into createFields.H so that it is available with the -postProcess option
Required to support LTS with the -postProcess option with sub-models dependent on ddt
terms during construction, in particular reactingTwoPhaseEulerFoam.
2016-09-19 22:08:39 +01:00
1d57269680 TDACChemistryModel: New chemistry model providing Tabulation of Dynamic Adaptive Chemistry
Provides efficient integration of complex laminar reaction chemistry,
combining the advantages of automatic dynamic specie and reaction
reduction with ISAT (in situ adaptive tabulation).  The advantages grow
as the complexity of the chemistry increases.

References:
    Contino, F., Jeanmart, H., Lucchini, T., & D’Errico, G. (2011).
    Coupling of in situ adaptive tabulation and dynamic adaptive chemistry:
    An effective method for solving combustion in engine simulations.
    Proceedings of the Combustion Institute, 33(2), 3057-3064.

    Contino, F., Lucchini, T., D'Errico, G., Duynslaegher, C.,
    Dias, V., & Jeanmart, H. (2012).
    Simulations of advanced combustion modes using detailed chemistry
    combined with tabulation and mechanism reduction techniques.
    SAE International Journal of Engines,
    5(2012-01-0145), 185-196.

    Contino, F., Foucher, F., Dagaut, P., Lucchini, T., D’Errico, G., &
    Mounaïm-Rousselle, C. (2013).
    Experimental and numerical analysis of nitric oxide effect on the
    ignition of iso-octane in a single cylinder HCCI engine.
    Combustion and Flame, 160(8), 1476-1483.

    Contino, F., Masurier, J. B., Foucher, F., Lucchini, T., D’Errico, G., &
    Dagaut, P. (2014).
    CFD simulations using the TDAC method to model iso-octane combustion
    for a large range of ozone seeding and temperature conditions
    in a single cylinder HCCI engine.
    Fuel, 137, 179-184.

Two tutorial cases are currently provided:
    + tutorials/combustion/chemFoam/ic8h18_TDAC
    + tutorials/combustion/reactingFoam/laminar/counterFlowFlame2D_GRI_TDAC

the first of which clearly demonstrates the advantage of dynamic
adaptive chemistry providing ~10x speedup,

the second demonstrates ISAT on the modest complex GRI mechanisms for
methane combustion, providing a speedup of ~4x.

More tutorials demonstrating TDAC on more complex mechanisms and cases
will be provided soon in addition to documentation for the operation and
settings of TDAC.  Also further updates to the TDAC code to improve
consistency and integration with the rest of OpenFOAM and further
optimize operation can be expected.

Original code providing all algorithms for chemistry reduction and
tabulation contributed by Francesco Contino, Tommaso Lucchini, Gianluca
D’Errico, Hervé Jeanmart, Nicolas Bourgeois and Stéphane Backaert.

Implementation updated, optimized and integrated into OpenFOAM-dev by
Henry G. Weller, CFD Direct Ltd with the help of Francesco Contino.
2016-07-17 15:13:54 +01:00
7e53be1560 Reacting solvers: Added check for the existence of the inert specie 2016-07-06 17:45:34 +01:00
288ead131d Descriptions of solvers corrected and made more consistent and more user-friendly 2016-06-09 18:59:40 +01:00
0dc0301da7 applications/solvers/lagrangian: Added -postProcess option
See also commit cc455173ff
2016-05-09 15:55:23 +01:00
3c053c2fe6 GeometricField: Renamed internalField() -> primitiveField() and dimensionedInternalField() -> internalField()
These new names are more consistent and logical because:

primitiveField():
primitiveFieldRef():
    Provides low-level access to the Field<Type> (primitive field)
    without dimension or mesh-consistency checking.  This should only be
    used in the low-level functions where dimensional consistency is
    ensured by careful programming and computational efficiency is
    paramount.

internalField():
internalFieldRef():
    Provides access to the DimensionedField<Type, GeoMesh> of values on
    the internal mesh-type for which the GeometricField is defined and
    supports dimension and checking and mesh-consistency checking.
2016-04-30 21:40:09 +01:00
ccd958a8f1 GeometricField::dimensionedInteralFieldRef() -> GeometricField::ref()
In order to simplify expressions involving dimensioned internal field it
is preferable to use a simpler access convention.  Given that
GeometricField is derived from DimensionedField it is simply a matter of
de-referencing this underlying type unlike the boundary field which is
peripheral information.  For consistency with the new convention in
"tmp"  "dimensionedInteralFieldRef()" has been renamed "ref()".
2016-04-30 18:43:51 +01:00
4a57b9be2e GeometricField: Rationalized and simplified access to the dimensioned internal field
Given that the type of the dimensioned internal field is encapsulated in
the GeometricField class the name need not include "Field"; the type
name is "Internal" so

volScalarField::DimensionedInternalField -> volScalarField::Internal

In addition to the ".dimensionedInternalField()" access function the
simpler "()" de-reference operator is also provided to greatly simplify
FV equation source term expressions which need not evaluate boundary
conditions.  To demonstrate this kEpsilon.C has been updated to use
dimensioned internal field expressions in the k and epsilon equation
source terms.
2016-04-27 21:32:45 +01:00
dc2951ca2f GeometricField::dimensionedInternalField() -> GeometricField::dimensionedInternalFieldRef()
See also commit 22f4ad32b1
2016-04-26 16:29:43 +01:00
fd9d801e2d GIT: Initial commit after latest foundation merge 2016-04-25 11:40:48 +01:00
77b03e2e0c Specialized dotInterpolate for the efficient calculation of flux fields
e.g. (fvc::interpolate(HbyA) & mesh.Sf()) -> fvc::flux(HbyA)

This removes the need to create an intermediate face-vector field when
computing fluxes which is more efficient, reduces the peak storage and
improved cache coherency in addition to providing a simpler and cleaner
API.
2016-04-06 20:20:53 +01:00
cd852be3da OpenFOAM: Updated all libraries, solvers and utilities to use the new const-safe tmp
The deprecated non-const tmp functionality is now on the compiler switch
NON_CONST_TMP which can be enabled by adding -DNON_CONST_TMP to EXE_INC
in the Make/options file.  However, it is recommended to upgrade all
code to the new safer tmp by using the '.ref()' member function rather
than the non-const '()' dereference operator when non-const access to
the temporary object is required.

Please report any problems on Mantis.

Henry G. Weller
CFD Direct.
2016-02-26 17:31:28 +00:00
fc2ce73723 Solvers: Added support for extrapolated pressure boundary conditions
The boundary conditions of HbyA are now constrained by the new "constrainHbyA"
function which applies the velocity boundary values for patches for which the
velocity cannot be modified by assignment and pressure extrapolation is
not specified via the new
"fixedFluxExtrapolatedPressureFvPatchScalarField".

The new function "constrainPressure" sets the pressure gradient
appropriately for "fixedFluxPressureFvPatchScalarField" and
"fixedFluxExtrapolatedPressureFvPatchScalarField" boundary conditions to
ensure the evaluated flux corresponds to the known velocity values at
the boundary.

The "fixedFluxPressureFvPatchScalarField" boundary condition operates
exactly as before, ensuring the correct flux at fixed-flux boundaries by
compensating for the body forces (gravity in particular) with the
pressure gradient.

The new "fixedFluxExtrapolatedPressureFvPatchScalarField" boundary
condition may be used for cases with or without body-forces to set the
pressure gradient to compensate not only for the body-force but also the
extrapolated "HbyA" which provides a second-order boundary condition for
pressure.  This is useful for a range a problems including impinging
flow, extrapolated inlet conditions with body-forces or for highly
viscous flows, pressure-induced separation etc.  To test this boundary
condition at walls in the motorBike tutorial case set

    lowerWall
    {
        type            fixedFluxExtrapolatedPressure;
    }

    motorBikeGroup
    {
        type            fixedFluxExtrapolatedPressure;
    }

Currently the new extrapolated pressure boundary condition is supported
for all incompressible and sub-sonic compressible solvers except those
providing implicit and tensorial porosity support.  The approach will be
extended to cover these solvers and options in the future.

Note: the extrapolated pressure boundary condition is experimental and
requires further testing to assess the range of applicability,
stability, accuracy etc.

Henry G. Weller
CFD Direct Ltd.
2016-02-13 17:48:26 +00:00
56fa7c0906 Update code to use the simpler C++11 template syntax removing spaces between closing ">"s 2016-01-10 22:41:16 +00:00
0e01c44129 GIT: Resolved conflict 2015-12-09 16:19:28 +00:00
abeef3313d STYLE: Updated header file documentation 2015-12-09 16:10:35 +00:00
8f1d043364 GIT: Resolved conflict 2015-12-09 09:32:38 +00:00
b594d73c65 ENH: Solvers - updated group documentation 2015-12-03 22:05:55 +00:00
736621b945 fvOptions: Reorganized and updated to simplify use in sub-models and maintenance
fvOptions are transferred to the database on construction using
fv::options::New which returns a reference.  The same function can be
use for construction and lookup so that fvOptions are now entirely
demand-driven.

The abstract base-classes for fvOptions now reside in the finiteVolume
library simplifying compilation and linkage.  The concrete
implementations of fvOptions are still in the single monolithic
fvOptions library but in the future this will be separated into smaller
libraries based on application area which may be linked at run-time in
the same manner as functionObjects.
2015-12-02 11:49:52 +00:00
3dfe844d9a applications/solvers: Added call to validate the turbulence model after construction
See also commit 52d83407f3
2015-12-01 10:25:38 +00:00
e2ef006b91 applications: Update ...ErrorIn -> ...ErrorInFunction
Avoids the clutter and maintenance effort associated with providing the
function signature string.
2015-11-10 17:53:31 +00:00
027909c737 dimensionedType: rationalize lookupOrDefault and lookupOrAddToDict
Now consistent with constructors.
2015-10-01 17:29:29 +01:00
0cf3ae4fda Compressible solver: correct initial Courant-number calculation
Resolves bug-report http://www.openfoam.org/mantisbt/view.php?id=1816
2015-08-07 15:55:46 +01:00
91e04d69c1 Resolve various unimportant warning messages from Gcc, Clang and Icpc 2015-07-19 11:31:49 +01:00
0fb6a01280 fluxRequired: Added setFluxRequired function to fvSchemes class
Added calls to setFluxRequired for p, p_rgh etc. in all solvers which
avoids the need to add fluxRequired entries in fvSchemes dictionaries.
2015-07-15 21:57:16 +01:00
d0f15d4e3c EEqn: Added rho*(U&g) source term
Generally this term has a VERY small effect on temperature, it is only
important for low-speed buoyancy-dominated flows.

Resolves bug-report http://www.openfoam.org/mantisbt/view.php?id=1755

See also http://cfd.direct/openfoam/energy-equation/
2015-07-01 10:53:37 +01:00
f92d657ab7 LTS: Formalize the naming of the rDeltaT and rSubDeltaT fields
Now the specification of the LTS time scheme is simply:

ddtSchemes
{
    default         localEuler;
}
2015-06-28 21:41:40 +01:00
af8185c0a6 reactingParcelFoam, coalChemistryFoam: Added LTS support
Replaces LTSReactingParcelFoam and LTSCoalChemistryFoam

    Select LTS via the ddtScheme:

        ddtSchemes
        {
            default         localEuler rDeltaT;
        }
2015-06-28 11:01:04 +01:00
5c4b7b1640 Rename setrDeltaT to setRDeltaT 2015-06-27 15:33:39 +01:00
a9fa0db19a Rename setrDeltaT to setRDeltaT 2015-06-27 15:33:04 +01:00
ca81d01ca8 LTSReactingParcelFoam: Minor improvement 2015-06-27 12:30:10 +01:00
8293227964 Rationalized the LTS solvers 2015-06-16 12:42:37 +01:00
c3ee2348a6 MRF: Separate MRF from fvOptions
fvOptions does not have the appropriate structure to support MRF as it
is based on option selection by user-specified fields whereas MRF MUST
be applied to all velocity fields in the particular solver.  A
consequence of the particular design choices in fvOptions made it
difficult to support MRF for multiphase and it is easier to support
frame-related and field related options separately.

Currently the MRF functionality provided supports only rotations but
the structure will be generalized to support other frame motions
including linear acceleration, SRF rotation and 6DoF which will be
run-time selectable.
2015-05-29 23:35:43 +01:00
7e2329c0b5 rhoEqn: Do not constrain; would violate conservation 2015-02-22 16:50:48 +00:00
eeedf5a051 Thermodyamics: Add support for multiphase
Pass the phase-name through hierarchy
Add phase-name to variables
Split basicCombustionMixture
Update applications accordingly
2015-02-18 21:21:22 +00:00
945c4c3d18 fluidThermo: Add compressibleTransportModel as base-class
Needed to create generic compressible turbulence model library
2015-02-17 17:25:26 +00:00