feat(linear-static-mitc4-shell): step 2 - shell-director-geometry

This commit is contained in:
KOKO\Mimi
2026-08-12 19:28:54 +09:00
parent 7002febe2e
commit c0a68ee964
7 changed files with 842 additions and 0 deletions
+44
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@@ -0,0 +1,44 @@
#pragma once
#include "fesa/core/status.hpp"
#include "fesa/model/model_types.hpp"
#include <array>
#include <cstddef>
#include <vector>
namespace fesa {
enum class ShellGeometryPointKind {
center,
stiffness,
tying,
recovery
};
struct ShellGeometryValidationPoint {
ShellGeometryPointKind kind;
std::size_t locationIndex;
std::array<double, 3> naturalCoordinates;
};
struct ShellElementGeometryData {
EntityIndex elementIndex;
std::array<double, 3> normalCandidate;
double surfaceAreaWeight;
};
struct ShellGeometry {
std::vector<ShellNodeInitialFrame> nodalFrames;
std::vector<ShellElementGeometryData> elementData;
};
const std::array<ShellGeometryValidationPoint, 17>&
shellGeometryValidationPoints() noexcept;
Result<ShellGeometry> preprocessShellGeometry(
const std::vector<Node>& nodes,
const std::vector<Mitc4ShellDefinition>& elements,
const std::vector<ShellSection>& sections);
} // namespace fesa
+1
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@@ -21,6 +21,7 @@ add_library(
math/sparse_matrix.cpp
math/vector.cpp
model/domain.cpp
model/shell_geometry.cpp
results/result_recovery.cpp
solvers/linear/mkl_pardiso_solver.cpp
)
+17
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@@ -1,5 +1,7 @@
#include "fesa/io/abaqus/domain_mapper.hpp"
#include "fesa/model/shell_geometry.hpp"
#include <algorithm>
#include <array>
#include <cerrno>
@@ -1768,6 +1770,21 @@ private:
if (failure_) {
return;
}
if (!definition_.shellElements.empty()) {
auto geometry = preprocessShellGeometry(
definition_.nodes,
definition_.shellElements,
definition_.shellSections);
if (!geometry.hasValue()) {
const auto& status = geometry.status();
failure_ = MappingFailure{
status.failureCategory().value_or(FailureCategory::model),
status.diagnostics().front()};
return;
}
definition_.shellNodeInitialFrames =
std::move(geometry.value().nodalFrames);
}
expandAssemblySets();
if (failure_) {
return;
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@@ -0,0 +1,491 @@
#include "fesa/model/shell_geometry.hpp"
#include <algorithm>
#include <cmath>
#include <tuple>
#include <utility>
namespace fesa {
namespace {
using Vector3 = std::array<double, 3>;
constexpr std::array<double, 4> kXiSigns{-1.0, 1.0, 1.0, -1.0};
constexpr std::array<double, 4> kEtaSigns{-1.0, -1.0, 1.0, 1.0};
struct ShapeData {
std::array<double, 4> values;
std::array<double, 4> xiDerivatives;
std::array<double, 4> etaDerivatives;
};
struct ElementWork {
std::array<Vector3, 4> coordinates;
Vector3 normal;
double areaWeight;
};
Vector3 add(const Vector3& left, const Vector3& right) {
return {
left[0] + right[0], left[1] + right[1], left[2] + right[2]};
}
Vector3 subtract(const Vector3& left, const Vector3& right) {
return {
left[0] - right[0], left[1] - right[1], left[2] - right[2]};
}
Vector3 scale(double factor, const Vector3& value) {
return {factor * value[0], factor * value[1], factor * value[2]};
}
double dot(const Vector3& left, const Vector3& right) {
return left[0] * right[0] + left[1] * right[1] + left[2] * right[2];
}
Vector3 cross(const Vector3& left, const Vector3& right) {
return {
left[1] * right[2] - left[2] * right[1],
left[2] * right[0] - left[0] * right[2],
left[0] * right[1] - left[1] * right[0]};
}
double norm(const Vector3& value) {
return std::hypot(value[0], value[1], value[2]);
}
bool isFinite(const Vector3& value) {
return std::all_of(value.begin(), value.end(), [](double component) {
return std::isfinite(component);
});
}
ShapeData shapeData(double xi, double eta) {
ShapeData data{};
for (std::size_t node = 0U; node < 4U; ++node) {
data.values[node] =
0.25 * (1.0 + kXiSigns[node] * xi) *
(1.0 + kEtaSigns[node] * eta);
data.xiDerivatives[node] =
0.25 * kXiSigns[node] * (1.0 + kEtaSigns[node] * eta);
data.etaDerivatives[node] =
0.25 * kEtaSigns[node] * (1.0 + kXiSigns[node] * xi);
}
return data;
}
Vector3 weightedSum(
const std::array<double, 4>& weights,
const std::array<Vector3, 4>& values) {
Vector3 result{};
for (std::size_t node = 0U; node < values.size(); ++node) {
result = add(result, scale(weights[node], values[node]));
}
return result;
}
Vector3 derivativeSum(
const std::array<double, 4>& derivatives,
const std::array<Vector3, 4>& coordinates) {
// Shape derivatives sum to zero, so translating by node 1 improves the
// numerical cancellation without changing the covariant tangent.
std::array<Vector3, 4> relative{};
for (std::size_t node = 0U; node < coordinates.size(); ++node) {
relative[node] = subtract(coordinates[node], coordinates[0]);
}
return weightedSum(derivatives, relative);
}
Result<ShellGeometry> geometryFailure(
std::string code,
const SourceLocation& location,
std::string keyword,
std::string identity,
std::string message) {
return Result<ShellGeometry>::failure(Status::failure(
FailureCategory::model,
{{Severity::error,
std::move(code),
location,
std::move(keyword),
std::move(identity),
std::move(message)}}));
}
bool sameCoordinates(const Vector3& left, const Vector3& right) {
return left == right;
}
double orientation(
const Vector3& first,
const Vector3& second,
const Vector3& third,
const Vector3& normal) {
return dot(cross(subtract(second, first), subtract(third, first)), normal);
}
bool hasOppositeSigns(double first, double second) {
return (first < 0.0 && second > 0.0) ||
(first > 0.0 && second < 0.0);
}
bool segmentsProperlyIntersect(
const Vector3& firstStart,
const Vector3& firstEnd,
const Vector3& secondStart,
const Vector3& secondEnd,
const Vector3& normal) {
const double firstSideStart =
orientation(firstStart, firstEnd, secondStart, normal);
const double firstSideEnd =
orientation(firstStart, firstEnd, secondEnd, normal);
const double secondSideStart =
orientation(secondStart, secondEnd, firstStart, normal);
const double secondSideEnd =
orientation(secondStart, secondEnd, firstEnd, normal);
return hasOppositeSigns(firstSideStart, firstSideEnd) &&
hasOppositeSigns(secondSideStart, secondSideEnd);
}
bool sourceIdentityLess(
const Mitc4ShellDefinition& left,
std::size_t leftIndex,
const Mitc4ShellDefinition& right,
std::size_t rightIndex) {
return std::tie(
left.sourceId.instanceName,
left.sourceId.sourceLabel,
left.sourceId.sourceLabelText,
leftIndex) <
std::tie(
right.sourceId.instanceName,
right.sourceId.sourceLabel,
right.sourceId.sourceLabelText,
rightIndex);
}
} // namespace
const std::array<ShellGeometryValidationPoint, 17>&
shellGeometryValidationPoints() noexcept {
static const std::array<ShellGeometryValidationPoint, 17> points = [] {
const double g = 1.0 / std::sqrt(3.0);
return std::array<ShellGeometryValidationPoint, 17>{
ShellGeometryValidationPoint{
ShellGeometryPointKind::center, 0U, {0.0, 0.0, 0.0}},
{ShellGeometryPointKind::stiffness, 0U, {-g, -g, -g}},
{ShellGeometryPointKind::stiffness, 1U, {-g, -g, g}},
{ShellGeometryPointKind::stiffness, 2U, {g, -g, -g}},
{ShellGeometryPointKind::stiffness, 3U, {g, -g, g}},
{ShellGeometryPointKind::stiffness, 4U, {g, g, -g}},
{ShellGeometryPointKind::stiffness, 5U, {g, g, g}},
{ShellGeometryPointKind::stiffness, 6U, {-g, g, -g}},
{ShellGeometryPointKind::stiffness, 7U, {-g, g, g}},
{ShellGeometryPointKind::tying, 0U, {0.0, -1.0, 0.0}},
{ShellGeometryPointKind::tying, 1U, {0.0, 1.0, 0.0}},
{ShellGeometryPointKind::tying, 2U, {-1.0, 0.0, 0.0}},
{ShellGeometryPointKind::tying, 3U, {1.0, 0.0, 0.0}},
{ShellGeometryPointKind::recovery, 0U, {-g, -g, 0.0}},
{ShellGeometryPointKind::recovery, 1U, {g, -g, 0.0}},
{ShellGeometryPointKind::recovery, 2U, {g, g, 0.0}},
{ShellGeometryPointKind::recovery, 3U, {-g, g, 0.0}}};
}();
return points;
}
Result<ShellGeometry> preprocessShellGeometry(
const std::vector<Node>& nodes,
const std::vector<Mitc4ShellDefinition>& elements,
const std::vector<ShellSection>& sections) {
ShellGeometry geometry;
geometry.elementData.reserve(elements.size());
std::vector<ElementWork> work;
work.reserve(elements.size());
const double g = 1.0 / std::sqrt(3.0);
const std::array<Vector3, 4> surfaceGaussPoints{
Vector3{-g, -g, 0.0},
Vector3{g, -g, 0.0},
Vector3{g, g, 0.0},
Vector3{-g, g, 0.0}};
for (std::size_t elementIndex = 0U;
elementIndex < elements.size();
++elementIndex) {
const auto& element = elements[elementIndex];
ElementWork current{};
for (std::size_t localNode = 0U; localNode < 4U; ++localNode) {
if (element.nodeIndices[localNode] >= nodes.size()) {
return geometryFailure(
"invalid-shell-geometry", element.location, "ELEMENT",
element.sourceId.sourceLabelText,
"Shell geometry references an unavailable internal node.");
}
current.coordinates[localNode] =
nodes[element.nodeIndices[localNode]].coordinates;
if (!isFinite(current.coordinates[localNode])) {
return geometryFailure(
"invalid-shell-geometry", element.location, "ELEMENT",
element.sourceId.sourceLabelText,
"Shell geometry contains a nonfinite source coordinate.");
}
}
for (std::size_t first = 0U; first < 4U; ++first) {
for (std::size_t second = first + 1U; second < 4U; ++second) {
if (element.nodeIndices[first] == element.nodeIndices[second] ||
sameCoordinates(
current.coordinates[first], current.coordinates[second])) {
return geometryFailure(
"invalid-shell-geometry", element.location, "ELEMENT",
element.sourceId.sourceLabelText,
"Shell geometry contains duplicate nodes.");
}
}
}
const ShapeData center = shapeData(0.0, 0.0);
const Vector3 centerXi =
derivativeSum(center.xiDerivatives, current.coordinates);
const Vector3 centerEta =
derivativeSum(center.etaDerivatives, current.coordinates);
const Vector3 centerCross = cross(centerXi, centerEta);
const double centerMeasure = norm(centerCross);
if (!isFinite(centerXi) || !isFinite(centerEta) ||
!isFinite(centerCross) || !std::isfinite(centerMeasure) ||
!(centerMeasure > 0.0)) {
return geometryFailure(
"invalid-shell-geometry", element.location, "ELEMENT",
element.sourceId.sourceLabelText,
"Shell center has no finite nonzero normal candidate.");
}
current.normal = scale(1.0 / centerMeasure, centerCross);
if (segmentsProperlyIntersect(
current.coordinates[0], current.coordinates[1],
current.coordinates[2], current.coordinates[3], current.normal) ||
segmentsProperlyIntersect(
current.coordinates[1], current.coordinates[2],
current.coordinates[3], current.coordinates[0], current.normal)) {
return geometryFailure(
"invalid-shell-geometry", element.location, "ELEMENT",
element.sourceId.sourceLabelText,
"Shell boundary is self-intersecting in the center-normal projection.");
}
double areaWeight = 0.0;
for (const auto& point : surfaceGaussPoints) {
const ShapeData shape = shapeData(point[0], point[1]);
const Vector3 tangentXi =
derivativeSum(shape.xiDerivatives, current.coordinates);
const Vector3 tangentEta =
derivativeSum(shape.etaDerivatives, current.coordinates);
const Vector3 areaVector = cross(tangentXi, tangentEta);
const double measure = norm(areaVector);
if (!isFinite(tangentXi) || !isFinite(tangentEta) ||
!isFinite(areaVector) || !std::isfinite(measure) ||
!(measure > 0.0) || !(dot(areaVector, current.normal) > 0.0)) {
return geometryFailure(
"invalid-shell-geometry", element.location, "ELEMENT",
element.sourceId.sourceLabelText,
"Shell surface is zero-area or locally reversed at a required point.");
}
areaWeight += measure;
}
if (!std::isfinite(areaWeight) || !(areaWeight > 0.0)) {
return geometryFailure(
"invalid-shell-geometry", element.location, "ELEMENT",
element.sourceId.sourceLabelText,
"Shell surface-area weight is nonfinite or zero.");
}
current.areaWeight = areaWeight;
work.push_back(current);
geometry.elementData.push_back({
static_cast<EntityIndex>(elementIndex), current.normal, areaWeight});
}
std::vector<std::vector<std::size_t>> incident(nodes.size());
for (std::size_t elementIndex = 0U;
elementIndex < elements.size();
++elementIndex) {
for (const EntityIndex nodeIndex : elements[elementIndex].nodeIndices) {
incident[nodeIndex].push_back(elementIndex);
}
}
geometry.nodalFrames.reserve(nodes.size());
std::vector<const ShellNodeInitialFrame*> frameByNode(nodes.size(), nullptr);
for (std::size_t nodeIndex = 0U; nodeIndex < incident.size(); ++nodeIndex) {
auto& nodeIncident = incident[nodeIndex];
if (nodeIncident.empty()) {
continue;
}
std::sort(
nodeIncident.begin(), nodeIncident.end(),
[&elements](std::size_t left, std::size_t right) {
return sourceIdentityLess(
elements[left], left, elements[right], right);
});
for (std::size_t first = 0U; first < nodeIncident.size(); ++first) {
for (std::size_t second = first + 1U;
second < nodeIncident.size();
++second) {
const double pairDot = dot(
work[nodeIncident[first]].normal,
work[nodeIncident[second]].normal);
if (!std::isfinite(pairDot) || !(pairDot > 0.0)) {
return geometryFailure(
"opposed-incident-normal", nodes[nodeIndex].location,
"NODE", nodes[nodeIndex].sourceId.sourceLabelText,
"Incident shell normal candidates do not share a positive orientation hemisphere.");
}
}
}
double maximumWeight = 0.0;
for (const std::size_t elementIndex : nodeIncident) {
maximumWeight = std::max(maximumWeight, work[elementIndex].areaWeight);
}
Vector3 directorSum{};
for (const std::size_t elementIndex : nodeIncident) {
directorSum = add(
directorSum,
scale(
work[elementIndex].areaWeight / maximumWeight,
work[elementIndex].normal));
}
const double directorNorm = norm(directorSum);
if (!isFinite(directorSum) || !std::isfinite(directorNorm) ||
!(directorNorm > 0.0)) {
return geometryFailure(
"invalid-shell-director", nodes[nodeIndex].location, "NODE",
nodes[nodeIndex].sourceId.sourceLabelText,
"Area-weighted shell director is nonfinite or zero.");
}
const Vector3 director = scale(1.0 / directorNorm, directorSum);
const std::array<Vector3, 3> globalAxes{
Vector3{1.0, 0.0, 0.0},
Vector3{0.0, 1.0, 0.0},
Vector3{0.0, 0.0, 1.0}};
std::size_t selectedAxis = 0U;
double selectedAlignment = std::abs(dot(globalAxes[0], director));
for (std::size_t axis = 1U; axis < globalAxes.size(); ++axis) {
const double alignment = std::abs(dot(globalAxes[axis], director));
if (alignment < selectedAlignment) {
selectedAlignment = alignment;
selectedAxis = axis;
}
}
const Vector3 tangentCandidate = subtract(
globalAxes[selectedAxis],
scale(dot(globalAxes[selectedAxis], director), director));
const double tangentNorm = norm(tangentCandidate);
if (!isFinite(tangentCandidate) || !std::isfinite(tangentNorm) ||
!(tangentNorm > 0.0)) {
return geometryFailure(
"invalid-shell-director", nodes[nodeIndex].location, "NODE",
nodes[nodeIndex].sourceId.sourceLabelText,
"Least-aligned-axis tangent frame construction failed.");
}
const Vector3 tangentA = scale(1.0 / tangentNorm, tangentCandidate);
const Vector3 tangentB = cross(director, tangentA);
if (!isFinite(tangentB) || !(norm(tangentB) > 0.0)) {
return geometryFailure(
"invalid-shell-director", nodes[nodeIndex].location, "NODE",
nodes[nodeIndex].sourceId.sourceLabelText,
"Right-handed shell tangent frame construction failed.");
}
geometry.nodalFrames.push_back({
static_cast<EntityIndex>(nodeIndex), director, tangentA, tangentB});
}
// Build lookup only after frame storage is complete so later code never
// observes a pointer invalidated by vector growth.
for (const auto& frame : geometry.nodalFrames) {
frameByNode[frame.nodeIndex] = &frame;
}
for (std::size_t elementIndex = 0U;
elementIndex < elements.size();
++elementIndex) {
const auto& element = elements[elementIndex];
if (element.sectionIndex >= sections.size()) {
return geometryFailure(
"invalid-shell-jacobian", element.location, "ELEMENT",
element.sourceId.sourceLabelText,
"Shell geometry cannot resolve its thickness for Jacobian validation.");
}
const double thickness = sections[element.sectionIndex].thickness;
std::array<Vector3, 4> directors{};
for (std::size_t localNode = 0U; localNode < 4U; ++localNode) {
const auto* frame = frameByNode[element.nodeIndices[localNode]];
if (frame == nullptr) {
return geometryFailure(
"invalid-shell-director", element.location, "ELEMENT",
element.sourceId.sourceLabelText,
"Shell element is missing a nodal director.");
}
directors[localNode] = frame->director;
}
for (const auto& point : shellGeometryValidationPoints()) {
const double xi = point.naturalCoordinates[0];
const double eta = point.naturalCoordinates[1];
const double zeta = point.naturalCoordinates[2];
const ShapeData shape = shapeData(xi, eta);
const Vector3 midsurfaceXi =
derivativeSum(shape.xiDerivatives, work[elementIndex].coordinates);
const Vector3 midsurfaceEta =
derivativeSum(shape.etaDerivatives, work[elementIndex].coordinates);
const Vector3 areaVector = cross(midsurfaceXi, midsurfaceEta);
const double surfaceMeasure = norm(areaVector);
if (!isFinite(midsurfaceXi) || !isFinite(midsurfaceEta) ||
!isFinite(areaVector) || !std::isfinite(surfaceMeasure) ||
!(surfaceMeasure > 0.0) ||
!(dot(areaVector, work[elementIndex].normal) > 0.0)) {
return geometryFailure(
"invalid-shell-geometry", element.location, "ELEMENT",
element.sourceId.sourceLabelText,
"Shell surface basis is nonfinite, zero, or reversed at a required point.");
}
const Vector3 directorXi =
weightedSum(shape.xiDerivatives, directors);
const Vector3 directorEta =
weightedSum(shape.etaDerivatives, directors);
const Vector3 directorValue = weightedSum(shape.values, directors);
const Vector3 covariantXi = add(
midsurfaceXi, scale(0.5 * thickness * zeta, directorXi));
const Vector3 covariantEta = add(
midsurfaceEta, scale(0.5 * thickness * zeta, directorEta));
const Vector3 covariantZeta = scale(0.5 * thickness, directorValue);
const double jacobian =
dot(covariantXi, cross(covariantEta, covariantZeta));
if (!isFinite(covariantXi) || !isFinite(covariantEta) ||
!isFinite(covariantZeta) || !std::isfinite(jacobian) ||
!(jacobian > 0.0)) {
return geometryFailure(
"invalid-shell-jacobian", element.location, "ELEMENT",
element.sourceId.sourceLabelText,
"Shell Jacobian is nonfinite or nonpositive at a required point.");
}
const Vector3 reciprocalXi =
scale(1.0 / jacobian, cross(covariantEta, covariantZeta));
const Vector3 reciprocalEta =
scale(1.0 / jacobian, cross(covariantZeta, covariantXi));
const Vector3 reciprocalZeta =
scale(1.0 / jacobian, cross(covariantXi, covariantEta));
if (!isFinite(reciprocalXi) || !isFinite(reciprocalEta) ||
!isFinite(reciprocalZeta)) {
return geometryFailure(
"invalid-shell-jacobian", element.location, "ELEMENT",
element.sourceId.sourceLabelText,
"Shell reciprocal basis is nonfinite at a required point.");
}
}
}
return Result<ShellGeometry>::success(std::move(geometry));
}
} // namespace fesa
+1
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@@ -23,6 +23,7 @@ add_executable(
unit/io/hdf5/hdf5_results_writer_test.cpp
unit/model/domain_test.cpp
unit/model/model_types_test.cpp
unit/model/shell_geometry_test.cpp
unit/results/result_records_test.cpp
unit/results/result_recovery_test.cpp
unit/results/results_writer_test.cpp
@@ -517,6 +517,18 @@ TEST(InpDomainMapping, MapsS4AndS4rThroughOneMitc4Identity) {
EXPECT_DOUBLE_EQ(domain.shellSections()[1].thickness, 0.2);
EXPECT_EQ(domain.shellSections()[1].materialIndex, 1U);
ASSERT_EQ(domain.shellNodeInitialFrames().size(), domain.nodes().size());
EXPECT_EQ(domain.shellNodeInitialFrames()[0].nodeIndex, 0U);
EXPECT_EQ(
domain.shellNodeInitialFrames()[0].director,
(std::array<double, 3>{0.0, 0.0, 1.0}));
EXPECT_EQ(
domain.shellNodeInitialFrames()[0].tangentA,
(std::array<double, 3>{1.0, 0.0, 0.0}));
EXPECT_EQ(
domain.shellNodeInitialFrames()[0].tangentB,
(std::array<double, 3>{0.0, 1.0, 0.0}));
ASSERT_EQ(domain.steps().size(), 1U);
ASSERT_EQ(domain.steps()[0].boundaries.size(), 1U);
EXPECT_EQ(domain.steps()[0].boundaries[0].lastDof, 6);
+276
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@@ -0,0 +1,276 @@
#include "fesa/model/shell_geometry.hpp"
#include <gtest/gtest.h>
#include <algorithm>
#include <array>
#include <cmath>
#include <cstddef>
#include <limits>
#include <string>
#include <vector>
namespace {
using Vector3 = std::array<double, 3>;
fesa::Node node(fesa::EntityIndex label, Vector3 coordinates) {
return {
{"Shell-Instance", static_cast<std::int64_t>(label),
std::to_string(label)},
coordinates,
{"shell-geometry.inp", static_cast<std::size_t>(label + 1U)}};
}
fesa::Mitc4ShellDefinition element(
fesa::EntityIndex label,
std::array<fesa::EntityIndex, 4> nodeIndices) {
return {
{"Shell-Instance", static_cast<std::int64_t>(label),
std::to_string(label)},
fesa::ShellSourceElementType::s4,
nodeIndices,
0U,
0U,
{"shell-geometry.inp", static_cast<std::size_t>(100U + label)}};
}
std::vector<fesa::ShellSection> sections(double thickness = 0.2) {
return {{"Section", thickness, 0U, {"shell-geometry.inp", 90U}}};
}
double dot(const Vector3& left, const Vector3& right) {
return left[0] * right[0] + left[1] * right[1] + left[2] * right[2];
}
Vector3 cross(const Vector3& left, const Vector3& right) {
return {
left[1] * right[2] - left[2] * right[1],
left[2] * right[0] - left[0] * right[2],
left[0] * right[1] - left[1] * right[0]};
}
double norm(const Vector3& value) {
return std::sqrt(dot(value, value));
}
void expectVectorNear(
const Vector3& actual,
const Vector3& expected,
double tolerance = 1.0e-12) {
for (std::size_t component = 0U; component < actual.size(); ++component) {
EXPECT_NEAR(actual[component], expected[component], tolerance);
}
}
void expectRightHandedFrame(const fesa::ShellNodeInitialFrame& frame) {
EXPECT_NEAR(norm(frame.director), 1.0, 1.0e-12);
EXPECT_NEAR(norm(frame.tangentA), 1.0, 1.0e-12);
EXPECT_NEAR(norm(frame.tangentB), 1.0, 1.0e-12);
EXPECT_NEAR(dot(frame.director, frame.tangentA), 0.0, 1.0e-12);
EXPECT_NEAR(dot(frame.director, frame.tangentB), 0.0, 1.0e-12);
EXPECT_NEAR(dot(frame.tangentA, frame.tangentB), 0.0, 1.0e-12);
expectVectorNear(cross(frame.tangentA, frame.tangentB), frame.director);
}
const fesa::ShellNodeInitialFrame& frameFor(
const fesa::ShellGeometry& geometry,
fesa::EntityIndex nodeIndex) {
const auto found = std::find_if(
geometry.nodalFrames.begin(),
geometry.nodalFrames.end(),
[nodeIndex](const fesa::ShellNodeInitialFrame& frame) {
return frame.nodeIndex == nodeIndex;
});
EXPECT_NE(found, geometry.nodalFrames.end());
return *found;
}
void expectFailureCode(
const fesa::Result<fesa::ShellGeometry>& result,
const std::string& code) {
ASSERT_FALSE(result.hasValue());
EXPECT_EQ(result.status().failureCategory(), fesa::FailureCategory::model);
ASSERT_EQ(result.status().diagnostics().size(), 1U);
EXPECT_EQ(result.status().diagnostics()[0].code, code);
}
} // namespace
// MITC4-GEO-001
TEST(Mitc4Geometry, BuildsDeterministicFramesForPlanarRotatedAndWarpedElements) {
const std::vector<fesa::Node> planarNodes{
node(0U, {0.0, 0.0, 0.0}),
node(1U, {1.0, 0.0, 0.0}),
node(2U, {1.0, 1.0, 0.0}),
node(3U, {0.0, 1.0, 0.0})};
auto planar = fesa::preprocessShellGeometry(
planarNodes, {element(10U, {0U, 1U, 2U, 3U})}, sections());
ASSERT_TRUE(planar.hasValue());
ASSERT_EQ(planar.value().elementData.size(), 1U);
expectVectorNear(planar.value().elementData[0].normalCandidate, {0.0, 0.0, 1.0});
EXPECT_NEAR(planar.value().elementData[0].surfaceAreaWeight, 1.0, 1.0e-12);
ASSERT_EQ(planar.value().nodalFrames.size(), 4U);
for (const auto& frame : planar.value().nodalFrames) {
expectVectorNear(frame.director, {0.0, 0.0, 1.0});
expectVectorNear(frame.tangentA, {1.0, 0.0, 0.0});
expectVectorNear(frame.tangentB, {0.0, 1.0, 0.0});
expectRightHandedFrame(frame);
}
const std::vector<fesa::Node> rotatedNodes{
node(0U, {0.0, 0.0, 0.0}),
node(1U, {0.0, 1.0, 0.0}),
node(2U, {0.0, 1.0, 1.0}),
node(3U, {0.0, 0.0, 1.0})};
auto rotated = fesa::preprocessShellGeometry(
rotatedNodes, {element(11U, {0U, 1U, 2U, 3U})}, sections());
ASSERT_TRUE(rotated.hasValue());
const auto& rotatedFrame = frameFor(rotated.value(), 0U);
expectVectorNear(rotatedFrame.director, {1.0, 0.0, 0.0});
expectVectorNear(rotatedFrame.tangentA, {0.0, 1.0, 0.0});
expectVectorNear(rotatedFrame.tangentB, {0.0, 0.0, 1.0});
expectRightHandedFrame(rotatedFrame);
const std::vector<fesa::Node> warpedNodes{
node(0U, {0.0, 0.0, 0.0}),
node(1U, {2.0, 0.0, 0.0}),
node(2U, {2.0, 1.0, 0.2}),
node(3U, {0.0, 1.0, 0.0})};
auto warped = fesa::preprocessShellGeometry(
warpedNodes, {element(12U, {0U, 1U, 2U, 3U})}, sections());
ASSERT_TRUE(warped.hasValue());
EXPECT_GT(warped.value().elementData[0].surfaceAreaWeight, 2.0);
for (const auto& frame : warped.value().nodalFrames) {
expectRightHandedFrame(frame);
}
}
// MITC4-GEO-002
TEST(Mitc4Geometry, AreaWeightsSharedDirectorsInStableSourceIdentityOrder) {
const std::vector<fesa::Node> nodes{
node(0U, {0.0, 0.0, 0.0}),
node(1U, {1.0, 0.0, 0.0}),
node(2U, {1.0, 1.0, 0.0}),
node(3U, {0.0, 1.0, 0.0}),
node(4U, {2.0, 0.0, 1.0}),
node(5U, {2.0, 1.0, 1.0})};
const auto flat = element(10U, {0U, 1U, 2U, 3U});
const auto tilted = element(20U, {1U, 4U, 5U, 2U});
auto first = fesa::preprocessShellGeometry(
nodes, {tilted, flat}, sections());
auto second = fesa::preprocessShellGeometry(
nodes, {flat, tilted}, sections());
ASSERT_TRUE(first.hasValue());
ASSERT_TRUE(second.hasValue());
const Vector3 expectedSharedDirector{
-1.0 / std::sqrt(5.0), 0.0, 2.0 / std::sqrt(5.0)};
for (const auto sharedNode : {1U, 2U}) {
const auto& firstFrame = frameFor(first.value(), sharedNode);
const auto& secondFrame = frameFor(second.value(), sharedNode);
expectVectorNear(firstFrame.director, expectedSharedDirector);
expectVectorNear(firstFrame.director, secondFrame.director, 0.0);
expectVectorNear(firstFrame.tangentA, {0.0, 1.0, 0.0});
expectRightHandedFrame(firstFrame);
}
}
// MITC4-GEO-003
TEST(Mitc4Geometry, RejectsInvalidSurfaceJacobianAndIncidentOrientationCases) {
const auto validElement = element(10U, {0U, 1U, 2U, 3U});
expectFailureCode(
fesa::preprocessShellGeometry(
{node(0U, {0.0, 0.0, 0.0}), node(1U, {0.0, 0.0, 0.0}),
node(2U, {1.0, 1.0, 0.0}), node(3U, {0.0, 1.0, 0.0})},
{validElement}, sections()),
"invalid-shell-geometry");
expectFailureCode(
fesa::preprocessShellGeometry(
{node(0U, {0.0, 0.0, 0.0}), node(1U, {1.0, 1.0, 0.0}),
node(2U, {0.0, 1.0, 0.0}), node(3U, {1.0, 0.0, 0.0})},
{validElement}, sections()),
"invalid-shell-geometry");
expectFailureCode(
fesa::preprocessShellGeometry(
{node(0U, {0.0, 0.0, 0.0}), node(1U, {1.0, 0.0, 0.0}),
node(2U, {2.0, 0.0, 0.0}), node(3U, {3.0, 0.0, 0.0})},
{validElement}, sections()),
"invalid-shell-geometry");
expectFailureCode(
fesa::preprocessShellGeometry(
{node(0U, {0.0, 0.0, 0.0}), node(1U, {1.0, 0.0, 0.0}),
node(2U, {0.05, 0.05, 0.0}), node(3U, {0.0, 1.0, 0.0})},
{validElement}, sections()),
"invalid-shell-geometry");
expectFailureCode(
fesa::preprocessShellGeometry(
{node(0U, {0.0, 0.0, 0.0}),
node(1U, {1.0, 0.0, 0.0}),
node(2U, {1.0, std::numeric_limits<double>::quiet_NaN(), 0.0}),
node(3U, {0.0, 1.0, 0.0})},
{validElement}, sections()),
"invalid-shell-geometry");
expectFailureCode(
fesa::preprocessShellGeometry(
{node(0U, {0.0, 0.0, 0.0}), node(1U, {1.0, 0.0, 0.0}),
node(2U, {1.0, 1.0, 0.0}), node(3U, {0.0, 1.0, 0.0})},
{validElement}, sections(0.0)),
"invalid-shell-jacobian");
const std::vector<fesa::Node> opposedNodes{
node(0U, {0.0, 0.0, 0.0}), node(1U, {1.0, 0.0, 0.0}),
node(2U, {1.0, 1.0, 0.0}), node(3U, {0.0, 1.0, 0.0})};
expectFailureCode(
fesa::preprocessShellGeometry(
opposedNodes,
{element(10U, {0U, 1U, 2U, 3U}),
element(20U, {0U, 3U, 2U, 1U})},
sections()),
"opposed-incident-normal");
}
// MITC4-GEO-004
TEST(Mitc4Geometry, ExposesTheCompleteRequiredValidationPointInventory) {
const auto& points = fesa::shellGeometryValidationPoints();
ASSERT_EQ(points.size(), 17U);
EXPECT_EQ(
std::count_if(points.begin(), points.end(), [](const auto& point) {
return point.kind == fesa::ShellGeometryPointKind::center;
}),
1);
EXPECT_EQ(
std::count_if(points.begin(), points.end(), [](const auto& point) {
return point.kind == fesa::ShellGeometryPointKind::stiffness;
}),
8);
EXPECT_EQ(
std::count_if(points.begin(), points.end(), [](const auto& point) {
return point.kind == fesa::ShellGeometryPointKind::tying;
}),
4);
EXPECT_EQ(
std::count_if(points.begin(), points.end(), [](const auto& point) {
return point.kind == fesa::ShellGeometryPointKind::recovery;
}),
4);
EXPECT_EQ(points.front().naturalCoordinates, (Vector3{0.0, 0.0, 0.0}));
const double gauss = 1.0 / std::sqrt(3.0);
EXPECT_EQ(points[1].naturalCoordinates, (Vector3{-gauss, -gauss, -gauss}));
EXPECT_EQ(points[8].naturalCoordinates, (Vector3{-gauss, gauss, gauss}));
EXPECT_EQ(points[9].naturalCoordinates, (Vector3{0.0, -1.0, 0.0}));
EXPECT_EQ(points[12].naturalCoordinates, (Vector3{1.0, 0.0, 0.0}));
EXPECT_EQ(points[13].naturalCoordinates, (Vector3{-gauss, -gauss, 0.0}));
EXPECT_EQ(points[16].naturalCoordinates, (Vector3{-gauss, gauss, 0.0}));
}