mirror of
https://github.com/JuliaFEM/JuliaFEM.jl.git
synced 2026-08-05 20:11:31 +00:00
test(validation): add cantilever materials showcase
This commit is contained in:
@@ -0,0 +1,155 @@
|
||||
# This file is a part of JuliaFEM.
|
||||
# License is MIT: see https://github.com/JuliaFEM/JuliaFEM.jl/blob/master/LICENSE.md
|
||||
|
||||
# # Cantilever beam: elasticity materials + heat (showcase / regression)
|
||||
#
|
||||
# This script is a normal `Test` module (run via `test/validation/runtests.jl`).
|
||||
# It is also written in [Literate.jl](https://github.com/JuliaDocs/Literate.jl)
|
||||
# style: lines starting with `# #` become markdown headings if you pass this
|
||||
# file through `Literate.markdown` from the `docs` environment.
|
||||
#
|
||||
# Goals:
|
||||
#
|
||||
# 1. One small structured Hex8 cantilever (`create_cantilever_mesh`): fixed
|
||||
# at `:xmin`, transverse load on `:xmax`.
|
||||
# 2. Every **solid** constitutive model used by `ContinuumKernel` today:
|
||||
# `LinearElastic`, `NeoHookean`, `PerfectPlasticity` — same mesh and BCs.
|
||||
# 3. `HeatConductivity` with `HeatKernel` on the **same geometry** (scalar
|
||||
# temperature at vertices), because there is no meaningful “cantilever”
|
||||
# for Fourier’s equation — only the same assembly pipeline.
|
||||
# 4. After warmup, `assemble!(cache, asm, kernel, mesh)` must allocate
|
||||
# **0 bytes** (same contract as `test/assemblers/test_dof_based_zero_alloc.jl`).
|
||||
#
|
||||
# The sparse **solve** (`K_ff \\ f_f`) is not part of the zero-allocation
|
||||
# contract; only the DOF-based assembly hot path is.
|
||||
|
||||
using Test
|
||||
using JuliaFEM
|
||||
using JuliaFEM: ContinuumKernel, ContinuumFormulation, FullThreeD, Displacement
|
||||
using JuliaFEM: HeatKernel, HeatConductivity, Temperature
|
||||
using JuliaFEM: DOFBasedCOOAssembler, DOFBasedCOOCache, assemble!, extract_system
|
||||
using JuliaFEM: create_cantilever_mesh, create_elements!, get_nodes_in_set, get_node_dofs
|
||||
using JuliaFEM: @DOFSet, DOF, Vertex, Hex8
|
||||
using LinearAlgebra
|
||||
using SparseArrays
|
||||
|
||||
# ## Shared mesh and BC helpers
|
||||
|
||||
function _small_cantilever_mesh()
|
||||
return create_cantilever_mesh(Hex8;
|
||||
length = 5.0,
|
||||
width = 1.0,
|
||||
height = 1.0,
|
||||
nx = 4,
|
||||
ny = 1,
|
||||
nz = 1,
|
||||
)
|
||||
end
|
||||
|
||||
function _collect_fixed_dofs(handler, mesh)
|
||||
fixed = Int[]
|
||||
for nid_raw in get_nodes_in_set(mesh, :xmin)
|
||||
nid = Int(nid_raw)
|
||||
append!(fixed, get_node_dofs(handler, nid))
|
||||
end
|
||||
sort!(unique!(fixed))
|
||||
return fixed
|
||||
end
|
||||
|
||||
function _apply_tip_shear!(f, handler, mesh; Fz::Float64)
|
||||
loaded = get_nodes_in_set(mesh, :xmax)
|
||||
nL = length(loaded)
|
||||
@assert nL > 0
|
||||
fz = Fz / nL
|
||||
for nid_raw in loaded
|
||||
nd = get_node_dofs(handler, Int(nid_raw))
|
||||
@assert length(nd) == 3
|
||||
f[nd[3]] += fz
|
||||
end
|
||||
return nothing
|
||||
end
|
||||
|
||||
function _solve_eliminated(K::SparseMatrixCSC, f::Vector{Float64}, fixed_dofs::Vector{Int})
|
||||
ndofs = length(f)
|
||||
all_idx = 1:ndofs
|
||||
is_fixed = falses(ndofs)
|
||||
for d in fixed_dofs
|
||||
is_fixed[d] = true
|
||||
end
|
||||
free = Int[d for d in all_idx if !is_fixed[d]]
|
||||
Kff = K[free, free]
|
||||
ff = f[free]
|
||||
uf = Kff \ ff
|
||||
u = zeros(ndofs)
|
||||
u[free] = uf
|
||||
return u, free
|
||||
end
|
||||
|
||||
@testset "Cantilever showcase: materials + zero-allocation assembly" begin
|
||||
mesh = _small_cantilever_mesh()
|
||||
S = @DOFSet{u::DOF{Displacement{3}, Vertex}}
|
||||
elements, handler = create_elements!(mesh, Element{Hex8, Lagrange{1}, S})
|
||||
fixed_dofs = _collect_fixed_dofs(handler, mesh)
|
||||
|
||||
E_young = 210e9
|
||||
ν = 0.3
|
||||
materials = (
|
||||
("LinearElastic", LinearElastic(E = E_young, ν = ν)),
|
||||
("NeoHookean", NeoHookean(E_mod = E_young, nu = ν)),
|
||||
("PerfectPlasticity", PerfectPlasticity(E = E_young, ν = ν, σ_y = 350e6, H = 1e9)),
|
||||
)
|
||||
|
||||
asm = DOFBasedCOOAssembler()
|
||||
|
||||
for (name, mat) in materials
|
||||
@testset "$name — assemble! 0 allocs, finite solve" begin
|
||||
kernel = ContinuumKernel(ContinuumFormulation{FullThreeD}(), mat)
|
||||
cache = DOFBasedCOOCache(elements, handler, mesh, kernel)
|
||||
|
||||
for _ in 1:3
|
||||
assemble!(cache, asm, kernel, mesh)
|
||||
end
|
||||
GC.gc()
|
||||
bytes = @allocated assemble!(cache, asm, kernel, mesh)
|
||||
@test bytes == 0
|
||||
|
||||
K, f0 = extract_system(cache)
|
||||
f = copy(f0)
|
||||
_apply_tip_shear!(f, handler, mesh; Fz = -50_000.0)
|
||||
u, _free = _solve_eliminated(K, f, fixed_dofs)
|
||||
|
||||
@test all(isfinite, u)
|
||||
@test norm(u) > 1e-12
|
||||
# Tip should move in the direction of the applied shear (negative Z load).
|
||||
tip_ids = get_nodes_in_set(mesh, :xmax)
|
||||
uz_sum = 0.0
|
||||
for nid in tip_ids
|
||||
nd = get_node_dofs(handler, Int(nid))
|
||||
uz_sum += u[nd[3]]
|
||||
end
|
||||
@test uz_sum / length(tip_ids) < 0.0
|
||||
end
|
||||
end
|
||||
end
|
||||
|
||||
@testset "Same geometry: HeatConductivity — assemble! 0 allocs" begin
|
||||
mesh = _small_cantilever_mesh()
|
||||
S = @DOFSet{T::DOF{Temperature, Vertex}}
|
||||
elements, handler = create_elements!(mesh, Element{Hex8, Lagrange{1}, S})
|
||||
mat = HeatConductivity(k = 45.0)
|
||||
kernel = HeatKernel(ContinuumFormulation{FullThreeD}(), mat)
|
||||
asm = DOFBasedCOOAssembler()
|
||||
cache = DOFBasedCOOCache(elements, handler, mesh, kernel)
|
||||
|
||||
for _ in 1:3
|
||||
assemble!(cache, asm, kernel, mesh)
|
||||
end
|
||||
GC.gc()
|
||||
@test (@allocated assemble!(cache, asm, kernel, mesh)) == 0
|
||||
|
||||
K, _ = extract_system(cache)
|
||||
@test size(K, 1) == handler.total_dofs
|
||||
@test nnz(K) > 0
|
||||
R = K - transpose(K)
|
||||
@test norm(R) <= 1e-8 * max(1.0, norm(K))
|
||||
end
|
||||
Reference in New Issue
Block a user