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https://github.com/JuliaFEM/JuliaFEM.jl.git
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135 lines
4.7 KiB
Julia
135 lines
4.7 KiB
Julia
# This file is a part of JuliaFEM.
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# License is MIT: see https://github.com/JuliaFEM/JuliaFEM.jl/blob/master/LICENSE.md
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abstract DirichletProblem{T} <: AbstractProblem
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abstract StandardBasis
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abstract DualBasis
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global const BiorthogonalBasis = DualBasis
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function DirichletProblem(parent_field_name::ASCIIString, parent_field_dim::Int, dim::Int=1, elements=Element[]; basis=StandardBasis)
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return BoundaryProblem{DirichletProblem{basis}}("dirichlet boundary", parent_field_name, parent_field_dim, dim, elements)
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end
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function DirichletProblem(problem_name::ASCIIString, parent_field_name::ASCIIString, parent_field_dim::Int, dim::Int=1, elements=Element[]; basis=StandardBasis)
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return BoundaryProblem{DirichletProblem{basis}}(problem_name, parent_field_name, parent_field_dim, dim, elements)
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end
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function assemble!(assembly::BoundaryAssembly, problem::BoundaryProblem{DirichletProblem}, element::Element, time::Real)
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# get dimension and name of PARENT field
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field_dim = problem.parent_field_dim
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field_name = problem.parent_field_name
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gdofs = get_gdofs(element, field_dim)
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for ip in get_integration_points(element, Val{2})
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w = ip.weight
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J = get_jacobian(element, ip, time)
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JT = transpose(J)
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if size(JT, 2) == 1 # plane problem
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w *= norm(JT)
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else
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w *= norm(cross(JT[:,1], JT[:,2]))
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end
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N = element(ip, time)
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A = w*N'*N
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if haskey(element, field_name)
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# add all dimensions at once if defined
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# element["blaa"] = 0.0
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# or
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# element["blaa"] = Vector{Float64}[[0.1, 0.2], [0.3, 0.4]]
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g = element(field_name, ip, time)
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if length(g) != length(N)
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g = g*ones(length(N))
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end
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for i=1:field_dim
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ldofs = gdofs[i:field_dim:end]
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add!(assembly.C1, ldofs, ldofs, A)
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add!(assembly.C2, ldofs, ldofs, A)
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end
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add!(assembly.g, gdofs, w*g*N)
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end
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for i=1:field_dim
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if haskey(element, field_name*" $i")
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g = element(field_name*" $i", ip, time)
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ldofs = gdofs[i:field_dim:end]
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add!(assembly.C1, ldofs, ldofs, A)
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add!(assembly.C2, ldofs, ldofs, A)
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add!(assembly.g, ldofs, w*g*N)
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end
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end
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end
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end
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function assemble!(assembly::BoundaryAssembly, problem::BoundaryProblem{DirichletProblem{BiorthogonalBasis}}, element::Element, time::Real)
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# get dimension and name of PARENT field
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field_dim = problem.parent_field_dim
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field_name = problem.parent_field_name
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gdofs = get_gdofs(element, field_dim)
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# calculate bi-orthogonal basis transformation matrix Ae
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nnodes = size(element, 2)
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De = zeros(nnodes, nnodes)
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Me = zeros(nnodes, nnodes)
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for ip in get_integration_points(element, Val{2})
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w = ip.weight
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J = get_jacobian(element, ip, time)
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JT = transpose(J)
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if size(JT, 2) == 1 # plane problem
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w *= norm(JT)
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else
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w *= norm(cross(JT[:,1], JT[:,2]))
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end
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N = element(ip, time)
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De += w*diagm(vec(N))
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Me += w*N'*N
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end
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Ae = De*inv(Me)
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# do the actual integration
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for ip in get_integration_points(element, Val{2})
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w = ip.weight
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J = get_jacobian(element, ip, time)
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JT = transpose(J)
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if size(JT, 2) == 1 # plane problem
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w *= norm(JT)
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else
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w *= norm(cross(JT[:,1], JT[:,2]))
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end
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N = element(ip, time)
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Phi = (Ae*N')'
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A = w*Phi'*N
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A[abs(A) .< 1.0e-9] = 0
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# C1 matrix is always the same
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# for i=1:field_dim
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# ldofs = gdofs[i:field_dim:end]
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# add!(assembly.C1, ldofs, ldofs, A)
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# end
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if haskey(element, field_name)
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# add all dimensions at once if defined element["blaa"] = 0.0
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for i=1:field_dim
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g = element(field_name, ip, time)
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ldofs = gdofs[i:field_dim:end]
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add!(assembly.C1, ldofs, ldofs, A)
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add!(assembly.C2, ldofs, ldofs, A)
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add!(assembly.g, ldofs, w*g*Phi')
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end
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else
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for i=1:field_dim
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ldofs = gdofs[i:field_dim:end]
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if haskey(element, field_name*" $i")
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g = element(field_name*" $i", ip, time)
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add!(assembly.C1, ldofs, ldofs, A)
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add!(assembly.C2, ldofs, ldofs, A)
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add!(assembly.g, ldofs, w*g*Phi')
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# else
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# add!(assembly.D, ldofs, ldofs, A)
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end
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end
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end
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end
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end
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