# This file is a part of JuliaFEM. # License is MIT: see https://github.com/JuliaFEM/JuliaFEM.jl/blob/master/LICENSE.md """ Here formulation is :total or :incremental meaning that we either give constraint for total quantity u or it's increment Δu. For elasticity we are using incremental formulation. """ type Dirichlet <: BoundaryProblem formulation :: Symbol variational :: Bool dual_basis :: Bool end function Dirichlet() Dirichlet(:incremental, true, false) end function get_unknown_field_name(::Type{Dirichlet}) return "reaction force" end function get_formulation_type(problem::Problem{Dirichlet}) return problem.properties.formulation end function assemble!(assembly::Assembly, problem::Problem{Dirichlet}, element::Element, time) # get dimension and name of PARENT field nnodes = length(element) field_dim = get_unknown_field_dimension(problem) field_name = get_parent_field_name(problem) gdofs = get_gdofs(element, field_dim) if problem.properties.dual_basis De, Me, Ae = get_dualbasis(element, time) else Ae = eye(nnodes) De = zeros(nnodes, nnodes) for ip in get_integration_points(element) N = element(ip, time) detJ = element(ip, time, Val{:detJ}) De += ip.weight*N'*N*detJ end end # left hand side for i=1:field_dim ldofs = gdofs[i:field_dim:end] if haskey(element, field_name*" $i") add!(assembly.C1, ldofs, ldofs, De) add!(assembly.C2, ldofs, ldofs, De) end end # right hand side for ip in get_integration_points(element) detJ = element(ip, time, Val{:detJ}) w = ip.weight*detJ N = element(ip, time) for i=1:field_dim ldofs = gdofs[i:field_dim:end] if haskey(element, field_name*" $i") g = element(field_name*" $i", ip, time) # u = u_prev + Δu ⇒ Δu = u - u_prev if haskey(element, field_name) g_prev = element(field_name, ip, time) g -= g_prev[i] end add!(assembly.g, ldofs, w*g*Ae*N') end end end end #= function assemble!(assembly::Assembly, problem::Problem{DirichletProblem}, element::Element, time::Real) # get dimension and name of PARENT field field_dim = problem.parent_field_dim field_name = problem.parent_field_name gdofs = get_gdofs(element, field_dim) for ip in get_integration_points(element, Val{2}) w = ip.weight J = get_jacobian(element, ip, time) JT = transpose(J) if size(JT, 2) == 1 # plane problem w *= norm(JT) else w *= norm(cross(JT[:,1], JT[:,2])) end N = element(ip, time) A = w*N'*N if haskey(element, field_name) # add all dimensions at once if defined # element["blaa"] = 0.0 # or # element["blaa"] = Vector{Float64}[[0.1, 0.2], [0.3, 0.4]] g = element(field_name, ip, time) if length(g) != length(N) g = g*ones(length(N)) end for i=1:field_dim ldofs = gdofs[i:field_dim:end] add!(assembly.C1, ldofs, ldofs, A) add!(assembly.C2, ldofs, ldofs, A) end add!(assembly.g, gdofs, w*g*N) end for i=1:field_dim if haskey(element, field_name*" $i") g = element(field_name*" $i", ip, time) ldofs = gdofs[i:field_dim:end] add!(assembly.C1, ldofs, ldofs, A) add!(assembly.C2, ldofs, ldofs, A) add!(assembly.g, ldofs, w*g*N) end end end end =#