def test_cut_bwb(self): """recover element ids""" log = SimpleLogger(level='warning', encoding='utf-8', log_func=None) is_bwb = True if is_bwb: bdf_filename = os.path.join(MODEL_PATH, 'bwb', 'bwb_saero.bdf') # ymax~=1262.0 else: # pragma: no cover bdf_filename = r'C:\NASA\asm\all_modes_mach_0.85\flutter.bdf' # ymax=1160.601 normal_plane = np.array([0., 1., 0.]) model = read_bdf(bdf_filename, log=log) model2 = read_bdf(bdf_filename, log=log) # initialize theta thetas = {} for eid in model.elements: # theta, Ex, Ey, Gxy thetas[eid] = (0., 0., 0., 0.) #p1 = np.array([466.78845, 735.9053, 0.0]) #p2 = np.array([624.91345, 639.68896, -0.99763656]) #dx = p2 - p1 ytol = 2. nodal_result = None plane_bdf_filenames = [] y = [] A = [] I = [] EI = [] avg_centroid = [] for i in range(2000): if is_bwb: dy = 100. * i + 1. # bwb coord = CORD2R(1, rid=0, origin=[0., dy, 0.], zaxis=[0., dy, 1], xzplane=[1., dy, 0.]) else: # pragma: no cover dy = 4. * i + 1. # CRM coord = CORD2R(1, rid=0, origin=[0., dy, 0.], zaxis=[0., dy, 1], xzplane=[1., dy, 0.]) #origin = np.array([0., dy, 0.]) #xzplane = origin + dx #xzplane = np.array([1., dy, 0.]) #coord = CORD2R.add_axes(cid, rid=0, origin=p1, xaxis=p2-p1, yaxis=None, zaxis=None, #xyplane=None, yzplane=None, xzplane=None, comment='') print(coord) model.coords[1] = coord plane_bdf_filename = 'plane_face_%i.bdf' % i cut_face_filename = 'cut_face_%i.csv' % i if os.path.exists(cut_face_filename): os.remove(cut_face_filename) try: out = cut_face_model_by_coord( model2, coord, ytol, nodal_result, plane_atol=1e-5, skip_cleanup=True, #csv_filename=cut_face_filename, csv_filename=None, #plane_bdf_filename=None) plane_bdf_filename=plane_bdf_filename, plane_bdf_offset=dy) except RuntimeError: # incorrect ivalues=[0, 1, 2]; dy=771. for CRM continue unused_unique_geometry_array, unused_unique_results_array, rods = out if not os.path.exists(plane_bdf_filename): break plane_bdf_filenames.append(plane_bdf_filename) # eid, nid, inid1, inid2 #print(unique_geometry_array) #moi_filename = 'amoi_%i.bdf' % i moi_filename = None out = calculate_area_moi(model, rods, normal_plane, thetas, moi_filename=moi_filename) #print(out) Ai, Ii, EIi, avg_centroidi = out y.append(dy) A.append(Ai) I.append(Ii) EI.append(EIi) avg_centroid.append(avg_centroidi) #break with open('thetas.csv', 'w') as csv_filename: csv_filename.write('# eid(%i),theta,Ex,Ey,Gxy\n') for eid, (theta, Ex, Ey, Gxy) in sorted(thetas.items()): csv_filename.write('%i,%f,%f,%f,%f\n' % (eid, theta, Ex, Ey, Gxy)) y = np.array(y, dtype='float64') A = np.array(A, dtype='float64') I = np.array(I, dtype='float64') EI = np.array(EI, dtype='float64') avg_centroid = np.array(avg_centroid, dtype='float64') inid = 1 beam_model = BDF(debug=False) avg_centroid[:, 1] = y # wrong mid = 1 E = 3.0e7 G = None nu = 0.3 model.add_mat1(mid, E, G, nu, rho=0.1) Ix = I[:, 0] Iy = I[:, 1] Ixy = I[:, 2] J = Ix + Iy #i1, i2, i12 = Ix, Iy, Ixy for inid, xyz in enumerate(avg_centroid): beam_model.add_grid(inid + 1, xyz) for eid in range(1, len(A)): pid = eid nids = [eid, eid + 1] x = [1., 0., 0.] g0 = None beam_model.add_cbeam(eid, pid, nids, x, g0, offt='GGG', bit=None, pa=0, pb=0, wa=None, wb=None, sa=0, sb=0, comment='') # j = i1 + i2 so = ['YES', 'YES'] xxb = [0., 1.] area = [A[eid - 1], A[eid]] i1 = [Ix[eid - 1], Ix[eid]] i2 = [Iy[eid - 1], Iy[eid]] i12 = [Ixy[eid - 1], Ixy[eid]] j = [J[eid - 1], J[eid]] beam_model.add_pbeam(pid, mid, xxb, so, area, i1, i2, i12, j, nsm=None, c1=None, c2=None, d1=None, d2=None, e1=None, e2=None, f1=None, f2=None, k1=1., k2=1., s1=0., s2=0., nsia=0., nsib=None, cwa=0., cwb=None, m1a=0., m2a=None, m1b=0., m2b=None, n1a=0., n2a=None, n1b=0., n2b=None, comment='') beam_model.write_bdf('equivalent_beam_model.bdf') X = np.vstack([y, A]).T Y = np.hstack([X, I, EI, avg_centroid]) header = 'y, A, Ix, Iz, Ixz, Ex*Ix, Ex*Iz, Ex*Ixz, xcentroid, ycentroid, zcentroid' np.savetxt('cut_data_vs_span.csv', Y, header=header, delimiter=',') show = True #show = False if IS_MATPLOTLIB: plot_inertia(y, A, I, EI, avg_centroid, show=show)
def cut_and_plot_moi(bdf_filename: str, normal_plane: np.ndarray, log: SimpleLogger, dys: List[float], coords: List[CORD2R], ytol: float=2.0, dirname: str='', plot: bool=True, show: bool=False) -> Tuple[Any, Any, Any, Any, Any]: # y, A, I, EI, avg_centroid model = read_bdf(bdf_filename, log=log) model2 = read_bdf(bdf_filename, log=log) # initialize theta thetas = {} for eid in model.elements: # theta, Ex, Ey, Gxy thetas[eid] = (0., 0., 0., 0.) #p1 = np.array([466.78845, 735.9053, 0.0]) #p2 = np.array([624.91345, 639.68896, -0.99763656]) #dx = p2 - p1 nodal_result = None plane_bdf_filenames = [] y = [] A = [] I = [] J = [] EI = [] GJ = [] avg_centroid = [] for i, dy, coord in zip(count(), dys, coords): model.coords[1] = coord plane_bdf_filename = os.path.join(dirname, f'plane_face_{i:d}.bdf') cut_face_filename = os.path.join(dirname, f'cut_face_{i:d}.csv') if os.path.exists(cut_face_filename): os.remove(cut_face_filename) try: out = cut_face_model_by_coord( model2, coord, ytol, nodal_result, plane_atol=1e-5, skip_cleanup=True, #csv_filename=cut_face_filename, csv_filename=None, #plane_bdf_filename=None) plane_bdf_filename=plane_bdf_filename, plane_bdf_offset=dy) except RuntimeError: # incorrect ivalues=[0, 1, 2]; dy=771. for CRM continue unused_unique_geometry_array, unused_unique_results_array, rods = out if not os.path.exists(plane_bdf_filename): break plane_bdf_filenames.append(plane_bdf_filename) # eid, nid, inid1, inid2 #print(unique_geometry_array) #moi_filename = 'amoi_%i.bdf' % i moi_filename = None out = calculate_area_moi(model, rods, normal_plane, thetas, moi_filename=moi_filename) #print(out) Ai, Ii, EIi, avg_centroidi = out #Ai, Ii, Ji, EIi, GJi, avg_centroidi = out Ji = GJi = 1.0 y.append(dy) A.append(Ai) I.append(Ii) J.append(Ji) EI.append(EIi) GJ.append(GJi) avg_centroid.append(avg_centroidi) #break thetas_csv_filename = os.path.join(dirname, 'thetas.csv') with open(thetas_csv_filename, 'w') as csv_filename: csv_filename.write('# eid(%i),theta,Ex,Ey,Gxy\n') for eid, (theta, Ex, Ey, Gxy) in sorted(thetas.items()): csv_filename.write('%i,%f,%f,%f,%f\n' % (eid, theta, Ex, Ey, Gxy)) y = np.array(y, dtype='float64') A = np.array(A, dtype='float64') I = np.array(I, dtype='float64') J = np.array(J, dtype='float64') EI = np.array(EI, dtype='float64') GJ = np.array(GJ, dtype='float64') avg_centroid = np.array(avg_centroid, dtype='float64') inid = 1 beam_model = BDF(debug=False) avg_centroid[:, 1] = y # wrong mid = 1 E = 3.0e7 G = None nu = 0.3 model.add_mat1(mid, E, G, nu, rho=0.1) # 0 1 2 3 4 5 # [Ixx, Iyy, Izz, Ixy, Iyz, Ixz] Ix = I[:, 0] Iy = I[:, 1] Iz = I[:, 2] Ixz = I[:, 5] J = Ix + Iz #i1, i2, i12 = Ix, Iy, Ixy for inid, xyz in enumerate(avg_centroid): beam_model.add_grid(inid+1, xyz) for eid in range(1, len(A)): pid = eid nids = [eid, eid + 1] x = [1., 0., 0.] g0 = None beam_model.add_cbeam(eid, pid, nids, x, g0, offt='GGG', bit=None, pa=0, pb=0, wa=None, wb=None, sa=0, sb=0, comment='') # j = i1 + i2 so = ['YES', 'YES'] xxb = [0., 1.] area = [A[eid-1], A[eid]] i1 = [Ix[eid-1], Ix[eid]] i2 = [Iz[eid-1], Iz[eid]] i12 = [Ixz[eid-1], Ixz[eid]] j = [J[eid-1], J[eid]] beam_model.add_pbeam(pid, mid, xxb, so, area, i1, i2, i12, j, nsm=None, c1=None, c2=None, d1=None, d2=None, e1=None, e2=None, f1=None, f2=None, k1=1., k2=1., s1=0., s2=0., nsia=0., nsib=None, cwa=0., cwb=None, m1a=0., m2a=0., m1b=None, m2b=None, n1a=0., n2a=0., n1b=None, n2b=None, comment='') beam_model_bdf_filename = os.path.join(dirname, 'equivalent_beam_model.bdf') beam_model.write_bdf(beam_model_bdf_filename) X = np.vstack([y, A]).T Y = np.hstack([X, I, EI, avg_centroid]) header = 'y, A, Ix, Iz, Ixz, Ex*Ix, Ex*Iz, Ex*Ixz, xcentroid, ycentroid, zcentroid' cut_data_span_filename = os.path.join(dirname, 'cut_data_vs_span.csv') np.savetxt(cut_data_span_filename, Y, header=header, delimiter=',') if IS_MATPLOTLIB and (plot or show): plot_inertia(y, A, I, J, EI, GJ, avg_centroid, show=show, dirname=dirname) else: plane_bdf_filenames = [] return y, A, I, J, EI, GJ, avg_centroid, plane_bdf_filenames