Voorbeeld 1

Voorbeeld 1#

import numpy as np
import matplotlib.pyplot as plt
import sympy as sym
sym.init_printing()
oo = sym.Dummy('oo', prime=True)
very_small = 1/oo
x = sym.symbols('x')

C_1, C_2, C_3, C_4 = sym.symbols('C_1, C_2, C_3, C_4')
A_v, B_v, C_v = sym.symbols('A_v, B_v, C_v')
ql, Vl, Ml, kappal, phil, wl = sym.symbols('q_z, V, M, kappa, phi, w')
L = 10
F = 35

EI = sym.symbols('EI')

q =  A_v * sym.SingularityFunction(x,0,-1) + F * sym.SingularityFunction(x, 5, -1) + B_v * sym.SingularityFunction(x,10,-1)
display(sym.Eq(ql,q))
../../../_images/285174a87f366b8607d89319f8ef269467fd90a548071e1cf0aea2433bbf5a17.png
V = -sym.integrate(q, x) + C_1
display(sym.Eq(Vl,V))
M = sym.integrate(V, x) + C_2
display(sym.Eq(Ml,M))
kappa = M/EI + 1/(2*EI)*sym.SingularityFunction(x,5,0)*(A_v*5) + 1/(2*EI)*sym.SingularityFunction(x,5,1)*(A_v+F)
display(sym.Eq(kappal,kappa))
phi = sym.integrate(kappa, x) + C_3
display(sym.Eq(phil,phi))
w = -sym.integrate(phi, x) + C_4
display(sym.Eq(wl,w))
../../../_images/30d5fdbb00c261347f425d785c9e75ac36967301188c2d0c2dccbf6b8870a5d0.png ../../../_images/b93cb83305ddeb22da03a57c970b9515edbfcc4f9e7d5a460b0d858e76c0c15f.png ../../../_images/cf7535264a6bf94ffaff5ad8d017b2a8f73db8eb089b21a7e4499c328bdca5ce.png ../../../_images/d1f7810cb1118a2da5a19e0f2b01c7a160db4baad1741305dbf668fd6bb5c0d9.png ../../../_images/7973385e5a267d01443cbc46124bfb6d54a739a9bd38b137d232c2d02ba2288c.png
Eq1 = sym.Eq(w.subs(x,0),0)
Eq2 = sym.Eq(w.subs(x,L),0)
Eq3 = sym.Eq(M.subs(x,0),0)
Eq4 = sym.Eq(M.subs(x,L),0)
Eq5 = sym.Eq(V.subs(x,0-very_small),0).subs(oo,sym.oo)
Eq6 = sym.Eq(V.subs(x,L+very_small),0).subs(oo,sym.oo)
display(Eq1, Eq2, Eq3, Eq4, Eq5, Eq6)
../../../_images/363a245cc9072af09b9a5fb9ecd9429a709d7d70ad13717df58d5166b5163860.png ../../../_images/a01a4347cb9f88d817ce18f67e7fc0ddab253b3337d8702c595552412d0eb34d.png ../../../_images/9cc2e3c0c5db8011bcd40f7b76d402c61b2ff3341e693915ce92b10f0dda5d1e.png ../../../_images/b9829be1e24658e526db5157ad2c10139d7efdbe0fd1c76c88b5e8e9c0f00653.png ../../../_images/e5948659485e9911da17c2d5166e7e3db2419f18a601281d8f3bdb9de5307718.png ../../../_images/3ce8e02b984793a381b44499afe0aeb2152e7890679653b8f027b9df9143cd24.png
sol = sym.solve((Eq1,Eq2,Eq3,Eq4,Eq5,Eq6),(C_1,C_2,C_3,C_4,A_v,B_v))
display(sol)
display(sym.Eq(wl,w.subs(sol).factor(EI)))
../../../_images/ab2189d84778b14c1a16f316813e5c21ee1dfeb8b9b8d80b963f3d5d3e10bdea.png ../../../_images/5d36826512402736f2ce742f97e9b501cdff3ddab86c7db41ab510a08f8aa969.png
w_numpy = sym.lambdify(x, w.subs(sol).subs(EI,10000).rewrite(sym.Piecewise))
x_numpy = np.linspace(0,10,100)
plt.figure()
plt.plot(x_numpy,w_numpy(x_numpy))
plt.xlabel('$x$')
plt.ylabel('$w$',rotation=0);
ax = plt.gca()
ax.spines['right'].set_color('none')
ax.spines['top'].set_color('none')
ax.spines['bottom'].set_position('zero')
ax.spines['left'].set_position('zero')
ax.invert_yaxis()
../../../_images/7064fab76e89761aded5d39ad1117ae7ec83246175452b7525447bf590a534c2.png
V_numpy = sym.lambdify(x, V.subs(sol).rewrite(sym.Piecewise))
x_numpy = np.linspace(0,10.01,10000)
plt.figure()
plt.plot(x_numpy,V_numpy(x_numpy))
plt.xlabel('$x$')
plt.ylabel('$V$',rotation=0);
ax = plt.gca()
ax.spines['right'].set_color('none')
ax.spines['top'].set_color('none')
ax.spines['bottom'].set_position('zero')
ax.spines['left'].set_position('zero')
ax.invert_yaxis()
../../../_images/c0655ed4594012d56cd0fecd7a408fd9a99341784edd6c865e0fea394488ed77.png
M_numpy = sym.lambdify(x, M.subs(sol).rewrite(sym.Piecewise))
x_numpy = np.linspace(0,10.01,10000)
plt.figure()
plt.plot(x_numpy,M_numpy(x_numpy))
plt.xlabel('$x$')
plt.ylabel('$M$',rotation=0);
ax = plt.gca()
ax.spines['right'].set_color('none')
ax.spines['top'].set_color('none')
ax.spines['bottom'].set_position('zero')
ax.spines['left'].set_position('zero')
ax.invert_yaxis()
../../../_images/8291334e1f745d3fcf045fe8d5d313873d9df9635a3d58d49293569aad838a08.png
kappa_numpy = sym.lambdify(x, kappa.subs(sol).subs(EI,10000).rewrite(sym.Piecewise))
x_numpy = np.linspace(0,10.01,10000)
plt.figure()
plt.plot(x_numpy,kappa_numpy(x_numpy))
plt.xlabel('$x$')
plt.ylabel('$\kappa$',rotation=0);
ax = plt.gca()
ax.spines['right'].set_color('none')
ax.spines['top'].set_color('none')
ax.spines['bottom'].set_position('zero')
ax.spines['left'].set_position('zero')
ax.invert_yaxis()
../../../_images/706418fc42b37fde7adaf479d8b9c04b7882da68d4782c66c6ad090c15eccc12.png