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Cyclic hardening

Problem description: Consider the rod shown subjected to cyclic loading. Compute elastic-plastic response using linear mixed-mode hardening. See also examples V.3, V.4 and V.6.

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Mesh: Use the following element types:
ITE=6--see appendix A.1, four quadrilaterals
ITE=56--see appendix B.1, four hexahedra.
Material properties: $E=2\times 10^5$ MPa, $\nu=0.3$.
Prandtl-Reuss-von Mises model with mixed hardening.
$\epsilon_p$:    0.000 0.015 0.040  
$\sigma_Y$:    350 650 1150 [MPa]
QY:    0 270 770 [MPa]
Support: Clamped at x=0. Statically determinate.
Loading: $\sigma_{xx}=\pm 400$ MPa, 3 cycles.
Solution: For detailed explanation see section V.3. The plastic modulus Ep is computed as

\begin{displaymath}E_p=\frac{650-350}{0.015}=\frac{1150-350}{0.04}=2\times10^4\,\mbox{[MPa]}
\end{displaymath}


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and the kinematic modulus Kp

\begin{displaymath}K_p=\left\{\begin{array}{rcl}
270/0.015=1.8\times10^4\,\mbox{...
...{[MPa]}
&~\mbox{for}~&\epsilon_p \ge 0.015
\end{array}\right.
\end{displaymath}

In the course of the first two cycles the elastic range increases by $2(E_p-K_p)\epsilon_p$. During third loading up to 400 [MPa] the threshold value $\epsilon_p=0.015$ is exceeded and Kp=Ep. Further hardening is of the kinematic type, which causes the hysteresis loop to close as in example V.4. The response is said to be saturated.
Loading $\Delta\sigma$ $\epsilon_p$ H $\sigma_{Yc}$ $\sigma_{Yt}$
0 0 0 350 -350 350
+400 50 $2.5\times10^{-3}$ 355 -310 400
-400 90 $7.0\times10^{-3}$ 364 -400 328
+400 72 $10.6\times10^{-3}$ 371 -342 400
-400 58 $13.5\times10^{-3}$ 377 -400 354
+400 46 $15.8\times10^{-3}$ 380 -360 400
-400 40 $17.8\times10^{-3}$ 380 -400 360


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next up previous contents
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