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Temperature Control of Hot Isostatic Pressing (HIP) Furnace Using Model Predictive and Risk Sensitive Optimal Controllers

机译:使用模型预测和风险敏感最优控制器的热等静压(HIP)炉温度控制

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Fabrication of Metal Matrix Composites (MMC) requires the use of sophisticated manufacturing processes. One such process is Hot Isostatic Pressing (HIP) which is becoming a key technology for manufacturing MMC airframe structural panels for advanced aircrafts, superalloys and titanium alloys. We present in this paper the results of applying modem control techniques such as Model Predictive Control (MPC) to HIP furnaces to achieve optimal temperature and pressure profiles - this would minimize the ultimate cost per unit of production. A HIP furnace is primarily a nonlinear distributed parameter process. The problem was solved in three steps. First, a nonlinear physical model was developed and validated from experimental data from a real 3-zone HIP furnace located at Industrial Materials Technology (IMT), Andover, Mass. The model was linearized in the second step to approximate the steady state behavior of a HIP furnace. Finally, in the third step, the linear model was used to design an MPC controller. Another control technique similar to H-infinity known as Risk Sensitive Optimal (RSO) control was used in combination with MPC to increase robustness and improve steady state regulation. The controllers were tested on the nonlinear simulator. The response time of the combined MPC-RSO controlled system was less than one-third of the closed loop time response of the system under current PID control. The combined controller was also found to attenuate low frequency disturbances to a satisfactory level.
机译:金属基复合材料(MMC)的制造需要使用复杂的制造工艺。一种这样的工艺是热等静压(HIP),它已成为制造用于先进飞机,超合金和钛合金的MMC机身结构板的关键技术。我们在本文中介绍了将调制解调器控制技术(例如模型预测控制(MPC))应用于HIP炉以实现最佳温度和压力曲线的结果-这将使单位生产的最终成本降至最低。 HIP炉主要是非线性分布参数过程。通过三个步骤解决了该问题。首先,开发了一个非线性物理模型,并根据位于马萨诸塞州安多弗市工业材料技术公司(IMT)的真实3区HIP炉的实验数据进行了验证,然后在第二步中对该模型进行了线性化处理,以近似地估算出该合金的稳态行为。 HIP炉。最后,在第三步中,使用线性模型来设计MPC控制器。与H-infinity相似的另一种控制技术称为风险敏感最优(RSO)控制,与MPC结合使用可提高鲁棒性并改善稳态调节。控制器在非线性模拟器上进行了测试。 MPC-RSO组合控制系统的响应时间小于当前PID控制下系统闭环时间响应的三分之一。还发现组合控制器将低频干扰衰减到令人满意的水平。

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