标题: 网路控制系统之时间延迟补偿设计
Networked Control Systems Design with the Time Delay Compensation
作者: 赖建良
Lai, Chien-Liang
徐保罗
Hsu, Pau-Lo
电控工程研究所
关键字: 网路控制系统;网路时间延迟;即时时间延迟估测;多重取样周期的设计;时间延迟完全补偿;网路化;Networked control system (NCS);network-induced delay;on-line delay estimation;multi-rate sampling;perfect delay compensation (PDC);MIMO NCS;direct networking
公开日期: 2010
摘要: 近年来随着网路的兴起,即时的网路控制成为一种趋势,在工业上的应用也越来越多,其可以很便利达成系统性的维护。然而,将控制系统网路化之后,也带来了几个缺点,例如:在共享的有限网路资源,随着使用者数目的增减而造成变化极大的时间延迟,此问题轻则明显降低系统效能,重则使整个系统产生不稳定的情形。
根据网路协定、节点数和软硬体条件,网路的时间延迟特性可能是固定或是有界的,甚至是随机和不可预测的。因此,针对处理实际网路的重大的时间延迟变化,本论文提出两种网路控制系统(NCS)之时间延迟补偿的方法。第一个方法是发展即时的时间延迟估测,透过量测实际网路环境中两个节点封包往返的时间(RTT),可估测网路控制系统的时间延迟,并应用于三个方面:(1)发展适应性史密斯预估控制,可针对重大的时间延迟变化作处理;(2)强健性的网路控制系统设计,可对付具有局部时间延迟变化与外部干扰的NCS;及(3)多重取样周期的设计,可针对无线网路的壅塞问题作解决。上述所提之方法均已成功地实现于一交流伺服马达的远端控制系统。
此外,第二个解决时间延迟的方法,是提出时间延迟完全补偿策略(PDC),能有效处理网路所引起时间延迟的影响,既不需要系统的模型也不用已知时间延迟的资讯。网路控制系统能等效为原来的闭回路系统串接一单纯的时间延迟。因此,当引用PDC在设计网路控制系统时,不需考虑对网路时间延迟的影响,只需将所设计的控制系统直接实现于网路上即可。最后,实验结果透过十五公里的Internet网路连线,进一步证明SISO和MIMO控制系统,都可经由所提出的PDC直接施行网路化,在实际网路环境保持其系统闭回路的特性。
Real-time network control applications have increasingly gained attentions due to the rapid development of data communication network technologies. Network systems can be conveniently and systematically maintained in industrial applications. The networked control system (NCS), which simply interconnects all sensors, actuators, and controllers through the network, is promising in the future development of industrial technologies with low integration cost. However, NCS also leads to unavoidable problems in time delays that seriously degrade control performance and stability. The characteristics of network-induced delays may be in constant, bounded, random, or unpredictable natures depending on the network protocols, nodes, software, and hardware. In this study, there are two approaches proposed for NCS design under significantly varied time delays. In the first approach, on-line estimation of the delay time is developed by processing the on-line measurement of the round-trip time (RTT) between two nodes in real network environments. Three related controllers are thus developed: (1) the adaptive Smith predictor control scheme for significantly varied time delay, (2) the robust NCS design for bounded variation of time delay and disturbance, and (3) the multi-rate design under the condition of wireless network congestion.
The second approach is proposed as the model-free perfect delay compensation (PDC) scheme. This scheme effectively deals with network-induced delays requiring neither the delay time information nor the plant model. NCS with PDC is thus simply equivalent to the original closed-loop system with an additional pure time delay and it is designed without concerning the network. Therefore, the well-designed controller can be directly implemented on a network and its stability can be guaranteed without being affected by the varied time delay. The proposed approaches have been successfully applied to remote control systems under significantly time-varying delay to control an AC servo motor. Provided experimental results have further proven that both SISO and MIMO systems can be directly implemented in networking systems by including the proposed PDC to maintain its original feedback-loop characteristics.
URI: http://140.113.39.130/cdrfb3/record/nctu/#GT079412820
http://hdl.handle.net/11536/40739
显示于类别:Thesis


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