Dual Design PID Controller for Robotic Manipulator Application

Phichitphon Chotikunnan, Rawiphon Chotikunnan
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引用次数: 3

Abstract

This research introduces a dual design proportional–integral–derivative (PID) controller architecture process that aims to improve system performance by reducing overshoot and conserving electrical energy. The dual design PID controller uses real-time error and one-time step delay to adjust the confidence weights of the controller, leading to improved performance in reducing overshoot and saving electrical energy. To evaluate the effectiveness of the dual design PID controller, experiments were conducted to compare it with the PID controller using least overshoot tuning by Chien–Hrones–Reswick (CHR)  technique. The results showed that the dual design PID controller was more effective at reducing overshoot and saving electrical energy. A case study was also conducted as part of this research, and it demonstrated that the system performed better when using the dual design PID controller. Overshoot and electrical energy consumption are common issues in systems that can impact performance, and the dual design PID controller architecture process provides a solution to these issues by reducing overshoot and saving electrical energy. The dual design PID controller offers a new technique for addressing these issues and improving system performance. In summary, this research presents a new technique for addressing overshoot and electrical energy consumption in systems through the use of a dual design PID controller. The dual design PID controller architecture process was found to be an effective solution for reducing overshoot and saving electrical energy in systems, as demonstrated by the experiments and case study conducted as part of this research. The dual design PID controller presents a promising solution for improving system performance by addressing the issues of overshoot and electrical energy consumption.
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双设计PID控制器在机械臂中的应用
本文介绍了一种对偶设计的比例-积分-导数(PID)控制器体系结构,旨在通过减少超调和节约电能来提高系统性能。双设计PID控制器采用实时误差和一次性步长延迟来调整控制器的置信度权重,从而提高了降低超调量和节约电能的性能。为了评估双设计PID控制器的有效性,将其与Chien-Hrones-Reswick (CHR)技术最小超调PID控制器进行了实验比较。结果表明,双设计PID控制器在减小超调量和节约电能方面更有效。在此研究的一部分,还进行了一个案例研究,结果表明,当使用双设计PID控制器时,系统性能更好。超调量和电能消耗是影响系统性能的常见问题,双设计PID控制器架构流程通过减少超调量和节省电能为这些问题提供了解决方案。双设计PID控制器为解决这些问题和提高系统性能提供了一种新的技术。综上所述,本研究提出了一种通过使用双设计PID控制器来解决系统超调和电能消耗的新技术。双设计PID控制器体系结构过程被发现是减少超调和节省系统电能的有效解决方案,作为本研究的一部分进行的实验和案例研究证明了这一点。双设计PID控制器通过解决超调和电能消耗问题,为提高系统性能提供了一种很有前途的解决方案。
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CiteScore
6.30
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