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It is crucial to attain a non-overshooting step response in various applications. On the other hand, although various approaches have been presented to design fractional-order proportional-integral (FOPI) controllers in the literature, none of them can ensure a non-overshooting unit step response (USR) for the closed-loop system. This paper designs non-overshooting FOPI controllers for a fractional-order system (FOS) with one and two fractional orders. First, the FOPI controller parameters are chosen to achieve a monotonic magnitude-frequency response (MFR) for the closed-loop system, thereby achieving a non-overshooting or minimum overshoot USR. It is demonstrated that if the sum of the fractional order of the FOPI controller and the maximum order of the plant (for the FOS with one and two fractional orders, where the fractional orders are between one and zero) is equal to 1, a monotonic MFR can be attained. The proportional gain and the integrator time constant are then calculated to attain a desired phase margin (PM) and loop gain crossover frequency (GCF). The main constraints on PM are attained, and the stability of the closed-loop system is proved. Numerical simulations demonstrate the correctness of the presented controller in the presence of disturbance and uncertainty in model parameters. Comparative simulations demonstrate the superiority of the designed FOPI to an already published work in the literature. The performance of the proposed FOPI controller in controlling the ionic polymer-metal composite actuator is also demonstrated.
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http://dx.doi.org/10.1016/j.isatra.2025.08.014 | DOI Listing |
Cell Mol Biol (Noisy-le-grand)
September 2025
M-DT1, Roquefort-les Pins, France.
To date, the closed-loop system represents the best commercialized management of type 1 diabetes. However, mealtimes still require carbohydrate estimation and are often associated with postprandial hyperglycemia which may contribute to poor metabolic control and long -term complications. A multicentre, prospective, non-interventional clinical trial was designed to determine the effectiveness of a novel algorithm to predict changes in blood glucose levels two hours after a usual meal.
View Article and Find Full Text PDFAdv Healthc Mater
September 2025
Department of Biomedical Engineering, University of Houston, Houston, TX, 77204, USA.
Neurogenic bladder and lower urinary tract (LUT) dysfunctions encompass a wide variety of urinary disorders resulting from nervous system impairments. Unfortunately, conventional treatments are still limited and can have significant complication rates, especially when stent implantations or other surgical procedures are involved. Therefore, there is a critical need to develop novel therapeutic strategies and pharmacological approaches to address these challenging urological conditions.
View Article and Find Full Text PDFFront Bioeng Biotechnol
August 2025
Department of Biomedical Engineering, Hanyang University, Seoul, Republic of Korea.
Fast Scan Cyclic Voltammetry (FSCV) is a widely used electrochemical technique to detect rapid extracellular dopamine transients . It employs carbon fiber microelectrodes (CFMEs), but conventional 7 µm diameter CFMEs often suffer from limited mechanical durability and reduced lifespan, hindering their use in chronic monitoring. To improve mechanical robustness and long-term functionality, we fabricated 30 µm diameter CFMEs and modified their geometry via electrochemical etching to form cone-shaped tips.
View Article and Find Full Text PDFISA Trans
September 2025
School of Science, Yanshan University, Qinhuangdao Hebei, 066004, PR China. Electronic address:
This article concentrates on the issue of event-triggered dynamic output feedback control for Markovian jump complex dynamical networks (MJCNDs) subject to multiple cyberattacks. To alleviate the communication pressure, a new adaptive event-triggered mechanism (AETM) is proposed. This AETM incorporates a dynamically adjustable parameter and mode-dependent properties to enhance flexibility.
View Article and Find Full Text PDFISA Trans
September 2025
Key Laboratory of Metallurgical Equipment and Control Technology of Ministry of Education, Wuhan University of Science and Technology, Wuhan, 430081, Hubei, China; Hubei Key Laboratory of Mechanical Transmission and Manufacturing Engineering, Wuhan University of Science and Technology, Wuhan, 430081
The autoloader is a key subsystem in modern main battle tanks, mainly responsible for ammunition transfer, loading, and resupply. However, it often suffers from uncertainties induced by base oscillations, leading to potential instability. While various control strategies have been proposed, most rely on prior knowledge of such oscillations.
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