Biomimetic Closed-Loop Control of a Novel Soft Gastric Simulator Toward Emulating Antral Contraction Waves.

Soft robotics Pub Date : 2024-08-01 Epub Date: 2024-01-22 DOI:10.1089/soro.2023.0097
Shahab Kazemi, Ryman Hashem, Martin Stommel, Leo K Cheng, Weiliang Xu
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Abstract

Soft gastric simulators are in vitro biomimetic modules that can reproduce the antral contraction waves (ACWs). Along with providing information concerning stomach contents, stomach simulators enable experts to evaluate the digestion process of foods and drugs. Traditionally, open-loop control approaches were implemented on stomach simulators to produce ACWs. Constructing a closed-loop control system is essential to improve the simulator's ability to imitate ACWs in additional scenarios and avoid constant tuning. Closed-loop control can enhance stomach simulators in accuracy, responding to various food and drug contents, timing, and unknown disturbances. In this article, a new generation of anatomically realistic soft pneumatic gastric simulators is designed and fabricated. The presented simulator represents the antrum, the lower portion of the stomach where ACWs occur. It is equipped with a real-time feedback system to implement diverse closed-loop controllers on demand. All the details of the physical design, fabrication, and assembly process are discussed. Also, the measures taken for the mechatronics design and sensory system are highlighted in this article. Through several implementation algorithms and techniques, three closed-loop controllers, including model-based and model-free schemes are designed and successfully applied on the presented simulator to imitate ACWs. All the experimental outcomes are carefully analyzed and compared against the biological counterparts. It is demonstrated that the presented simulator can serve as a reliable tool and method to scrutinize digestion and promote novel technologies around the human stomach and the digestion process. This research methodology can also be utilized to develop other biomimetic and bioinspired applications.

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新型软胃模拟器的仿生闭环控制,以模拟前胃收缩波
软胃模拟器是体外生物仿真模块,可以再现前胃收缩波(ACW)。除了提供有关胃内容物的信息外,胃模拟器还能让专家评估食物和药物的消化过程。传统上,胃模拟器采用开环控制方法来产生前胃收缩波。为了提高模拟器在更多情况下模仿交流电的能力并避免不断调整,构建闭环控制系统至关重要。闭环控制可以提高胃模拟器的准确性,对各种食物和药物内容、时间和未知干扰做出反应。本文设计并制造了新一代解剖逼真的软气动胃模拟器。所展示的模拟器代表了胃窦,即发生 ACW 的胃的下部。它配备了实时反馈系统,可按需执行各种闭环控制。本文讨论了物理设计、制造和装配过程的所有细节。此外,本文还重点介绍了机电一体化设计和传感系统所采取的措施。通过几种实现算法和技术,设计了三种闭环控制器,包括基于模型和无模型方案,并成功应用于所介绍的模拟器,以模仿 ACW。所有实验结果都经过仔细分析,并与生物对应物进行了比较。实验证明,所介绍的模拟器可以作为一种可靠的工具和方法,用于仔细研究消化过程,并围绕人类胃部和消化过程推广新技术。这种研究方法还可用于开发其他仿生和生物启发应用。
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