Self-Sensing Pneumatic Compressing Actuator

Using soft pneumatic actuator is a feasible solution in the complex unstructured environment, owing to their inherent compliance, light weight, and safety. However, due to the limitations of soft actuators' materials and structures, they fall short of motion accuracy and load capacity, or need...

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Main Authors: Nan Lin, Hui Zheng, Yuxuan Li, Ruolin Wang, Xiaoping Chen, Xinming Zhang
Format: Article
Language:English
Published: Frontiers Media S.A. 2020-12-01
Series:Frontiers in Neurorobotics
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fnbot.2020.572856/full
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spelling doaj-7e77d26a5c774262aa87f8df14be040c2020-12-11T05:29:07ZengFrontiers Media S.A.Frontiers in Neurorobotics1662-52182020-12-011410.3389/fnbot.2020.572856572856Self-Sensing Pneumatic Compressing ActuatorNan Lin0Hui Zheng1Yuxuan Li2Ruolin Wang3Xiaoping Chen4Xinming Zhang5School of Data Science, University of Science and Technology of China, Hefei, ChinaSchool of Computer Science and Technology, University of Science and Technology of China, Hefei, ChinaSchool of Computer Science and Technology, University of Science and Technology of China, Hefei, ChinaSchool of Information Science and Technology, University of Science and Technology of China, Hefei, ChinaSchool of Computer Science and Technology, University of Science and Technology of China, Hefei, ChinaSchool of Computer Science and Technology, University of Science and Technology of China, Hefei, ChinaUsing soft pneumatic actuator is a feasible solution in the complex unstructured environment, owing to their inherent compliance, light weight, and safety. However, due to the limitations of soft actuators' materials and structures, they fall short of motion accuracy and load capacity, or need large-size, bulky compressors. Meanwhile, in order to gain better control, it is essential for them to sense the environments as well. This leads to high-price sensors or a complicated manufacture technique. Here, a self-sensing vacuum soft actuation structure is proposed, aiming at acquiring good balance among precision, output force, and actuation pressure. The actuator mainly comprises a flexible membrane and a compression spring. When actuated, the flexible membrane outside the actuator compresses the internal spring skeleton, realizing large contractile motion in axial direction. Its built-in force sensor can indirectly measure the absolute displacement of the actuator with certain accuracy (about 5% F.S.). Besides, it does not require high actuation pressure to generate enough output force. The actuator is quite easy to manufacture with low cost, and there are a variety of materials to choose from. We established quasi-static models for actuators built of two different kinds of membrane materials, and tested their accuracy and output force. In addition, to break through the limits of vacuum actuation, a method of positive-negative pressure combined actuation has been proposed, which lowers the requirements for air source equipments, increases actuation pressure, and reduces potential safety threats at the same time. This kind of soft actuators can also effectively resist and detect impacts. The design of a two-finger dexterous robot hand and robot joint based on this soft actuator illustrates its broad application prospects in the fields of mobile robots, wearable devices, and human–robot interaction.https://www.frontiersin.org/articles/10.3389/fnbot.2020.572856/fullsoft roboticsdesignsafetypneumatic actuatorself-sensing
collection DOAJ
language English
format Article
sources DOAJ
author Nan Lin
Hui Zheng
Yuxuan Li
Ruolin Wang
Xiaoping Chen
Xinming Zhang
spellingShingle Nan Lin
Hui Zheng
Yuxuan Li
Ruolin Wang
Xiaoping Chen
Xinming Zhang
Self-Sensing Pneumatic Compressing Actuator
Frontiers in Neurorobotics
soft robotics
design
safety
pneumatic actuator
self-sensing
author_facet Nan Lin
Hui Zheng
Yuxuan Li
Ruolin Wang
Xiaoping Chen
Xinming Zhang
author_sort Nan Lin
title Self-Sensing Pneumatic Compressing Actuator
title_short Self-Sensing Pneumatic Compressing Actuator
title_full Self-Sensing Pneumatic Compressing Actuator
title_fullStr Self-Sensing Pneumatic Compressing Actuator
title_full_unstemmed Self-Sensing Pneumatic Compressing Actuator
title_sort self-sensing pneumatic compressing actuator
publisher Frontiers Media S.A.
series Frontiers in Neurorobotics
issn 1662-5218
publishDate 2020-12-01
description Using soft pneumatic actuator is a feasible solution in the complex unstructured environment, owing to their inherent compliance, light weight, and safety. However, due to the limitations of soft actuators' materials and structures, they fall short of motion accuracy and load capacity, or need large-size, bulky compressors. Meanwhile, in order to gain better control, it is essential for them to sense the environments as well. This leads to high-price sensors or a complicated manufacture technique. Here, a self-sensing vacuum soft actuation structure is proposed, aiming at acquiring good balance among precision, output force, and actuation pressure. The actuator mainly comprises a flexible membrane and a compression spring. When actuated, the flexible membrane outside the actuator compresses the internal spring skeleton, realizing large contractile motion in axial direction. Its built-in force sensor can indirectly measure the absolute displacement of the actuator with certain accuracy (about 5% F.S.). Besides, it does not require high actuation pressure to generate enough output force. The actuator is quite easy to manufacture with low cost, and there are a variety of materials to choose from. We established quasi-static models for actuators built of two different kinds of membrane materials, and tested their accuracy and output force. In addition, to break through the limits of vacuum actuation, a method of positive-negative pressure combined actuation has been proposed, which lowers the requirements for air source equipments, increases actuation pressure, and reduces potential safety threats at the same time. This kind of soft actuators can also effectively resist and detect impacts. The design of a two-finger dexterous robot hand and robot joint based on this soft actuator illustrates its broad application prospects in the fields of mobile robots, wearable devices, and human–robot interaction.
topic soft robotics
design
safety
pneumatic actuator
self-sensing
url https://www.frontiersin.org/articles/10.3389/fnbot.2020.572856/full
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AT xiaopingchen selfsensingpneumaticcompressingactuator
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