Flow Field Simulation and Parameter Analysis of Hydraulic Unbalanced Bionic Self-recovery Actuator for Rotary Equipment

IF 4.9 3区 计算机科学 Q1 ENGINEERING, MULTIDISCIPLINARY Journal of Bionic Engineering Pub Date : 2023-09-15 DOI:10.1007/s42235-023-00440-z
Wei Li, Xin Pan, Dehong Ge, Jinji Gao
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Abstract

The rotor is the most important component of rotating machinery, and the vibration produced by its mass unbalance has a serious influence on the secure and steady operation of the machine, so an effective online suppression technology is urgently needed. A new hydraulic unbalanced bionic self-recovery system is introduced, imitating the way of manually repairing faulty equipment. To accomplish the effect of actuator mass redistribution, the technology employs pressurized air to drive the quantitative transfer of liquid in the reservoir cavity at opposite positions. It can complete the online adjustment of the equipment’s balancing state and suppress the unbalanced vibration of equipment in real time, which gives the equipment the ability to maintain an autonomous health state and improve equipment performance. The composition and working principle of the system are introduced in detail, and the key performance parameters, such as the minimum running speed and the balancing liquid transfer speed, are analyzed theoretically. The fluid–solid coupling model of the actuator was established, and the two-phase flow from inside the hydraulic unbalanced bionic self-recovery actuator was simulated under multiple working conditions and the performance parameters were quantitatively analyzed. A balancing simulation test bed was built, and its effectiveness was verified by performance parameter tests and unbalanced bionic self-recovery experiments. The experimental results show that the mass distribution adjustment of the balancing disk can be achieved using different viscosity balancing liquid, and the response of liquid viscosity 10 \(cS{\text{t}}\) is faster than that of liquid viscosity 100 \(cS{\text{t}}\) in the process of balancing liquid transfer, and the time is reduced by more than 75%; the system can reduce the simulated rotor amplitude from 18.3 μm to 10.6 μm online in real time, which provides technical support for the subsequent development of a new generation of bionic intelligent equipment.

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旋转设备液压不平衡仿生自恢复执行器的流场模拟和参数分析
转子是旋转机械最重要的部件,其质量不平衡产生的振动严重影响机器的安全稳定运行,因此迫切需要一种有效的在线抑制技术。模仿人工修复故障设备的方式,引入了一种新型液压不平衡仿生自恢复系统。为了达到执行器质量再分配的效果,该技术采用加压空气驱动储液腔内液体在相反位置定量转移。它能完成设备平衡状态的在线调整,实时抑制设备的不平衡振动,使设备具备保持自主健康状态的能力,提高设备性能。详细介绍了系统的组成和工作原理,并从理论上分析了最小运行速度和平衡液传输速度等关键性能参数。建立了执行器的流固耦合模型,模拟了多种工况下液压非平衡仿生自恢复执行器内部的两相流动,并对性能参数进行了定量分析。建立了平衡模拟试验台,并通过性能参数测试和非平衡仿生自恢复实验验证了其有效性。实验结果表明,使用不同粘度的平衡液可以实现平衡盘的质量分布调整,在平衡液传递过程中,液体粘度为 10 \(cS{\text{t}}\)的响应速度比液体粘度为 100 \(cS{\text{t}}\)的响应速度快,时间缩短 75% 以上;系统可以将模拟转子振幅从 18.3 μm实时在线减小到10.6 μm,为后续新一代仿生智能装备的研制提供了技术支撑。
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来源期刊
Journal of Bionic Engineering
Journal of Bionic Engineering 工程技术-材料科学:生物材料
CiteScore
7.10
自引率
10.00%
发文量
162
审稿时长
10.0 months
期刊介绍: The Journal of Bionic Engineering (JBE) is a peer-reviewed journal that publishes original research papers and reviews that apply the knowledge learned from nature and biological systems to solve concrete engineering problems. The topics that JBE covers include but are not limited to: Mechanisms, kinematical mechanics and control of animal locomotion, development of mobile robots with walking (running and crawling), swimming or flying abilities inspired by animal locomotion. Structures, morphologies, composition and physical properties of natural and biomaterials; fabrication of new materials mimicking the properties and functions of natural and biomaterials. Biomedical materials, artificial organs and tissue engineering for medical applications; rehabilitation equipment and devices. Development of bioinspired computation methods and artificial intelligence for engineering applications.
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