Model-Based Synchronization of Dielectric Elastomers and Membrane Pumps for Performance-Optimized, Space-Efficient, and Application-Specific Pump Design

IF 1.8 Q3 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
M. Baltes, D. Bruch, P. Motzki
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Abstract

This work presents a new approach to designing high-performance and efficient pumps based on dielectric elastomer actuators. By considering the entire system including load from the beginning of the design process, the advantages of dielectric elastomers are specifically utilized to minimize the required space while optimizing performance within that compact volume. The process is model-based, ensuring that every aspect, from individual components to the complete system, is carefully optimized for efficiency and power. In the case of the dielectric elastomer, the modeling approach is simplified by restricting it to cases where viscoelastic effects and time-dependent deformation are not considered. This assumption is justified by the application of clearly defined electromechanical stress limits and the exclusive focus on silicone materials, where such effects are comparatively minor. This approach represents an important step in the use of dielectric elastomer actuators for real-world applications, as the pump is more powerful over a wide working range compared to the state of the art and can therefore be used in applications where conventional pumps are still commonly employed. Although the pump already achieves mechanical performance comparable to conventional systems, it still lacks custom electronics and a smart, efficiency-optimized control system to fully leverage the advantages developed in this work. Addressing this gap forms the basis for future research.

基于模型的介电弹性体和膜泵同步,用于性能优化、空间效率和特定应用的泵设计
本文提出了一种基于介电弹性体作动器设计高性能高效泵的新方法。通过从设计过程开始就考虑整个系统,包括负载,电介质弹性体的优势被专门用于最小化所需空间,同时在紧凑的体积内优化性能。该过程是基于模型的,确保从单个组件到完整系统的每个方面都经过仔细优化,以提高效率和功率。在介质弹性体的情况下,通过将其限制为不考虑粘弹性效应和时间相关变形的情况,简化了建模方法。通过应用明确定义的机电应力极限和专门关注有机硅材料,这种影响相对较小,这一假设是合理的。这种方法代表了在实际应用中使用介电弹性体致动器的重要一步,因为与目前的泵相比,该泵在更大的工作范围内更强大,因此可以在传统泵仍然普遍使用的应用中使用。尽管该泵的机械性能已经达到了与传统系统相当的水平,但它仍然缺乏定制电子设备和智能、效率优化的控制系统,无法充分利用这项工作中开发的优势。解决这一差距构成了未来研究的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
5.10
自引率
0.00%
发文量
0
审稿时长
19 weeks
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