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A review of selected pumping systems in nature and engineering-potential biomimetic concepts for improving displacement pumps and pulsation damping

机译:回顾自然界中选定的泵送系统和具有工程潜力的仿生概念,以改善排水泵和脉动阻尼

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The active transport of fluids by pumps plays an essential role in engineering and biology. Due to increasing energy costs and environmental issues, topics like noise reduction, increase of efficiency and enhanced robustness are of high importance in the development of pumps in engineering. The study compares pumps in biology and engineering and assesses biomimetic potentials for improving man-made pumping systems. To this aim, examples of common challenges, applications and current biomimetic research for state-of-the art pumps are presented. The biomimetic research is helped by the similar configuration of many positive displacement pumping systems in biology and engineering. In contrast, the configuration and underlying pumping principles for fluid dynamic pumps (FDPs) differ to a greater extent in biology and engineering. However, progress has been made for positive displacement as well as for FDPs by developing biomimetic devices with artificial muscles and cilia that improve energetic efficiency and fail-safe operation or reduce noise. The circulatory system of vertebrates holds a high biomimetic potential for the damping of pressure pulsations, a common challenge in engineering. Damping of blood pressure pulsation results from a nonlinear viscoelastic behavior of the artery walls which represent a complex composite material. The transfer of the underlying functional principle could lead to an improvement of existing technical solutions and be used to develop novel biomimetic damping solutions. To enhance efficiency or thrust of man-made fluid transportation systems, research on jet propulsion in biology has shown that a pulsed jet can be tuned to either maximize thrust or efficiency. The underlying principle has already been transferred into biomimetic applications in open channel water systems. Overall there is a high potential to learn from nature in order to improve pumping systems for challenges like the reduction of pressure pulsations, increase of jet propulsion efficiency or the reduction of wear.
机译:泵主动输送流体在工程和生物学中起着至关重要的作用。由于能源成本增加和环境问题,降低噪声,提高效率和增强耐用性等主题在工程泵的开发中具有非常重要的意义。该研究比较了生物学和工程学中的泵,并评估了仿生潜力,以改善人造泵系统。为了达到这个目的,给出了有关最先进泵的常见挑战,应用和当前仿生研究的示例。仿生研究得益于生物学和工程学中许多正排量泵送系统的类似配置。相比之下,流体动力泵(FDP)的配置和基本的泵送原理在生物学和工程学上有较大差异。但是,通过开发具有人造肌肉和纤毛的仿生设备来提高能量效率和故障安全操作或降低噪音,正位移以及FDP都取得了进步。脊椎动物的循环系统在抑制压力脉动方面具有很高的仿生潜力,这是工程学中的常见挑战。血压脉动的阻尼是由代表复杂复合材料的动脉壁的非线性粘弹性行为引起的。基本功能原理的转移可以导致现有技术解决方案的改进,并可以用于开发新型仿生阻尼解决方案。为了提高人造流体运输系统的效率或推力,生物学上的喷射推进研究表明,可以调节脉冲喷射以最大化推力或效率。基本原理已被转移到明渠水系统的仿生应用中。总体而言,在改善抽水系统以应对诸如降低压力脉动,提高喷射推进效率或减少磨损等挑战方面,有很大的向自然界学习的潜力。

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