Digitalization of Radial Piston Pumps through Internal Mechanically Actuated Designs

IF 2.2 3区 工程技术 Q2 ENGINEERING, MECHANICAL
Actuators Pub Date : 2023-11-15 DOI:10.3390/act12110425
Keith Pate, I. Azzam, Farid Breidi, James R. Marschand, J. Lumkes
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引用次数: 0

Abstract

Digital hydraulics is a technology gaining perceptible growth in fluid power research. The advantages of digital fluid power systems can be realized through improved system efficiencies, energy savings, increased productivity, and system performance compared to traditional fluid power systems. Conventional check valve pumps use differential pressures to deliver pressurized flow to the system. Digital fluid power pumps enable conventional check valve pumps to achieve variable displacements by enhancing the controllability of the inlet and outlet valves through digital hydraulic technologies and techniques. The benefit of this technology is the use of positive sealing check valves with lower leakage losses compared to typical variable displacement pumps, increasing the unit’s overall efficiency. The primary focus of prior digital pump/motor research has been on digital actuation using electronic solenoids to actuate or latch the valves. While these electrical systems provide a platform for digital hydraulic techniques, they come with a cost: added energy sources, advanced controls, and expensive data acquisition systems. Research has also shown that minor valve timing inconsistencies can limit the potential energy savings of digital pumps in electrically actuated systems. A system configuration that promotes the advantages of digital hydraulics while mitigating the disadvantages associated with electrical systems is mechanically actuated systems. This work discusses variable cams and their advantages/disadvantages in digital radial piston pump/motor technologies. The significance of this work is the investigation of the digitalization of radial piston pumps through mechanically actuated valving systems, which has yet to be implemented in prior research. This paper evaluates various design concepts for commercializing digital radial piston pumps using mechanically actuated cams. A two-quadrant pump and a four-quadrant pump/motor design are simulated to assess their potential efficiency across the bandwidth of their displacement. The results show that the two systems can achieve relatively high efficiencies across their displacement bandwidth but show room for further improvement by optimizing these systems. This study is the first step in designing an integrated mechanically actuated variable cam system in digital radial piston pumps.
通过内部机械驱动设计实现径向活塞泵的数字化
数字液压技术在流体动力研究领域的发展日新月异。与传统的流体动力系统相比,数字流体动力系统可以通过提高系统效率、节约能源、提高生产率和系统性能来实现其优势。传统单向阀泵利用压差为系统提供加压流量。数字流体动力泵通过数字液压技术和工艺增强了入口阀和出口阀的可控性,从而使传统单向阀泵实现了可变排量。该技术的优点是使用正密封止回阀,与典型的变量泵相比,泄漏损失更小,从而提高了设备的整体效率。之前的数字泵/马达研究主要集中在使用电子螺线管来驱动或闭锁阀门的数字驱动上。虽然这些电气系统为数字液压技术提供了一个平台,但也付出了代价:增加了能源、先进的控制和昂贵的数据采集系统。研究还表明,微小的阀门定时不一致会限制数字泵在电动系统中的潜在节能效果。机械驱动系统是一种既能发扬数字液压系统优点,又能减少与电气系统相关缺点的系统配置。本研究讨论了变量凸轮及其在数字径向柱塞泵/马达技术中的优缺点。这项工作的意义在于通过机械驱动阀系统对径向柱塞泵的数字化进行研究,而这在之前的研究中尚未实现。本文评估了利用机械驱动凸轮实现数字化径向柱塞泵商业化的各种设计理念。模拟了双象限泵和四象限泵/电机设计,以评估它们在排量带宽范围内的潜在效率。结果表明,这两种系统在其排量带宽上都能达到相对较高的效率,但通过优化这些系统,仍有进一步提高的空间。这项研究是在数字径向柱塞泵中设计集成式机械致动变量凸轮系统的第一步。
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
Actuators
Actuators Mathematics-Control and Optimization
CiteScore
3.90
自引率
15.40%
发文量
315
审稿时长
11 weeks
期刊介绍: Actuators (ISSN 2076-0825; CODEN: ACTUC3) is an international open access journal on the science and technology of actuators and control systems published quarterly online by MDPI.
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