一种下游补偿系统的实验与建模分析:换向阀能量优化

IF 0.7 Q4 ENGINEERING, MECHANICAL
Antonella Bonavolontà, E. Frosina, P. Marani, Davide Mesturini, Cesare Dolcin, Ulderico Busani
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引用次数: 0

摘要

通过对过去几年流体动力创新的研究,仍然很少有解决方案能够成功地实现液压回路的优化。最近的机器电气化为节能液压系统的投资提供了潜力,以确保更高的性能和更高的电池自主性。根据不同的研究,在ICE越野车的特定领域,只有大约10-15%的燃油水平可用功率实际转化为执行器的有用能量。特别是方向控制阀的损失约占泵级可用液压能量的35-40%。事实上,传统的方向控制阀设计解决方案忽略了减少损失和改善内部再生的重要机会。特别是,能量回收很少应用,并且在任何情况下都是通过显著增加系统成本的重要上部结构来应用。本文提出了一种新的液压结构:基于下游补偿方法的原始方向控制阀布局。特别地,在这种新的体系结构中实现了流共享系统,目的是最大限度地减少浪费的能量。事实上,该系统实现了从惯性负载和在不同压力水平下同时使用多个致动器的重要能量回收。该回路能够将回收的能量存储在高压蓄能器中。本文介绍了在集总参数环境“Amesim Simcenter”中实现的仿真结果和节能估算。此外,实验活动的结果表明了该创新系统的性能、效益和物理适用性。这一想法基于具体目标,并特别关注成本可持续性、工业可制造性和系统可扩展性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental and Modelling Analysis of a Downstream Compensation System: Energy Optimization of the Directional Control Valves
Through a study on the Fluid Power innovations in the last years emerged that still few solutions have been successfully implemented for the optimization of the hydraulic circuits. The recent machine electrification offers a potential for investment in energy-saving hydraulic systems to ensure greater performance and higher battery autonomy. From different studies emerged that in the specific field of ICE Off-road Vehicles, only about 10–15% of the available power at fuel level is actually transformed into useful energy for the actuators. Particularly the losses in the Directional Control Valves represent about 35–40% of the hydraulic energy available at the pump level. The traditional Directional Control Valves design solutions, in fact, neglects important opportunities for reducing losses and improving internal regeneration. Especially, energy recovery is rarely applied and in any case by means of important superstructures which considerably increase the costs of the system. This paper presents a new hydraulic architecture: an original Directional Control Valve layout based on a Downstream Compensation approach. In particular, a Flow Sharing system is implemented in this new architecture with the goal to minimize the wasted energy. In fact, this system realizes an important energy recovery from both the inertial loads and the simultaneous use of multiple actuators at different pressure level. The circuit enables recovered energy to be stored in a high-pressure accumulator. The paper presents the simulation results and the energy saving estimation realized through a lumped parameter environment “Amesim Simcenter”. Additionally, the results of experimental activities show the innovative system performance, benefits and physical applicability. This idea is based on concrete objectives and pays particular attention to cost sustainability, industrial manufacturability and system scalability.
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来源期刊
International Journal of Fluid Power
International Journal of Fluid Power ENGINEERING, MECHANICAL-
CiteScore
1.60
自引率
0.00%
发文量
16
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