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CONDITION MONITORING BASED ON THERMODYNAMIC EFFICIENCY METHOD FOR AN AXIAL PISTON PUMP

机译:基于热力学效率方法的轴向柱塞泵状态监测

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摘要

In the last years, the interest in the field of Prognostics and Health Management (PHM) has been growing in many industrial fields. The objective of PHM is to switch from a time-based (scheduled) maintenance to a predictive maintenance with advantages in terms of reliability and safety. This paper presents the thermodynamic method for the fault detection of an axial piston pump which is a critical component in many hydraulic systems; the method was developed for the evaluation of the overall efficiency which is an important parameter to monitor the machine health state. Through the measurements of temperatures and pressures at suction and delivery ports the method allows to calculate the efficiency avoiding the use of costly sensors, such as speed and torque sensors. The paper investigates the possibility of utilizing the pump overall efficiency evaluated through the thermodynamic method as a reliable parameter for the fault detection. The machine under study is a variable displacement axial-piston pump with external drainage equipped with a load sensing regulator. The thermodynamic method was already validated in a previous work by comparing it with the standard approach, based on the direct measurement of the mechanical power. The proposed method requires the measurement of the delivery and drain flow rates involving the use of expensive flowmeters which could prevent its usage in online applications; this limit should be overcome with the development of low-cost solutions for flow rate measurements. A preliminary investigation of the pump failure modes was conducted to identify the most important faults which need to be considered. An experimental campaign was carried out on a laboratory test bench with the pump in the flawless state and in faulty states. The faulty states were realized by introducing components with artificial faults into the pump. The pump was accurately instrumented to monitor all the main variables, i.e. pressures, temperatures, flow rates, swash plate angle and shaft torque and speed. Different operating conditions were considered and each test was repeated several times in order to acquire a suitable population to verify the repeatability of the data. The experiments demonstrate the method capability of detecting some but not all of the incipient faults tested in steady-state conditions as a consequence of temperature variations which have the most important influence on efficiency estimation. Future works will include the development of innovative solutions to measure flow-rates and the testing of other faults to further verify the reliability of the method.
机译:在过去的几年中,对预后和健康管理(PHM)领域的兴趣已在许多工业领域中增长。 PHM的目标是从基于时间的(计划的)维护切换到具有可靠性和安全性优势的预测性维护。本文提出了一种用于轴向柱塞泵故障检测的热力学方法,该方法是许多液压系统中的关键组件。该方法是为评估整体效率而开发的,它是监控机器健康状态的重要参数。通过测量吸入口和输送口处的温度和压力,该方法可以计算效率,而无需使用昂贵的传感器,例如速度和扭矩传感器。本文研究了利用通过热力学方法评估的泵整体效率作为故障检测的可靠参数的可能性。所研究的机器是带有外部排水装置的可变排量轴向柱塞泵,配备有负载感应调节器。通过直接测量机械功率,将热力学方法与标准方法进行比较,在先前的工作中已经对其进行了验证。所提出的方法需要测量输送和排放流速,包括使用昂贵的流量计,这可能会阻止其在在线应用中使用;应通过开发低成本的流量测量解决方案来克服这一限制。对泵的故障模式进行了初步调查,以找出需要考虑的最重要的故障。在实验室测试台上进行了一次实验,泵处于无故障状态和故障状态。通过将带有人为故障的组件引入泵中来实现故障状态。泵已被精确地安装以监控所有主要变量,即压力,温度,流量,斜盘角度以及轴扭矩和速度。考虑不同的操作条件,每个测试重复几次以获取合适的总体以验证数据的可重复性。实验表明,该方法能够检测由于温度变化而在稳态条件下测试的某些初期故障,但并非全部,这些故障对效率估算具有最重要的影响。未来的工作将包括开发创新的解决方案以测量流量以及测试其他故障以进一步验证该方法的可靠性。

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  • 来源
    《Symposium on fluid power and motion control 2018》|2018年|V001T01A004.1-V001T01A004.10|共10页
  • 会议地点 Bath(GB)
  • 作者单位

    University of Parma Parco Area delle Scienze 181/A 43124, Parma, Italy;

    University of Parma Parco Area delle Scienze 181/A 43124, Parma, Italy;

    Casappa S.p.A. Via Balestrieri, 1 Lemignano di Collecchio 43044 Parma, Italy;

    University of Parma Parco Area delle Scienze 181/A 43124, Parma, Italy;

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  • 原文格式 PDF
  • 正文语种 eng
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