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Digital twin based condition monitoring of a knuckle boom crane: An experimental study

机译:Knuckle Boom Crane的数字双胞胎条件监测:实验研究

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This paper presents a novel approach for implementation of a digital twin for condition monitoring of a small-scale knuckle boom crane. The digital twin of the crane is simulated real-time in a nonlinear finite element (FE) program, where the estimated payload weight is used as an input. We implement an inverse method for estimation of the weight as well as its force vector direction based on physical strain gauge measurements. Additional strain gauges were utilized for validation of accuracy of the digital twin and inverse method. Based on a few physical sensor outputs, the digital twin allows for real-time determination of stresses, strains and loads at an unlimited number of hot spots. Therefore a digital twin can be an effective tool for predictive maintenance and product life-cycle management. In addition, condition monitoring of cranes during heavy-lift operations increases safety and reliability.
机译:本文提出了一种用于实施数字双胞胎的新方法,用于小型关节臂起重机的条件监测。 起重机的数字双胞胎是在非线性有限元(FE)程序中的实时模拟,其中估计的有效载荷权重用为输入。 我们基于物理应变仪测量来实现估计重量的逆方法,以及其力矢量方向。 使用额外的应变仪用于验证数字双胞胎和逆方法的准确性。 基于几个物理传感器输出,数字双胞胎允许在无限数量的热点上实时确定应力,菌株和负载。 因此,数字双胞胎可以是预测维护和产品生命周期管理的有效工具。 此外,在重型升程操作期间的起重机的状态监测增加了安全性和可靠性。

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