State estimation of a heavy-duty machine tool–foundation system based on observability

Author:

Tian Yang12ORCID,Boutat Driss3,Liu Zhi-feng4,Liu Da-Yan3

Affiliation:

1. School of Mechanical Engineering, Shenyang Ligong University, China

2. Department of Research, Liaoning Engineering Vocational College, China

3. INSA Centre Val de Loire, Université d'Orléans, France

4. College of Mechanical Engineering and Applied Electronics Technology, Beijing University of Technology, China

Abstract

Under environmental excitation and based on observability, an online model to predict the state of heavy-duty machine tool–foundation systems is proposed aimed to address the difficulties of directly measuring machine tool displacement states. The aim of the model is to address the difficulties associated with directly measuring machine tool displacements in real time. In this paper, to accurately obtain contact parameters of the joint surface, three states—elasticity, plasticity, and fracture—of concrete micro-bumps were studied. To obtain the equivalent elastic modulus of the secondary pouring material and reinforced concrete material, a composite foundation constitutive model is proposed to determine the equivalent elastic modulus of the concrete foundation. Surface topography features were reconstructed by truncating the peaks of curves, force balance relationships were defined at the joint surfaces, and a metal–concrete joint contact model based on fractal theory was deduced. Based on the joint contact model, a dynamic model of the heavy-duty machine tool–foundation system was established. The dynamic parameters were detected in real time and used to reconstruct the above dynamic model based on observation theory. Further, an estimation model was established to describe the state of a heavy-duty machine tool–foundation system, and online estimation of the machine tool displacement was realized. Finally, the estimation model was validated using an experimental setup of the heavy-duty machine tool–foundation system that considers joint surface factors. In conclusion, the model provides a theoretical basis for stable online control of heavy-duty machine tools.

Funder

Natural Science Foundation of Liaoning Province

Beijing Natural Science Foundation

Publisher

SAGE Publications

Subject

Mechanical Engineering,Mechanics of Materials,Aerospace Engineering,Automotive Engineering,General Materials Science

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1. Tower Crane Effect on the Vibration Response of Elastic Foundation;Iranian Journal of Science and Technology, Transactions of Civil Engineering;2023-08-03

2. Parametric study for structural vibration analysis of tower crane on elastic foundation using mathematical model;Journal of the Brazilian Society of Mechanical Sciences and Engineering;2023-06-12

3. Elasto-plastic analysis of foundations during emergency shutdown due to blast loading;International Journal of Protective Structures;2023-05-11

4. STUDY ON CONTACT MECHANICS MODELING OF JOINT SURFACE CONTAINING COMPOSITE MATERIALS;Composites: Mechanics, Computations, Applications: An International Journal;2022

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