Digital Twin-Driven Mating Performance Analysis for Precision Spool Valve

The precision spool valve is the core component of the electro-hydraulic servo control system, and its performance has an important influence on the flight control of aviation and aerospace products. The non-uniform surface topography error causes a non-uniform mating gap field inside the spool valv...

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Main Authors: Wenbin Tang, Guangshen Xu, Shoujing Zhang, Shoufeng Jin, Runxiao Wang
Format: Article
Language:English
Published: MDPI AG 2021-08-01
Series:Machines
Subjects:
Online Access:https://www.mdpi.com/2075-1702/9/8/157
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spelling doaj-d081aab755a748ff8f15f065ebc89a232021-08-26T13:59:34ZengMDPI AGMachines2075-17022021-08-01915715710.3390/machines9080157Digital Twin-Driven Mating Performance Analysis for Precision Spool ValveWenbin Tang0Guangshen Xu1Shoujing Zhang2Shoufeng Jin3Runxiao Wang4School of Mechanical and Electrical Engineering, Xi’an Polytechnic University, Xi’an 710048, ChinaSchool of Mechanical and Electrical Engineering, Xi’an Polytechnic University, Xi’an 710048, ChinaSchool of Mechanical and Electrical Engineering, Xi’an Polytechnic University, Xi’an 710048, ChinaSchool of Mechanical and Electrical Engineering, Xi’an Polytechnic University, Xi’an 710048, ChinaSchool of Mechanical and Electrical Engineering, Northwestern Polytechnical University, Xi’an 710072, ChinaThe precision spool valve is the core component of the electro-hydraulic servo control system, and its performance has an important influence on the flight control of aviation and aerospace products. The non-uniform surface topography error causes a non-uniform mating gap field inside the spool valve, which causes oil leakage and leads to deterioration of the spool valve performance. However, the current oil leakage calculation method only considers the influence of size errors, which is not comprehensive. Thus, how to characterize the mating behavior of the spool valve and its effect on oil leakage with consideration of surface topography errors is the key to evaluating the performance of the spool valve. This paper proposes a new way of analyzing the mating performance of precision spool valves, which considers the surface topography errors based on digital twin technology. Firstly, a general framework for the analysis of mating performance of precision spool valve based on a digital twin is proposed. Then, key technologies of assembly interface geometry modeling, matching behavior modeling and performance analysis are studied. Finally, a quantitative correlation between the mating parameters and the oil leakage of the precision spool valve is revealed. The method is tested on a practical case. This proposed method can provide theoretical support for the accurate prediction and evaluation of the mating performance of the precision spool valve.https://www.mdpi.com/2075-1702/9/8/157digital twinprecision spool valvemating performancesurface topography
collection DOAJ
language English
format Article
sources DOAJ
author Wenbin Tang
Guangshen Xu
Shoujing Zhang
Shoufeng Jin
Runxiao Wang
spellingShingle Wenbin Tang
Guangshen Xu
Shoujing Zhang
Shoufeng Jin
Runxiao Wang
Digital Twin-Driven Mating Performance Analysis for Precision Spool Valve
Machines
digital twin
precision spool valve
mating performance
surface topography
author_facet Wenbin Tang
Guangshen Xu
Shoujing Zhang
Shoufeng Jin
Runxiao Wang
author_sort Wenbin Tang
title Digital Twin-Driven Mating Performance Analysis for Precision Spool Valve
title_short Digital Twin-Driven Mating Performance Analysis for Precision Spool Valve
title_full Digital Twin-Driven Mating Performance Analysis for Precision Spool Valve
title_fullStr Digital Twin-Driven Mating Performance Analysis for Precision Spool Valve
title_full_unstemmed Digital Twin-Driven Mating Performance Analysis for Precision Spool Valve
title_sort digital twin-driven mating performance analysis for precision spool valve
publisher MDPI AG
series Machines
issn 2075-1702
publishDate 2021-08-01
description The precision spool valve is the core component of the electro-hydraulic servo control system, and its performance has an important influence on the flight control of aviation and aerospace products. The non-uniform surface topography error causes a non-uniform mating gap field inside the spool valve, which causes oil leakage and leads to deterioration of the spool valve performance. However, the current oil leakage calculation method only considers the influence of size errors, which is not comprehensive. Thus, how to characterize the mating behavior of the spool valve and its effect on oil leakage with consideration of surface topography errors is the key to evaluating the performance of the spool valve. This paper proposes a new way of analyzing the mating performance of precision spool valves, which considers the surface topography errors based on digital twin technology. Firstly, a general framework for the analysis of mating performance of precision spool valve based on a digital twin is proposed. Then, key technologies of assembly interface geometry modeling, matching behavior modeling and performance analysis are studied. Finally, a quantitative correlation between the mating parameters and the oil leakage of the precision spool valve is revealed. The method is tested on a practical case. This proposed method can provide theoretical support for the accurate prediction and evaluation of the mating performance of the precision spool valve.
topic digital twin
precision spool valve
mating performance
surface topography
url https://www.mdpi.com/2075-1702/9/8/157
work_keys_str_mv AT wenbintang digitaltwindrivenmatingperformanceanalysisforprecisionspoolvalve
AT guangshenxu digitaltwindrivenmatingperformanceanalysisforprecisionspoolvalve
AT shoujingzhang digitaltwindrivenmatingperformanceanalysisforprecisionspoolvalve
AT shoufengjin digitaltwindrivenmatingperformanceanalysisforprecisionspoolvalve
AT runxiaowang digitaltwindrivenmatingperformanceanalysisforprecisionspoolvalve
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