Properties of Curved Parts Laser Cladding Based on Controlling Spot Size

In this study, a method based on controlling the laser spot size was proposed in the process of curved parts laser cladding, and the coatings obtained by this method were analysed through investigation of the microstructure, microhardness, adhesion property and wear resistance properties. The nonuni...

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Main Authors: Haibo Huang, Wenlei Sun, Yong Huang, Jiangtong Yu
Format: Article
Language:English
Published: MDPI AG 2020-01-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/10/2/728
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spelling doaj-2333e4e4fe234f5ebd6451551c68cd252020-11-25T01:40:00ZengMDPI AGApplied Sciences2076-34172020-01-0110272810.3390/app10020728app10020728Properties of Curved Parts Laser Cladding Based on Controlling Spot SizeHaibo Huang0Wenlei Sun1Yong Huang2Jiangtong Yu3School of Mechanical Engineering, Xinjiang University, Urumqi 830047, ChinaSchool of Mechanical Engineering, Xinjiang University, Urumqi 830047, ChinaXinjiang Institute of Engineering, Urumqi 830023, ChinaSchool of Mechanical Engineering, Xinjiang University, Urumqi 830047, ChinaIn this study, a method based on controlling the laser spot size was proposed in the process of curved parts laser cladding, and the coatings obtained by this method were analysed through investigation of the microstructure, microhardness, adhesion property and wear resistance properties. The nonuniform rational B-spline surface (NURBS) reconstruction method was used to obtain the workpiece geometrical characteristics of laser cladding, and through the establishment of a mathematical model, the process of the laser beam working on the curved surface was simplified as the intersection of the cylinder and curvature sphere. Then, the spot size was transformed into the area of a cylinder intersecting with a sphere, and by adjusting the laser head, the size of the laser spot was controlled in the threshold and interpolation points were obtained. The laser cladding trajectory was ensured by these interpolation points, and the experiment was carried out to study the properties of the coating. The results showed that the average coating thickness was about 1.07 mm, and the fluctuation of coating thickness did not exceed 0.05 mm; also, there were no cracks or pores in the layer after penetrant flaw detection. The SEM showed that the grains passed through the transition of plane crystal, cellular crystal, dendrite and equiaxed crystal from the bottom to the top of the layer. After 30 cycles of thermal shock tests, the cladding layer was still well bonded with the substrate and the microhardness and wear resistance were 2 times and 1.4 times higher than that of substrate, respectively.https://www.mdpi.com/2076-3417/10/2/728laser claddingcurved partsspot sizemicrostructureproperties
collection DOAJ
language English
format Article
sources DOAJ
author Haibo Huang
Wenlei Sun
Yong Huang
Jiangtong Yu
spellingShingle Haibo Huang
Wenlei Sun
Yong Huang
Jiangtong Yu
Properties of Curved Parts Laser Cladding Based on Controlling Spot Size
Applied Sciences
laser cladding
curved parts
spot size
microstructure
properties
author_facet Haibo Huang
Wenlei Sun
Yong Huang
Jiangtong Yu
author_sort Haibo Huang
title Properties of Curved Parts Laser Cladding Based on Controlling Spot Size
title_short Properties of Curved Parts Laser Cladding Based on Controlling Spot Size
title_full Properties of Curved Parts Laser Cladding Based on Controlling Spot Size
title_fullStr Properties of Curved Parts Laser Cladding Based on Controlling Spot Size
title_full_unstemmed Properties of Curved Parts Laser Cladding Based on Controlling Spot Size
title_sort properties of curved parts laser cladding based on controlling spot size
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2020-01-01
description In this study, a method based on controlling the laser spot size was proposed in the process of curved parts laser cladding, and the coatings obtained by this method were analysed through investigation of the microstructure, microhardness, adhesion property and wear resistance properties. The nonuniform rational B-spline surface (NURBS) reconstruction method was used to obtain the workpiece geometrical characteristics of laser cladding, and through the establishment of a mathematical model, the process of the laser beam working on the curved surface was simplified as the intersection of the cylinder and curvature sphere. Then, the spot size was transformed into the area of a cylinder intersecting with a sphere, and by adjusting the laser head, the size of the laser spot was controlled in the threshold and interpolation points were obtained. The laser cladding trajectory was ensured by these interpolation points, and the experiment was carried out to study the properties of the coating. The results showed that the average coating thickness was about 1.07 mm, and the fluctuation of coating thickness did not exceed 0.05 mm; also, there were no cracks or pores in the layer after penetrant flaw detection. The SEM showed that the grains passed through the transition of plane crystal, cellular crystal, dendrite and equiaxed crystal from the bottom to the top of the layer. After 30 cycles of thermal shock tests, the cladding layer was still well bonded with the substrate and the microhardness and wear resistance were 2 times and 1.4 times higher than that of substrate, respectively.
topic laser cladding
curved parts
spot size
microstructure
properties
url https://www.mdpi.com/2076-3417/10/2/728
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AT yonghuang propertiesofcurvedpartslasercladdingbasedoncontrollingspotsize
AT jiangtongyu propertiesofcurvedpartslasercladdingbasedoncontrollingspotsize
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