Investigate on surface/subsurface damage mechanisms and manufacturability of ultra-smooth surface in ultra-precision ductile grinding of sapphire optics

Sapphire is a kind of high hard-brittle transparent single crystal material with excellent comprehensive properties in the aspects of mechanics, thermology and optics, which can be widely used in aviation, aerospace, medical treatment, high-energy laser and consumer electronics etc., especially in t...

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Main Authors: Sheng Wang, Qinghe Zhang, Qingliang Zhao, Ming Zhou
Format: Article
Language:English
Published: Elsevier 2025-01-01
Series:Journal of Materials Research and Technology
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Online Access:http://www.sciencedirect.com/science/article/pii/S2238785424030163
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author Sheng Wang
Qinghe Zhang
Qingliang Zhao
Ming Zhou
author_facet Sheng Wang
Qinghe Zhang
Qingliang Zhao
Ming Zhou
author_sort Sheng Wang
collection DOAJ
description Sapphire is a kind of high hard-brittle transparent single crystal material with excellent comprehensive properties in the aspects of mechanics, thermology and optics, which can be widely used in aviation, aerospace, medical treatment, high-energy laser and consumer electronics etc., especially in the service environments of high-temperature, high-pressure, and high-speed of the infrared field. Sapphire is the most ideal material for manufacturing complex curved optics of the advanced air vehicle. However, due to the extremely high hardness and fracture toughness of sapphire that has brought unprecedented huge challenges for the ultra-precision grinding techniques in terms of surface/subsurface damage characteristics and evolution mechanisms. In this paper, the surface/subsurface damage mechanisms and manufacturability of ultra-smooth surface in ultra-precision ductile grinding of sapphire were systematically investigated. Firstly, the manufacturing methods of the traditional ultra-smooth surface and their advantages and disadvantages were systematically investigated and discussed, and the formation principle in ultra-precision grinding of large-size sapphire complex surface optics with ultra-smooth surface was proposed. Secondly, the evolution characteristics of surface roughness, surface morphology and surface damage with the reduction of grain size of grinding wheel were studied. Thirdly, the subsurface damage mechanisms and microscopic characteristics in ultra-precision grinding of sapphire were researched, and the evolution processes and removal mechanisms of surface/subsurface damage were revealed. Then, the subsurface damage characteristics and evolution mechanisms in ultra-precision ductile grinding of sapphire were thoroughly researched based on TEM images. Ultimately, a sapphire planar optics with sub-nanoscale surface roughness, smooth ductile grinding surface and ductile subsurface were achieved.
format Article
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institution Kabale University
issn 2238-7854
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publishDate 2025-01-01
publisher Elsevier
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series Journal of Materials Research and Technology
spelling doaj-art-3a3197fba4884f8ca6c9395b03df37a42025-01-19T06:25:50ZengElsevierJournal of Materials Research and Technology2238-78542025-01-013419661989Investigate on surface/subsurface damage mechanisms and manufacturability of ultra-smooth surface in ultra-precision ductile grinding of sapphire opticsSheng Wang0Qinghe Zhang1Qingliang Zhao2Ming Zhou3Center for Precision Engineering, School of Mechatronics Engineering, Harbin Institute of Technology, Harbin, 150001, China; Corresponding author. P.O. Box 413, Harbin Institute of Technology, Harbin, 150001, China.Center for Precision Engineering, School of Mechatronics Engineering, Harbin Institute of Technology, Harbin, 150001, ChinaCenter for Precision Engineering, School of Mechatronics Engineering, Harbin Institute of Technology, Harbin, 150001, ChinaSchool of Mechatronic Engineering, Harbin Institute of Technology, Harbin, 150001, ChinaSapphire is a kind of high hard-brittle transparent single crystal material with excellent comprehensive properties in the aspects of mechanics, thermology and optics, which can be widely used in aviation, aerospace, medical treatment, high-energy laser and consumer electronics etc., especially in the service environments of high-temperature, high-pressure, and high-speed of the infrared field. Sapphire is the most ideal material for manufacturing complex curved optics of the advanced air vehicle. However, due to the extremely high hardness and fracture toughness of sapphire that has brought unprecedented huge challenges for the ultra-precision grinding techniques in terms of surface/subsurface damage characteristics and evolution mechanisms. In this paper, the surface/subsurface damage mechanisms and manufacturability of ultra-smooth surface in ultra-precision ductile grinding of sapphire were systematically investigated. Firstly, the manufacturing methods of the traditional ultra-smooth surface and their advantages and disadvantages were systematically investigated and discussed, and the formation principle in ultra-precision grinding of large-size sapphire complex surface optics with ultra-smooth surface was proposed. Secondly, the evolution characteristics of surface roughness, surface morphology and surface damage with the reduction of grain size of grinding wheel were studied. Thirdly, the subsurface damage mechanisms and microscopic characteristics in ultra-precision grinding of sapphire were researched, and the evolution processes and removal mechanisms of surface/subsurface damage were revealed. Then, the subsurface damage characteristics and evolution mechanisms in ultra-precision ductile grinding of sapphire were thoroughly researched based on TEM images. Ultimately, a sapphire planar optics with sub-nanoscale surface roughness, smooth ductile grinding surface and ductile subsurface were achieved.http://www.sciencedirect.com/science/article/pii/S2238785424030163Ultra-precision ductile grindingSapphireUltra-smooth surfaceSurface/subsurface damageEvolution mechanisms
spellingShingle Sheng Wang
Qinghe Zhang
Qingliang Zhao
Ming Zhou
Investigate on surface/subsurface damage mechanisms and manufacturability of ultra-smooth surface in ultra-precision ductile grinding of sapphire optics
Journal of Materials Research and Technology
Ultra-precision ductile grinding
Sapphire
Ultra-smooth surface
Surface/subsurface damage
Evolution mechanisms
title Investigate on surface/subsurface damage mechanisms and manufacturability of ultra-smooth surface in ultra-precision ductile grinding of sapphire optics
title_full Investigate on surface/subsurface damage mechanisms and manufacturability of ultra-smooth surface in ultra-precision ductile grinding of sapphire optics
title_fullStr Investigate on surface/subsurface damage mechanisms and manufacturability of ultra-smooth surface in ultra-precision ductile grinding of sapphire optics
title_full_unstemmed Investigate on surface/subsurface damage mechanisms and manufacturability of ultra-smooth surface in ultra-precision ductile grinding of sapphire optics
title_short Investigate on surface/subsurface damage mechanisms and manufacturability of ultra-smooth surface in ultra-precision ductile grinding of sapphire optics
title_sort investigate on surface subsurface damage mechanisms and manufacturability of ultra smooth surface in ultra precision ductile grinding of sapphire optics
topic Ultra-precision ductile grinding
Sapphire
Ultra-smooth surface
Surface/subsurface damage
Evolution mechanisms
url http://www.sciencedirect.com/science/article/pii/S2238785424030163
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AT qingliangzhao investigateonsurfacesubsurfacedamagemechanismsandmanufacturabilityofultrasmoothsurfaceinultraprecisionductilegrindingofsapphireoptics
AT mingzhou investigateonsurfacesubsurfacedamagemechanismsandmanufacturabilityofultrasmoothsurfaceinultraprecisionductilegrindingofsapphireoptics