Precision-improving manufacturing produces ordered ultra-fine grained surface layer of tungsten heavy alloy through ultrasonic elliptical vibration cutting

High-precision and ultra-fine grained surface of tungsten heavy alloy exhibits superior service performance that is useful for many applications and shows promises for use as key parts in nuclear protection and precision instruments. The present study concentrated on a kind of precision-improving ul...

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Published in:Materials & Design
Main Authors: Jinxuan Bai, Zhiwei Xu, Linmao Qian
Format: Article
Language:English
Published: Elsevier 2022-08-01
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S0264127522004816
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author Jinxuan Bai
Zhiwei Xu
Linmao Qian
author_facet Jinxuan Bai
Zhiwei Xu
Linmao Qian
author_sort Jinxuan Bai
collection DOAJ
container_title Materials & Design
description High-precision and ultra-fine grained surface of tungsten heavy alloy exhibits superior service performance that is useful for many applications and shows promises for use as key parts in nuclear protection and precision instruments. The present study concentrated on a kind of precision-improving ultrasonic elliptic vibration cutting approaches, which fabricated nanometer-level surface roughness, inhibited subsurface damages evolution, and formed continuous ultra-fine grained layer microstructure. The surface morphologies have been characterized by ultra-depth three dimensional microscope and white light interferometer. Excellent machined surface quality was achieved under ultrasonic elliptic vibration cutting condition, and an ideal surface roughness of Sa = 70.7 nm was obtained. Microstructural alteration studied using EBSD technique and TEM observation confirmed the generation of ultra-fine grained structure. Surface grain size has been reduced from 50 ∼ 100 μm to 50 ∼ 300 nm without cracks and other micro-damages. Research demonstrated that surface energy accumulation and dislocations clustering induced by high-strain rate diamond tool impact provided the primary driving force of ductile-mode removal and grain recrystallization. A dislocation density-based simulation model was carried out to complement the static experimental investigations. The present work on surface formation and microstructural evolution identified that ultrasonic elliptical vibration machining has potential to deliver improved tungsten-based alloys service performance.
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spelling doaj-art-e2b7a14abd3d49f68ebed2c976e64a7f2025-08-19T21:36:14ZengElsevierMaterials & Design0264-12752022-08-0122011085910.1016/j.matdes.2022.110859Precision-improving manufacturing produces ordered ultra-fine grained surface layer of tungsten heavy alloy through ultrasonic elliptical vibration cuttingJinxuan Bai0Zhiwei Xu1Linmao Qian2Corresponding author.; School of Mechanical Engineering, Southwest Jiaotong University, Chengdu City 610031, PR ChinaSchool of Mechanical Engineering, Southwest Jiaotong University, Chengdu City 610031, PR ChinaSchool of Mechanical Engineering, Southwest Jiaotong University, Chengdu City 610031, PR ChinaHigh-precision and ultra-fine grained surface of tungsten heavy alloy exhibits superior service performance that is useful for many applications and shows promises for use as key parts in nuclear protection and precision instruments. The present study concentrated on a kind of precision-improving ultrasonic elliptic vibration cutting approaches, which fabricated nanometer-level surface roughness, inhibited subsurface damages evolution, and formed continuous ultra-fine grained layer microstructure. The surface morphologies have been characterized by ultra-depth three dimensional microscope and white light interferometer. Excellent machined surface quality was achieved under ultrasonic elliptic vibration cutting condition, and an ideal surface roughness of Sa = 70.7 nm was obtained. Microstructural alteration studied using EBSD technique and TEM observation confirmed the generation of ultra-fine grained structure. Surface grain size has been reduced from 50 ∼ 100 μm to 50 ∼ 300 nm without cracks and other micro-damages. Research demonstrated that surface energy accumulation and dislocations clustering induced by high-strain rate diamond tool impact provided the primary driving force of ductile-mode removal and grain recrystallization. A dislocation density-based simulation model was carried out to complement the static experimental investigations. The present work on surface formation and microstructural evolution identified that ultrasonic elliptical vibration machining has potential to deliver improved tungsten-based alloys service performance.http://www.sciencedirect.com/science/article/pii/S0264127522004816Tungsten heavy alloysUltrasonic elliptical vibration cuttingBrittle-to ductile transitionNanometer-level surface precisionUltra-fine grained surface layer
spellingShingle Jinxuan Bai
Zhiwei Xu
Linmao Qian
Precision-improving manufacturing produces ordered ultra-fine grained surface layer of tungsten heavy alloy through ultrasonic elliptical vibration cutting
Tungsten heavy alloys
Ultrasonic elliptical vibration cutting
Brittle-to ductile transition
Nanometer-level surface precision
Ultra-fine grained surface layer
title Precision-improving manufacturing produces ordered ultra-fine grained surface layer of tungsten heavy alloy through ultrasonic elliptical vibration cutting
title_full Precision-improving manufacturing produces ordered ultra-fine grained surface layer of tungsten heavy alloy through ultrasonic elliptical vibration cutting
title_fullStr Precision-improving manufacturing produces ordered ultra-fine grained surface layer of tungsten heavy alloy through ultrasonic elliptical vibration cutting
title_full_unstemmed Precision-improving manufacturing produces ordered ultra-fine grained surface layer of tungsten heavy alloy through ultrasonic elliptical vibration cutting
title_short Precision-improving manufacturing produces ordered ultra-fine grained surface layer of tungsten heavy alloy through ultrasonic elliptical vibration cutting
title_sort precision improving manufacturing produces ordered ultra fine grained surface layer of tungsten heavy alloy through ultrasonic elliptical vibration cutting
topic Tungsten heavy alloys
Ultrasonic elliptical vibration cutting
Brittle-to ductile transition
Nanometer-level surface precision
Ultra-fine grained surface layer
url http://www.sciencedirect.com/science/article/pii/S0264127522004816
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AT zhiweixu precisionimprovingmanufacturingproducesorderedultrafinegrainedsurfacelayeroftungstenheavyalloythroughultrasonicellipticalvibrationcutting
AT linmaoqian precisionimprovingmanufacturingproducesorderedultrafinegrainedsurfacelayeroftungstenheavyalloythroughultrasonicellipticalvibrationcutting