Ultrasonic Measurement of Stress in SLM 316L Stainless Steel Forming Parts Manufactured Using Different Scanning Strategies

Selective Laser Melting (SLM) technology is a new kind of additive manufacturing technology developed in in the last decade. Measurement and control of stress in metal forming layer is the basic problem of SLM forming parts. Critical Refraction Longitudinal (LCR) wave method was used to measure stre...

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Main Authors: Xiaoling Yan, Jincheng Pang, Yanlong Jing
Format: Article
Language:English
Published: MDPI AG 2019-08-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/12/17/2719
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spelling doaj-bbaf7713723d42ba84418c438659ff5b2020-11-25T02:14:11ZengMDPI AGMaterials1996-19442019-08-011217271910.3390/ma12172719ma12172719Ultrasonic Measurement of Stress in SLM 316L Stainless Steel Forming Parts Manufactured Using Different Scanning StrategiesXiaoling Yan0Jincheng Pang1Yanlong Jing2College of Material Science and Mechanical Engineering, Beijing Technology and Business University, Beijing 102488, ChinaCollege of Material Science and Mechanical Engineering, Beijing Technology and Business University, Beijing 102488, ChinaCollege of Material Science and Mechanical Engineering, Beijing Technology and Business University, Beijing 102488, ChinaSelective Laser Melting (SLM) technology is a new kind of additive manufacturing technology developed in in the last decade. Measurement and control of stress in metal forming layer is the basic problem of SLM forming parts. Critical Refraction Longitudinal (LCR) wave method was used to measure stress. The acoustic-elastic formulas for measuring stresses in SLM 316L stainless steel forming parts manufactured using meander, stripe, and chess board scanning strategies, respectively, were established based on static load tensile test. The experimental results show that the acoustic time difference of LCR wave in SLM specimen manufactured with 316L stainless steel increases linearly with the increase of stress when the tensile stress is less than critical stress (372 MPa, 465 MPa, and 494 MPa). Due to the inhomogeneous deformation of the anisotropic SLM forming layer and the dimple-micropore aggregation fracture mechanism, the acousto-elastic curve fluctuates up and down along the irregular curve when the tensile stress is larger than critical stress. The results of corroboration experiments show that nondestructive measurement of stress in SLM forming specimen can be realized by using LCR wave method. The scanning strategy can significantly affect the tensile strength and yield strength of SLM forming specimen. The stresses were all in tension stress state at the edge of the specimens, whatever scanning strategy was used. Sub-area scanning and scanning sequence of alternate and intersect were adopted, which can effectively reduce the stress in the SLM forming specimen. The overall stress values of SLM forming specimen manufactured using chess board scanning strategy were smaller than that using meander and stripe strategies. The distribution of stress were more uniform.https://www.mdpi.com/1996-1944/12/17/2719SLM forming partsadditive manufacturingscanning strategiesstresscritical refraction longitudinal wave
collection DOAJ
language English
format Article
sources DOAJ
author Xiaoling Yan
Jincheng Pang
Yanlong Jing
spellingShingle Xiaoling Yan
Jincheng Pang
Yanlong Jing
Ultrasonic Measurement of Stress in SLM 316L Stainless Steel Forming Parts Manufactured Using Different Scanning Strategies
Materials
SLM forming parts
additive manufacturing
scanning strategies
stress
critical refraction longitudinal wave
author_facet Xiaoling Yan
Jincheng Pang
Yanlong Jing
author_sort Xiaoling Yan
title Ultrasonic Measurement of Stress in SLM 316L Stainless Steel Forming Parts Manufactured Using Different Scanning Strategies
title_short Ultrasonic Measurement of Stress in SLM 316L Stainless Steel Forming Parts Manufactured Using Different Scanning Strategies
title_full Ultrasonic Measurement of Stress in SLM 316L Stainless Steel Forming Parts Manufactured Using Different Scanning Strategies
title_fullStr Ultrasonic Measurement of Stress in SLM 316L Stainless Steel Forming Parts Manufactured Using Different Scanning Strategies
title_full_unstemmed Ultrasonic Measurement of Stress in SLM 316L Stainless Steel Forming Parts Manufactured Using Different Scanning Strategies
title_sort ultrasonic measurement of stress in slm 316l stainless steel forming parts manufactured using different scanning strategies
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2019-08-01
description Selective Laser Melting (SLM) technology is a new kind of additive manufacturing technology developed in in the last decade. Measurement and control of stress in metal forming layer is the basic problem of SLM forming parts. Critical Refraction Longitudinal (LCR) wave method was used to measure stress. The acoustic-elastic formulas for measuring stresses in SLM 316L stainless steel forming parts manufactured using meander, stripe, and chess board scanning strategies, respectively, were established based on static load tensile test. The experimental results show that the acoustic time difference of LCR wave in SLM specimen manufactured with 316L stainless steel increases linearly with the increase of stress when the tensile stress is less than critical stress (372 MPa, 465 MPa, and 494 MPa). Due to the inhomogeneous deformation of the anisotropic SLM forming layer and the dimple-micropore aggregation fracture mechanism, the acousto-elastic curve fluctuates up and down along the irregular curve when the tensile stress is larger than critical stress. The results of corroboration experiments show that nondestructive measurement of stress in SLM forming specimen can be realized by using LCR wave method. The scanning strategy can significantly affect the tensile strength and yield strength of SLM forming specimen. The stresses were all in tension stress state at the edge of the specimens, whatever scanning strategy was used. Sub-area scanning and scanning sequence of alternate and intersect were adopted, which can effectively reduce the stress in the SLM forming specimen. The overall stress values of SLM forming specimen manufactured using chess board scanning strategy were smaller than that using meander and stripe strategies. The distribution of stress were more uniform.
topic SLM forming parts
additive manufacturing
scanning strategies
stress
critical refraction longitudinal wave
url https://www.mdpi.com/1996-1944/12/17/2719
work_keys_str_mv AT xiaolingyan ultrasonicmeasurementofstressinslm316lstainlesssteelformingpartsmanufacturedusingdifferentscanningstrategies
AT jinchengpang ultrasonicmeasurementofstressinslm316lstainlesssteelformingpartsmanufacturedusingdifferentscanningstrategies
AT yanlongjing ultrasonicmeasurementofstressinslm316lstainlesssteelformingpartsmanufacturedusingdifferentscanningstrategies
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