Evaluation of Subsurface Defects Using Pulsed Thermography and Laser Shearography of Additively Manufactured AlSi10Mg Alloy Made by Laser Powder Bed Fusion Process

IF 0.9 4区 材料科学 Q4 MATERIALS SCIENCE, CHARACTERIZATION & TESTING
Remakanthan S, Digendranath Swain, Anil Kumar V, Rohit Kumar Gupta
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Abstract

Modern techniques such as laser-based additive manufacturing (LBAM) technologies are being used nowadays in many industries for the fabrication of components of complicated geometries in smaller lead times. To compete with the conventional fabrication route, additive manufacturing (AM) technology must progress with appropriate NDE methods to ensure defect-free components. The common defects noticed in the AM components are gas porosities, clusters of porosities, micro-cracks, balling, lack of fusion and layer delamination among others. This paper aims to inspect subsurface defects in AM products which are one of the more challenging issues in AM. The surface finish of the AM components in as-printed condition is not amenable for the detection of subsurface defects for NDE using contact methods, e.g. ultrasonic techniques. Laser shearography and pulsed thermography by thermal excitation are extensively used as noncontact NDT techniques for the detection of subsurface defects in composite materials. Noncontacting NDT techniques may play a significant role in the in-process inspection of  AM components, especially subsurface defects. This paper presents the capability, advantages and limitations of pulsed thermography and laser shearography techniques for the assessment of engineered defects in aluminum alloy coupon made through the laser powder bed fusion (LPBF) AM process.

Abstract Image

激光粉末床熔合增材AlSi10Mg合金亚表面缺陷的脉冲热成像和激光剪切成像评价
现代技术,如基于激光的增材制造(LBAM)技术,如今在许多行业中被用于在更短的交货时间内制造复杂几何形状的部件。为了与传统的制造路线竞争,增材制造(AM)技术必须采用适当的无损检测方法,以确保部件无缺陷。增材制造部件中常见的缺陷有气孔、气孔簇、微裂纹、球化、缺乏熔合和层脱层等。本文旨在检测增材制造产品的亚表面缺陷,这是增材制造中最具挑战性的问题之一。在打印状态下,增材制造部件的表面光洁度不适合使用接触方法(例如超声波技术)检测无损检测的亚表面缺陷。激光剪切成像和热激发脉冲热成像作为一种非接触式无损检测技术被广泛应用于复合材料表面缺陷的检测。非接触式无损检测技术可以在增材制造部件的过程检测中发挥重要作用,特别是表面下缺陷的检测。本文介绍了脉冲热成像技术和激光剪切成像技术在激光粉末床熔合增材制造铝合金件工程缺陷评估中的能力、优点和局限性。
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来源期刊
Russian Journal of Nondestructive Testing
Russian Journal of Nondestructive Testing 工程技术-材料科学:表征与测试
CiteScore
1.60
自引率
44.40%
发文量
59
审稿时长
6-12 weeks
期刊介绍: Russian Journal of Nondestructive Testing, a translation of Defectoskopiya, is a publication of the Russian Academy of Sciences. This publication offers current Russian research on the theory and technology of nondestructive testing of materials and components. It describes laboratory and industrial investigations of devices and instrumentation and provides reviews of new equipment developed for series manufacture. Articles cover all physical methods of nondestructive testing, including magnetic and electrical; ultrasonic; X-ray and Y-ray; capillary; liquid (color luminescence), and radio (for materials of low conductivity).
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