Current Trends in Integration of Nondestructive Testing Methods for Engineered Materials Testing

Material failure may occur in a variety of situations dependent on stress conditions, temperature, and internal or external load conditions. Many of the latest engineered materials combine several material types i.e., metals, carbon, glass, resins, adhesives, heterogeneous and nanomaterials (organic...

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Main Authors: Ramesh Kumpati, Wojciech Skarka, Sunith Kumar Ontipuli
Format: Article
Language:English
Published: MDPI AG 2021-09-01
Series:Sensors
Subjects:
Online Access:https://www.mdpi.com/1424-8220/21/18/6175
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spelling doaj-b287a0c26ed045d782947bf929a05c742021-09-26T01:23:19ZengMDPI AGSensors1424-82202021-09-01216175617510.3390/s21186175Current Trends in Integration of Nondestructive Testing Methods for Engineered Materials TestingRamesh Kumpati0Wojciech Skarka1Sunith Kumar Ontipuli2Department of Fundamentals of Machinery Design, Silesian University of Technology, 44-100 Gliwice, PolandDepartment of Fundamentals of Machinery Design, Silesian University of Technology, 44-100 Gliwice, PolandDepartment of Aeronautical Engineering, Marri Laxman Reddy Institute of Technology, Dundigal 500043, Telangana, IndiaMaterial failure may occur in a variety of situations dependent on stress conditions, temperature, and internal or external load conditions. Many of the latest engineered materials combine several material types i.e., metals, carbon, glass, resins, adhesives, heterogeneous and nanomaterials (organic/inorganic) to produce multilayered, multifaceted structures that may fail in ductile, brittle, or both cases. Mechanical testing is a standard and basic component of any design and fabricating process. Mechanical testing also plays a vital role in maintaining cost-effectiveness in innovative advancement and predominance. Destructive tests include tensile testing, chemical analysis, hardness testing, fatigue testing, creep testing, shear testing, impact testing, stress rapture testing, fastener testing, residual stress measurement, and XRD. These tests can damage the molecular arrangement and even the microstructure of engineered materials. Nondestructive testing methods evaluate component/material/object quality without damaging the sample integrity. This review outlines advanced nondestructive techniques and explains predominantly used nondestructive techniques with respect to their applications, limitations, and advantages. The literature was further analyzed regarding experimental developments, data acquisition systems, and technologically upgraded accessory components. Additionally, the various combinations of methods applied for several types of material defects are reported. The ultimate goal of this review paper is to explain advanced nondestructive testing (NDT) techniques/tests, which are comprised of notable research work reporting evolved affordable systems with fast, precise, and repeatable systems with high accuracy for both experimental and data acquisition techniques. Furthermore, these advanced NDT approaches were assessed for their potential implementation at the industrial level for faster, more accurate, and secure operations.https://www.mdpi.com/1424-8220/21/18/6175compositesengineering materialsacousticinfrared thermographynondestructive testing methods
collection DOAJ
language English
format Article
sources DOAJ
author Ramesh Kumpati
Wojciech Skarka
Sunith Kumar Ontipuli
spellingShingle Ramesh Kumpati
Wojciech Skarka
Sunith Kumar Ontipuli
Current Trends in Integration of Nondestructive Testing Methods for Engineered Materials Testing
Sensors
composites
engineering materials
acoustic
infrared thermography
nondestructive testing methods
author_facet Ramesh Kumpati
Wojciech Skarka
Sunith Kumar Ontipuli
author_sort Ramesh Kumpati
title Current Trends in Integration of Nondestructive Testing Methods for Engineered Materials Testing
title_short Current Trends in Integration of Nondestructive Testing Methods for Engineered Materials Testing
title_full Current Trends in Integration of Nondestructive Testing Methods for Engineered Materials Testing
title_fullStr Current Trends in Integration of Nondestructive Testing Methods for Engineered Materials Testing
title_full_unstemmed Current Trends in Integration of Nondestructive Testing Methods for Engineered Materials Testing
title_sort current trends in integration of nondestructive testing methods for engineered materials testing
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2021-09-01
description Material failure may occur in a variety of situations dependent on stress conditions, temperature, and internal or external load conditions. Many of the latest engineered materials combine several material types i.e., metals, carbon, glass, resins, adhesives, heterogeneous and nanomaterials (organic/inorganic) to produce multilayered, multifaceted structures that may fail in ductile, brittle, or both cases. Mechanical testing is a standard and basic component of any design and fabricating process. Mechanical testing also plays a vital role in maintaining cost-effectiveness in innovative advancement and predominance. Destructive tests include tensile testing, chemical analysis, hardness testing, fatigue testing, creep testing, shear testing, impact testing, stress rapture testing, fastener testing, residual stress measurement, and XRD. These tests can damage the molecular arrangement and even the microstructure of engineered materials. Nondestructive testing methods evaluate component/material/object quality without damaging the sample integrity. This review outlines advanced nondestructive techniques and explains predominantly used nondestructive techniques with respect to their applications, limitations, and advantages. The literature was further analyzed regarding experimental developments, data acquisition systems, and technologically upgraded accessory components. Additionally, the various combinations of methods applied for several types of material defects are reported. The ultimate goal of this review paper is to explain advanced nondestructive testing (NDT) techniques/tests, which are comprised of notable research work reporting evolved affordable systems with fast, precise, and repeatable systems with high accuracy for both experimental and data acquisition techniques. Furthermore, these advanced NDT approaches were assessed for their potential implementation at the industrial level for faster, more accurate, and secure operations.
topic composites
engineering materials
acoustic
infrared thermography
nondestructive testing methods
url https://www.mdpi.com/1424-8220/21/18/6175
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