In-situ dynamic response measurement for damage quantification of 3D printed ABS cantilever beam under thermomechanical load

dc.contributor.authorBaqasah, Hamzah
dc.contributor.authorHe, Feiyang
dc.contributor.authorZai, Behzad A.
dc.contributor.authorAsif, Muhammad
dc.contributor.authorKhan, Kamran Ahmed
dc.contributor.authorThakur, Vijay Kumar
dc.contributor.authorKhan, Muhammad A.
dc.date.accessioned2020-01-07T10:50:44Z
dc.date.available2020-01-07T10:50:44Z
dc.date.issued2019-12-12
dc.description.abstractAcrylonitrile butadiene styrene (ABS) offers good mechanical properties and is effective in use to make polymeric structures for industrial applications. It is one of the most common raw material used for printing structures with fused deposition modeling (FDM). However, most of its properties and behavior are known under quasi-static loading conditions. These are suitable to design ABS structures for applications that are operated under static or dead loads. Still, comprehensive research is required to determine the properties and behavior of ABS structures under dynamic loads, especially in the presence of temperature more than the ambient. The presented research was an effort mainly to provide any evidence about the structural behavior and damage resistance of ABS material if operated under dynamic load conditions coupled with relatively high-temperature values. A non-prismatic fixed-free cantilever ABS beam was used in this study. The beam specimens were manufactured with a 3D printer based on FDM. A total of 190 specimens were tested with a combination of different temperatures, initial seeded damage or crack, and crack location values. The structural dynamic response, crack propagation, crack depth quantification, and their changes due to applied temperature were investigated by using analytical, numerical, and experimental approaches. In experiments, a combination of the modal exciter and heat mats was used to apply the dynamic loads on the beam structure with different temperature values. The response measurement and crack propagation behavior were monitored with the instrumentation, including a 200× microscope, accelerometer, and a laser vibrometer. The obtained findings could be used as an in-situ damage assessment tool to predict crack depth in an ABS beam as a function of dynamic response and applied temperature.en_UK
dc.identifier.citationHamzah B, Feiyang H, Behzad AZ, et al., (2019) In-situ dynamic response measurement for damage quantification of 3D printed ABS cantilever beam under thermomechanical load. Polymers, Volume 11, Issue 12, December 2019, Article number 2079en_UK
dc.identifier.cris25723622
dc.identifier.issn2073-4360
dc.identifier.urihttps://doi.org/https://doi.org/10.3390/polym11122079
dc.identifier.urihttps://dspace.lib.cranfield.ac.uk/handle/1826/14911
dc.language.isoenen_UK
dc.publisherMDPIen_UK
dc.rightsAttribution 4.0 International*
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/*
dc.subjectacrylonitrile butadiene styreneen_UK
dc.subjectdynamic responseen_UK
dc.subjectfatigueen_UK
dc.subjectcrack propagationen_UK
dc.subjectfused deposition modelingen_UK
dc.subjectFDMen_UK
dc.subjectFused filament fabricationen_UK
dc.subjectmodal analysisen_UK
dc.subjectcantilever beamen_UK
dc.titleIn-situ dynamic response measurement for damage quantification of 3D printed ABS cantilever beam under thermomechanical loaden_UK
dc.typeArticleen_UK

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