Dynamic response of 3D printed functionally graded sandwich foams

dc.contributor.authorBonthu, D.
dc.contributor.authorBharath, B.
dc.contributor.authorBekinal, S.I.
dc.contributor.authorJeyaraj, J.
dc.contributor.authorDoddamani, M.
dc.date.accessioned2026-02-04T12:25:56Z
dc.date.issued2023
dc.description.abstractPurpose: The purpose of this study was to introduce three-dimensional printing (3DP) of functionally graded sandwich foams (FGSFs). This work was continued by predicting the mechanical buckling and free vibration behavior of 3DP FGSFs using experimental and numerical analyses. Design/methodology/approach: Initially, hollow glass microballoon-reinforced high-density polyethylene-based polymer composite foams were developed, and these materials were extruded into their respective filaments. These filaments are used as feedstock materials in fused filament fabrication based 3DP for the development of FGSFs. Scanning electron microscopy analysis was performed on the freeze-dried samples to observe filler sustainability. Furthermore, the density, critical buckling load (P<inf>cr</inf>), natural frequency (f<inf>n</inf>) and damping factor of FGSFs were evaluated. The critical buckling load (P<inf>cr</inf>) of the FGSFs was estimated using the double-tangent method and modified Budiansky criteria. Findings: The density of FGSFs decreased with increasing filler percentage. The mechanical buckling load increased with the filler percentage. The natural frequency corresponding to the first mode of the FGSFs exhibited a decreasing trend with an increasing load in the pre-buckling regime and an increase in post-buckled zone, whereas the damping factor exhibited the opposite trend. Originality/value: The current research work is valuable for the area of 3D printing by developing the functionally graded foam based sandwich beams. Furthermore, it intended to present the buckling behavior of 3D printed FGSFs, variation of frequency and damping factor corresponding to first three modes with increase in load. © 2023, Emerald Publishing Limited.
dc.identifier.citationRapid Prototyping Journal, 2023, 29, 10, pp. 2257-2271
dc.identifier.issn13552546
dc.identifier.urihttps://doi.org/10.1108/RPJ-01-2023-0016
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/21608
dc.publisherEmerald Publishing
dc.subject3D printing
dc.subjectBuckling
dc.subjectDamping
dc.subjectFillers
dc.subjectFoams
dc.subjectHigh density polyethylenes
dc.subjectScanning electron microscopy
dc.subjectVibration analysis
dc.subject3-D printing
dc.subject3D-printing
dc.subjectCritical buckling loads
dc.subjectDamping factors
dc.subjectFrequency factors
dc.subjectFunctionally graded
dc.subjectGMB
dc.subjectMechanical
dc.subjectSandwich foam
dc.subjectVibration
dc.subjectNatural frequencies
dc.titleDynamic response of 3D printed functionally graded sandwich foams

Files

Collections