Dynamic Response of 3D-Printing Heterogeneous Beam

dc.contributor.advisorKhan, Muhammad
dc.contributor.authorAlhamdan, Naif
dc.date.accessioned2024-12-31T08:54:16Z
dc.date.issued2023-08
dc.description.abstractHeterogeneous structures differ in composition, characteristics, and spatial distribution. These structures have non-uniform composition, features, or spatial distribution. High-temperature structural components and thermal barrier materials have been investigated for FGMs in aerospace engineering. Their design has also been utilised in high-speed aeronautical vehicles. This work predicts the dynamic response of inhomogeneous beams by studying structural factors' mechanical behaviour. Structures with inhomogeneity, such as fractures and segment locations, must behave reliably non many engineering applications. The study methodically examines how inhomogeneity, crack depth, and segment position affect fundamental frequency and resonance amplitude. The results indicate if that specific segment with lower infill density is far away from the beam's fixed end, the natural frequency results are higher. An empirical model with 0.96 R-square value was developed to estimate the fundamental frequency for the beam with local inhomogeneity and was validated.
dc.format.extent67
dc.identifier.urihttps://hdl.handle.net/20.500.14154/74534
dc.language.isoen
dc.publisherCranfield University
dc.subjectHeterogeneous
dc.subjectInhomogeneous
dc.subjectDynamic Response
dc.subject3D Printing
dc.subjectFundamental Frequency
dc.subjectResonance Amplitude
dc.subjectCantilever Beam
dc.titleDynamic Response of 3D-Printing Heterogeneous Beam
dc.typeThesis
sdl.degree.departmentSchool of Aerospace Transport and Manufacturing
sdl.degree.disciplineManufacturing
sdl.degree.grantorCranfield University
sdl.degree.nameMaster of Aerospace Manufacturing

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