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The values obtained agreed with those in literature and were dependent on both foam density and chemical composition.
The obtained results reveal that adding nanoclay increases the cell density and decreases both foam density and cell size of ABS/nanoclay composite foams compared to the pure ABS foams.
Unlike existing uniform or mono-gradient structures, this paper introduces a novel dual functionally graded structure with changing both foam density and wall thickness along the transverse direction, namely transverse functionally graded foam-filled and functionally graded wall thickness (FGF-FGT) structures.
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Both the peak stress and absorbed energy were found to be dependent on foam density and strain rate, although foam density was found to be a more dominating factor.
Foam density and thickness were varied to determine the effect on the sandwich panel behavior.
Moreover, the foam density and cell morphology were insensitive to foaming temperature for LDPE but sensitive for LLDPE.
According to different combinations of gradient directions in foam density and wall thickness, four different patterns are considered here.
Drop weight tests were carried out involving different impact energy, foam density and stacking sequences.
Overall foam density and strength increase with increasing starch concentration, molecular weight and amylose content.
The foam thickness, the foam density, and shell thickness being selected as the design factors for the response surface generation and design optimization.
The cell morphology was characterized by scanning electron microscopy and the foam density and cell density were measured.
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