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Electrochemical and mechanical experiments were conducted to analyze the environmentally influenced cracking behavior of a bulk amorphous metal, Zr41.2Ti13.8Cu12.5Ni10Be22.5.
The deformation behavior of a bulk amorphous Zr 10Al 5Ti 17.9Cu 14.6Ni alloy was characterized in the supercooled liquid region.
The deformation behavior of a bulk Cu47Ti33Zr11Ni6Sn2Si1 metallic glass, fabricated by injection casting, has been characterized in the supercooled liquid region.
To ensure that the thin film could replicate the corrosion behavior of a bulk steel, the electrochemical polarization tests were performed.
The quantum conductance with zero temperature coefficient was observed at low electric field strength E (bias voltage |Vb| < 0.3 V) but thermionic conductance dominated at higher E (|Vb| > 0.8 V) leading to the conductance increase with temperature, opposite to the behavior of a bulk Ni metal.
Nevertheless these single-cell data are still consistent with the behavior of a bulk culture, as can be seen by comparing the AI response curves of single cells and a bulk culture under the same growth conditions.
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It is important to note here that it is difficult to predict the thermal behavior of a bulk-heterojunction (BHJ) solar cell through the bare analysis of the T g of pristine materials due to several factors.
The compressive and tensile deformation, as well as the fracture behavior of a Zr59Cu20Al10Ni8Ti3 bulk metallic glass were investigated.
In the present study, the stress gradient is shown to significantly affect the deformation behavior of a monolithic bulk metallic glass (BMG) at room temperature under tensile loading.
We report the fatigue damage behavior of a Zr61Ti2Cu25Al12 (ZT1) bulk metallic glass (BMG), which was known to have a record-high fracture toughness.
The roles of free volume and residual stress in affecting the fracture and fatigue behavior of a Zr44Ti11Ni10Cu10Be25 bulk metallic glass are examined.
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