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Ketov, S. V. et al. Rejuvenation of metallic glasses by non-affine thermal strain.
The steel free thermal strain is not included.
Additionally, as with the summed diffraction data presented in Fig. 4, the Ni lattice parameter a and thermal strain could be extracted from the XRD-CT data.
From Fig. 4 it is clear the Ni lattice parameter a, thus thermal strain, changes by negligible amounts over the course of the six thermal cycles.
The main technical strategy involves nitrogen implantation into free-standing iron foils and transformation into Fe16N2 phase assisted by the thermal strain during the annealing process.
Among thermal and deformation properties; thermal conductivity, specific heat capacity, mass loss, free thermal strain and load-induced thermal strain are discussed.
For thermal strain measurements a laser speckle based dilatometer (LSBD) was designed.
The temperature field determines the thermal strain in beryllium, which in turn changes the temperature field.
A simple analysis of thermal strain of this material supports the observed thermal expansion behavior.
The Ni thermal strain was calculated based on previously reported methods42, which includes calculating the change in Ni lattice parameter a with respect to the maximum value from all XRD-CT datasets.
A two-way coupling between the thermal strain and temperature field is also studied, in the context of a change in thermal conductivity of the beryllium pebble bed in a solid breeder blanket TBM due to thermal strain.
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