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We show the simulation results of channel compression of the proposed scheme in Figs. 4 and 5.
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The present study attempts to find out the similarity and dissimilarity in structure and mechanical properties of PA6 deformed by channel die compression and by a new method combining the compression and rolling and which is known as rolling with side constraints.
Single crystals of the Goss orientation, {011}〈100〉, containing large (> 2 μm) silicon particles have been deformed in channel die compression.
Our results clearly demonstrate that crystallographic texturing in UHMWPE, especially molecular orientation along the flow direction, can be controlled by channel die compression.
The influence of deformation temperature on the hot rolling textures of aluminium alloys has been investigated by channel die compression tests on Al1%Mn1%Mn polycrystals and oriented single crystals in the temperature range 200 400°C.
The evolution of microstructure and local crystallography has been examined in single crystals of {112}〈111〉 orientation of pure Al deformed at room temperature by channel die compression to strains of ϵ=0.5 and ϵ=1.5.
The evolution of microstructure and local crystallography has been examined in pure Al single crystals of {110}〈112〉 orientation (brass or B-orientation) deformed by channel die compression at room temperature to logarithmic strains of ϵ=0.5 and ϵ=1.5.
To minimize the time to transmit a large amount of data over a narrow-bandwidth communication channel, image compression can be used to reduce the file size of the iris image.
A new high temperature channel-die compression equipment is introduced.
VLSI hardware implementation of these functions, within the design constraints of a 32-channel neural compression implant, is presented.
The study showed that the ultimate load of the lipped channels under compression varied greatly with the perforation position.
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