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Figure 4 Typical pore size distributions for temperature-sensitive ceramics.
Typical pore size distribution for temperature-sensitive bulk ceramics are shown in Figure 4.
The permeability K can be expressed by (Nield and Bejan, 1998): K = frac{{r_{text{f}}^2 (1 - varphi )^3 }}{{180varphi ^2 }}, (8 where rf is the typical pore size of the network.
We also reported that gels with the lowest D exhibited diffusion hindrance closest to the large physiologic hindrance of brain tissue, which has a typical pore size much smaller than ECM gels.
T1,2 relaxation measurements performed on fully water saturated cores resolved a typical pore size corresponding to large pore body, which is affected by stress application particularly beyond the yield point.
Using atomic force microscopy, we found that the soluble extract of the excretion had the capacity to form a nanofibrillar scaffold composed of uniform ∼10 nm nanofibers with a typical pore size of ∼40 nm, while the insoluble extract formed some nanofibers without specific structure.
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Typical pore sizes are between 1 and 10 μm.
As a result, all the LaMn1±xO3 samples revealed a single mesoporous phase of perovskite with typical pore sizes from 2 to 5 nm.
The nanoparticles were prepared in the presence of excess amounts of aspartic acid, alanine or arginine, and subsequently organised into macroporous frameworks with typical pore sizes of 100 200 μm during thermal degradation of the dextran matrix.
The surface connected porosity of the as-sprayed ceramic coating shows a typical bimodal pore size distribution.
Most importantly, the micropore size distribution of the sample is centralized at about 0.54 nm, which coincides with the typical micropore pore size of ZSM-5 zeolite.
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