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MWNTs nanofluids were also prepared using the physical mixing method [7].
In previous study, the enhancements of the thermal conductivity of ethylene glycol and synthetic engine oil in the presence of CuO nanoparticles and MWNTs were investigated using the physical mixing method [6, 7].
As mentioned above, no matter using the physical mixing of LFP with graphene sheets or the in situ growing of the LFP on graphene sheets, the preparation of individual graphene sheets is prerequisite.
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Physical addition, the simplest method, requires the physical mixing of previously synthesised magnetic nanoparticles and PNIPAAm particles.
In previous study, CuO nanofluids were prepared by the physical mixing method (two-step method) [6].
In this study, enhancements of thermal conductivities of ethylene glycol, water, and synthetic engine oil in the presence of copper (Cu), copper oxide (CuO), and multi-walled carbon nanotube (MWNT) are investigated using both physical mixing method (two-step method) and chemical reduction method (one-step method).
Hence, it can be concluded that the incorporation of less than 1.5 wt% MWCNTs using physical mixing preserves the characteristic lattice structure of the Mg-MOF-74 framework.
However, samples prepared using the dry-mix approach demonstrate better physical and mechanical properties when compared to wet-mix samples.
The evolutions of Lagrangian particles in physical and scalar composition spaces are modeled by using the mixing model for molecular diffusion and the resolved velocity field of LES.
Combine well using the mixing spoon.
Mixes were designed using the Marshall mix design method.
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