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Carbon-carbon composites are closely related to CMCs but differ in the methods by which they are produced.
Utility properties of such composites are closely approaching the level of standard quality.
The dielectric properties of the composites are closely related to the length of CNTs and the loading level of TiO2-nanorods on the CNT surfaces.
It is verified that the predicted results are in good agreement with the experimental data and the effective properties of the 3D needled C/C-SiC composites are closely related with the needling parameters, which would be helpful to guide the manufacturing and design of the composites in the engineering.
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The improved electrochemical performance of the composites is closely related to its sandwich structure, with multicomponent Cu2O-CuO nanospheres adhering tightly to both sides of RGO nanosheets.
Their dielectric properties were studied in X-band, and the results showed that the complex permittivity of the composites was closely correlated with the carbonization degree of PAN cloth.
The enhanced electrochemical performance of the composite is closely related to its unique structure, such as 1D mesoporous morphology of CoO NRs and its tightly-contacting with rGO nanosheets, which could shorten the transport pathway for both electrons and ions, enhance the electrical conductivity and accommodate the volume expansion during prolonged cycling.
The effective properties of composite materials are closely related to the composition and arrangement of its constituents.
Failure mechanisms of fibre reinforced composite structures are closely related to processes within the heterogeneous material.
Moreover, the friction and wear behaviors of Ni CeO2 composite coatings are closely related with CeO2 content.
The radius parameters and the maximum allowed rotational speed of the hybrid composite flywheel are closely related to the optimal schemes.
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