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The development of a model directed to the geothermal energy field will bring immediate benefits to the state, like a clean and sustainable energetic matrix.
There is a global trend impelling the transformation of energetic matrix from fossil to renewable feedstock.
The participation of renewable sources in the energetic matrix is among the highest in the world, although there has been a slight reduction (1.8%) from 2011 to 2012, due to lower supply of hydropower and ethanol [1].
The synthesis of cellulases by microorganisms from lignocellulosic residues is a process of great interest, representing the search for renewable sources to replace the fossil energetic matrix.
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In this article, we characterize the combustion characteristics of electrospray assembled micron scale particles composed of commercial nano-aluminum (ALEX), bound in an energetic polymer matrix composed of nitrocellulose.
The resulting inter-residue energetic interaction matrix describes all first-order interactions for the molecular structure analysed.
The growing demand for energy for transportation and industrial processes stimulates the search for new energetic renewable matrixes to replace fossil fuels that have limited reserves, turning feasible the use of agroindustrial residues that besides being abundant reduce the environmental impact [ 1, 2].
The change in contact angles for the modified polymers was explained by a two-step chemical reaction between the polymer matrix, energetic ions and oxygen gas.
Two experiments were performed to determine the best strategy of use of the product TRACTcare® 4P (ITPSA) (TC, specific immunoglobulin-rich egg yolk powder within an energetic fatty acid matrix) in piglets from weaning and for 6 weeks, in diets without or with inclusion of antibiotics.
For a given value of the matrix ligament, an energetic approach provides a nucleation condition comparing the ratio of the interfacial toughness over the matrix toughness to a critical value depending on the elastic mismatch between the fibre and the matrix and the decohesion length.
An inert polymer bonded simulant of sugar in a hydroxy-terminated polybutadiene (HTPB) matrix, represented the energetic filling.
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