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Data were analyzed using mixture design modelling and optimization.
This paper presents the results of an experimental program in which the mixture design modelling approach was used in order to optimize the composition of a high performance concrete (HPC) formulated from local materials of the area of Laghouat Algeriaa).
A mixture design modelling approach was used to highlight the effects of river sand (RS), crushed sand (CS) and dune sand (DS) as proportions in binary and ternary systems, on flowability, passing ability, segregation and mechanical strength of SCC.
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Mixture design modeling and Gibbs Energy Minimization Software GEMSS) were adopted to discuss the compressive strength and hydration characteristics of binary and ternary systems, respectively.
The statistical analysis based on mixture design model was proposed in order to define an adequate tool to describe the mechanical properties relationships of composite mixture.
The experimental data and the results of mixture design modeling suggested that, with an increase in MSWI FA in GGBFS-MSWI FA binary, the compressive strength exhibited an inverted 'V' shape.
A simplex-centroid mixture design model was used to evaluate the effects of the added fibers on composite properties such as resilience, elastic modulus and deformation under permanent compression.
The contour plots of the mixture design model were two-dimensional representations of the responses plotted against combinations of the mixture components.
In a mixture design, model terms values are hardly analysable directly since factors are not independent (their sum is constant).
Raw values for the 6 studied responses and the 2 mixture designs were modelled as a function of the 3 factors (inducer, xylose and glucose contents) using a quadratic model: Y = a Ind + b Xyl + c Glu + d Ind Xyl + e Ind Glu + f Xyl Glu where [Ind], [Xyl] and [Glu] are the sugar contents (mass fraction of total sugars) for inducer, xylose and glucose respectively.
In this study, a mixture design (MD) model was used to find an optimum amount of different typical apatite anionic collectors (Atrac, Alke and Dirol) and make an efficient mixture for the direct flotation of a low grade apatite ore.
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