Influence of Mechanical and Electric Current Activation on the Mechanism of Formation and the Properties of Bulk B<sub>4</sub>C-TiB<sub>2</sub> Composites Obtained by Reactive Sintering

The preparation of dense nanostructured B4C-TiB2 is investigated through the combination of mechanical (Ball Milling) and electric current (Spark Plasma Sintering or SPS) activation of Ti, B and graphite powders. The full conversion of 8h milled reactants is obtained at much lower temperature (about...

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Main Authors: L. Nikzad, R. Orru, R. Licheri, G. Cao
Format: Article
Language:English
Published: AIDIC Servizi S.r.l. 2013-06-01
Series:Chemical Engineering Transactions
Online Access:https://www.cetjournal.it/index.php/cet/article/view/6673
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spelling doaj-74195297e3734e799b8863138ec11a7e2021-02-21T21:11:46ZengAIDIC Servizi S.r.l.Chemical Engineering Transactions2283-92162013-06-013210.3303/CET1332279Influence of Mechanical and Electric Current Activation on the Mechanism of Formation and the Properties of Bulk B<sub>4</sub>C-TiB<sub>2</sub> Composites Obtained by Reactive SinteringL. NikzadR. OrruR. LicheriG. CaoThe preparation of dense nanostructured B4C-TiB2 is investigated through the combination of mechanical (Ball Milling) and electric current (Spark Plasma Sintering or SPS) activation of Ti, B and graphite powders. The full conversion of 8h milled reactants is obtained at much lower temperature (about 1200 °C), as compared to simply blended mixtures (>1600 °C). The formation of TiB2 generally precedes that of B4C. In addition, regardless of the milling treatment, an increase of the heating rate during SPS is found to produce a transition of the mechanism governing the formation of TiB2 and B4C, i.e. from gradual solid- solid to rapid combustion-type behavior. However, when unmilled powders are used, unreacted and intermediate species are still present in the product resulting after the combustion synthesis reaction takes place during sintering. In contrast, ball milled powders reacted completely under combustion regime, even when relatively milder heating rate conditions are adopted. SPS product density increases from about 82 % to 94 % of the theoretical value (I = 1100 A), as a consequence of the mechanical treatment. Correspondingly, a material with homogeneous phase distribution and grain size down to 100-200 nm is obtained. A further improvement of product density (> 96.5 %) is produced, at the expenses of a certain grain growth, when the applied current intensity is augmented to 1200 A.https://www.cetjournal.it/index.php/cet/article/view/6673
collection DOAJ
language English
format Article
sources DOAJ
author L. Nikzad
R. Orru
R. Licheri
G. Cao
spellingShingle L. Nikzad
R. Orru
R. Licheri
G. Cao
Influence of Mechanical and Electric Current Activation on the Mechanism of Formation and the Properties of Bulk B<sub>4</sub>C-TiB<sub>2</sub> Composites Obtained by Reactive Sintering
Chemical Engineering Transactions
author_facet L. Nikzad
R. Orru
R. Licheri
G. Cao
author_sort L. Nikzad
title Influence of Mechanical and Electric Current Activation on the Mechanism of Formation and the Properties of Bulk B<sub>4</sub>C-TiB<sub>2</sub> Composites Obtained by Reactive Sintering
title_short Influence of Mechanical and Electric Current Activation on the Mechanism of Formation and the Properties of Bulk B<sub>4</sub>C-TiB<sub>2</sub> Composites Obtained by Reactive Sintering
title_full Influence of Mechanical and Electric Current Activation on the Mechanism of Formation and the Properties of Bulk B<sub>4</sub>C-TiB<sub>2</sub> Composites Obtained by Reactive Sintering
title_fullStr Influence of Mechanical and Electric Current Activation on the Mechanism of Formation and the Properties of Bulk B<sub>4</sub>C-TiB<sub>2</sub> Composites Obtained by Reactive Sintering
title_full_unstemmed Influence of Mechanical and Electric Current Activation on the Mechanism of Formation and the Properties of Bulk B<sub>4</sub>C-TiB<sub>2</sub> Composites Obtained by Reactive Sintering
title_sort influence of mechanical and electric current activation on the mechanism of formation and the properties of bulk b<sub>4</sub>c-tib<sub>2</sub> composites obtained by reactive sintering
publisher AIDIC Servizi S.r.l.
series Chemical Engineering Transactions
issn 2283-9216
publishDate 2013-06-01
description The preparation of dense nanostructured B4C-TiB2 is investigated through the combination of mechanical (Ball Milling) and electric current (Spark Plasma Sintering or SPS) activation of Ti, B and graphite powders. The full conversion of 8h milled reactants is obtained at much lower temperature (about 1200 °C), as compared to simply blended mixtures (>1600 °C). The formation of TiB2 generally precedes that of B4C. In addition, regardless of the milling treatment, an increase of the heating rate during SPS is found to produce a transition of the mechanism governing the formation of TiB2 and B4C, i.e. from gradual solid- solid to rapid combustion-type behavior. However, when unmilled powders are used, unreacted and intermediate species are still present in the product resulting after the combustion synthesis reaction takes place during sintering. In contrast, ball milled powders reacted completely under combustion regime, even when relatively milder heating rate conditions are adopted. SPS product density increases from about 82 % to 94 % of the theoretical value (I = 1100 A), as a consequence of the mechanical treatment. Correspondingly, a material with homogeneous phase distribution and grain size down to 100-200 nm is obtained. A further improvement of product density (> 96.5 %) is produced, at the expenses of a certain grain growth, when the applied current intensity is augmented to 1200 A.
url https://www.cetjournal.it/index.php/cet/article/view/6673
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