The Experts below are selected from a list of 537 Experts worldwide ranked by ideXlab platform

Francisco J. Gotor - One of the best experts on this subject based on the ideXlab platform.

  • mechanochemical synthesis of zrb2 sic zrc nanocomposite powder by Metallothermic Reduction of zircon
    Journal of Alloys and Compounds, 2013
    Co-Authors: Maisam Jalaly, Morteza Tamizifar, Sh M Bafghi, Francisco J. Gotor
    Abstract:

    Aluminium and magnesium were used in the M/ZrSiO4/B2O3/C (M = Al, Mg) system to induce a mechanically induced self-sustaining reaction (MSR). Aluminium was not able to reduce the system to the desired products, and the system became amorphous after 10 h milling. However, nanocomposite powder of ZrB2–SiC–ZrC was in situ synthesized by the magnesiothermic Reduction with an ignition time of approximately 6 min. The mechanism for the formation of the product in this system was determined by studying the relevant sub-reactions.

  • Mechanochemical synthesis of ZrB2–SiC–ZrC nanocomposite powder by Metallothermic Reduction of zircon
    Journal of Alloys and Compounds, 2013
    Co-Authors: Maisam Jalaly, Morteza Tamizifar, M. Sh. Bafghi, Francisco J. Gotor
    Abstract:

    Aluminium and magnesium were used in the M/ZrSiO4/B2O3/C (M = Al, Mg) system to induce a mechanically induced self-sustaining reaction (MSR). Aluminium was not able to reduce the system to the desired products, and the system became amorphous after 10 h milling. However, nanocomposite powder of ZrB2–SiC–ZrC was in situ synthesized by the magnesiothermic Reduction with an ignition time of approximately 6 min. The mechanism for the formation of the product in this system was determined by studying the relevant sub-reactions.

Maisam Jalaly - One of the best experts on this subject based on the ideXlab platform.

  • mechanochemical synthesis of zrb2 sic zrc nanocomposite powder by Metallothermic Reduction of zircon
    Journal of Alloys and Compounds, 2013
    Co-Authors: Maisam Jalaly, Morteza Tamizifar, Sh M Bafghi, Francisco J. Gotor
    Abstract:

    Aluminium and magnesium were used in the M/ZrSiO4/B2O3/C (M = Al, Mg) system to induce a mechanically induced self-sustaining reaction (MSR). Aluminium was not able to reduce the system to the desired products, and the system became amorphous after 10 h milling. However, nanocomposite powder of ZrB2–SiC–ZrC was in situ synthesized by the magnesiothermic Reduction with an ignition time of approximately 6 min. The mechanism for the formation of the product in this system was determined by studying the relevant sub-reactions.

  • Mechanochemical synthesis of ZrB2–SiC–ZrC nanocomposite powder by Metallothermic Reduction of zircon
    Journal of Alloys and Compounds, 2013
    Co-Authors: Maisam Jalaly, Morteza Tamizifar, M. Sh. Bafghi, Francisco J. Gotor
    Abstract:

    Aluminium and magnesium were used in the M/ZrSiO4/B2O3/C (M = Al, Mg) system to induce a mechanically induced self-sustaining reaction (MSR). Aluminium was not able to reduce the system to the desired products, and the system became amorphous after 10 h milling. However, nanocomposite powder of ZrB2–SiC–ZrC was in situ synthesized by the magnesiothermic Reduction with an ignition time of approximately 6 min. The mechanism for the formation of the product in this system was determined by studying the relevant sub-reactions.

Morteza Tamizifar - One of the best experts on this subject based on the ideXlab platform.

  • mechanochemical synthesis of zrb2 sic zrc nanocomposite powder by Metallothermic Reduction of zircon
    Journal of Alloys and Compounds, 2013
    Co-Authors: Maisam Jalaly, Morteza Tamizifar, Sh M Bafghi, Francisco J. Gotor
    Abstract:

    Aluminium and magnesium were used in the M/ZrSiO4/B2O3/C (M = Al, Mg) system to induce a mechanically induced self-sustaining reaction (MSR). Aluminium was not able to reduce the system to the desired products, and the system became amorphous after 10 h milling. However, nanocomposite powder of ZrB2–SiC–ZrC was in situ synthesized by the magnesiothermic Reduction with an ignition time of approximately 6 min. The mechanism for the formation of the product in this system was determined by studying the relevant sub-reactions.

  • Mechanochemical synthesis of ZrB2–SiC–ZrC nanocomposite powder by Metallothermic Reduction of zircon
    Journal of Alloys and Compounds, 2013
    Co-Authors: Maisam Jalaly, Morteza Tamizifar, M. Sh. Bafghi, Francisco J. Gotor
    Abstract:

    Aluminium and magnesium were used in the M/ZrSiO4/B2O3/C (M = Al, Mg) system to induce a mechanically induced self-sustaining reaction (MSR). Aluminium was not able to reduce the system to the desired products, and the system became amorphous after 10 h milling. However, nanocomposite powder of ZrB2–SiC–ZrC was in situ synthesized by the magnesiothermic Reduction with an ignition time of approximately 6 min. The mechanism for the formation of the product in this system was determined by studying the relevant sub-reactions.

Sh M Bafghi - One of the best experts on this subject based on the ideXlab platform.

  • mechanochemical synthesis of zrb2 sic zrc nanocomposite powder by Metallothermic Reduction of zircon
    Journal of Alloys and Compounds, 2013
    Co-Authors: Maisam Jalaly, Morteza Tamizifar, Sh M Bafghi, Francisco J. Gotor
    Abstract:

    Aluminium and magnesium were used in the M/ZrSiO4/B2O3/C (M = Al, Mg) system to induce a mechanically induced self-sustaining reaction (MSR). Aluminium was not able to reduce the system to the desired products, and the system became amorphous after 10 h milling. However, nanocomposite powder of ZrB2–SiC–ZrC was in situ synthesized by the magnesiothermic Reduction with an ignition time of approximately 6 min. The mechanism for the formation of the product in this system was determined by studying the relevant sub-reactions.

M. Sh. Bafghi - One of the best experts on this subject based on the ideXlab platform.

  • Mechanochemical synthesis of ZrB2–SiC–ZrC nanocomposite powder by Metallothermic Reduction of zircon
    Journal of Alloys and Compounds, 2013
    Co-Authors: Maisam Jalaly, Morteza Tamizifar, M. Sh. Bafghi, Francisco J. Gotor
    Abstract:

    Aluminium and magnesium were used in the M/ZrSiO4/B2O3/C (M = Al, Mg) system to induce a mechanically induced self-sustaining reaction (MSR). Aluminium was not able to reduce the system to the desired products, and the system became amorphous after 10 h milling. However, nanocomposite powder of ZrB2–SiC–ZrC was in situ synthesized by the magnesiothermic Reduction with an ignition time of approximately 6 min. The mechanism for the formation of the product in this system was determined by studying the relevant sub-reactions.