The Experts below are selected from a list of 1935 Experts worldwide ranked by ideXlab platform

Sopa Chewchanwuttiwong - One of the best experts on this subject based on the ideXlab platform.

  • benzyl esters of vegetable oils as processing oil in carbon black filled sbr Compounding Chemical modification characterization and performance
    Advances in Polymer Technology, 2017
    Co-Authors: Hasleena Boontawee, Charoen Nakason, Azizon Kaesaman, Anoma Thitithammawong, Sopa Chewchanwuttiwong
    Abstract:

    Three different types of benzyl ester were synthesized from vegetable oils (i.e., coconut oil, palm oil, and soybean oil). They were then utilized in styrene butadiene rubber (SBR) compound reinforced with carbon black. First, the benzyl esters were investigated by varying the molar ratio of fatty acids in vegetable oil to benzyl alcohol, the catalyst concentration, the reaction time, and the reaction temperature, observing the yield of benzyl ester. Then SBR was compounded with the benzyl esters, observing cure characteristics, mechanical properties, and morphologies of the SBR compounds, with the control compound containing conventional aromatic oil. The highest 96% yield of benzyl ester was obtained with palm oil fatty acid. Furthermore, the benzyl ester oils consumed less energy during processing but gave comparable carbon black dispersion, in comparison with the conventional aromatic oil.

Hasleena Boontawee - One of the best experts on this subject based on the ideXlab platform.

  • benzyl esters of vegetable oils as processing oil in carbon black filled sbr Compounding Chemical modification characterization and performance
    Advances in Polymer Technology, 2017
    Co-Authors: Hasleena Boontawee, Charoen Nakason, Azizon Kaesaman, Anoma Thitithammawong, Sopa Chewchanwuttiwong
    Abstract:

    Three different types of benzyl ester were synthesized from vegetable oils (i.e., coconut oil, palm oil, and soybean oil). They were then utilized in styrene butadiene rubber (SBR) compound reinforced with carbon black. First, the benzyl esters were investigated by varying the molar ratio of fatty acids in vegetable oil to benzyl alcohol, the catalyst concentration, the reaction time, and the reaction temperature, observing the yield of benzyl ester. Then SBR was compounded with the benzyl esters, observing cure characteristics, mechanical properties, and morphologies of the SBR compounds, with the control compound containing conventional aromatic oil. The highest 96% yield of benzyl ester was obtained with palm oil fatty acid. Furthermore, the benzyl ester oils consumed less energy during processing but gave comparable carbon black dispersion, in comparison with the conventional aromatic oil.

Charoen Nakason - One of the best experts on this subject based on the ideXlab platform.

  • benzyl esters of vegetable oils as processing oil in carbon black filled sbr Compounding Chemical modification characterization and performance
    Advances in Polymer Technology, 2017
    Co-Authors: Hasleena Boontawee, Charoen Nakason, Azizon Kaesaman, Anoma Thitithammawong, Sopa Chewchanwuttiwong
    Abstract:

    Three different types of benzyl ester were synthesized from vegetable oils (i.e., coconut oil, palm oil, and soybean oil). They were then utilized in styrene butadiene rubber (SBR) compound reinforced with carbon black. First, the benzyl esters were investigated by varying the molar ratio of fatty acids in vegetable oil to benzyl alcohol, the catalyst concentration, the reaction time, and the reaction temperature, observing the yield of benzyl ester. Then SBR was compounded with the benzyl esters, observing cure characteristics, mechanical properties, and morphologies of the SBR compounds, with the control compound containing conventional aromatic oil. The highest 96% yield of benzyl ester was obtained with palm oil fatty acid. Furthermore, the benzyl ester oils consumed less energy during processing but gave comparable carbon black dispersion, in comparison with the conventional aromatic oil.

Azizon Kaesaman - One of the best experts on this subject based on the ideXlab platform.

  • benzyl esters of vegetable oils as processing oil in carbon black filled sbr Compounding Chemical modification characterization and performance
    Advances in Polymer Technology, 2017
    Co-Authors: Hasleena Boontawee, Charoen Nakason, Azizon Kaesaman, Anoma Thitithammawong, Sopa Chewchanwuttiwong
    Abstract:

    Three different types of benzyl ester were synthesized from vegetable oils (i.e., coconut oil, palm oil, and soybean oil). They were then utilized in styrene butadiene rubber (SBR) compound reinforced with carbon black. First, the benzyl esters were investigated by varying the molar ratio of fatty acids in vegetable oil to benzyl alcohol, the catalyst concentration, the reaction time, and the reaction temperature, observing the yield of benzyl ester. Then SBR was compounded with the benzyl esters, observing cure characteristics, mechanical properties, and morphologies of the SBR compounds, with the control compound containing conventional aromatic oil. The highest 96% yield of benzyl ester was obtained with palm oil fatty acid. Furthermore, the benzyl ester oils consumed less energy during processing but gave comparable carbon black dispersion, in comparison with the conventional aromatic oil.

Anoma Thitithammawong - One of the best experts on this subject based on the ideXlab platform.

  • benzyl esters of vegetable oils as processing oil in carbon black filled sbr Compounding Chemical modification characterization and performance
    Advances in Polymer Technology, 2017
    Co-Authors: Hasleena Boontawee, Charoen Nakason, Azizon Kaesaman, Anoma Thitithammawong, Sopa Chewchanwuttiwong
    Abstract:

    Three different types of benzyl ester were synthesized from vegetable oils (i.e., coconut oil, palm oil, and soybean oil). They were then utilized in styrene butadiene rubber (SBR) compound reinforced with carbon black. First, the benzyl esters were investigated by varying the molar ratio of fatty acids in vegetable oil to benzyl alcohol, the catalyst concentration, the reaction time, and the reaction temperature, observing the yield of benzyl ester. Then SBR was compounded with the benzyl esters, observing cure characteristics, mechanical properties, and morphologies of the SBR compounds, with the control compound containing conventional aromatic oil. The highest 96% yield of benzyl ester was obtained with palm oil fatty acid. Furthermore, the benzyl ester oils consumed less energy during processing but gave comparable carbon black dispersion, in comparison with the conventional aromatic oil.