Non-conventional oils for biodiesel production: a study of thermal and oxidative stability

被引:0
|
作者
Maria Andrea Mendes Formiga Melo
Marco Aurélio Rodrigues de Melo
Andrea Suame Gouvea Costa Pontes
Ana Flávia Félix Farias
Manoel Barbosa Dantas
Clediana Dantas Calixto
Antonio Gouveia de Souza
José Rodrigues de Carvalho Filho
机构
[1] Universidade Federal da Paraíba,LACOM, CCEN, Departamento de Química
[2] Instituto Federal de Educação Ciência e Tecnologia da Paraíba,Unidade Acadêmica de Química
来源
Journal of Thermal Analysis and Calorimetry | 2014年 / 117卷
关键词
PDSC; Rancimat; PetroOxy;
D O I
暂无
中图分类号
学科分类号
摘要
Vegetable oils with variable proportions of oleic, linoleic, and linolenic acids are more susceptible to oxidative processes. In this subject, this study evaluates the physical chemical properties and oxidative stability of non-conventional oils such as andiroba, babassu, sesame, oiticica, jatropha, and grape through accelerated oxidation techniques (pressurized differential scanning calorimetry, Rancimat and PetroOxy). It was verified that babassu and andiroba oil do not showed detectable induction period presenting high oxidative stability; moreover, it was observed that the enthalpic events occurred in 1.19, >10, 0.53, 0.49, 0.49, and 0.60 h for the andiroba oil, babassu oil, sesame seeds, jatropha, oiticica oils, and grapes, respectively, stimulating the conclusion of greater stability for the babassu oil.
引用
收藏
页码:845 / 849
页数:4
相关论文
共 50 条
  • [21] Biodiesel production by non-catalytic supercritical methyl acetate: Thermal stability study
    Niza, Noorzalila Muhammad
    Tan, Kok Tat
    Lee, Keat Teong
    Ahmad, Zainal
    Applied Energy, 2013, 101 : 198 - 202
  • [22] SIMILITUDE AND THERMAL PERFORMANCE ON NON-CONVENTIONAL ROOFS
    Sampaio, Carlos A. de P.
    Terezo, Rodrigo F.
    Rosa, Talitha O.
    Burigo, Mariana C.
    Andrade, Leonardo de B.
    ENGENHARIA AGRICOLA, 2018, 38 (01): : 7 - 12
  • [23] Controlling the Oxidative Stability of Biodiesel Using Oils or Biodiesel Blending or Antioxidants Addition
    Canha, Nuno
    Felizardo, Pedro
    Joana Neiva Correia, M.
    ENVIRONMENTAL PROGRESS & SUSTAINABLE ENERGY, 2018, 37 (03) : 1031 - 1040
  • [24] NON-CONVENTIONAL OXIDATIVE CHLORINATION OF META-CRESOL
    ECKSTEIN, Z
    SMERECZYNSKI, K
    POLISH JOURNAL OF CHEMISTRY, 1983, 57 (4-6) : 659 - 660
  • [25] POSITIONING ACCURACY OF NON-CONVENTIONAL PRODUCTION MACHINES
    Kollath, L'udovit
    Halaj, Martin
    Kurekova, Eva
    XIX IMEKO WORLD CONGRESS: FUNDAMENTAL AND APPLIED METROLOGY, PROCEEDINGS, 2009, : 2099 - 2102
  • [26] TREHALOSE PRODUCTION FROM NON-CONVENTIONAL YEASTS
    Gonzalez-Hernandez, J. C.
    Alcantar-Covarrubias, M. A.
    Cortes-Rojo, C.
    REVISTA MEXICANA DE INGENIERIA QUIMICA, 2015, 14 (01): : 11 - 23
  • [27] Non-conventional hosts for the production of fuels and chemicals
    Sun, Lichao
    Alper, Hal S.
    CURRENT OPINION IN CHEMICAL BIOLOGY, 2020, 59 : 15 - 22
  • [28] NON-CONVENTIONAL PET NUCLIDES: PRODUCTION AND IMAGING
    Laforest, Richard
    MOMENTO-REVISTA DE FISICA, 2015, (51): : 1 - 15
  • [29] A non-conventional interpretation of thermal regeneration in steam cycles
    Bracco, Stefano
    Damiani, Lorenzo
    APPLIED ENERGY, 2012, 97 : 548 - 557
  • [30] The enzymatic production of lactulose via transglycosylation in conventional and non-conventional media
    Khatami, Seyyedhadi
    Ashtiani, Farzin Zokaee
    Bonakdarpour, Babak
    Mehrdad, Mahsa
    INTERNATIONAL DAIRY JOURNAL, 2014, 34 (01) : 74 - 79