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  • Source: Materials Performance and Characterization. Unidade: EP

    Subjects: NANOPARTÍCULAS, REVESTIMENTOS, TRIBOLOGIA

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      KOLAWOLE, Funsho Olaitan et al. Nano-Scratch and Micro-Scratch Properties of CrN/DLC and DLC-W Coatings. Materials Performance and Characterization, 2023Tradução . . Disponível em: https://doi.org/10.1520/MPC20230028. Acesso em: 08 out. 2025.
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      Kolawole, F. O., Santos, M. D. dos, Kolawole, S. K., Vencovsky, P. K., Ludewigs, D. A., & Tschiptschin, A. P. (2023). Nano-Scratch and Micro-Scratch Properties of CrN/DLC and DLC-W Coatings. Materials Performance and Characterization. doi:10.1520/MPC20230028
    • NLM

      Kolawole FO, Santos MD dos, Kolawole SK, Vencovsky PK, Ludewigs DA, Tschiptschin AP. Nano-Scratch and Micro-Scratch Properties of CrN/DLC and DLC-W Coatings [Internet]. Materials Performance and Characterization. 2023 ;[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20230028
    • Vancouver

      Kolawole FO, Santos MD dos, Kolawole SK, Vencovsky PK, Ludewigs DA, Tschiptschin AP. Nano-Scratch and Micro-Scratch Properties of CrN/DLC and DLC-W Coatings [Internet]. Materials Performance and Characterization. 2023 ;[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20230028
  • Source: Materials Performance and Characterization. Unidade: EP

    Subjects: CORROSÃO, AÇO INOXIDÁVEL AUSTENÍTICO

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      VALERA JIMENEZ, Luis Bernardo et al. Corrosion resistance of low-temperature and conventional plasma-nitrided 410S ferritic-martensitic stainless steels. Materials Performance and Characterization, v. 10, n. 1, p. 181-188, 2021Tradução . . Disponível em: https://doi.org/10.1520/MPC20200099. Acesso em: 08 out. 2025.
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      Valera Jimenez, L. B., Uemura, M. T., Calderon-Hernández, J. W., Pinedo, C. E., Kolawole, F. O., & Tschiptschin, A. P. (2021). Corrosion resistance of low-temperature and conventional plasma-nitrided 410S ferritic-martensitic stainless steels. Materials Performance and Characterization, 10( 1), 181-188. doi:10.1520/MPC20200099
    • NLM

      Valera Jimenez LB, Uemura MT, Calderon-Hernández JW, Pinedo CE, Kolawole FO, Tschiptschin AP. Corrosion resistance of low-temperature and conventional plasma-nitrided 410S ferritic-martensitic stainless steels [Internet]. Materials Performance and Characterization. 2021 ;10( 1): 181-188.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20200099
    • Vancouver

      Valera Jimenez LB, Uemura MT, Calderon-Hernández JW, Pinedo CE, Kolawole FO, Tschiptschin AP. Corrosion resistance of low-temperature and conventional plasma-nitrided 410S ferritic-martensitic stainless steels [Internet]. Materials Performance and Characterization. 2021 ;10( 1): 181-188.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20200099
  • Source: Materials Performance and Characterization. Unidades: EESC, IQSC

    Subjects: TÊMPERA, TRANSFERÊNCIA DE CALOR, MATERIAIS, ÓLEO DE SOJA

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      FRIED, Zoltán et al. Parallelized particle swarm optimization to estimate the heat transfer coefficients of palm oil, canola oil, conventional, and accelerated petroleum oil quenchants. Materials Performance and Characterization, v. 8, n. 2, p. 894-903, 2019Tradução . . Disponível em: https://doi.org/10.1520/MPC20180049. Acesso em: 08 out. 2025.
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      Fried, Z., Felde, I., Otero, R. L. S., Viscaino, J. M., Totten, G. E., & Canale, L. de C. F. (2019). Parallelized particle swarm optimization to estimate the heat transfer coefficients of palm oil, canola oil, conventional, and accelerated petroleum oil quenchants. Materials Performance and Characterization, 8( 2), 894-903. doi:10.1520/MPC20180049
    • NLM

      Fried Z, Felde I, Otero RLS, Viscaino JM, Totten GE, Canale L de CF. Parallelized particle swarm optimization to estimate the heat transfer coefficients of palm oil, canola oil, conventional, and accelerated petroleum oil quenchants [Internet]. Materials Performance and Characterization. 2019 ; 8( 2): 894-903.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20180049
    • Vancouver

      Fried Z, Felde I, Otero RLS, Viscaino JM, Totten GE, Canale L de CF. Parallelized particle swarm optimization to estimate the heat transfer coefficients of palm oil, canola oil, conventional, and accelerated petroleum oil quenchants [Internet]. Materials Performance and Characterization. 2019 ; 8( 2): 894-903.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20180049
  • Source: Materials Performance and Characterization. Unidades: EESC, IQSC

    Subjects: TRANSFERÊNCIA DE CALOR, TÊMPERA, ÓLEOS VEGETAIS, MATERIAIS

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      OTERO, Rosa Lucia Simencio et al. Quenchant cooling curves, rewetting, and surface heat flux properties of vegetable oils. Materials Performance and Characterization, v. 8, n. 2, p. 143-169, 2019Tradução . . Disponível em: https://doi.org/10.1520/MPC20180042. Acesso em: 08 out. 2025.
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      Otero, R. L. S., Viscaino, J. M., Jun, X., Jianfeng, G., Totten, G. E., & Canale, L. de C. F. (2019). Quenchant cooling curves, rewetting, and surface heat flux properties of vegetable oils. Materials Performance and Characterization, 8( 2), 143-169. doi:10.1520/MPC20180042
    • NLM

      Otero RLS, Viscaino JM, Jun X, Jianfeng G, Totten GE, Canale L de CF. Quenchant cooling curves, rewetting, and surface heat flux properties of vegetable oils [Internet]. Materials Performance and Characterization. 2019 ; 8( 2): 143-169.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20180042
    • Vancouver

      Otero RLS, Viscaino JM, Jun X, Jianfeng G, Totten GE, Canale L de CF. Quenchant cooling curves, rewetting, and surface heat flux properties of vegetable oils [Internet]. Materials Performance and Characterization. 2019 ; 8( 2): 143-169.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20180042
  • Source: Materials Performance and Characterization. Unidades: EESC, IQSC

    Subjects: TRANSFERÊNCIA DE CALOR, ÓLEOS VEGETAIS, MATERIAIS

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      MEEKISHO, Lemmy et al. Assessment of cooling and heat transfer properties of quenchants with MATLAB. Materials Performance and Characterization, v. 8, n. 2, p. 128-142, 2019Tradução . . Disponível em: https://doi.org/10.1520/MPC20180046. Acesso em: 08 out. 2025.
    • APA

      Meekisho, L., Otero, R. L. S., Viscaino, J. M., MacKenzie, D. S., Totten, G. E., & Canale, L. de C. F. (2019). Assessment of cooling and heat transfer properties of quenchants with MATLAB. Materials Performance and Characterization, 8( 2), 128-142. doi:10.1520/MPC20180046
    • NLM

      Meekisho L, Otero RLS, Viscaino JM, MacKenzie DS, Totten GE, Canale L de CF. Assessment of cooling and heat transfer properties of quenchants with MATLAB [Internet]. Materials Performance and Characterization. 2019 ; 8( 2): 128-142.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20180046
    • Vancouver

      Meekisho L, Otero RLS, Viscaino JM, MacKenzie DS, Totten GE, Canale L de CF. Assessment of cooling and heat transfer properties of quenchants with MATLAB [Internet]. Materials Performance and Characterization. 2019 ; 8( 2): 128-142.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20180046
  • Source: Materials Performance and Characterization. Unidade: EESC

    Subjects: MATERIAIS, TENSÃO RESIDUAL, TRATAMENTO TÉRMICO, TÊMPERA

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      MATTOS, Wellington da Silva e TOTTEN, George Edward e CANALE, Lauralice de Campos Franceschini. Uphill quenching of aluminum alloys. Materials Performance and Characterization, v. 6, n. 5, p. Paper MPC20160125 894-903, 2017Tradução . . Disponível em: https://doi.org/10.1520/MPC20160125. Acesso em: 08 out. 2025.
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      Mattos, W. da S., Totten, G. E., & Canale, L. de C. F. (2017). Uphill quenching of aluminum alloys. Materials Performance and Characterization, 6( 5), Paper MPC20160125 894-903. doi:10.1520/MPC20160125
    • NLM

      Mattos W da S, Totten GE, Canale L de CF. Uphill quenching of aluminum alloys [Internet]. Materials Performance and Characterization. 2017 ; 6( 5): Paper MPC20160125 894-903.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20160125
    • Vancouver

      Mattos W da S, Totten GE, Canale L de CF. Uphill quenching of aluminum alloys [Internet]. Materials Performance and Characterization. 2017 ; 6( 5): Paper MPC20160125 894-903.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20160125
  • Source: Materials Performance and Characterization. Unidade: EESC

    Subjects: ÓLEOS VEGETAIS, TRATAMENTO TÉRMICO, TRANSFERÊNCIA DE CALOR, MATERIAIS

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      OTERO, Rosa Lucia Simencio et al. Vegetable oils as metal quenchants: a comprehensive review. Materials Performance and Characterization, v. 6, n. 1, p. Paper MPC20160112 174-250, 2017Tradução . . Disponível em: https://doi.org/10.1520/MPC20160112. Acesso em: 08 out. 2025.
    • APA

      Otero, R. L. S., Canale, L. de C. F., Totten, G. E., & Meekisho, L. (2017). Vegetable oils as metal quenchants: a comprehensive review. Materials Performance and Characterization, 6( 1), Paper MPC20160112 174-250. doi:10.1520/MPC20160112
    • NLM

      Otero RLS, Canale L de CF, Totten GE, Meekisho L. Vegetable oils as metal quenchants: a comprehensive review [Internet]. Materials Performance and Characterization. 2017 ; 6( 1): Paper MPC20160112 174-250.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20160112
    • Vancouver

      Otero RLS, Canale L de CF, Totten GE, Meekisho L. Vegetable oils as metal quenchants: a comprehensive review [Internet]. Materials Performance and Characterization. 2017 ; 6( 1): Paper MPC20160112 174-250.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20160112
  • Source: Materials Performance and Characterization. Unidade: EESC

    Subjects: TENSÃO RESIDUAL, MECÂNICA DA FRATURA, MATERIAIS

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      ALBANO, Luigi Leonardo Mazzucco et al. Development and use of a small laboratory intensive quenching (IQ) system. Materials Performance and Characterization, v. 6, n. 5, p. Paper MPC20160126 785-794, 2017Tradução . . Disponível em: https://doi.org/10.1520/MPC20160126. Acesso em: 08 out. 2025.
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      Albano, L. L. M., Misina, F. S., Canale, A. C., Totten, G. E., & Canale, L. de C. F. (2017). Development and use of a small laboratory intensive quenching (IQ) system. Materials Performance and Characterization, 6( 5), Paper MPC20160126 785-794. doi:10.1520/MPC20160126
    • NLM

      Albano LLM, Misina FS, Canale AC, Totten GE, Canale L de CF. Development and use of a small laboratory intensive quenching (IQ) system [Internet]. Materials Performance and Characterization. 2017 ; 6( 5): Paper MPC20160126 785-794.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20160126
    • Vancouver

      Albano LLM, Misina FS, Canale AC, Totten GE, Canale L de CF. Development and use of a small laboratory intensive quenching (IQ) system [Internet]. Materials Performance and Characterization. 2017 ; 6( 5): Paper MPC20160126 785-794.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20160126
  • Source: Materials Performance and Characterization. Unidade: EESC

    Subjects: MICROELETRÔNICA, TRANSFERÊNCIA DE CALOR, ÓLEOS E GORDURAS VEGETAIS COMESTÍVEIS, TRATAMENTO TÉRMICO, MATERIAIS

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      MATIJEVIC, Bozidar et al. Comparative measurement and evaluation of the quenching intensity of palm oil, canola oil and a conventional petroleum oil quenchant based on temperature gradient measurements. Materials Performance and Characterization, v. 6, n. 5, p. Paper MPC20170041 757-776, 2017Tradução . . Disponível em: https://doi.org/10.1520/MPC20170041. Acesso em: 08 out. 2025.
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      Matijevic, B., Liscic, B., Totten, G. E., & Canale, L. de C. F. (2017). Comparative measurement and evaluation of the quenching intensity of palm oil, canola oil and a conventional petroleum oil quenchant based on temperature gradient measurements. Materials Performance and Characterization, 6( 5), Paper MPC20170041 757-776. doi:10.1520/MPC20170041
    • NLM

      Matijevic B, Liscic B, Totten GE, Canale L de CF. Comparative measurement and evaluation of the quenching intensity of palm oil, canola oil and a conventional petroleum oil quenchant based on temperature gradient measurements [Internet]. Materials Performance and Characterization. 2017 ; 6( 5): Paper MPC20170041 757-776.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20170041
    • Vancouver

      Matijevic B, Liscic B, Totten GE, Canale L de CF. Comparative measurement and evaluation of the quenching intensity of palm oil, canola oil and a conventional petroleum oil quenchant based on temperature gradient measurements [Internet]. Materials Performance and Characterization. 2017 ; 6( 5): Paper MPC20170041 757-776.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20170041
  • Source: Materials Performance and Characterization. Unidade: EP

    Subjects: MECÂNICA DA FRATURA, TENSÃO DOS MATERIAIS, TENACIDADE DOS MATERIAIS

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      RUGGIERI, Claudio e DODDS, R. H. A modified weibull stress approach to determine the reference temperature in a pressure vessel steel. Materials Performance and Characterization, v. 5, n. 3, p. 260-279, 2016Tradução . . Disponível em: https://doi.org/10.1520/MPC20150035. Acesso em: 08 out. 2025.
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      Ruggieri, C., & Dodds, R. H. (2016). A modified weibull stress approach to determine the reference temperature in a pressure vessel steel. Materials Performance and Characterization, 5( 3), 260-279. doi:10.1520/MPC20150035
    • NLM

      Ruggieri C, Dodds RH. A modified weibull stress approach to determine the reference temperature in a pressure vessel steel [Internet]. Materials Performance and Characterization. 2016 ; 5( 3): 260-279.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20150035
    • Vancouver

      Ruggieri C, Dodds RH. A modified weibull stress approach to determine the reference temperature in a pressure vessel steel [Internet]. Materials Performance and Characterization. 2016 ; 5( 3): 260-279.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20150035
  • Source: Materials Performance and Characterization. Unidade: EESC

    Assunto: MATERIAIS

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      CIVERA, C. et al. Vegetable oils as quenchants for steels: residual stresses and dimensional changes. Materials Performance and Characterization, v. 3, n. 4, p. Paper MPC20140039 306-325, 2014Tradução . . Disponível em: https://doi.org/10.1520/MPC20140039. Acesso em: 08 out. 2025.
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      Civera, C., Rivolta, B., Otero, R. L. S., Lúcio, J. G., Totten, G. E., & Canale, L. de C. F. (2014). Vegetable oils as quenchants for steels: residual stresses and dimensional changes. Materials Performance and Characterization, 3( 4), Paper MPC20140039 306-325. doi:10.1520/MPC20140039
    • NLM

      Civera C, Rivolta B, Otero RLS, Lúcio JG, Totten GE, Canale L de CF. Vegetable oils as quenchants for steels: residual stresses and dimensional changes [Internet]. Materials Performance and Characterization. 2014 ; 3( 4): Paper MPC20140039 306-325.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20140039
    • Vancouver

      Civera C, Rivolta B, Otero RLS, Lúcio JG, Totten GE, Canale L de CF. Vegetable oils as quenchants for steels: residual stresses and dimensional changes [Internet]. Materials Performance and Characterization. 2014 ; 3( 4): Paper MPC20140039 306-325.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20140039
  • Source: Materials Performance and Characterization. Unidade: EESC

    Subjects: DESGASTE, MICROSCÓPIO ÓTICO, DIFRAÇÃO POR RAIOS X

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      FERNANDES, Frederico Augusto Pires et al. Wear evaluation of pack boronized AISI 1060 steel. Materials Performance and Characterization, v. 2, n. 1, p. 58-66, 2013Tradução . . Disponível em: https://doi.org/10.1520/MPC20120009. Acesso em: 08 out. 2025.
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      Fernandes, F. A. P., Heck, S. C., Totten, G. E., & Casteletti, L. C. (2013). Wear evaluation of pack boronized AISI 1060 steel. Materials Performance and Characterization, 2( 1), 58-66. doi:10.1520/MPC20120009
    • NLM

      Fernandes FAP, Heck SC, Totten GE, Casteletti LC. Wear evaluation of pack boronized AISI 1060 steel [Internet]. Materials Performance and Characterization. 2013 ; 2( 1): 58-66.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20120009
    • Vancouver

      Fernandes FAP, Heck SC, Totten GE, Casteletti LC. Wear evaluation of pack boronized AISI 1060 steel [Internet]. Materials Performance and Characterization. 2013 ; 2( 1): 58-66.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20120009
  • Source: Materials Performance and Characterization. Unidade: EESC

    Subjects: MATERIAIS, ÓLEOS VEGETAIS, TRANSFERÊNCIA DE CALOR

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      KOBASKO, Nikolai Ivanovich et al. Cooling capacity of coconut oil, palm oil, and a commercial petroleum oil by solving the heat conductivity inverse problem. Materials Performance and Characterization, v. 2, n. 1, p. 319-338, 2013Tradução . . Disponível em: https://doi.org/10.1520/MPC20120047. Acesso em: 08 out. 2025.
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      Kobasko, N. I., Batista Junior, A. A., Canale, L. de C. F., Totten, G. E., & Dobryvechir, V. V. (2013). Cooling capacity of coconut oil, palm oil, and a commercial petroleum oil by solving the heat conductivity inverse problem. Materials Performance and Characterization, 2( 1), 319-338. doi:10.1520/MPC20120047
    • NLM

      Kobasko NI, Batista Junior AA, Canale L de CF, Totten GE, Dobryvechir VV. Cooling capacity of coconut oil, palm oil, and a commercial petroleum oil by solving the heat conductivity inverse problem [Internet]. Materials Performance and Characterization. 2013 ; 2( 1): 319-338.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20120047
    • Vancouver

      Kobasko NI, Batista Junior AA, Canale L de CF, Totten GE, Dobryvechir VV. Cooling capacity of coconut oil, palm oil, and a commercial petroleum oil by solving the heat conductivity inverse problem [Internet]. Materials Performance and Characterization. 2013 ; 2( 1): 319-338.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20120047
  • Source: Materials Performance and Characterization. Unidades: EESC, Interunidades em Ciência e Engenharia de Materiais

    Subjects: TÊMPERA, TRANSFERÊNCIA DE CALOR, MATERIAIS

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      KOBASKO, Nikolai Ivanovich et al. Cooling capacity of petroleum oil quenchants as a function of bath temperature. Materials Performance and Characterization, v. 2, n. 1, p. 468-488, 2013Tradução . . Disponível em: https://doi.org/10.1520/MPC20130004. Acesso em: 08 out. 2025.
    • APA

      Kobasko, N. I., Marques, A., Canale, L. de C. F., Totten, G. E., & Dobryvechir, V. V. (2013). Cooling capacity of petroleum oil quenchants as a function of bath temperature. Materials Performance and Characterization, 2( 1), 468-488. doi:10.1520/MPC20130004
    • NLM

      Kobasko NI, Marques A, Canale L de CF, Totten GE, Dobryvechir VV. Cooling capacity of petroleum oil quenchants as a function of bath temperature [Internet]. Materials Performance and Characterization. 2013 ; 2( 1): 468-488.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20130004
    • Vancouver

      Kobasko NI, Marques A, Canale L de CF, Totten GE, Dobryvechir VV. Cooling capacity of petroleum oil quenchants as a function of bath temperature [Internet]. Materials Performance and Characterization. 2013 ; 2( 1): 468-488.[citado 2025 out. 08 ] Available from: https://doi.org/10.1520/MPC20130004

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