Escudo Universidad de Pamplona

Repositorio Institucional

Universidad de Pamplona

Preservamos, organizamos y difundimos la producción académica, científica, investigativa y cultural de la Universidad de Pamplona, garantizando el acceso abierto al conocimiento generado por nuestra comunidad universitaria.

Explorar colecciones

Por favor, use este identificador para citar o enlazar este ítem: https://repositoriodspace.unipamplona.edu.co/jspui/handle/20.500.12744/4158
Registro completo de metadatos
Campo DC Valor Lengua/Idioma
dc.contributor.authorVillamizar Cuadros, Edward Johan.-
dc.date.accessioned2022-11-03T19:11:08Z-
dc.date.available2021-12-17-
dc.date.available2022-11-03T19:11:08Z-
dc.date.issued2022-
dc.identifier.citationVillamizar Cuadros, E. J. (2021). Caracterización del proceso de pirólisis de aceites de motor usado [Trabajo de Grado Pregrado, Universidad de Pamplona]. Repositorio Hulago Universidad de Pamplona. http://repositoriodspace.unipamplona.edu.co/jspui/handle/20.500.12744/4158es_CO
dc.identifier.urihttp://repositoriodspace.unipamplona.edu.co/jspui/handle/20.500.12744/4158-
dc.descriptionEl autor no proporciona la información sobre este ítem.es_CO
dc.description.abstractEl autor no proporciona la información sobre este ítem.es_CO
dc.format.extent105es_CO
dc.format.mimetypeapplication/pdfes_CO
dc.language.isoeses_CO
dc.publisherUniversidad de Pamplona- Facultad de Ingenierías y Arquitectura.es_CO
dc.subjectEl autor no proporciona la información sobre este ítem.es_CO
dc.titleCaracterización del proceso de pirólisis de aceites de motor usado.es_CO
dc.typehttp://purl.org/coar/resource_type/c_7a1fes_CO
dc.date.accepted2021-09-17-
dc.relation.referencesU. Energy Information Administration, “International Energy Outlook 2020 (IEO2020),” Accessed: Jul. 08, 2021. [Online]. Available: www.eia.goves_CO
dc.relation.referencesL. Li et al., “Review and outlook on the international renewable energy development,” Energy Built Environ., Dec. 2020, doi: 10.1016/j.enbenv.2020.12.002.es_CO
dc.relation.referencesN. Patel and K. P. Shadangi, “Characterization of waste engine oil (WEO) pyrolytic oil and diesel blended oil: Fuel properties and compositional analysis,” Mater. Today Proc., vol. 33, pp. 4933–4936, Jan. 2020, doi: 10.1016/j.matpr.2020.02.679.es_CO
dc.relation.referencesR. Maceiras, V. Alfonsín, and F. J. Morales, “Recycling of waste engine oil for diesel production,” Waste Manag., vol. 60, pp. 351–356, Feb. 2017, doi: 10.1016/j.wasman.2016.08.009.es_CO
dc.relation.referencesC. Nerín, C. Domeño, R. Moliner, M. J. Lázaro, I. Suelves, and J. Valderrama, “Behaviour of different industrial waste oils in a pyrolysis process: Metals distribution and valuable products,” J. Anal. Appl. Pyrolysis, vol. 55, no. 2, pp. 171–183, Jul. 2000, doi: 10.1016/S0165-2370(99)00097-2.es_CO
dc.relation.referencesC. T. Pinheiro, M. J. Quina, and L. M. Gando-Ferreira, “Management of waste lubricant oil in Europe: A circular economy approach,” https://doi.org/10.1080/10643389.2020.1771887, vol. 51, no. 18, pp. 2015– 2050, 2020, doi: 10.1080/10643389.2020.1771887.es_CO
dc.relation.referencesR. Abu-Elella, M. E. Ossman, R. Farouq, and M. Abd-Elfatah, “Used Motor Oil Treatment: Turning Waste Oil Into Valuable Products,” 2015. Accessed: Mar. 06, 2021. [Online]. Available: www.iscientific.org/Journal.html.es_CO
dc.relation.referencesJ. A. G. U. Iñigo Gonzáles Canal, “ACEITES USADOS DE COCINA. PROBLEMÁTICA AMBIENTAL, INCIDENCIAS EN REDES DE SANEAMIENTO Y COSTE DEL TRATAMIENTO EN DEPURADORAS,” 2017. Accessed: Mar. 01, 2021. [Online]. Available: http://www.rafrinor.com.es_CO
dc.relation.referencesA. Santhoshkumar and A. Ramanathan, “Recycling of waste engine oil through pyrolysis process for the production of diesel like fuel and its uses in diesel engine,” Energy, vol. 197, p. 117240, Apr. 2020, doi: 10.1016/j.energy.2020.117240.es_CO
dc.relation.referencesY. Deng, R. Dewil, L. Appels, R. Ansart, J. Baeyens, and Q. Kang, “Reviewing the thermo-chemical recycling of waste polyurethane foam,” J. Environ. Manage., vol. 278, p. 111527, Jan. 2021, doi: 10.1016/j.jenvman.2020.111527es_CO
dc.relation.referencesF. Martins, C. Felgueiras, and M. Smitková, “Fossil fuel energy consumption in European countries,” in Energy Procedia, Oct. 2018, vol. 153, pp. 107–111, doi: 10.1016/j.egypro.2018.10.050.es_CO
dc.relation.referencesO. Arpa, R. Yumrutaş, and Ö. Kaşka, “Desulfurization of diesel-like fuel produced from waste lubrication oil and its utilization on engine performance and exhaust emission,” Appl. Therm. Eng., vol. 58, no. 1–2, pp. 374–381, Sep. 2013, doi: 10.1016/j.applthermaleng.2013.04.035es_CO
dc.relation.referencesC. Tóth, D. Sági, and J. Hancsók, “Diesel Fuel Production by Catalytic Hydrogenation of Light Cycle Oil and Waste Cooking Oil Containing Gas Oil,” Top. Catal., vol. 58, no. 14–17, pp. 948–960, Oct. 2015, doi: 10.1007/s11244- 015-0463-0.es_CO
dc.relation.referencesI. Hamawand, T. Yusaf, and S. Rafat, “Recycling of Waste Engine Oils Using a New Washing Agent,” Energies, vol. 6, no. 2, pp. 1023–1049, Feb. 2013, doi: 10.3390/en6021023.es_CO
dc.relation.referencesB. Van De Beld, E. Holle, and J. Florijn, “The use of pyrolysis oil and pyrolysis oil derived fuels in diesel engines for CHP applications,” Appl. Energy, vol. 102, pp. 190–197, Feb. 2013, doi: 10.1016/J.APENERGY.2012.05.047.es_CO
dc.relation.references“Ley 1252 de 2008 Nivel Nacional.” https://www.alcaldiabogota.gov.co/sisjur/normas/Norma1.jsp?i=33965 (accessed Mar. 04, 2021).es_CO
dc.relation.referencesC. T. Pinheiro, V. R. Ascensão, C. M. Cardoso, M. J. Quina, and L. M. Gando Ferreira, “An overview of waste lubricant oil management system: Physicochemical characterization contribution for its improvement,” J. Clean. Prod., vol. 150, pp. 301–308, May 2017, doi: 10.1016/j.jclepro.2017.03.024es_CO
dc.relation.referencesA. Mishra, H. Siddiqi, U. Kumari, I. D. Behera, S. Mukherjee, and B. C. Meikap, “Pyrolysis of waste lubricating oil/waste motor oil to generate high-grade fuel oil: A comprehensive review,” Renew. Sustain. Energy Rev., vol. 150, p. 111446, Oct. 2021, doi: 10.1016/J.RSER.2021.111446.es_CO
dc.relation.referencesA. Martinéz Villegas, MOTORES DE COMBUSTIÓN INTERNA. 2007.es_CO
dc.relation.references“I,” in Dictionary of Energy, Elsevier, 2015, pp. 301–322.es_CO
dc.relation.referencesK. Holmberg, P. Andersson, and A. Erdemir, “Global energy consumption due to friction in passenger cars,” Tribol. Int., vol. 47, pp. 221–234, Mar. 2012, doi: 10.1016/J.TRIBOINT.2011.11.022es_CO
dc.relation.referencesN. Thachnatharen, M. Khalid, A. Arulraj, and N. Sridewi, “Tribological performance of hexagonal boron nitride (hBN) as nano-additives in military grade diesel engine oil,” Mater. Today Proc., May 2021, doi: 10.1016/J.MATPR.2021.04.145.es_CO
dc.relation.referencesR. M. Rajkumar et al., “Studies on tribological behaviour of ZnO nanorods suspended in SAE 20w 40 engine oil,” Solid State Commun., vol. 328, p. 114235, Apr. 2021, doi: 10.1016/J.SSC.2021.114235.es_CO
dc.relation.referencesJ. C. J. Bart, E. Gucciardi, and S. Cavallaro, “Lubricants: properties and characteristics,” in Biolubricants, Elsevier, 2013, pp. 24–73.es_CO
dc.relation.referencesG. Alejandro and A. Ortiz, “Implantación de Análisis de Aceite en Motores de Combustión Interna de Ciclo Diesel,” 2009.es_CO
dc.relation.referencesH. Yamagata, “The cylinder,” in The Science and Technology of Materials in Automotive Engines, Elsevier, 2005, pp. 10–52.es_CO
dc.relation.referencesG. W. Stachowiak and A. W. Batchelor, “Engineering Tribology: Fourth Edition,” Eng. Tribol. Fourth Ed., pp. 1–852, 2013.es_CO
dc.relation.references“Future Challenges of the Lubricants Industry,” 2018.es_CO
dc.relation.referencesJ. A. Delgado Mitrano, “EVALUACIÓN TÉCNICA, ECONÓMICA Y AMBIENTAL DE UN SISTEMAPARA EL REUSO DE ACEITES LUBRICANTES COMO COMBUSTIBLE ALTERNO EN LOS SECADORES DE MINERAL DE HIERRO Des_CO
dc.relation.referencesJ. L. Martín Pantoja, “La gestión de los aceites usados,” Ing. Química, 2007.es_CO
dc.relation.referencesJ. Ewen, C. Gattinoni, F. Thakkar, N. Morgan, H. Spikes, and D. Dini, “A Comparison of Classical Force-Fields for Molecular Dynamics Simulations of Lubricants,” Materials (Basel)., vol. 9, no. 8, p. 651, Aug. 2016, doi: 10.3390/ma9080651.es_CO
dc.relation.references“S-OIL SEVEN.” http://www.s oil7.com/mobile/esp/knowledge/basic/classfiList.html (accessed Mar. 03, 2021).es_CO
dc.relation.referencesP. N. Belkhode, V. N. Ganvir, A. C. Shende, and S. D. Shelare, “Utilization of waste transformer oil as a fuel in diesel engine,” Mater. Today Proc., Feb. 2021, doi: 10.1016/j.matpr.2021.02.008.es_CO
dc.relation.referencesISO 14001, “Organización Internacional para la Estandarización (ISO) (2015),” Norma Int. - Suiza, vol. 3°, p. 48, 2015, [Online]. Available: www.iso.org.es_CO
dc.relation.references“Gestión de Residuos Posconsumo (17) | Ministerio de Ambiente y Desarrollo Sostenible.” https://www.minambiente.gov.co/index.php/component/content/article/10- asuntos-ambientales-y-sectorial-y-urbana/asuntos-ambientales-y-sectorial-y urbana-articulos/189-plantilla-asuntos-ambientales-y-sectorial-y-urbana-17 (accessed Mar. 04, 2021).es_CO
dc.relation.referencesGroupement Européen de l’Industrie de la Régénération, “Waste Framework Directive revision: European waste oil re-refining industry position,” 2016es_CO
dc.relation.referencesJ. G. Speight, “Synthesis gas and the Fischer–Tropsch process,” Refin. Futur., pp. 427–468, Jan. 2020, doi: 10.1016/B978-0-12-816994-0.00012-9.es_CO
dc.relation.referencesA. Saravanan, R. V. Hemavathy, T. R. Sundararaman, S. Jeevanantham, P. S. Kumar, and P. R. Yaashikaa, “Solid waste biorefineries,” Refin. Biomass Residues Sustain. Energy Bioprod. Technol. Adv. Life Cycle Assessment, Econ., pp. 3–17, Jan. 2020, doi: 10.1016/B978-0-12-818996-2.00001-6.es_CO
dc.relation.referencesJ. A. Garcia-Nunez et al., “Historical Developments of Pyrolysis Reactors: A Review,” Energy and Fuels, vol. 31, no. 6, pp. 5751–5775, Jun. 2017, doi: 10.1021/ACS.ENERGYFUELS.7B00641.es_CO
dc.relation.referencesP. Basu, “Biomass gasification, pyrolysis and torrefaction: Practical design and theory,” Biomass Gasification, Pyrolysis Torrefaction Pract. Des. Theory, pp. 1–564, Jan. 2018, doi: 10.1016/C2016-0-04056-1.es_CO
dc.relation.referencesG. Almaguer and D. Rodríguez, “Diseño experimental para degradación térmica solar de biomasa (pirólisis y gasificación),” Jovenes en la Cienc. - Rev. Divulg. científica, no. 1, pp. 2246–2250, 2017, [Online]. Available: http://www.jovenesenlaciencia.ugto.mx/index.php/jovenesenlaciencia/article/ view/1879.es_CO
dc.relation.referencesM. Balat, M. Balat, E. Kirtay, and H. Balat, “Main routes for the thermo conversion of biomass into fuels and chemicals. Part 1: Pyrolysis systems,” Energy Convers. Manag., vol. 50, no. 12, pp. 3147–3157, Dec. 2009, doi: 10.1016/J.ENCONMAN.2009.08.014.es_CO
dc.relation.referencesT. Tam and A. Bhatnagar, “High-performance ballistic fibers and tapes,” Light. Ballist. Compos. Mil. Law-Enforcement Appl. Second Ed., pp. 1–39, Jan. 2016, doi: 10.1016/B978-0-08-100406-7.00001-5es_CO
dc.relation.referencesS. C. Moldoveanu, “General information about pyrolysis,” in Analytical Pyrolysis of Natural Organic Polymers, Elsevier, 2021, pp. 3–27.es_CO
dc.relation.referencesA. A. Boateng, “Introduction,” Pyrolysis Biomass Fuels Chem., pp. 1–21, Jan. 2020, doi: 10.1016/B978-0-12-818213-0.00001-1.es_CO
dc.relation.referencesX. Li, J. Zhai, H. Li, and X. Gao, “An integration recycling process for cascade utilization of waste engine oil by distillation and microwave-assisted pyrolysis,” Fuel Process. Technol., vol. 199, p. 106245, Mar. 2020, doi: 10.1016/J.FUPROC.2019.106245.es_CO
dc.relation.referencesX. Li, J. Zhai, H. Li, and X. Gao, “An integration recycling process for cascade utilization of waste engine oil by distillation and microwave-assisted pyrolysis,” Fuel Process. Technol., vol. 199, p. 106245, Mar. 2020, doi: 10.1016/j.fuproc.2019.106245.es_CO
dc.relation.referencesA. G. Razo Garcia and J. M. Riesco Ávila, “Obtención de Combustible Alternativo Mediante Pirólisis de Aceite Lubricante Residual | Razo García | JÓVENES EN LA CIENCIA,” 2019. http://www.jovenesenlaciencia.ugto.mx/index.php/jovenesenlaciencia/article/ view/3104 (accessed Mar. 02, 2021).es_CO
dc.relation.referencesM. P. Mesa Upegui and C. I. Ortíz Rodríguez, “EVALUACIÓN DEL PROCESO DE PIROLISIS PARA LA PRODUCCIÓN DE DIESEL A NIVEL LABORATORIO A PARTIR DE RESIDUOS PLÁSTICOS DE INDUSTRIAS DE ALIMENTOS,” 2016. Accessed: Mar. 02, 2021. [Online]. Available: https://repository.uamerica.edu.co/bitstream/20.500.11839/477/1/6111667- 2016-2-IQ.pdfes_CO
dc.relation.referencesA. Santhoshkumar and R. Anand, “Microwave-assisted fast pyrolysis of hazardous waste engine oil into green fuels,” in Advances in Eco-Fuels for a Sustainable Environment, Elsevier, 2019, pp. 119–155.es_CO
dc.relation.referencesS. S. Lam, A. D. Russell, C. L. Lee, S. K. Lam, and H. A. Chase, “Production of hydrogen and light hydrocarbons as a potential gaseous fuel from microwave-heated pyrolysis of waste automotive engine oil,” Int. J. Hydrogen Energy, vol. 37, no. 6, pp. 5011–5021, Mar. 2012, doi: 10.1016/j.ijhydene.2011.12.016es_CO
dc.relation.referencesS. S. Lam, A. D. Russell, and H. A. Chase, “Microwave pyrolysis, a novel process for recycling waste automotive engine oil,” Energy, vol. 35, no. 7, pp. 2985–2991, Jul. 2010, doi: 10.1016/j.energy.2010.03.033.es_CO
dc.relation.referencesN. Patel, K. P. Shadangi, and P. K. Kar, “Characterization of waste engine oil derived pyrolytic char (WEOPC): SEM, EDX and FTIR analysis,” Mater. Today Proc., no. xxxx, 2020, doi: 10.1016/j.matpr.2020.09.138.es_CO
dc.relation.referencesS. Uçar, S. Karagöz, J. Yanik, M. Saglam, and M. Yuksel, “Copyrolysis of scrap tires with waste lubricant oil,” Fuel Process. Technol., vol. 87, no. 1, pp. 53–58, Dec. 2005, doi: 10.1016/J.FUPROC.2005.06.001.es_CO
dc.relation.referencesM. Siva, S. Onenc, S. Uçar, and J. Yanik, “Influence of oily wastes on the pyrolysis of scrap tire,” Energy Convers. Manag., vol. 75, pp. 474–481, Nov. 2013, doi: 10.1016/J.ENCONMAN.2013.06.055.es_CO
dc.relation.referencesM. J. Lazaro, R. Moliner, I. Suelves, A. A. Herod, and R. Kandiyoti, “Characterisation of tars from the co-pyrolysis of waste lubricating oils with coal,” Fuel, vol. 80, no. 2, pp. 179–194, Jan. 2001, doi: 10.1016/S0016- 2361(00)00084-3.es_CO
dc.relation.referencesM. J. Lázaro, R. Moliner, I. Suelves, C. Domeo, and C. Nerín, “Co-pyrolysis of a mineral waste oil/coal slurry in a continuous-mode fluidized bed reactor,” J. Anal. Appl. Pyrolysis, vol. 65, no. 2, pp. 239–252, Dec. 2002, doi: 10.1016/S0165-2370(02)00003-7.es_CO
dc.relation.referencesRiesco-Ávila, J. M. A , Rodríguez-Valderrama, C. -Gutiérrez, G. -Ordaz, and R.-G. A. G. A , Martínez-Martínez, “Combustibles alternativos Obtención de combustible alternativo para motores de combustión interna mediante pirólisis de aceite lubricante residual.”es_CO
dc.relation.referencesN. Miskolczi, N. Borsodi, F. Buyong, A. Angyal, and P. T. Williams, “Production of pyrolytic oils by catalytic pyrolysis of Malaysian refuse-derived fuels in continuously stirred batch reactor,” Fuel Process. Technol., vol. 92, no. 5, pp. 925–932, May 2011, doi: 10.1016/J.FUPROC.2010.12.012.es_CO
dc.relation.referencesD. Lesmana and H. S. Wu, “Pyrolysis of waste oil in the presence of a spent catalyst,” J. Environ. Chem. Eng., vol. 3, no. 4, pp. 2522–2527, Dec. 2015, doi: 10.1016/J.JECE.2015.09.019.es_CO
dc.relation.referencesA. Demirbas, “Gasoline-like Fuel from Waste Engine Oil via Catalytic Pyrolysis,” http://dx.doi.org/10.1080/15567030701258469, vol. 30, no. 16, pp. 1433–1441, Oct. 2008, doi: 10.1080/15567030701258469.es_CO
dc.relation.referencesO. Arpa, R. Yumrutas, and A. Demirbas, “Production of diesel-like fuel from waste engine oil by pyrolitic distillation,” Appl. Energy, vol. 87, no. 1, pp. 122– 127, Jan. 2010, doi: 10.1016/J.APENERGY.2009.05.042.es_CO
dc.relation.referencesN. Zandi-Atashbar, A. A. Ensafi, and A. H. Ahoor, “Nano-CeO2/SiO2 as an efficient catalytic conversion of waste engine oil into liquid fuel,” J. Clean. Prod., vol. 166, pp. 1010–1019, Nov. 2017, doi: 10.1016/J.JCLEPRO.2017.08.103.es_CO
dc.relation.referencesS. E. Alavi, M. A. Abdoli, F. Khorasheh, F. Nezhadbahadori, and A. B. Moghaddam, “Nanomaterial-assisted pyrolysis of used lubricating oil and fuel recovery,” https://doi.org/10.1080/15567036.2020.1807655, 2020, doi: 10.1080/15567036.2020.1807655.es_CO
dc.relation.referencesA. Permsubscul, T. Vitidsant, and S. Damronglerd, “Catalytic cracking reaction of used lubricating oil to liquid fuels catalyzed by sulfated zirconia,” Korean J. Chem. Eng. 2007 241, vol. 24, no. 1, pp. 37–43, Jan. 2007, doi: 10.1007/S11814-007-5006-3.es_CO
dc.relation.referencesY. Zouad, L. Tarabet, K. Khiari, and R. Mahmoud, “Effect of heating rate and additives (MgO and Al2O3) on a diesel like-fuel issued from waste engine oil pyrolysis,” https://doi.org/10.1080/10916466.2019.1581810, vol. 37, no. 10, pp. 1184–1193, May 2019, doi: 10.1080/10916466.2019.1581810.es_CO
dc.relation.referencesI. Ahmad et al., “Catalytic Pyrolysis of Used Engine Oil over Coal Ash into Fuel-like Products,” Energy and Fuels, vol. 30, no. 1, pp. 204–218, Jan. 2015, doi: 10.1021/ACS.ENERGYFUELS.5B02316.es_CO
dc.relation.references] M. Balat, “Diesel-Like Fuel Obtained by Catalytic Pyrolysis of Waste Engine Oil:,” http://dx.doi.org/10.1260/014459808786933735, vol. 26, no. 3, pp. 197– 208, Jun. 2008, doi: 10.1260/014459808786933735es_CO
dc.relation.references“¿Qué son los diseños de superficie de respuesta, los diseños centrales compuestos y los diseños de Box-Behnken? - Minitab.” https://support.minitab.com/es-mx/minitab/18/help-and-how-to/modeling statistics/doe/supporting-topics/response-surface-designs/response-surface central-composite-and-box-behnken-designs/ (accessed Mar. 01, 2021).es_CO
dc.relation.referencesD. Montgomery, Diseño y análisis de experimentos. 2004.es_CO
dc.relation.referencesF. A. Candelas et al., “Experiences on using Arduino for laboratory experiments of Automatic Control and Robotics,” IFAC-PapersOnLine, vol. 48, no. 29, pp. 105–110, Jan. 2015, doi: 10.1016/j.ifacol.2015.11.221.es_CO
dc.relation.referencesV. Cárdenas, Michelle; Peñaranda, “Análisis comparativo de algoritmos de control pid, fuzzy y predictivo aplicados a para la captación de energía solar usando paneles fotovoltaicos.,” 2018, [Online]. Available: https://www.dspace.espol.edu.ec/handle/123456789/46062.es_CO
dc.relation.referencesC. Gonzáles Morcillo, “Lógica Difusa. Técnicas de Softcomputing. Una introducción práctica. Carlos González Morcillo. - PDF Free Download,” 2011. https://docplayer.es/10189658-Logica-difusa-tecnicas-de-softcomputing-una introduccion-practica-carlos-gonzalez-morcillo-carlos-gonzalez-uclm-es.html (accessed Mar. 04, 2021).es_CO
dc.relation.referencesD. Ibrahim, “Advanced PIC32 Projects,” Des. Embed. Syst. with 32-Bit PIC Microcontrollers MikroC, pp. 359–442, Jan. 2014, doi: 10.1016/B978-0-08- 097786-7.00008-7.es_CO
dc.relation.referencesICONTEC, “NORMA TÉCNICA NTC COLOMBIANA 2289 BARRAS CORRUGADAS Y LISAS DE ACERO DE BAJA ALEACIÓN, PARA REFUERZO DE CONCRETO E: LOW-ALLOY STEEL DEFORMED AND PLAIN BARS FOR CONCRETE REINFORCEMENT CORRESPONDENCIA: esta norma es modificada (MOD) respecto a la norma ASTM A 706/A 706M:2006,” 2012.es_CO
dc.relation.referencesICONTEC, “NORMA NORMA TÉCNICA TÉCNICA NTC NTC COLOMBIANA 1560 COLOMBIANA 1560,” 2007.es_CO
dc.relation.references“Arduino Mega 2560 Rev3 | Arduino Official Store.” https://store.arduino.cc/usa/mega-2560-r3 (accessed Aug. 25, 2021).es_CO
dc.relation.referencesM. Integrated, “MAX6675 Cold-Junction-Compensated K-Thermocoupleto Digital Converter (0°C to +1024°C) Data Sheet.” https://datasheets.maximintegrated.com/en/ds/MAX6675.pdf (accessed Mar. 01, 2021).es_CO
dc.relation.referencesM. Inegrated, “DS18B20 Programmable Resolution 1-Wire Digital Thermometer Data Sheet.” https://datasheets.maximintegrated.com/en/ds/DS18B20.pdf (accessed Mar. 01, 2021).es_CO
dc.relation.references“(PDF) ZMPT101B Datasheet - voltage transformer operating guide.” http://www.datasheet.es/PDF/1031464/ZMPT101B-pdf.html (accessed Aug. 25, 2021)es_CO
dc.relation.references“(PDF) SSR-25DA Datasheet - DC to AC Solid State Relay.” http://www.datasheet.es/PDF/789331/SSR-25DA-pdf.html (accessed Aug. 25, 2021).es_CO
dc.relation.referencesMobil TM, “Mobil Special 15W-40 y 20W-50.” https://www.mobil.com/es mx/passenger-vehicle-lube/pds/gl-xx-mobil-special-15w40-20w50 (accessed Jul. 19, 2021).es_CO
dc.relation.referencesASTM, “ASTM D1298-12b(2017) Método de prueba estándar para determinar la densidad, la densidad relativa o la gravedad API del petróleo crudo y los productos líquidos derivados del petróleo mediante el Método de densímetro.” https://www.astm.org/Standards/D1298-SP.htm (accessed Jul. 19, 2021).es_CO
dc.relation.referencesASTM, “ASTM D445-17a Método de prueba estándar para determinación de la viscosidad cinemática de líquidos transparentes y opacos (y cálculo de la viscosidad dinámica).” https://www.astm.org/DATABASE.CART/HISTORICAL/D445-17A-SP.htm (accessed Jul. 19, 2021)es_CO
dc.relation.referencesISO, “ISO 2909:2002(en), Petroleum products — Calculation of viscosity index from kinematic viscosity,” 2002. https://www.iso.org/obp/ui/#iso:std:iso:2909:ed-3:v1:en (accessed Jul. 19, 2021).es_CO
dc.relation.referencesA. Santhoshkumar and R. Anand, “Microwave-assisted fast pyrolysis of hazardous waste engine oil into green fuels,” Adv. Eco-Fuels a Sustain. Environ., pp. 119–155, Jan. 2019, doi: 10.1016/B978-0-08-102728-8.00005- X.es_CO
dc.rights.accessrightshttp://purl.org/coar/access_right/c_abf2es_CO
dc.type.coarversionhttp://purl.org/coar/resource_type/c_2df8fbb1es_CO
Aparece en las colecciones: Ingeniería Mecánica

Ficheros en este ítem:
Fichero Descripción Tamaño Formato  
Villamizar_2021_TG.pdfVillamizar_2021_TG5,05 MBAdobe PDFVisualizar/Abrir


Los ítems de DSpace están protegidos por copyright, con todos los derechos reservados, a menos que se indique lo contrario.