Diseño y desarrollo de sistemas instrumentados por ingeniería en nanotecnología para la automatización de plantas industriales

dc.contributor.advisorMuñoz Moner, Antonio Faustinospa
dc.contributor.authorDíaz Puentes, Liz Caterinespa
dc.contributor.cvlachttps://scienti.minciencias.gov.co/cvlac/visualizador/generarCurriculoCv.do?cod_rh=0000068799*
dc.contributor.googlescholarhttps://scholar.google.es/citations?hl=es&user=iJoJzF4AAAAJ*
dc.contributor.researchgatehttps://www.researchgate.net/profile/Antonio_Fausti_Moner*
dc.contributor.scopushttps://www.scopus.com/authid/detail.uri?authorId=55524233500*
dc.coverage.campusUNAB Campus Bucaramangaspa
dc.coverage.spatialColombiaspa
dc.date.accessioned2020-10-01T15:58:24Z
dc.date.available2020-10-01T15:58:24Z
dc.date.issued2017
dc.degree.nameEspecialista en Automatización Industrialspa
dc.description.abstractEn los últimos años la Nanotecnología se ha convertido en uno de los más importantes y apasionantes campos de evolución en Física, Química, ingeniería y Biología. Se trata de una tecnología que ofrece posibles soluciones a muchos problemas actuales mediante materiales, componentes y sistemas más pequeños, más ligeros, más rápidos y con mejores prestaciones; contribuyendo de manera relevante al desarrollo económico y social. Resulta prometedora en el sentido de que en un futuro cercano suministrara muchos avances que cambiarán los logros tecnológicos en un amplio campo de aplicaciones como lo es la ingeniería electrónica, más aun si a esta se la fusiona con ramas importantes como es la química, física, etc. Para este documento se realizó una investigación bibliográfica de artículos, programas y libros sobre el tema para así crear un documento donde se da a conocer de una forma general lo que se pretende con la investigación.spa
dc.description.abstractenglishIn recent years Nanotechnology has become one of the most important and exciting fields of evolution in Physics, Chemistry, Engineering and Biology. It is a technology that offers possible solutions to many current problems through materials, components and systems that are smaller, lighter, faster and with better performance; contributing in a relevant way to economic and social development. It is promising in the sense that in the near future it will provide many advances that will change technological achievements in a wide field of applications such as electronic engineering, even more so if it is merged with important branches such as chemistry, physics, etc. For this document, a bibliographic investigation of articles, programs and books on the subject was carried out in order to create a document where it is disclosed in a general way what is intended with the investigation.eng
dc.description.degreelevelEspecializaciónspa
dc.description.learningmodalityModalidad Presencialspa
dc.description.tableofcontentsRESUMEN ............................................................................................................. 10 1. INTRODUCCIÓN ............................................................................................ 11 1.1. OBJETIVOS ................................................................................................. 13 1.1.1. Objetivo General .................................................................................... 13 1.1.2. Objetivos Específicos ............................................................................ 13 2. MARCO TEÓRICO .......................................................................................... 14 2.1 CONCEPTO DE NANOCIENCIA Y NANOTECNOLOGÍA ........................... 14 2.2. HISTORIA DE LA NANOTECNOLOGIA ...................................................... 19 2.3. MÉTODOS DE NANO FABRICACIÓN ........................................................ 23 2.3.1. Diseño, desarrollo nanosensores por fabricación basados en la técnica del electrohilado para implementación en nanoinstrumentación ..................... 26 2.3.2. Modelación y simulación de sistemas nanotecnológicos dotados de nanoinstrumentación (nanosensores) asociados a la instrumentación biomédica. ....................................................................................................... 31 2.3.3.1. Creación de los cluster a través de unidades de extracción de características ................................................................................................. 34 2.3.5. Metodología basada Células madres .................................................... 36 2.3.2. El electrospinning .................................................................................. 42 2.3.3. Ecuaciones que rigen el comportamiento de los sistemas nanotecnológicos basados en la teoría cuántica ............................................. 55 2.4. APLICACIONES DE NANOTECNOLOGÍA.................................................. 69 2.4.1. Aplicaciones de nanotecnología en medicina ........................................ 69 2.4.2. Aplicaciones de nanotecnología en medio ambiente............................. 71 2.4.3. Aplicaciones de nanotecnología en Energía ......................................... 72 2.4.4. Aplicaciones de nanotecnología en el empacado de alimentos y monitoreo ........................................................................................................ 74 2.4.5. Aplicaciones en Electrónica ................................................................... 75 3 3. METODOLOGÍA DE DISEÑO DE SISTEMAS A NANOESCALA ................... 77 3.1. Aplicaciones de nanotecnología computacional en el diseño de sistemas a nanoecala. .......................................................................................................... 77 3.1.1. Nanotecnología computacional con aplicación dinámica molecular software Molecular Workbrench ...................................................................... 77 3.1.2. Nanotecnología computacional con aplicación dinámica molecular software Visual Molecular Dynamics VMD .................................................... 104 3.1.3. Nanotecnología computacional software Rasmol2 ........................... 105 4. TRABAJOS REALIZADOS POR OTROS USUARIOS EN DISEÑO, DESARROLLO Y APLICACIÓN DE NANOSENSORES ..................................... 106 4.1. INVESTIGACIÓN Y DESARROLLO DE NUEVA METODOLOGÍA DE DISEÑO BASADA EN PATRONES DE CÉLULAS MADRES, Y CONTROL MECATRÓNICO DE UNA PRÓTESIS BIOELÉCTRICA DE MIEMBRO INFERIOR PARA DISCAPACITADOS DE LA VIOLENCIA EN COLOMBIA, UTILIZANDO CLONACIÓN ARTIFICIAL .......................................................... 106 4.2. DISEÑO, DESARROLLO Y APLICACIÓN DE NANOSENSOR TERMORRESISTIVO PARA UN PROCESO DE NANOCATALISIS EN REACTORES QUÍMICOS DE LA INDUSTRIA DEL PETRÓLEO. (ECOPETROL) 119 4.3. DISEÑO DESARROLLO Y APLICACIÓN DE NANO SENSOR DE VELOCIDAD EN EJES HOMOCINÉTICOS PARA EL MONITOREO Y REGISTRO EN CAJA NEGRA PARA AUTOMOTORES. (TRANSEJES) ........ 124 4.4. Diseño y desarrollo de sistemas de instrumentación inteligente para carreteras de la malla vial de Colombia (Corasfaltos) ...................................... 128 CONCLUSIONES ................................................................................................ 141 BIBLIOGRAFÍA .................................................................................................... 142 ANEXOS .............................................................................................................. 168spa
dc.format.mimetypeapplication/pdfspa
dc.identifier.instnameinstname:Universidad Autónoma de Bucaramanga - UNABspa
dc.identifier.reponamereponame:Repositorio Institucional UNABspa
dc.identifier.repourlrepourl:https://repository.unab.edu.coeng
dc.identifier.urihttp://hdl.handle.net/20.500.12749/7272
dc.language.isospaspa
dc.publisher.facultyFacultad Ingenieríaspa
dc.publisher.grantorUniversidad Autónoma de Bucaramanga UNABspa
dc.publisher.programEspecialización en Automatización Industrialspa
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dc.relation.referencesI. Wald, G. Johnson, J. Amstutz, C. Brownlee, A. Knoll, J. Jeffers, J. Gunther, and P. Navratil. OSPRay - a CPU ray tracing framework for scientific visualization. IEEE Transactions on Visualization and Computer Graphics, 23(1):1-1, 20spa
dc.relation.referencesJohn E. Stone, James C. Phillips, Peter L. Freddolino, David J. Hardy, Leonardo G. Trabuco, and Klaus Schulten. Accelerating molecular modeling applications with graphics processors. J. Comp. Chem., 28:2618-2640, 2007.spa
dc.relation.referencesJohn D. Owens, Mike Houston, David Luebke, Simon Green, John E. Stone, and James C. Phillips. GPU computing. Proc. IEEE, 96:879-899, 2008spa
dc.relation.referencesChristopher I. Rodrigues, David J. Hardy, John E. Stone, Klaus Schulten, and Wen-mei W. Hwu. GPU acceleration of cutoff pair potentials for molecular modeling applications. In CF'08: Proceedings of the 2008 conference on Computing Frontiers, pages 273-282, New York, NY, USA, 2008. ACspa
dc.relation.referencesDavid J. Hardy, John E. Stone, and Klaus Schulten. Multilevel summation of electrostatic potentials using graphics processing units. J. Paral. Comp., 35:164-177, 2009.spa
dc.relation.referencesVolodymyr Kindratenko, Jeremy Enos, Guochun Shi, Michael Showerman, Galen Arnold, John E. Stone, James Phillips, and Wen-mei Hwu. GPU clusters for high performance computing. In Cluster Computing and Workshops, 2009. CLUSTER '09. IEEE International Conference on, pages 1-8, 2009spa
dc.relation.referencesJohn E. Stone, David J. Hardy, Ivan S. Ufimtsev, and Klaus Schulten. GPU-accelerated molecular modeling coming of age. J. Mol. Graph. Model., 29:116-125, 2010spa
dc.relation.referencesJohn E. Stone, David Gohara, and Guochun Shi. OpenCL: A parallel programming standard for heterogeneous computing systems. Comput. in Sci. and Eng., 12:66-73, 2010.spa
dc.relation.referencesJeremy Enos, Craig Steffen, Joshi Fullop, Michael Showerman, Guochun Shi, Kenneth Esler, Volodymyr Kindratenko, John E. Stone, and James C. Phillips. Quantifying the impact of GPUs on performance and energy efficiency in HPC clusters. In International Conference on Green Computing, pages 317-324, 2010.spa
dc.relation.referencesJohn E. Stone, David J. Hardy, Barry Isralewitz, and Klaus Schulten. GPU algorithms for molecular modeling. In Jack Dongarra, David A. Bader, and Jakub Kurzak, editors, Scientific Computing with Multicore and Accelerators, chapter 16, pages 351-371. Chapman & Hall/CRC Press, 2011spa
dc.relation.referencesDavid J. Hardy, Zhe Wu, James C. Phillips, John E. Stone, Robert D. Skeel, and Klaus Schulten. Multilevel summation method for electrostatic force evaluation. J. Chem. Theor. Comp., 11:766-779, 201spa
dc.relation.referencesJohn E. Stone, Ryan McGreevy, Barry Isralewitz, and Klaus Schulten. GPU-accelerated analysis and visualization of large structures solved by molecular dynamics flexible fitting. Faraday Discuss., 169:265-283, 2014spa
dc.relation.referencesAbhishek Singharoy, Ivan Teo, Ryan McGreevy, John E. Stone, Jianhua Zhao, and Klaus Schulten. Molecular dynamics-based refinement and validation with Resolution Exchange MDFF for sub-5 Å cryo-electron microscopy maps. eLife, 10.7554/eLife.16105, 2016. (66 pages).spa
dc.relation.referencesJohn E. Stone, Juan R. Perilla, C. Keith Cassidy, and Klaus Schulten. GPU-accelerated molecular dynamics clustering analysis with OpenACC. In Robert Farber, editor, Parallel Programming with OpenACC, pages 215-240. Morgan Kaufmann, Cambridge, MA, 2016spa
dc.relation.referencesJohn E. Stone, Jan Saam, David J. Hardy, Kirby L. Vandivort, Wen-mei W. Hwu, and Klaus Schulten. High performance computation and interactive display of molecular orbitals on GPUs and multi-core CPUs. In Proceedings of the 2nd Workshop on General-Purpose Processing on Graphics Processing Units, ACM International Conference Proceeding Series, volume 383, pages 9-18, New York, NY, USA, 2009. ACM.spa
dc.relation.referencesJohn E. Stone, David J. Hardy, Jan Saam, Kirby L. Vandivort, and Klaus Schulten. GPU-accelerated computation and interactive display of molecular orbitals. In Wen-mei Hwu, editor, GPU Computing Gems, chapter 1, pages 5-18. Morgan Kaufmann Publishers, 2011spa
dc.relation.referencesJohn E. Stone, Michael J. Hallock, James C. Phillips, Joseph R. Peterson, Zaida Luthey-Schulten, and Klaus Schulten. Evaluation of emerging energy-efficient heterogeneous computing platforms for biomolecular and cellular simulation workloads. 2016 IEEE International Parallel and Distributed Processing Symposium Workshop (IPDPSW), pages 89-100, 2016.spa
dc.relation.referencesJohn E. Stone, Antti-Pekka Hynninen, James C. Phillips, and Klaus Schulten. Early experiences porting the NAMD and VMD molecular simulation and analysis software to GPU-accelerated OpenPOWER platforms. Lect. Notes in Comp. Sci., 9945:188-206, 2016spa
dc.relation.referencesMichael Krone, John E. Stone, Thomas Ertl, and Klaus Schulten. Fast visualization of Gaussian density surfaces for molecular dynamics and particle system trajectories. In EuroVis - Short Papers 2012, pages 67-71, 2012spa
dc.relation.referencesElijah Roberts, John E. Stone, and Zaida Luthey-Schulten. Lattice microbes: High-performance stochastic simulation method for the reaction-diffusion master equation. J. Comp. Chem., 34:245-255, 2013.spa
dc.relation.referencesStructures et fonctions des molécules biologiques. Utilisations pédagogiques des visualisations tridimensionnelles avec Rasmol. J. Barrère, J-Y Dupont and N. Salamé. INRP, 1997, 128 pages.spa
dc.relation.referencesSurprising similarities in structure comparison. Jean-François Gilbrat, Thomas Madej, and Stephen H. Bryant. Current Opinion in Structural Biology 6:377-385, 1996. A review of early results of searcing for similarities in structure, regardless of sequence similarities. Describes the Vector Alignment Search Tool (VAST) provided by the US National Center for Biotechnology Informationspa
dc.relation.referencesGlaxoWellcome and MDL become entangled in the Web, by John Hodgson, Nature Biotechnology 14:690, June 1996. This article concerning RasMol and Chime is full of errors. See the editorial commentspa
dc.relation.referencesA Dynamic Look at Structures: WWW-Entrez and the Molecular Modeling Database, by Christopher W. V. Hogue, Hitomi Ohkawa and Stephen H. Bryant. Trends in Biochemical Sciences, 21:226-9, 1996. All PDB files have been converted to the WWW-Entrez format ASN.1. This format can handle a broader range of 3D structural information, including for example models from electron microscopy. WWW-Entrez links 3D structural information with GenBank sequences and MEDLINE abstracts. Related structures can be identified. Kinemage animations are generated automatically to reveal information buried in PDB files, such as thermal factors, disordered zones, and multiple NMR models.spa
dc.relation.referencesRasMol: Biomolecular graphics for all, by Roger A. Sayle and E. James Milner-White, Trends in Biochemical Sciences 20(Sept):374-376, 1995. RasMol was first widely distributed via the Internet in June, 1993, but this is the original paper publication describing RasMolspa
dc.relation.referencesHyperactive Molecules and the World-Wide-Web Information System, by Omer Casher, Gudge K. Chandramohan, Martin J. Hargreaves, Christopher Leach, Peter Murray-Rust, Henry S. Rzepa, Roger A. Sayle and Benjamin J. Whitaker. J. Chem. Soc., Perkin Trans. 2, 1995, 7. This paper proposes sharing chemical data too bulky for journal publication via World Wide Web. To accomplish this, it introduces various new chemical MIME (Multipurpose Internet Mail Extension) types, including chemical/x-csml for the Chemical Structure Markup Language which can be understood by RasMolspa
dc.relation.referencesSoftware for viewing biomolecules in three dimensions on the Internet, by Alvaro Sanchez-Ferrer, Estrella Nunez-Delicado, and Roque Bru, Trends in Biochemical Sciences 20(July):286-288, 1995.Compares RasMol 2.5, pdVwin, Pkin_2_4/Mage_2_4, Hyperchem 3spa
dc.relation.referencesUtilisations pédagogiques des visualisations tridimensionelles de molécules en biologie, by J. Barrère, J.-Y. Dupont, and N. Salamé, in Images numériques dan l'enseignement des sciences, Journées d'études CNAM, June 1995, J. C. Le Touzé and N. Salamé, eds., Institut Nationale de Recherche Pédagogique, pp. 87-93. A brief introduction to the use of RasMol for educational molecular visualization of DNA and proteins, touching on hemoglobin and the active site of carboxypeptidase. Illustrated.spa
dc.relation.referencesKinemages: make your own molecules for teaching, by Charles W. Sokolik, Trends in Biochemical Sciences 20(March):122-4, 1995spa
dc.relation.referencesKinemages -- simple macromolecular graphics for interactive teaching and publication, by David C. Richardson and Jane S. Richardson, Trends in Biochemical Sciences 19(March):135-8, 1994.spa
dc.relation.referencesCPK models are very informative during the process of putting them together, but the completed models all look alike. Computer versions of CPK models have successfully imitated their appearance and most of their disadvantages (the fact that the inside is completely hidden, and the difficulty of identifying an atom or group), without, so far, imitating the real virtue of CPK's, which is the physical "feel" for the bumps, constraints, and degrees of freedom one obtains by manipulating them.spa
dc.relation.referencesThe Kinemage: A tool for scientific communication, by David C. Richardson, and Jane S. Richardson, Protein Science 1:3-9, 1992spa
dc.relation.referencesFeynman. R, There’s Plenty of Room at the Bottom, American Physical Society, 1959. H.D. Gilbert, Miniaturization Reinhold Publishing Corp, N.Y, 1961,282. http://www.zyvex.com/nanotech/feynman.html. 2 N. Taniguchi, “On the Basic Concept of Nanotechnology”, Proc.Intl.Conf.Prod.Eng, Tokyo 1974, 18. 3 T. Theis, D. Parr, P. Binks, J. Ying, K. E.spa
dc.relation.referencesDrexler, E. Schepers, K. Mullis, C. Bai, J. J. Boland, R. Langer, P. Dobson, C. N. R. Rao, M. Ferrari, , Nat.Nanotech. 2006,1,8. 4 J. J. Ramsden, Nanotechnology: An Introduction, Elsevier, Amsterdam, 2011. 5 (a) G. Binnig, H. Rohrer, IBM Journal of Research and Development 1986,30,355. (b) G.spa
dc.relation.referencesBinnig, H. Rohrer, Rev. Mod. Phys. 1987, 59,615. 6 D. Eigler, E. Schweizer, Nature 1990,344,.524. 7 167 167 http://researcher.watson.ibm.com/researcher/view_group.php?id=4245 8 (a) C. P. Poole Jr., F. J.spa
dc.relation.referencesOwens, Introduction To Nanotechnology, John Wiley & Sons, New Yersey, 2003. (b) R. Kelsall, I. W. Hamley, M. Geoghegan, Nanoscale Science and Technology, John Wiley & Sons, UK, 2005. 9 (a) M. Pagliaro, Nano-Age: How Nanotechnology Changes our Future, Wiley-VCH, Weinheim 2010 (b) J. J. Ramsden, Applied Nanotechnology. The Conversion of Research Results to Products, Elsevier, Amsterdam, 2014spa
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dc.relation.referencesE. Roduner, Chem. Soc. Rev. 2006, 35, 583. (c) G. Hodes, Adv. Mater. 2007, 19, 639. 12 C. Baia, M. Liub, Nano Today 2012,7,258. 13 (a) B. D. Gates, Q. Xu, M. Stewart, D. Ryan, C. G. Willson, G. M. Whitesides, Chem. Rev. 2005, 105, 1171. (b) M. J. Köhler, W. Fritzsche, Nanotechnology: An Introduction to Nanostructuring Techniques, 2nd Ed., Wiley-VCH, Weinheim, 2007.spa
dc.relation.referencesThe Royal Society & The Royal Academy of Engineering, Nanoscience and nanotechnologies: opportunities and uncertainties, London, 2004 (http://www.nanotec.org.uk/finalReport.htm).spa
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dc.relation.referencesBasnar, I. Willner, Small 2009,5,28spa
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dc.rights.accessrightsinfo:eu-repo/semantics/openAccessspa
dc.rights.accessrightshttp://purl.org/coar/access_right/c_abf2spa
dc.rights.creativecommonsAtribución-NoComercial-SinDerivadas 2.5 Colombia*
dc.rights.localAbierto (Texto Completo)spa
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/2.5/co/*
dc.subject.keywordsIndustrial automationeng
dc.subject.keywordsIndustrial engineeringeng
dc.subject.keywordsTechnological changeeng
dc.subject.keywordsAutomatic controleng
dc.subject.keywordsAutomatic machineryeng
dc.subject.keywordsNanotechnologyeng
dc.subject.keywordsBibliographic researcheng
dc.subject.keywordsHigh technologyeng
dc.subject.keywordsFactorieseng
dc.subject.lembAutomatización industrialspa
dc.subject.lembIngeniería industrialspa
dc.subject.lembCambio tecnológicospa
dc.subject.lembControl automáticospa
dc.subject.lembMaquinaria automáticaspa
dc.subject.lembAlta tecnologíaspa
dc.subject.lembFábricasspa
dc.subject.proposalNanotecnologíaspa
dc.subject.proposalInvestigación bibliográficaspa
dc.titleDiseño y desarrollo de sistemas instrumentados por ingeniería en nanotecnología para la automatización de plantas industrialesspa
dc.title.translatedDesign and development of systems instrumented by nanotechnology engineering for the automation of industrial plantsspa
dc.type.coarhttp://purl.org/coar/resource_type/c_7a1f
dc.type.driverinfo:eu-repo/semantics/bachelorThesis
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dc.type.localTrabajo de Gradospa
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