Análisis de la viabilidad de los procesos de estabilización con químicos en vías terciarias, a partir de evaluación económica y ambiental, tomando como referencia (caso de estudio) prueba Piloto Antioquia 2015, y su aplicabilidad en las vías terciarias que conectan con la ruta del cacao (Santander)

dc.contributor.advisorPeña Castro, Germán Augustospa
dc.contributor.authorObregón Vásquez, María Fernandaspa
dc.contributor.authorRúa Beltrán, Carlos Humbertospa
dc.coverage.campusCRAI-USTA Bogotáspa
dc.date.accessioned2019-05-13T22:54:52Zspa
dc.date.available2019-05-13T22:54:52Zspa
dc.date.issued2019-05-13spa
dc.descriptionEste estudio contempla el análisis e identificación de diversas alternativas técnicas para la rehabilitación y mantenimiento de la red terciaria que forma parte o que conecta con el corredor vial de la Concesión Ruta del Cacao: Bucaramanga – Barrancabermeja – Yondó, el cual se llevó a cabo mediante la implementación de una metodología contemplada dentro un marco cualitativo y cuantitativo de recolección y análisis de información, identificando las vías terciarias que se consideran de mayor relevancia y que convergen en el corredor vial Ruta del Cacao, a las cuales se les realizó la actualización de todo la información pertinente en cuanto a su estado actual y condiciones físicas, para poder así realizar el análisis comparativo e identificar cuál de las técnicas estudiadas es la más apropiada para ser utilizada en las vías que fueron tomadas como objeto del estudio. Para el caso práctico de este proyecto se encontró que, al realizar la extrapolación de los datos obtenidos, y haciendo un análisis comparativo de tipo cualitativo y cuantitativo entre las diferentes tecnologías alternativas innovadoras, y sabiendo que el tipo de suelo que predomina en las vías seleccionadas es de clasificación limo arenosos de baja plasticidad, lo que nos llevó a concluir que los métodos que mejor se ajustan a esta condición de suelo son las técnicas donde se utilizan estabilizadores químicos, como lo es Con-AID, Roadbooster, Terrasil, Geostab, y Terrazyme, ya que mejoran la capacidad de respuesta de los suelos ante agentes meteorológicos agrestes como los que se presentan en Colombia, y a su vez el costo de implementación es bajo en comparación con los métodos tradicionales, permitiendo mayor cantidad de kilómetros intervenidos bajo un mismo presupuesto.spa
dc.description.abstractThis study contemplates the analysis and identification of various technical alternatives for the rehabilitation and maintenance of the tertiary network that is part or that connects to the road corridor of the Concession Cacao Route: Bucaramanga – Barrancabermeja – Yondó, El Which was carried out through the implementation of a methodology contemplated within a qualitative and quantitative framework of collection and analysis of information, identifying the tertiary pathways that are considered most relevant and that converge in the corridor Cocoa Road Route, to which they were made the updating of all the pertinent information in terms of their current state and physical conditions, in order to be able to carry out the analysis and to identify which of the techniques studied is the most appropriate to be Used in the pathways that were taken as the object of the study. For the practical case of this project it was found that, when extrapolating the obtained data, and making a qualitative and quantitative analysis of the different alternative technologies, and knowing that the type of soil That predominates in the selected tracks is of classification sandy silt of low plasticity, which led us to conclude that the methods that best conform to this soil condition are the techniques where chemical stabilizers are used, as it is With-AID, Roadbooster, Terrasil, Geostab, and Terrazyme, as they improve the response capacity of soils to wild meteorological agents such as those presented in Colombia, and in turn the cost of implementation is low compared to traditional methods, Allowing more miles to intervene under the same budget.spa
dc.description.degreelevelMaestríaspa
dc.description.degreenameMagíster en Infraestructura Vialspa
dc.description.domainhttp://unidadinvestigacion.usta.edu.cospa
dc.format.mimetypeapplication/pdfspa
dc.identifier.citationObregón Vásquez, M. F., & Rúa Beltrán, C. H. (2019). Análisis de la viabilidad de los procesos de estabilización con químicos en vías terciarias, a partir de evaluación económica y ambiental, tomando como referencia (caso de estudio) prueba piloto Antioquia 2015, y su aplicabilidad en las vías terciarias que conectan con la ruta del cacao (Santander) [Tesis de Maestría, Universidad Santo Tomás]. Repositorio Institucional - Universidad Santo Tomásspa
dc.identifier.instnameinstname:Universidad Santo Tomásspa
dc.identifier.reponamereponame:Repositorio Institucional Universidad Santo Tomásspa
dc.identifier.repourlrepourl:https://repository.usta.edu.cospa
dc.identifier.urihttp://hdl.handle.net/11634/16653
dc.language.isospaspa
dc.publisherUniversidad Santo Tomásspa
dc.publisher.facultyFacultad de Ingeniería Civilspa
dc.publisher.programMaestría Infraestructura Vialspa
dc.relation.referencesJiantong Zhang, Lihua Xu, Lusheng Lin & Sumei Liu (2016). The application of warm mix asphalt technology in China: a review School of Civil, Wuhan University The authors – Published by Atlantis Press 228-231 paginasspa
dc.relation.referencesDr. Horacio Delgado Alamilla, el M.I. Fidel García Hernández & el M.I. Domingo Eduardo Campos. (2018). DISEÑO DE BASES ESTABILIZADAS CON ASFALTO ESPUMADO. SECRETARÍA DE COMUNICACIONES Y TRANSPORTES INSTITUTO MEXICANO DEL TRANSPORTE. Publicación Técnica No. 519.spa
dc.relation.referencesJohn J & Emery, Ph.D., P.Eng. (2015). Evaluation and Mitigation of Asphalt Pavement Top-Down Cracking McMaster University, Hamilton, Ontario, Canada https://www.researchgate.net/publication/228557602spa
dc.relation.referencesNarro Vásquez & E. A. Morales Gazco, (2018). Contribución del asfalto espumado en el aporte estructural de pavimentos en altura como solución para el proyecto de conservación vial Tacna – Puno, tramo Capazo – Mazocruz. Universidad Peruana de Ciencias Aplicadas (UPC), Lima, Perú,spa
dc.relation.referencesBilly Shane, McDade & Lakeway TX (US). (2016). COMPOSITIONS AND METHODS FOR HOT AND WARM MXASPHALT CONCRETE ADDITIVES Pub. No: US 2016/0002465 A1 United Statesspa
dc.relation.referencesJohnny P. M. Feitosa, Ana E. V. de Alencar, José R. R. de Souza, Jorge B. Soares, Sandra A. Soares, Nágila M. P. S. & Ricardo (2015). EVALUATION OF CARNAUBA WAXES IN WARM MIX ASPHALT TECHNOLOGY. International Journal of Civil & Environmental Engineering IJCEE-IJENS Vol: 15 No: 03 1-9 PAGINASspa
dc.relation.referencesKiplagat Chelelgo, Zachary C. Abiero Gariy & Stanley (2018) Muse Shitote Laboratory Mix Design of Cold Bitumen Emulsion Mixtures Incorporating Reclaimed Asphalt and Virgin Aggregates Buildings 2018, 8, 177; doi:10.3390/buildings8120177spa
dc.relation.referencesGergó Péter, Holló András & Geiger András rheological investigation of rubber bitumen containing various waxes as warm mix additive. article in studia universitatis babes-bolyai chemia june 2017 DOI:10.24193/subbchem.2017.2.19 https://www.researchgate.net/p ublication/318357667spa
dc.relation.referencesKenneth A. Tutu, Yaw A. Tuffour (2016). Warm-Mix Asphalt and Pavement Sustainability: A Review Copyright © 2016 by authors and Scientific Research Publishing Inc Open Journal of Civil Engineering 85-93 PAGINAS http://dx.doi.org/10.4236/ojce.2016.62008spa
dc.relation.referencesDar-Hao Chen, Ph.D., P.E., (2016) Special Issue on Sustainable Civil Infrastructures: Innovative Technologies and Materials J. Perform. Constr. Facil. 30(1): C2015001 DOI: 10.1061/(ASCE)CF.1943-5509.0000838spa
dc.relation.referencesFarzad Habibbeygi & Hamid Nikraz (2018). COMPRESSION BEHAVIOR OF HIGHLY EXPANSIVE CLAYS STABILIZED WITH A GREEN STABILISER OF MAGNESIUM CHLORIDE International Journal of Geomate, Vol.14, Issue 45, pp.144-150 Geotec., Const. Mat. & Env DOI: https://doi.org/10.21660/2018.45.10697spa
dc.relation.referencesBryce F & Payne, Jr., PhD (2018). Oil and Gas Well Brines for Dust Control on Unpaved Roads – Part 1: Ineffectiveness European Scientific Journal September edition Vol.14, No.27 ISSN: 1857 – 7881 (Print) e - ISSN 1857- 7431 Doi: 10.19044/esj.2018.v14n27p39spa
dc.relation.referencesNurmunira Muhammad & Sumi Siddiqua (2017). investigation of the strength development using magnesium alkalinization for subgrade the university of british columbia, okanagan, Canada https://www.researchgate.net/publication/320677377spa
dc.relation.referencesWan Hasmida Binti Wan Hassan (2015). peat soil stabilization using magnesium chloride faculty of civil engineering universiti teknologi Malaysiaspa
dc.relation.referencesRajesh prasad shukla, niraj singh parihar & ashok kumar gupta. (2018). stabilization of expansive soil using potassium chloride the civil engineering journal 1 article no. 3 doi 10.14311/cej.2018.01.0003spa
dc.relation.referencesMin Lia, b,n, ShouxiChaic, HongpuDud, ChenWanga (2016). Effect of chlorine salt on the physical and mec hanical properties of inshore saline soil treated with lime. Soils andFoundations2016;56(3):327–335spa
dc.relation.referencesTaiwoO.Durotoye, JosephO.Akinmusuru & KunleE.Ogundipe (2016). Experimental datasets on engineering properties of expansive soil treated with common. inBrief18(2018)1277– 1281spa
dc.relation.referencesGVLN Murthy, K.B.V. Siva Kavya, A. & Venkata Krishna, B Ganesh (2016). chemical stabilization of sub-grade soil with gypsum and nacl. international journal of advances in engineering & technology, issn: 22311963 vol. 9, issue 5, pp. 569-581spa
dc.relation.referencesDurotoye, T.O, Akinmusuru, J.O, Ogbiye, A.S, & Bamigboye, G.O (2016). Effect of Common Salt on the Engineering Properties of Expansive Soil Civil Engineering Department, Covenant Unive rsity, Ota, Ogun State, Nigeria. International Journal of Engineering and Technology Volume 6 No.7,spa
dc.relation.referencesMohd Yunus, Wanatowski, Marto & Jusoh (2017). Strength improvement of lime-treated clay with sodium chloride ice institution of civil engineers Geotechnical Research Volume 4 Issue GR4 https://doi.org/10.1680/jgere.17.00001spa
dc.relation.referencesBrian P. Baker & Jennifer A. Grant (2018). Sodium Chloride Profile Active Ingredient Eligible for Minimum Risk Pesticide Use New York State Integrated Pest Management. Cornell University, Geneva NY http://hdl.handle.net/1813/56140spa
dc.relation.referencesGeorge Rowland Otoko. (2015) Stabilization of a Deltaic Marine Clay (Chikoko) with Chloride Compounds. International Research Journal of Engineering and Technology (IRJET) Volume: 02 Issue: 03 https://www.researchgate.net/publication/280921014spa
dc.relation.referencesDíaz García & Juan Carlos (2016). Estudio de estabilización de suelos con el sistema consolid para mejorar el camino vecinal Yántalo – C.P.M. Buenos Aires, Moyobamba – San Martín, Facultad De Ingeniería Civil Universidad Cesar Vallejo – Tarapoto Perú.spa
dc.relation.referencesHasan Savaş (2016). Consolidation and swell characteristics of dispersive soils stabilized with lime and natural zeolite de Gruyter Sci Eng Compos Mater; 23(6): 589–598 DOI 10.1515/secm-2014-0202spa
dc.relation.referencesEvren Seyrek. (2016). Engineering behavior of clay soils stabilized with class C and class F fly ashes de Gruyter Sci Eng Compos Mater 2018; 25(2): 273–287 DOI 10.1515/secm-2016-0084spa
dc.relation.referencesAnil KumarSharman & P.V.Sivapullaiah1 (2016). Ground granulated blast furnace slag amended fly ash as an expansive soil stabilizer. Soils andFoundations2016;56(2):205–212spa
dc.relation.referencesYan-Jun Dua, Ning-JunJiangb,n, Song-YuLiuc, SuksunHorpibulsukd & ArulArulrajahe. (2016). Field evaluation of soft highway subgrade soil stabilized. with calcium carbide residue Soils;56(2):301–314 andFoundations 2016spa
dc.relation.referencesA.A. Amadi, A.S. Osu (2016). Effect of curing time on strength development in black cotton soil – Quarry fines composite stabilized with cement kiln dust (CKD) Journal of King Saud University Engineering Sciences 30, 305–312 https://doi.org/10.1016/j.jksues.2016.04.001spa
dc.relation.referencesDongqing Wu, Wenyu Xu & Romy Tjuar (2015). Improvements of marine clay slurries using chemicalephysical combined method (CPCM) Journal of Rock Mechanics and Geotechnical Engineering 7 (2015) 220e225 https://doi.org/10.1016/j.jrmge.2015.02.001spa
dc.relation.referencesValentina Yadykina, Sergey Tobolenko, Anna Trautvain & Anna Zhukova (2015). The Influence of Stabilizing Additives on Physical and Mechanical Properties of Stone Mastic Asphalt Concrete. International Scientific Conference Urban Civil Engineering and Municipal Facilities, SPbUCEMF Procedia Engineering 117 (2015) 376 – 381spa
dc.relation.referencesAntónio Alberto S. Correia & Maria Graça Rasteiro (2016). Nanotechnology Applied to Chemical Soil Stabilization Advances in Transportation Geotechnics 3. The 3rd International Conference on Transportation Geotechnics (ICTG 2016) Volume 143, 2016, Pages 1252–1259 doi: 10.1016/j.proeng.2016.06.113spa
dc.relation.referencesHayder Hasan, Liet Dang, Hadi Khabbaz, Behzad Fatahi, & Sergei Terzaghi. (2016). Remediation of Expansive Soils Using Agricultural Waste Bagasse Ash Advances in Transportation Geotechnics 3. The 3rd International Conference on Transportation Geotechnic. (ICTG 2016) Volume 143, 2016, Pages 1368–1375 doi: 10.1016/j.proeng.2016.06.161spa
dc.relation.referencesK.C. Onyelowe. (2018). Kaolin soil and its stabilization potentials as nanostructured cementitious admixture for geotechnics purposes. ScienceDirect International Journal of Pavement Research and Technology xxx (2018) xxx–xxx https://doi.org/10.1016/j.ijprt.2018.03.001spa
dc.relation.referencesİsmail Zorluer & Süleyman Gücek (2017). Usage of Fly Ash and Waste Slime Boron for Soil Stabilization periodicals of engineering and natural sciences Vol. 5 No. 1 (2017) DOI: 10.21533/pen.v5i1.74spa
dc.relation.referencesSalwa Serageddin Shahin, Prof. Dr. Laila Abd El-Meguid Fayed & Dr. Eng. Hebaturahman Ahmad (2015) Review of Nano additives in stabilization of Soil https://www.researchgate.net/publication/301769960spa
dc.relation.referencesAntonia Athanasopoulou & George Kollaros. (2016). Improvement of Soil Engineering Characteristics Using Lime and Fly Ash Democritus University of Thrace/Greece European Scientific Journal May 2016 /SPECIAL/ edition ISSN: 1857 – 7881 (Print) e - ISSN 1857- 7431spa
dc.relation.referencesWajid Ali Butt, Karan Gupta & J. N. Jha. (2016). Strength behavior of clayey soil stabilized with saw dust ash TECHNICAL NOTE Butt et al. Geo-Engineering (2016) 7:18 DOI 10.1186/s40703-016-0032-9spa
dc.relation.referencesOnyelowe, K. C, Ubachukwu, O.A, Onuoha, I.C, Ikpa, C & Umoren, P. (2016). Comparison between the Strength Characteristics of Pozzolan Stabilized Lateritic Soil of Coconut Shell Husk Ash and Palm Kernel Shell Husk Ash Admixtures American Research Journal of Civil and Structural Engineering Original Article Volume 1, Issue 1, 2016 https://www.researchgate.net/publication/297738882spa
dc.relation.referencesSeracettin Arasan, Fatih I¸sık, R. Ka˘gan Akbulut, A. ¸Sahin Zaimo˘glu & Omid Nasirpur (2015). Rapid Stabilization of Sands with Deep Mixing Method Using Polyester RPeriodica Polytechnica Civil Engineering 59(3), pp. 405–411, 2015 DOI: 10.3311/PPci.7956spa
dc.relation.referencesT. Subramani, D.Udayakumar. (2016). Experimental Study on Stabilization of Clay Soil Using Coir Fibre. International Journal of Application or Innovation in Engineering & Management (IJAIEM) Volume 5, Issue 5, May 2016 Web Site: www.ijaiem.orgspa
dc.relation.referencesLajos Kisgyörgy, Csaba Tóth & András Geiger. (2015). Elastic modulus of asphalt with chemically stabilized rubber bitumen grapevine 68 7, 533-541 DOI: 10.14256/JCE.1451.2015spa
dc.relation.referencesHazamaah Nur Hamzah, Mohd Mustafa, Bakri Abdullah, Heah Cheng Yong, Mohd Remy Rozainy Arif Zainol & Kamarudin Hussin. (2015). Review of Soil Stabilization Techniques: Geopolymerization Method One of the New Technique Engineering Materials Vol. 660 (2015) pp 298-304 doi:10.4028/www.scientific.net/KEM.660.298spa
dc.relation.referencesRintu Renjith, Dilan Robert, Andrew Fuller, Sujeeva Setunge, Brian O’Donnell, & Robert Nucifora (2017). Enzyme based soil stabilization for unpaved road construction matec web of conferences 138, 01002 (2017) DOI: 10.1051/matecconf/201713801002spa
dc.relation.referencesOnyelowe, K. C. (2016). Ordinary Portland Cement Stabilization of Engineering Soil using Coconut Shell and Husk Ash as Admixture (IJISSET) International Journal of Innovative Studies in Sciences and Engineering Technology Volume: 2 Issue: 2 | February 2016spa
dc.relation.referencesB.A. Mir Some studies on the effect of fly ash and lime on physical and mechanical properties of expansive clay international journal of civil engineering Vol. 13, Nos. 3&4B,spa
dc.relation.referencesOnyelowe KC* and Maduabuchi MN (2017) Palm Bunch Management and Disposal as Solid Waste and the Stabilization of Olokoro Lateritic Soil for Road Construction Purposes in Abia State, Nigeria Onyelowe and Maduabuchi, Int J Waste Resour 2017, 7:2 DOI: 10.4172/2252 5211.1000279spa
dc.relation.referencesNurul Eilmy Binti Zainuddin, Nor Zurairahetty Mohd Yunus Aminaton Marto, Mohammad Ali Mohammad Al-Bared, Nordiana Mashros & Rini Asnida Abdullah (2016) a review: reutilization of waste material to stabilize marine clay department of geotechnics & transportation, faculty of civil engineering, universiti teknologi https://www.researchgate.net/publication/311672836spa
dc.relation.referencesF. Yilmaza, H.A. Kamiloglua and E. (2015) Sadoglub Soil Stabilization with Using Waste Materials against Freezing Thawing Effect ACTA PHYSICA POLONICA Vol. 128 (2015) https://www.researchgate.net/publication/283279289spa
dc.relation.referencesJitendra K. Thakur & Jie Han (2015) Recent Development of Recycled Asphalt Pavement (RAP) Bases Treated for Roadway Applications Transp. Infrastruct. Geotech. (2015) 2:68–86 DOI 10.1007/s40515-015-0018-7spa
dc.relation.referencesA. Ayyappan, S. Palanikumar, D. Dinesh Kumar & Vinoth (2017) Influence of Geopolymers in the Stabilization of Clay Soil International Journal of Emerging Technologies in Engineering Research (IJETER) Volume 5, Issue 9, September (2017)spa
dc.relation.referencesAntónio Alberto S. Correia & Maria Graça Rasteiro (2016) Nanotechnology Applied to Chemical Soil Stabilization Procedia Engineering Volume 143, 2016, Pages 1252–1259 doi: 10.1016/j.proeng.2016.06.113spa
dc.relation.referencesAntónio Alberto S. Correia, Pedro D. F. Casaleiroa, Maria Graça B. V. & Rasteirob (2015) Applying multiwall carbon nanotubes for soil stabilization. ScienceDirect doi: 10.1016/j.proeng.2015.01.313spa
dc.relation.referencesFood Changes, Adelstein Haddad (2015). Strength properties of soft clay treated with mixture of nano-SiO2 and recycled polyester fiber. Journal of Rock Mechanics and Geotechnical Engineering http://dx.doi.org/10.1016/j.jrmge.2015.03.013spa
dc.relation.referencesHossein Soltani-Jigheha, Mohammad Bagheria & Ali Reza Amani-Ghadimb (2016) Use of hydrophilic polymeric stabilizer to improve strength and durability of fine-grained soils. Cold Regions Science and Technology https://doi.org/10.1016/j.coldregions.2018.10.011spa
dc.relation.referencesMohamed Ayeldeen, Abdelazim Negm, Mostafa El-Sawwaf & Masaki Kitazume (2017) Enhancing mechanical behaviors of collapsible soil using two Biopolymers. Journal of Rock Mechanics and Geotechnical Engineering http://dx.doi.org/10.1016/j.jrmge.2016.11.007spa
dc.relation.referencesSepehr Rezaeimalek, Abdolreza Nasouri, Jie Huang, Sazzad Bin-Shafique & Simon T. Gilazghi (2016) Comparison of short-term and long-term performances for polymer-stabilized sand and clay ScienceDirect 4 ( 2 ) : 1 4 5 e1 5 5 http://dx.doi.org/10.1016/j.jtte.2017.01.003spa
dc.relation.referencesM. Mirzababaeia, A. & Arulrajahb, M. Oustonc (2017) Polymers for stabilization of soft clay soils. Transportation Geotechnics and Geoecology, TGG 2017, 17-19 May 2017, Saint Petersburg, Russia ScienceDirectspa
dc.relation.referencesKennedy Onyelowe, Duc Bui Van, Clifford Igboayaka, Francis Orji & Henry Ugwuanyi (2019). Rheology of mechanical properties of soft soil and stabilization protocols in the developing countries-Nigeria. Materials Science for Energy Technologies https://doi.org/10.1016/j.mset.2018.10.001spa
dc.relation.referencesHabiba Afrin. (2017). A Review on Different Types Soil Stabilization Techniques Habiba Afrin. A Review on Different Types Soil Stabilization Techniques. International Journal of Transportation Engineering and Technology. Vol. 3, No. 2, 2017, pp. 19-24. doi: 10.11648/j.ijtet.20170302.12spa
dc.relation.referencesATS Azhar, MAM Azim, NN Syakeera, IF Jefferson & CDF Rogers. (2017). Application of Electrokinetic Stabilisation (EKS) Method for Soft Soil: A Review IOP Conf. Series: Materials Science and Engineering 226 (2017) 012075 doi:10.1088/1757-899X/226/1/012075spa
dc.relation.referencesSandra Campagnoli INNOVACIÓN EN MÉTODOS DE PAVIMENTACIÓN: CASOS REGIONALES Revista de Ingeniería, nº 45, 2017, pp. 22-31spa
dc.relation.referencesCharles Jahren Stabilized Aggregate Applications Department of Civil, Construction, and Environmental Engineering Institute for Transportation, Construction Management and Technology Iowa State Universityspa
dc.relation.referencesAnkit Pannu. (2016) Effect of Soil Stabilization in Construction of Roads and strength improvement International Journal of All Research Education and Scientific Methods (IJARESM) ISSN: 2455-6211, Volume 4, Issue 8, August- 2016spa
dc.relation.referencesA T S Azhar, N S Nordin, M A M Azmi, Z Embong & N Sunar, Z A M Hazreek & M Aziman (2018) The Physical Behavior of Stabilised Soft Clay by Electrokinetic Stabilisation Technology IOP Conf. Series: Journal of Physics: Conf. Series 995 (2018) 012111 doi :10.1088/1742-6596/995/1/012111spa
dc.relation.referencesA T S Azhar, I Jefferson, A Madun, M H Z Abidin & C D F Rogers. (2018). Electrokinetic Stabilisation Method of Soft Clay in Pure System using Electrokinetic Geosynthetic Electrode Journal of Physics: Conference Series IOP Conf. Series: Journal of Physics: Conf. Series 995 (2018) 012109 doi :10.1088/1742-6596/995/1/012109spa
dc.relation.referencesNazma khatun. (2018) coefficient of permeability of treated soils department of civil engineering bangladesh university of engineering and technology (buet)spa
dc.relation.referencesA S A Rahman, I B M Jais, N Sidek, J Ahmad and M I F Rosli. (2017) Bamboo leaf ash as the stabilizer for soft soil treatment IOP Conf. Series: Earth and Environmental Science 140 (2018) 012068 doi :10.1088/1755-1315/140/1/012068spa
dc.relation.referencesMagdi M. E. Zumrawi & Khalid A. Eltayeb (2016) Laboratory Investigation of Expansive Soil Stabilized with Calcium Chloride Journal of Environmental, Chemical, Ecological, Geological and Geophysical International Engineering Vol:10, No:2, 2016 scholar.waset.org/1999.6/10003855spa
dc.relation.referencesEngr. Ussama Waseem (2016) Problematic Soil and Ground Improvement Techniques fast nuces department of civil engineeringspa
dc.relation.referencesN. Gangadhara Reddy, Janardhan Tahasildar & Hanumantha Rao (2015) Evaluating the Influence of Additives on Swelling Characteristics of Expansive Soils Int. J. of Geosynth. and Ground Eng. (2015) 1:7 DOI 10.1007/s40891-015-0010-xspa
dc.relation.referencesSilvia Monica Villanueva Flores (2017) estabilización de carreteras de bajo volumen de tránsito en la sierra, sobre los 2000 m.s.n.m, utilizando poliacrilamida aniónica, organosilano y un sulfonatado. universidad ricardo palma escuela de posgrado maestría en infraestructura vial mención en carreteras, puentes y túnelespa
dc.rightsAtribución-NoComercial-SinDerivadas 2.5 Colombia*
dc.rights.accessrightsinfo:eu-repo/semantics/openAccess
dc.rights.coarhttp://purl.org/coar/access_right/c_abf2
dc.rights.localAbierto (Texto Completo)spa
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/2.5/co/*
dc.subject.keywordInnovative technologiesspa
dc.subject.keywordRehabilitationspa
dc.subject.keywordMaintenancespa
dc.subject.keywordTertiary pathwaysspa
dc.subject.lembRehabilitaciónspa
dc.subject.lembVialspa
dc.subject.lembMantenimientospa
dc.subject.proposalTecnologías innovadorasspa
dc.subject.proposalRehabilitaciónspa
dc.subject.proposalMantenimientospa
dc.subject.proposalVías terciariasspa
dc.titleAnálisis de la viabilidad de los procesos de estabilización con químicos en vías terciarias, a partir de evaluación económica y ambiental, tomando como referencia (caso de estudio) prueba Piloto Antioquia 2015, y su aplicabilidad en las vías terciarias que conectan con la ruta del cacao (Santander)spa
dc.typemaster thesis
dc.type.categoryFormación de Recurso Humano para la Ctel: Trabajo de grado de Maestríaspa
dc.type.coarhttp://purl.org/coar/resource_type/c_bdcc
dc.type.coarversionhttp://purl.org/coar/version/c_ab4af688f83e57aa
dc.type.driveinfo:eu-repo/semantics/masterThesis
dc.type.localTesis de maestríaspa
dc.type.versioninfo:eu-repo/semantics/acceptedVersion

Archivos

Bloque original

Mostrando 1 - 3 de 3
Thumbnail USTA
Nombre:
2019mariaobregon.pdf
Tamaño:
6.52 MB
Formato:
Adobe Portable Document Format
Descripción:
Thumbnail USTA
Nombre:
cartadeaprobacion.pdf
Tamaño:
29.17 KB
Formato:
Adobe Portable Document Format
Descripción:
Thumbnail USTA
Nombre:
cartaderechosdeautor.pdf
Tamaño:
210.9 KB
Formato:
Adobe Portable Document Format
Descripción:

Bloque de licencias

Mostrando 1 - 1 de 1
Thumbnail USTA
Nombre:
license.txt
Tamaño:
807 B
Formato:
Item-specific license agreed upon to submission
Descripción: