184 research outputs found

    Residual safety for flexural bending of slabs with corrosion in the joists

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    [EN] A large number of slabs with severe corrosion problems at the precast joists have appeared in Spain, often increased by the use of aluminous cement. The purpose of this paper is to evaluate the residual safety for the bending mechanisms in the most common cases of damaged slabs, to decide the magnitude of the needed intervention. The damaged slabs have been evaluated as a part of an entire building, since the boundary conditions are essential for obtaining actual behavior, taking into account the different phases of the construction process and deterioration over time. A major cracking in the constructive elements are not frequently observed in inspections, and it is found that there is a sufficient residual safety to undertake the rehabilitation works without exceptional measures.[ES] A nivel nacional han aparecido un gran número de forjados de viguetas prefabricadas con graves problemas de corrosión, potenciada en muchas ocasiones por el empleo del cemento aluminoso. El propósito de este trabajo es evaluar la seguridad residual de los mecanismos de flexión en los casos más habituales de forjados dañados, para decidir la magnitud de la intervención necesaria. Los forjados dañados se han evaluado formando parte de un edificio completo, ya que las condiciones de contorno son fundamentales para la obtención del Comportamiento real, teniendo en cuenta las distintas fases del proceso constructivo y de deterioro en el tiempo. En bastantes ocasiones en la inspección no se observa una fisuración importante en los elementos constructivos, como solados o tabiquería, y hemos comprobado que existe una seguridad residual suficiente para acometer las obras de rehabilitación sin necesidad de adoptar medidas excepcionales.Gil Benso, E.; Vercher Sanchis, JM.; Mas Tomas, MDLA.; Fenollosa Forner, EJ. (2015). Seguridad remanente a flexión en forjados con corrosión en las viguetas. Informes de la Construcción. 67(537):1-10. doi:10.3989/ic.13.084S11067537Morán Cabré, F. (1994). Estimación de la seguridad residual en estructuras de hormigón con problemas patológicos. Informes de la Construcción, 46(434), 39-51. doi:10.3989/ic.1994.v46.i434.1107(2) Giménez, E. (2007). Estudio experimental y numérico de soportes de hormigón armado reforzados con perfiles metálicos sometidos a esfuerzos de compresión simple (Tesis Doctoral). Valencia: Universidad Politécnica de Valencia.(3) Vieitez, J.A., Ramírez, J.L. (1984). Patología de la Construcción en Espa-a: Aproximación Estadística. Resumen de Tesis Doctoral. Informes de la Construcción, 36(364): 5-15.(4) Instituto Valenciano de la Edificación (IVE). (2008). Guía para la Inspección y Evaluación Preliminar de estructuras de hormigón en edificios existentes. Serie guías de la calidad. Valencia: Generalitat Valenciana - Conselleria de Medi Ambient, Aigua, Urbanisme i Habitatge.(5) Instituto Valenciano de la Edificación (IVE). (2008). Experiencia en Inspección de estructuras en edificios. Comunidad Valenciana 1991-2008. Serie guías de la calidad. Valencia: Generalitat Valenciana - Conselleria de Medi Ambient, Aigua, Urbanisme i Habitatge.(6) Grupo Espa-ol del Hormigón (GEHO). (1994). Reparación y refuerzo de estructuras hormigón. Guía FIP de buena práctica. Boletín GEHO, 14. Madrid.Evangelista, A. D., Leonardis, A. D., Valente, C., & Zuccarino, L. (2011). Design and testing of corrosion damaged prestressed concrete joists: the Pescara Benchmark. Journal of Physics: Conference Series, 305, 012081. doi:10.1088/1742-6596/305/1/012081Coronelli, D., & Gambarova, P. (2004). Structural Assessment of Corroded Reinforced Concrete Beams: Modeling Guidelines. Journal of Structural Engineering, 130(8), 1214-1224. doi:10.1061/(asce)0733-9445(2004)130:8(1214)Foster, S. ., Bailey, C. ., Burgess, I. ., & Plank, R. . (2004). Experimental behaviour of concrete floor slabs at large displacements. Engineering Structures, 26(9), 1231-1247. doi:10.1016/j.engstruct.2004.04.002(11) Ministerio de Vivienda. (2006, 28 de marzo). Código Técnico de la Edificación (CTE). Boletín Oficial del Estado, nº 74: 11816-11831. Madrid, Espa-a.(12) Bangash, M.Y.H. (1989). Concrete and concrete structures: Numerical modeling and applications. London - New York: Elsevier Applied Science.(13) Willam, K.J., Warnke, E.D. (1975). Constitutive model for the triaxial behavior of concrete. En Proceedings of the International Association for Bridge and Structural Engineering, ISMES, 19: 1-30. Bergamo, Italy.(14) Vercher, J. (2013). Seguridad residual en los forjados con corrosión severa (Tesis Doctoral). Valencia: Universidat Politècnica de València.Cubel, F., Mas, A., Vercher, J., & Gil, E. (2012). Design and construction recommendations for brick enclosures with continuous air chamber. Construction and Building Materials, 36, 151-164. doi:10.1016/j.conbuildmat.2012.04.128Brencich, A., & Felice, G. de. (2009). Brickwork under eccentric compression: Experimental results and macroscopic models. Construction and Building Materials, 23(5), 1935-1946. doi:10.1016/j.conbuildmat.2008.09.004Dilrukshi, K. G. S., Dias, W. P. S., & Rajapakse, R. K. N. D. (2010). Numerical modelling of cracks in masonry walls due to thermal movements in an overlying slab. Engineering Structures, 32(5), 1411-1422. doi:10.1016/j.engstruct.2010.01.019(18) Fanning, P. (2001). Nonlinear models of reinforced and post-tensioned concrete beams. Electronic Journal of Structural Engineering, 2: 111-119.(19) Tavio, T., Tata, A. (2009). Predicting nonlinear behavior and stress-strain relationship of rectangular confined reinforced concrete columns with Ansys. Civil Engineering Dimension, 11(1): 23-31.Rodriguez, J., Ortega, L., & Casal, J. (1997). Load carrying capacity of concrete structures with corroded reinforcement. Construction and Building Materials, 11(4), 239-248. doi:10.1016/s0950-0618(97)00043-

    Photo-fenton degradation of pentachlorophenol l: competition between additives and photolysis

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    [EN] In the present work, the photo-Fenton degradation of pentachlorophenol (PCP, 1 mg/L) has been studied under simulated and natural solar irradiation; moreover, the effect on the process efficiency of urban waste-derived soluble bio-based substances (SBO), structurally comparable to humic acids, has been investigated. Experiments showed a crucial role of PCP photolysis, present in the solar pilot plant and hindered by the Pyrex (R) filter present in the solar simulator. Indeed, the SBO screen negatively affects PCP degradation when working under natural solar light, where the photolysis of PCP is relevant. In contrast, in the absence of PCP photolysis, a significant improvement of the photo-Fenton process was observed when added to SBO. Furthermore, SBO were able to extend the application of the photo-Fenton process at circumneutral pH values, due to their ability to complex iron, avoiding its precipitation as oxides or hydroxides. This positive effect has been observed at higher concentration of Fe(II) (4 mg/L), whereas at 1 mg/L, the degradation rates of PCP were comparable in the presence and absence of SBO.This work was realized with the financial support of the academic interchange from the Marie Sklodowska-Curie Research and Innovation Staff Exchange project, funded by the European Commission H2020-MSCA-RISE-2014 within the framework of the research project Mat4treaT (Project number: 645551).Vergura, EP.; García-Ballesteros, S.; Vercher Pérez, RF.; Santos-Juanes Jordá, L.; Bianco Prevot, A.; Arqués Sanz, A. (2019). Photo-Fenton Degradation of Pentachlorophenol: Competition between Additives and Photolysis. Nanomaterials. 9(8):1-8. https://doi.org/10.3390/nano9081157S189

    Redes de apoyo al emprendimiento femenino en territorios rurales

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    Las condiciones del mercado de trabajo en las áreas rurales han convertido el autoempleo en una de las opciones recurrentes entre las mujeres que tratan de iniciar una actividad o consolidar su participación económica. Mediante técnicas cualitativas y a partir de un caso de estudio en un área LEADER española (Sierra del Segura, Albacete), este trabajo investiga las redes locales de apoyo al autoempleo femenino en zonas rurales, así como el impacto de la crisis económica sobre dicho sistema de apoyos. Los resultados más destacados señalan la importancia del asociacionismo empresarial femenino (redes formales) y los liderazgos locales (redes informales) como apoyos-fuerza al emprendimiento femenino rural. Asimismo, se pone de manifiesto la destrucción de gran parte de las redes de apoyos y el papel emergente de las entidades de la Economía Social y Solidaria como consecuencia de la crisis económica

    Models de vida femenins en el medi rural. Un cas d'estudi a la Sierra del Segura (Albacete)

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    La sobreemigració femenina i la masculinització són processos encara latents en gran part de la ruralitat espanyola. No obstant això, existeixen dones que mantenen o traslladen la seua residència a aquestes àrees. Així doncs, aquesta investigació tracta de caracteritzar les principals circumstàncies i patrons de vida que assumeixen i configuren les dones rurals. A partir d'un estudi de cas, la Sierra del Segura (Albacete), i mitjançant tècniques qualitati- ves, s'exposen quatre grans models de vida femenins. Per una part, dos que impliquen una trajectòria de localització ancorada en el món rural i el manteniment de rols de gènere, si bé el component generacional habilita divergències importants en termes de participació social i econòmica. Per altra, dos models més que integren episodis urbans, nivells educatius més elevats i esquemes socioculturals renovats, que poden ajudar a promoure iniciatives socioeconòmiques i a fixar població. The higher emigration of women and masculinization are still latent processes in rural areas of Spain. However, some women maintain or move their residence to these zones. This research aims to characterize the main life circumstances and models assumed and configured by rural women. Through a case of study of Sierra del Segura, Albacete, and the use of qualitative techniques, we discuss four major female life models. On the one hand, two life models that imply local trajectories anchored in the rural world and the maintenance of gender roles, although with important divergences regarding social and economic participation according to a generational component. On the other hand, another two life models connected with urban experiences, higher education levels and updated socio-cultural frameworks, which can promote socio-economic initiatives and help to fix the population

    Calculation of the critical energy release rate Gc of the cement line in cortical bone combining experimental tests and finite element models

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    [EN] In this work, a procedure is proposed to estimate the critical energy release rate Gc of the so-called cement line in cortical bone tissue. Due to the difficulty of direct experimental estimations, relevant elastic and toughness material properties at bone microscale have been inferred by correlating experimental tests and finite element simulations. In particular, three-point bending tests of ovine cortical bone samples have been performed and modeled by finite elements. The initiation and growth of microcracks in the tested samples are simulated through finite elements using a damage model based on a maximum principal strain criterion, showing a good correlation with the experimental results. It is observed that microcracks evolve mainly along the cement lines and through the interstitial material but without crossing osteons. The numerical model allows the calculation of the cement line critical energy release rate Gc by approximating its definition by finite differences. This way, it is possible to estimate this property poorly documented in the literature.The authors wish to thank the Ministerio de Economia y Competitividad for the support received in the framework of the project DPI2013-46641-R and to the Generalitat Valenciana, Programme PROMETEO 2016/007. The authors also thank Dr. Jose Luis Peris, from Instituto de Biomecanica de Valencia (IBV) and Carlos Tudela Desantes for their collaboration within the context of the project.Giner Maravilla, E.; Belda, R.; Arango-Villegas, C.; Vercher Martínez, A.; Tarancón Caro, JE.; Fuenmayor Fernández, FJ. (2017). Calculation of the critical energy release rate Gc of the cement line in cortical bone combining experimental tests and finite element models. Engineering Fracture Mechanics. 184:168-182. https://doi.org/10.1016/j.engfracmech.2017.08.026S16818218

    Pentachlorophenol Removal from Water by Soybean Peroxidase and Iron(II) Salts Concerted Action

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    [EN] Soybean peroxidase (SBP) has been employed for the treatment of aqueous solutions containing pentachlorophenol (PCP) in the presence of hydrogen peroxide at pH range 5-7. Reaction carried out with 1mg/L of PCP, 4mg/L of H2O2, and 1.3x10(-9)M of SBP showed a fast initial elimination of PCP (ca. 30% in 20min), but the reaction does not go beyond the removal of 50% of the initial concentration of PCP. Modification in SBP and PCP amounts did not change the reaction profile and higher amounts of H2O2 were detrimental for the reaction. Addition of Fe(II) to the system resulted in an acceleration of the process to reach nearly complete PCP removal at pH 5 or 6; this is more probably due to a synergetic effect of the enzymatic process and Fenton reaction. However, experiments developed in tap water resulted in a lower PCP elimination, but this inconvenience can be partly overcome by leaving the tap water overnight in an open vessel before reaction.We want to acknowledge Davide Mainero from Acea Pinerolese for his collaboration in this research. The authors want to thank the financial support of the European Union (PIRSES-GA-2010-269128, EnvironBOS and Marie Sklodowska-Curie Research and Innovation Staff Exchange projectH2020-MSCA-RISE-2014, Mat4treaT-project number: 645551) and Spanish Ministerio de Educacion y Ciencia (CTQ2015-69832-C4-4-R). Sara Garcia-Ballesteros would like to thank the Spanish Ministerio de Economia y Competitividad for her fellowship (BES-2013-066201).Tolardo, V.; García-Ballesteros, S.; Santos-Juanes Jordá, L.; Vercher Pérez, RF.; Amat Payá, AM.; Arqués Sanz, A.; Laurenti, E. (2019). Pentachlorophenol Removal from Water by Soybean Peroxidase and Iron(II) Salts Concerted Action. Water Air & Soil Pollution. 230(6):1-8. https://doi.org/10.1007/s11270-019-4189-7S182306Babuponnusami, A., & Muthukumar, K. (2014). A review on Fenton and improvements to the Fenton process for wastewater treatment. Journal of Environmental Chemical Engineering, 2(1), 557–572. https://doi.org/10.1016/j.jece.2013.10.011 .Ballschmiter, K. (2003). Pattern and sources of naturally produced organohalogens in the marine environment: biogenic formation of organohalogens. Chemosphere, 52(2), 313–324. https://doi.org/10.1016/S0045-6535(03)00211-X .Calza, P., Zacchigna, D., & Laurenti, E. (2016). Degradation of orange dyes and carbamazepine by soybean peroxidase immobilized on silica monoliths and titanium dioxide. Environmental Science and Pollution Research, 23(23), 23742–23749. https://doi.org/10.1007/s11356-016-7399-1 .Caza, N., Bewtra, J., Biswas, N., & Taylor, K. (1999). Removal of phenolic compounds from synthetic wastewater using soybean peroxidase. Water Research, 33(13), 3012–3018. https://doi.org/10.1016/S0043-1354(98)00525-9 .Czaplicka, M. (2004). Sources and transformations of chlorophenols in the natural environment. Science of the Total Environment, 322(1–3), 21–39. https://doi.org/10.1016/j.scitotenv.2003.09.015 .Donadelli, J. A., Carlos, L., Arques, A., & García Einschlag, F. S. (2018). Kinetic and mechanistic analysis of azo dyes decolorization by ZVI-assisted Fenton systems: pH-dependent shift in the contributions of reductive and oxidative transformation pathways. Applied Catalysis B: Environmental, 231, 51–61. https://doi.org/10.1016/j.apcatb.2018.02.057 .Durán, N., & Esposito, E. (2000). Potential applications of oxidative enzymes and phenoloxidase-like compounds in wastewater and soil treatment: a review. Applied Catalysis B: Environmental, 28(2), 83–99. https://doi.org/10.1016/S0926-3373(00)00168-5 .Essam, T., Amin, M. A., El Tayeb, O., Mattiasson, B., & Guieysse, B. (2007). Sequential photochemical–biological degradation of chlorophenols. Chemosphere, 66(11), 2201–2209. https://doi.org/10.1016/j.chemosphere.2006.08.036 .Garcia-Peña, E. I., Zarate-Segura, P., Guerra-Blanco, P., Poznyak, T., & Chairez, I. (2012). Enhanced phenol and chlorinated phenols removal by combining ozonation and biodegradation. Water, Air, and Soil Pollution, 223(7), 4047–4064. https://doi.org/10.1007/s11270-012-1172-y .Hoekstra, E. J., De Weerd, H., De Leer, E. W. B., & Brinkman, U. A. T. (1999). Natural formation of chlorinated phenols, dibenzo-p-dioxins, and dibenzofurans in soil of a Douglas fir forest. Environmental Science and Technology, 33(15), 2543–2549. https://doi.org/10.1021/es9900104 .Karci, A. (2014). Degradation of chlorophenols and alkylphenol ethoxylates, two representative textile chemicals, in water by advanced oxidation processes: the state of the art on transformation products and toxicity. Chemosphere, 99, 1–18. https://doi.org/10.1016/j.chemosphere.2013.10.034 .Li, Z. (2018). Health risk characterization of maximum legal exposures for persistent organic pollutant (POP) pesticides in residential soil: an analysis. Journal of Environmental Management, 205, 163–173. https://doi.org/10.1016/j.jenvman.2017.09.070 .Marchis, T., Avetta, P., Bianco-Prevot, A., Fabbri, D., Viscardi, G., & Laurenti, E. (2011). Oxidative degradation of Remazol Turquoise Blue G 133 by soybean peroxidase. Journal of Inorganic Biochemistry, 105(2), 321–327. https://doi.org/10.1016/j.jinorgbio.2010.11.009 .Marchis, T., Cerrato, G., Magnacca, G., Crocellà, V., & Laurenti, E. (2012). Immobilization of soybean peroxidase on aminopropyl glass beads: structural and kinetic studies. Biochemical Engineering Journal, 67, 28–34. https://doi.org/10.1016/j.bej.2012.05.002 .Muñoz, M., de Pedro, Z. M., Casas, J. A., & Rodriguez, J. J. (2013). Chlorophenols breakdown by a sequential hydrodechlorination-oxidation treatment with a magnetic Pd-Fe/?-Al2O3 catalyst. Water Research, 47(9), 3070–3080. https://doi.org/10.1016/j.watres.2013.03.024 .Naghdi, M., Taheran, M., Brar, S. K., Kermanshahi-pour, A., Verma, M., & Surampalli, R. Y. (2018). Removal of pharmaceutical compounds in water and wastewater using fungal oxidoreductase enzymes. Environmental Pollution. Elsevier. https://doi.org/10.1016/j.envpol.2017.11.060 .Ngo, T. T., & Lenhoff, H. M. (1980). A sensitive and versatile chromogenic assay for peroxidase and peroxidase-coupled reactions. Analytical Biochemistry, 105(1), 389–397. https://doi.org/10.1016/0003-2697(80)90475-3 .Olaniran, A. O., & Igbinosa, E. O. (2011). Chlorophenols and other related derivatives of environmental concern: properties, distribution and microbial degradation processes. Chemosphere, 83(10), 1297–1306. https://doi.org/10.1016/j.chemosphere.2011.04.009 .Oller, I., Malato, S., & Sánchez-Pérez, J. A. (2011). Combination of advanced oxidation processes and biological treatments for wastewater decontamination—a review. Science of the Total Environment, 409(20), 4141–4166. https://doi.org/10.1016/j.scitotenv.2010.08.061 .Passardi, F., Cosio, C., Penel, C., & Dunand, C. (2005, July 22). Peroxidases have more functions than a Swiss army knife. Plant Cell Reports. Springer-Verlag. https://doi.org/10.1007/s00299-005-0972-6 .Pera-Titus, M., Garcı́a-Molina, V., Baños, M. A., Giménez, J., & Esplugas, S. (2004). Degradation of chlorophenols by means of advanced oxidation processes: a general review. Applied Catalysis B: Environmental, 47(4), 219–256. https://doi.org/10.1016/j.apcatb.2003.09.010 .Qayyum, H., Maroof, H., & Yasha, K. (2009). Remediation and treatment of organopollutants mediated by peroxidases: a review. Critical Reviews in Biotechnology, 29(2), 94–119. https://doi.org/10.1080/07388550802685306 .Samokyszyn, V. M., Freeman, J. P., Rao Maddipati, K., & Lloyd, R. V. (1995). Peroxidase-catalyzed oxidation of pentachlorophenol. Chemical Research in Toxicology, 8, 349–355 http://pubs.acs.org/doi/pdf/10.1021/tx00045a005 . Accessed 23 June 2017Santos-Juanes, L., Amat, A. M., & Arques, A. (2017a). Strategies to drive photo-Fenton process at mild conditions for the removal of xenobiotics from aqueous systems. Current Organic Chemistry, 21(12), 1074–1083. https://doi.org/10.1136/adc.2010.199901 .Santos-Juanes, L., García Einschlag, F. S., Amat, A. M., & Arques, A. (2017b). Combining ZVI reduction with photo-Fenton process for the removal of persistent pollutants. Chemical Engineering Journal, 310, 484–490. https://doi.org/10.1016/j.cej.2016.04.114 .Sarria, V., Parra, S., Adler, N., Péringer, P., Benitez, N., & Pulgarin, C. (2002). Recent developments in the coupling of photoassisted and aerobic biological processes for the treatment of biorecalcitrant compounds. Catalysis Today, 76(2–4), 301–315. https://doi.org/10.1016/S0920-5861(02)00228-6 .Sharma, S., Mukhopadhyay, M., & Murthy, Z. V. P. (2013). Treatment of chlorophenols from wastewaters by advanced oxidation processes. Separation & Purification Reviews, 42(May 2015), 37–41. https://doi.org/10.1080/15422119.2012.669804 .Soler, J., García-Ripoll, A., Hayek, N., Miró, P., Vicente, R., Arques, A., & Amat, A. M. (2009). Effect of inorganic ions on the solar detoxification of water polluted with pesticides. Water Research, 43(18), 4441–4450. https://doi.org/10.1016/j.watres.2009.07.011 .Steevensz, A., Cordova Villegas, L. G., Feng, W., Taylor, K. E., Bewtra, J. K., & Biswas, N. (2014). Soybean peroxidase for industrial wastewater treatment: a mini review. Journal of Environmental Engineering and Science, 9(3), 181–186. https://doi.org/10.1680/jees.13.00013 .Sun, Z., Wei, X., Zhang, H., & Hu, X. (2015). Dechlorination of pentachlorophenol (PCP) in aqueous solution on novel Pd-loaded electrode modified with PPy-SDBS composite film. Environmental Science and Pollution Research, 22(5), 3828–3837. https://doi.org/10.1007/s11356-014-3641-x .Tsai, W.-T. (2013). A review on environmental distributions and risk management of phenols pertaining to the endocrine disrupting chemicals in Taiwan. Toxicological & Environmental Chemistry, 95(5), 723–736. https://doi.org/10.1080/02772248.2013.818150 .Valderrama, B., Ayala, M., & Vazquez-Duhalt, R. (2002, May 1). Suicide inactivation of peroxidases and the challenge of engineering more robust enzymes. Chemistry and Biology. Cell Press. https://doi.org/10.1016/S1074-5521(02)00149-7 .Verbrugge, L. A., Kahn, L., & Morton, J. M. (2018). Pentachlorophenol, polychlorinated dibenzo-p-dioxins and polychlorinated dibenzo furans in surface soil surrounding pentachlorophenol-treated utility poles on the Kenai National Wildlife Refuge, Alaska USA. Environmental Science and Pollution Research, 25(19), 19187–19195. https://doi.org/10.1007/s11356-018-2269-7 .Wright, H., & Nicell, J. A. (1999). Characterization of soybean peroxidase for the treatment of aqueous phenols. Bioresource Technology, 70(1), 69–79. https://doi.org/10.1016/S0960-8524(99)00007-3 .Zhang, G., & Nicell, J. A. (2000). Treatment of aqueous pentachlorophenol by horseradish peroxidase and hydrogen peroxide. Water Research, 34(5), 1629–1637. https://doi.org/10.1016/S0043-1354(99)00326-7 .Zhang, J., Ye, P., Chen, S., & Wang, W. (2007). Removal of pentachlorophenol by immobilized horseradish peroxidase. International Biodeterioration & Biodegradation, 59, 307–314. https://doi.org/10.1016/j.ibiod.2006.09.003 .Zheng, W., Yu, H., Wang, X., & Qu, W. (2012, July 1). Systematic review of pentachlorophenol occurrence in the environment and in humans in China: not a negligible health risk due to the re-emergence of schistosomiasis. Environment International. Pergamon. https://doi.org/10.1016/j.envint.2011.04.014

    Quantitative Analysis Procedure for Building Materials in Historic Buildings by Applying Infrared Thermography

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    [EN] Historic buildings have a great cultural and architectural value. It is necessary to analyze their state of conservation, but sometimes it is difficult to perform laboratory tests without damaging this heritage. In the field of architecture, infrared thermography is usually used to provide descriptive information about the surface temperature of building materials. This current research presents a methodology widely applicable to historic buildings. As an example of application, the study is focused in the Seminary-School of Corpus Christi of Valencia (Spain), a very outstanding building from the 16th Century. This research presents an analytical study to be able to differentiate the temperature distribution of all pixels of a thermographic image. Thermal images are a matrix of data and their study helps us in decision-making based on objective data.Lerma Elvira, C.; Mas Tomas, MDLA.; Gil Benso, E.; Vercher Sanchis, JM.; Torner-Feltrer, MEM. (2018). Quantitative Analysis Procedure for Building Materials in Historic Buildings by Applying Infrared Thermography. Russian Journal of Nondestructive Testing. 54(8):601-609. https://doi.org/10.1134/S1061830918080065S601609548Avdelidis, N.P. and Moropoulou, A., Applications of infrared thermography for the investigation of historic structures, J. Cult. Heritage, 2004, no. 5, pp. 119–127. doi 10.1016/j.culher.2003.07.002Barreira, E. and Freitas, V., Evaluation of building materials using infrared thermography, Constr. Build. Mater., 2007, vol. 21, pp. 218–224. doi 10.1016/j.conbuildmat.2005.06.049Bauer, E., Pavón, E., Barreira, E., and Kraus, E., Analysis of building façade defects using infrared thermography: Laboratory studies, J. Build. Eng., 2016, no. 6, pp. 93–104. doi /doi 10.1016/j.jobe.2016.02.012Binda, L., Cardani, G., and Zanzi, L., Nondestructive testing evaluation of drying process in flooded full-scale masonry walls, J. Perform. Constr. Facil., 2010, pp. 473–483. doi 10.1061/(ASCE)CF.1943-5509.0000097Cañas, I., Martín, S., and González, I., Thermal-physical aspects of materials used for the construction of rural buildings in Soria (Spain), Construct. Build. Mater., 2005, vol. 19, pp. 197–211. doi 10.1016/j.conbuildmat. 2004.05.016Carlomagno, G.M., Maio, R., Fedi, M., Meola, C., Integration of infrared thermography and high-frequency electromagnetic methods in archaeological surveys, J. Geophys. Eng., 2011, vol. 8, pp. 93–105. doi 10.1088/1742-2132/8/3/S09Cerdeira, F., Vázquez, ME, Collado, J., and Granada, E., Applicability of infrared thermography to the study of the behavior of Stone panels as building envelopes, Energy Build., 2011, vol. 43, pp. 1845–1851. doi 10.1016/j.enbuild.2011.03.029EN 13187:1998. Thermal performance of buildings. Qualitative detection of thermal irregularities in building envelopes. Infrared method (ISO 6781:1983 modified).Galarza Tortajada, M., La tapia valenciana: una técnica constructiva poco conocida, Proc. First Natl. Congr. Construct. Hist., Madrid, 1996.Grinzato, E., Bison, P.G., and Marinetti, S., Monitoring of ancient buildings by the thermal method, J. Cult. Heritage, 2002, vol. 3, pp. 21–29. doi 10.1016/S1296-2074(02)01159-7Ibarra-Castanedo C., Sfarra, S., Ambrosini, D., Paoletti, D., Bendada, A, and Maldague, X., Diagnostics of panel paintings using holographic interferometry and pulsed thermography, Quant. Infrared Thermogr. J., 2010, vol. 7, no. 1. doi 10.3166/qirt.7.85-114Lagüela, S., Martínez, J., Armesto, J., and Arias, P., Energy efficiency studies through 3D laser scanning and thermographic technologies, Energy Build., 2011, vol. 43, pp. 1216–1221. doi 10.1016/j.enbuild.2010.12.031Lerma, C., Mas, Á., Gil, E., and Galiana, M., An analytical procedure for the study of the documented construction process of the Seminary-School of Corpus Christi in Valencia (Spain), Inf. Constr., 2014, vol. 66 (533), e007. doi 10.3989/ic.12.117Lerma, C., Mas, A., Gil, E., Vercher, J., and Penalver, M.J., Pathology of building materials in historic buildings. Relationship between laboratory testing and infrared thermography, Mater. Constr., 2014, vol. 64 (313), e009. doi 10.3989/mc.2013.06612Lerma, J.L., Cabrelles, M., and Portalés, C., Multitemporal thermal analysis to detect moisture on a building façade, Construct. Build. Mater., 2011, vol. 25, pp. 2190–2197. doi 10.1016/j.conbuildmat.2010.10.007Madruga, F.J., Ibarra-Castanedo, C., Conde, O., López-Higuera, J.M., and Maldague, X., Infrared thermography processing based on higher-order statistics, NDT&E Int., 2010, vol. 43, pp. 661–666. doi 10.1016/j.ndteint.2010.07.002Meola, C., Infrared thermography of masonry structures, Infrared Phys. Technol., 2007, vol. 49, no. 3, pp. 228–33. doi 10.1016/j.infraredPosta, J., Dolejs, J., Non-destructive assessment of timber elements with an emphasis on radiometry., Intern. J. Arch. Herit., 2015, vol. 9, no.6.Válek, J., Kruschwitz, S., Wöstmann, J., Kind, T., Valach, J., Köpp, C., and Lesák, J., Nondestructive investigation of wet building material: Multimethodological approach, J. of performance of Constructed Facilities, pp. 462–472. doi 10.1061/(ASCE)CF.1943-5509.000005

    Efecto de cubiertas vegetales permanentes en la fertilidad del cultivo de cítricos ecológicos

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    Se han estudiado diferentes cubiertas vegetales permanentes en mandarinos ecológicos y convencionales de Alzira, en suelo arenoso, para comprobar su comportamiento fertilizante y su crecimiento. En plantación joven, con aspersión, se sembró alfalfa (Medicago sativa), sola y junto a ray-grass inglés (Lolium perenne), trévoles (Trifolium subterraneum+T. repens) y mielgas (Medicago rugosa+M. truncatula+M. polymorpha). En Clemenules adultos a goteo se estudiaron las silvestres en la conducción ecológica, y el no laboreo con herbicidas en la convencional. La evolución muestra como trévoles y mielgas degeraron muy deprisa, dando paso a silvestres (grama -Cynodon dactylon- en verano, y Bromus spp. y otras en invierno), descartándolos como coberturas en estas condiciones. La alfalfa es la que mejor ha resistido la competencia de las hierbas en condiciones de insolación alta y aspersión. En biomasa y cobertura no se han encontrado diferencias entre alfalfa y grama, mientras que las demás eran menores, sobre todo en los adultos, por su sombreado

    Explicit expressions for the estimation of the elastic constants of lamellar bone as a function of the volumetric mineral content using a multi-scale approach

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    [EN] In this work, explicit expressions to estimate all the transversely isotropic elastic constants of lamellar bone as a function of the volumetric bone mineral density (BMD) are provided. The methodology presented is based on the direct homogenization procedure using the finite element method, the continuum approach based on the Hill bounds, the least-square method and the mean field technique. Firstly, a detailed description of the volumetric content of the different components of bone is provided. The parameters defined in this step are related to the volumetric BMD considering that bone mineralization process occurs at the smallest scale length of the bone tissue. Then, a thorough description provides the details of the numerical models and the assumptions adopted to estimate the elastic behaviour of the forward scale lengths. The results highlight the noticeable influence of the BMD on the elastic modulus of lamellar bone. Power law regressions fit the Young's moduli, shear stiffness moduli and Poisson ratios. In addition, the explicit expressions obtained are applied to the estimation of the elastic constants of cortical bone. At this scale length, a representative unit cell of cortical bone is analysed including the fibril orientation pattern given by Wagermaier et al. (Biointerphases 1:1-5, 2006) and the BMD distributions observed by Granke et al. (PLoS One 8:e58043, 2012) for the osteon. Results confirm that fibril orientation arrangement governs the anisotropic behaviour of cortical bone instead of the BMD distribution. The novel explicit expressions obtained in this work can be used for improving the accuracy of bone fracture risk assessment.The authors acknowledge the Ministerio de Economia y Competitividad for the financial support received through the project DPI2013-46641-R and to the Generalitat Valenciana for Programme PROMETEO 2016/007. The authors declare that they have no conflict of interestVercher Martínez, A.; Giner Maravilla, E.; Belda, R.; Aigoun, A.; Fuenmayor Fernández, F. (2018). Explicit expressions for the estimation of the elastic constants of lamellar bone as a function of the volumetric mineral content using a multi-scale approach. Biomechanics and Modeling in Mechanobiology. 17(2):449-464. https://doi.org/10.1007/s10237-017-0971-xS449464172Akiva U, Wagner HD, Weiner S (1998) Modelling the three-dimensional elastic constants of parallel-fibred and lamellar bone. J Mater Sci 33:1497–1509Ascenzi A, Bonucci E (1967) The tensile properties of single osteons. Ana Rec 158:375–386Barbour KE, Zmuda JM, Strotmeyer ES, Horwitz MJ, Boudreau R, Evans RW, Ensrud K, Petit MA, Gordon CL, Cauley JA (2013) Correlates of trabecular and cortical volumetric bone mineral density of the radius and tibia older men: the osteoporotic fractures in men study. J Bone Miner Res 25(5):1017–1028Bar-On B, Wagner HD (2013) Structural motifs and elastic properties of hierarchical biological tissues—a review. J Struct Biol 183:149–164Cowin SC (2000) How is a tissue built? J Biomech Eng 122:553–569Cowin SC (2001) Bone mechanics handbook, 2nd edn. CRC Press, Boca RatonCurrey JD (1986) Power law models for the mechanical properties of cancellous bone. Eng Med 15(3):153–154Currey JD (1988) The effect of porosity and mineral content on the Young’s modulus of elasticity of compact bone. J Biomech 21:131–139Daszkiewicz K, Maquer G, Zysset PK (2017) The effective elastic properties of human trabecular bone may be approximated using micro-finite element analyses of embedded volume elements. Biomech Model Mechanobiol 16:731–742Faingold A, Sidney RC, Wagner HD (2012) Nanoindentation of osteonal bone lamellae. J Mech Biomech Materials 9:198–206Fratzl P, Fratzl-Zelman N, Klaushofer K, Vogl G, Koller K (1991) Nucleation and growth of mineral crystals in bone studied by small-angle X-ray scattering. Calcif Tissue Int 48:407–413Fritsch A, Hellmich C (2007) ’Universal’ microstructural patterns in cortical and trabecular, extracellular and extravascular bone materials: micromechanics-based prediction of anisotropic elasticity. J Theo Biol 24:597–620Grampp S, Genant HK, Mathur A, Lang P, Jergas M, Takada M, Glüer CC, Lu Y, Chavez M (1997) Comparisons of noninvasive bone mineral measurements in assessing age-related loss, fracture discrimination and diagnostic classification. J Bone Miner Res 12:697–711Grant CA, Langton C, Schuetz MA, Epari DR (2011) Determination of the material properties of ovine cortical bone. Poster No. 2226, 57th Orthopaedic Research Society (ORS) Annual meeting, Long Beach, CaliforniaGranke M, Gourrier A, Rupin F, Raum K, Peyrin F, Burghammer M, Saïd A, Laugier P (2012) Microfibril orientation dominates the microelastic properties of human bone tissue at the lamellar length scale. PLoS One 8:e58043Gurtin ME (1972) The linear theory of elasticity. Handbuch del Physik VIa 2:1–296Hamed E, Jasiuk I (2012) Elastic modeling of bone at nanostructural level. Mat Sci Eng R73:27–49Hernández CJ, Beaupré GS, Keller TS, Carter DR (2001a) The influence of bone volume fraction and ash fraction on bone strength and modulus. Bone 29:74–78Hill R (1952) The elastic behaviour of a crystalline aggregate. Proc Phys Soc Sec A 65:349–354Hodge AJ, Petruska JA (1963) Recent studies with the electron microscope on ordered aggregates of the tropocollagen macromolecule. In: Ramachandran GN (ed) Aspects of protein structure. Academic Press, New York, pp 289–300Jäger I, Fratzl P (2000) Mineralized collagen: a mechanical model with a staggered arrangement of mineral particles. Biophys J 78:1737–1746Kuhn JL, Goldstein SA, Choi K, London M, Feldkamp LA, Matthews LS (1989) Comparison of the trabecular and cortical tissue moduli from human iliac crests. J Orthop Res 7:876–884Landis WJ, Song MJ, Leith A, McEwen L, McEwen BF (1993) Mineral and organic matrix interaction in normally calcifying tendon visualized in three dimensions by high-voltage electron microscopic tomography and graphic image reconstruction. J Struct Biol 110:39–54Lees S, Heeley JD, Cleary PF (1979) A study of some properties of a sample of bovine cortical bone using ultrasound. Calcif Tissue Int 29:107–117Lekhnitskii SG (1963) Theory of elasticity of anisotropic elastic body. Holden-Day, San Francisco, pp 1–73Lempriere BM (1968) Poisson’s ratio in orthotropic materials. Am Inst Aeronaut Astronaut J J6:2226–2227Liu Y, Kim YK, Dai L, Li N, Khan SO, Pashley DH, Tay FR (2011) Hierarchical and non-hierarchical mineralization of collagen. Biomater 32:1291–1300Majumdar S, Kothari M, Augat P, Newitt DC, Link TM, Lin JC, Lang T, Lu Y, Genant HK (1998) High-resolution magnetic resonance imaging: three-dimensional trabecular bone architecture and biomechanical properties. Bone 22(5):445–454Martínez-Reina J, Domínguez J, García-Aznar JM (2011) Effect of porosity and mineral content on the elastic constants of cortical bone: a multiscale approach. Biomech Model Mechanobiol 10:309–322Nobakhti S, Limbert G, Thurner PJ (2014) Cement lines and interlamellar areas in compact bone as strain amplifiers—Contributors to elasticity, fracture toughness and mechanotransduction. J Mech Behav Biomed Mater 29:235–251Orgel JPRO, Irving TC, Miller A, Wess TJ (2006) Microfibrillar structure of type I collagen in situ. PNAS USA 103:9001–9005Reisinger AG, Pahr DH, Zysset PK (2010) Sensitivity analysis and parametric study of elastic properties of unidirectional mineralized bone fibril-array using mean field methods. Biomech Model Mechanobiol 9:499–510Reisinger AG, Pahr DH, Zysset PK (2011) Elastic anisotropy of bone lamellae as a function of fibril orientation pattern. Biomech Model Mechanobiol 10:67–77Rho JY, Kuhn-Spearing L, Zioupos P (1998) Mechanical properties and the hierarchical structure of bone. Med Eng Phys 20:92–102Robinson RA, Rochester MD (1952) An electron-microscopic study of the crystalline inorganic component of bone and its relationship to the organic matrix. J Bone Joint Surg 34–a:389–435Roque WL, Arcaro K, Alberich-Bayarri A (2013) Mechanical competence of bone: a new parameter to grade trabecular bone fragility from tortuosity and elasticity. IEEE Trans Bio Eng 60:1363–1370Rubin MA, Jasiuk I, Taylor J, Rubin J, Ganey T, Apkarian RP (2003) TEM analysis of the nanostructure of normal and osteoporotic human trabecular bone. Bone 33:270–282Sasaki N, Tagami A, Goto T, Taniguchi M, Nakata M, Hikichi K (2002) Atomic force microscopic studies on the structure of bovine femoral cortical bone at the collagen fibril-mineral level. J Mater Sci Mater Med 13(3):333–337Schaffler MB, Burr DB (1988) Stiffness of compact bone: effects of porosity and density. J Biomech 21:13–16Silver FH, Landis WJ (2011) Deposition of apatite in mineralizing vertebrate extracellular matrices: a model of possible nucleation sites on type I collagen. Connect Tissue Res 52:242–254Tommasini SM, Nasser P, Hu B, Jepsen KJ (2008) Biological co-adaptation of morphological and composition traits contributes to mechanical functionality and skeletal fragility. J Bone Miner Res 23:236–246Ulrich D, Rietbergen B, Weinans H, Rüegsegger P (1998) Finite element analysis of trabecular bone structure: a comparison of image-based meshing techniques. J Biomech 31:1187–1192Ulrich D, Rietbergen B, Laib A, Rüegsegger P (1999) The ability of three-dimensional structural indices to reflect mechanical aspects of trabecular bone. Bone 25:55–60Vercher A, Giner E, Arango C, Tarancón JE, Fuenmayor FJ (2014) Homogenized stiffness matrices for mineralized collagen fibrils and lamellar bone using unit cell finite element models. Biomech Model Mechanobiol 13:437–449Vercher-Martínez A, Giner E, Arango C, Fuenmayor FJ (2015) Influence of the mineral staggering on the elastic properties of the mineralized collagen fibril in lamellar bone. J Mech Behav Biomed Mater 42:243–256Wagermaier W, Gupta HS, Gourrier A, Burghammer M, Roschger P, Fratzl P (2006) Spiral twisting of fiber orientation inside bone lamellae. Biointerphases 1:1–5Weiner S, Traub W (1986) Organization of hydroxiapatite within collagen fibrils. FEBS Lett 206:262–266Weiner S, Wagner HD (1998) The material bone: structure-mechanical function relations. Annu Rev Mater Sci 28:271–298Yang L, Palermo L, Black DM, Eastell R (2014) Prediction of incident hip fracture with the estimated femoral strength by finite element analysis of DXA scans in the study of osteoporotic fractures. JBMR 29:2594–2600Yuan YJ, Cowin SC (2008a) The estimated elastic constants for a single bone osteonal lamella. Biomech Model Mechanobiol 7:1–11Yu W, Glüer CC, Grampp S, Jergas M, Fuerst T, Wu CY, Lu Y, Fan B, Genant HK (1995) Spinal bone mineral assessment in postmenopausal women: a comparison between dual X-ray absorptiometry and quantitative computed tomography. Osteoporos Int 5:433–439Yang L, Palermo L, Black DM, Eastell R (2014) Prediction of incident hip fracture with the estimated femoral strength by finite element analysis of DXS Scans in the study of osteoporotic fractures. J Bone Miner Res 29(12):2594–2600Yuan F, Stock SR, Haeffner DR, Almer JD, Dunand DC, Brinson LC (2011) A new model to simulate the elastic properties of mineralized collagen fibril. Biomech Model Mechanobiol 10:147–16
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