5 resultados para Occupational Exposure Limits

em Universidad Politécnica de Madrid


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The paper considers short-term releases of tritium (mainly but not only tritium hydride (HT)) to the atmosphere from a potential ITER-like fusion reactor located in the Mediterranean Basin and explores if the short range legal exposure limits are exceeded (both locally and downwind). For this, a coupled Lagrangian ECMWF/FLEXPART model has been used to follow real time releases of tritium. This tool was analyzed for nominal tritium operational conditions under selected incidental conditions to determine resultant local and Western Mediterranean effects, together with hourly observations of wind, to provide a short-range approximation of tritium cloud behavior. Since our results cannot be compared with radiological station measurements of tritium in air, we use the NORMTRI Gaussian model. We demonstrate an overestimation of the sequence of tritium concentrations in the atmosphere, close to the reactor, estimated with this model when compared with ECMWF/FLEXPART results. A Gaussian “mesoscale” qualification tool has been used to validate the ECMWF/FLEXPART for winter 2010/spring 2011 with a database of the HT plumes. It is considered that NORMTRI allows evaluation of tritium-in-air-plume patterns and its contribution to doses.

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El proyecto trata del estudio de la tasa de absorción específica (SAR). En él se estudia la SAR que desprenden distintos dispositivos de comunicaciones inalámbricos. Se ha llevado a cabo en las instalaciones de la SETSI, en el laboratorio de radiofrecuencia situado en El Casar, Guadalajara, que pertenece al Ministerio de Industria Comercio y Turismo. La SAR es una relación entre la energía electromagnética acumulada en una masa de un material o tejido concreto. Por tanto, lo primero es definir la SAR, en la que se exponen sus parámetros. Además, se recogen los límites de exposición fijados por las normas internacionales IEC 62209-1 e IEC 62209-2 en relación a SAR. Posteriormente, acorde con las normas, se realiza una definición detallada de un banco de medidas de SAR, en donde se explica cada uno de los componentes del banco de manera detallada así como los sistemas que intervienen previamente a la realización de la medida, tipos de los sistemas para realizar las verificaciones pertinentes, y también las incertidumbres de ciertos parámetros. También se realiza un proceso completo de medida de SAR en el laboratorio de la SETSI, donde se realizan las comprobaciones necesarias para la realización de una serie de medidas sobre dispositivos de comunicaciones móviles. Éstas medidas se realizan primero sobre un teléfono móvil en las frecuencias de GSM, UMTS y WIFI, en las configuraciones estipuladas por la norma; “tocando” e “inclinada 15°” comparando los valores obtenidos con los límites marcados por las normas internacionales. Por último, en este apartado se realizan ciertas medidas con otras configuraciones que no están recogidas en la norma para intentar obtener los máximos valores de SAR posibles. Después se realiza una comparación entre dos dispositivos tipo “tablet”, para ello se realizan medidas en la banda de WIFI y se comentan los resultados obtenidos, relacionado con el diseño de cada uno de ellos. Posteriormente se realiza un presupuesto de un banco de SAR, donde se detallan todos los componentes que intervienen en la realización de las medidas de SAR, pero no se incluyen en él, los costes de mantenimiento o los costes relacionados con su uso. Por último se explican las conclusiones finales desprendidas de la realización de este proyecto de fin de carrera así como la bibliografía utilizada. ABTRACT This project consists on the study of the specific absorption rate (SAR).It studies the different SAR of several wireless communications devices. It has been held in SETSI’S facilities, in its radio frecuency laboratory located in El Casar, Guadalajara, which belongs to the Ministy of Industry, Trade and Tourism. The SAR is a ratio between the electromagnetic energy accumulated in a mass of concrete material or tissue. Therefore, the SAR is defined first, which sets its parameters. Also lists the exposure limits set by international standards IEC 62209-1 and IEC 62209-2 regarding SAR. Subsequently, according to the guidelines, performing a detailed definition of a SAR measures bench, which explains each of the components in detail of the bench and involved systems prior to the realization of the extent and types of systems to perform the necessary checks, and certain parameters uncertainties. Also performed a complete process for SAR in the SETSI laboratory, located in El Casar, Guadalajara, where the necessary checks are made to carry out a serie of measures on mobile communications devices. These will be carried out first on a mobile phone at frequencies of GSM, UMTS and WiFi, in the configurations set by the standard, "touch" and "tilt 15 °" comparing the values obtained with the limits set by international standards. Finally, this section will perform certain actions with other configurations that are not included in the standard to try to get the maximum possible SAR values. Then a comparison is made between two devices, such as "tablet", this will make measurements in the band WIFI and discussed the results, related to the design of each. Subsequently, a budget of a SAR bench, detailing all components involved in SAR measures, but not included in it, maintenance costs or the costs associated with its use. Finally conclusions are explained detached from the realization of this project as well as the bibliography used on it.

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La perspectiva del arquitecto en calidad ambiental, y salud en un contexto sostenible, se amplía al considerar las radiaciones electromagnéticas no ionizantes en el diseño arquitectónico. En ese sentido, además del confort higrotérmico, acústico, lumínico y de la calidad del aire, se podría considerar el confort electromagnético de un lugar. Dado que existe gran controversia en cuales han de ser los límites de exposición a radiaciones electromagnéticas no ionizantes, establezco como punto de referencia los valores límite más restrictivos, que son los recomendados por la norma SBM-2008, desarrollada por el Institut für Baubiologie & Oekologie Neubeuern (IBN)1. Se plantean como hipótesis que podemos modificar el entorno electromagnético con materiales de construcción y geometría; y que determinados trazados geométricos tienen la capacidad de reducir el impacto de los campos electromagnéticos sobre los organismos vivos. El objetivo consiste en demostrar experimentalmente que podemos trabajar sobre la calidad ambiental electromagnética de un espacio, a través de la elección de materiales de construcción y trazados geométricos, intentando demostrar que existe una relación causa - efecto entre ambos. La metodología plantea tres aproximaciones experimentales, cada una con un tipo de radiación electromagnética, pues se pretende abarcar las situaciones que comúnmente se pueden presentar en un entorno habitado, ya sea urbano o rural. La primera aproximación trata sobre las alteraciones del campo geomagnético natural (nT / m) provocadas por los materiales de construcción. Utilizo el geomagnetómetro BPM 2010, para realizar un ensayo con cuatro tipos de materiales de distinta procedencia: origen vegetal muy poco procesado (corcho aglomerado negro) y más procesado (OSB), origen derivado del petróleo (tablero rígido de poliuretano) y de origen mineral metálico (chapa minionda). De la lectura de los datos se observa relación causa-efecto entre los materiales de construcción estudiados y las modificaciones que pueden ejercer sobre el campo magnético de un lugar. A continuación se estudia el entorno de radiación electromagnética artificial a baja frecuencia (3 Hz a 3 kHz) y a alta frecuencia, (800 MHz a 10 GHz) en vivienda y en oficina utilizando unas geometrías concretas: las tarjetas de corrección de radiaciones. Estas tarjetas se ubican en paramentos verticales y horizontales de un espacio sometido a radiación propia de un entorno urbano. Se concluye que en una habitación inciden múltiples variables simultáneas muy difíciles de trabajar por separado y que aparentemente no se pueden identificar cambios significativos en las mediciones con y sin las tarjetas de corrección de radiaciones. A continuación estudio el entorno de radiación electromagnética artificial a baja frecuencia asociada a la red de distribución eléctrica. Para poder ver cómo este entorno electromagnético lo podemos modificar, utilizo las tarjetas de corrección de radiaciones ubicadas en relación directa con organismos vivos, por un lado germinados de semillas de haba mungo sometidas a campos electromagnéticos complejos a alta y baja frecuencia, propios de una oficina; y por otro lado germinados de semillas de haba mungo, sometidas a campos electromagnéticos puros a 50 Hz, sin influencias de radiación a alta frecuencia. Se concluye que se observa relación causa - efecto entre los trazados geométricos estudiados y su capacidad para reducir el impacto de los campos electromagnéticos a altas y bajas frecuencias sobre las semillas de haba mungo. También utilizo las tarjetas de corrección de radiaciones en un ensayo normalizado en el laboratorio de bioelectromagnetismo del Hospital Universitario Ramón y Cajal, con células de neuroblastoma humano. Se concluye que se observa relación causa - efecto entre los trazados geométricos estudiados y su capacidad para reducir el impacto de los campos electromagnéticos de 50 Hz Y 100 μT sobre células de neuroblastoma humano y además disminuyen la velocidad de proliferación celular respecto del grupo de células de control. Finalmente se estudia el entorno de radiación electromagnética artificial a alta frecuencia, asociado a comunicaciones inalámbricas. Para ello realizo simulaciones con el software CST Studio, sobre las tarjetas de corrección de radiaciones a alta frecuencia. A la luz de los datos se observa relación causa - efecto entre el trazado geométrico estudiado y su capacidad para reducir radiaciones electromagnéticas de alta frecuencia. Se comprueba además que, las tarjetas de corrección de radiaciones disminuyen la intensidad de la radiación acercándose a los límites de exposición establecidos por el instituto de la biología de la construcción alemán, que podrían estar señalando los estándares de biocompatibilidad. ABSTRACT The perspective of the architect in environmental quality, and health in a sustainable context is extended to consider non-ionizing electromagnetic radiation in architectural design. In that sense, besides the hygrothermal, acoustic, lighting and air quality comfort, the electromagnetic comfort of an indoor space could be considered. There is still great controversy about which should be the limits of exposure to nonionizing electromagnetic radiation, as a benchmark, the more restrictive limits are considered, by the SBM- 2008 standard, developed by the Institut für Baubiologie & Oekologie Neubeuern (IBN). The hypotheses that arise are the following: the electromagnetic environment can be modified by using certain construction materials and geometry; and certain geometric design have the ability to reduce the impact of electromagnetic fields on living organisms. The aim is to demonstrate experimentally that we can work on electromagnetic environmental quality of a indoor space, by using certain construction materials and geometric design, trying to demonstrate a cause - effect relationship between them. The methodology raises three experimental approaches, each with a type of radiation, it is intend to cover situations commonly may occur in an inhabited environment, whether urban or rural. The first approach discusses the alteration of the natural magnetic field (nT / m) caused by the building materials. Geomagnetometre BPM 2010 is used for conducting a test with four types of materials from different sources: vegetable origin less processing (black agglomerate cork) and vegetable origin more processed (OSB), petroleum origin (rigid polyurethane board) and metallic origin (miniwave plate). It is observed across the data information that exist cause-effect relationship between the construction materials studied and the modifications that they can exercise on the magnetic field of a place. Then I study the environment of artificial electromagnetic radiation at low frequency (3 Hz to 3 kHz) and high frequency (800 MHz to 10 GHz) in housing and office, using some specific geometries: correcting radiation cards. These cards are placed in vertical and horizontal surfaces of an indoor space concerned by radiation. I conclude that an indoor space is affected by multiple simultaneous variables difficult to work separately and apparently it is not possible identify significant changes in measurements with and without correcting radiation cards. Then the artificial electromagnetic environment of low-frequency radiation associated with the electricity distribution network is studied. To see how the electromagnetic environment can be changed, correcting radiation cards are placed directly related to living organisms. On one hand, mung bean seeds subject to complex electromagnetic fields at low and high frequency, typical of an office; and on the other hand mung bean seeds, subjected to pure electromagnetic fields at 50 Hz, no influenced by high frequency radiation. It is observed that exist cause-effect relationship between the geometric design and their ability to reduce the impact of electromagnetic fields at high and low frequencies that arrives on on mung bean seeds. The correcting radiation cards were also used in a standard test in the bioelectromagnetics laboratory of Ramón y Cajal University Hospital, on human neuroblastoma cells. It is observed that exist cause-effect relationship between the geometric design and their ability to reduce the impact of electromagnetic fields at 50 Hz and 100 μT on human neuroblastoma cells and also decrease the rate of cell proliferation compared to the group of cells control. Finally the artificial electromagnetic radiation environment at high frequency associated with wireless communications was studied. Simulations with CST Study software were made to determine the behavior of correcting radiation cards in high-frequency. It is observed across the data information that exist causeeffect relationship between the geometric design and the ability to reduce the levels of high-frequency electromagnetic radiation. It also checks that radiation correcting cards decrease the intensity of radiation approaching exposure limits established by Institut für Baubiologie & Oekologie Neubeuern (IBN), which could be signaling biocompatibility standards.

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Experimental research has been performed to relate specific cement characteristics to deterioration due to sulfate and sea water attack after five year exposure, and to study different test method suitability for sulfate and marine resistance. Sulfate resistance testing have been performed on mortar specimens made with fifteen cement types of statistically diverse chemical composition according to European standard EN 197-1, most of them with sulfate resistant properties according to Spanish regulations. Chemical and mechanical characteristics were studied to determine the variation in properties of selected cements. SO3 content, type and amount of additions, C3A, and C4AF content were used to examine relationships between these characteristics and the results of sulfate resistance. Mortar specimens testing using Na2SO4 as the aggressive medium according to ASTM 1012 (with w/c ratio adapted to prENV 196-X:1995) was performed using each type of cement; identical specimens were also stored in sea water, and in lime saturated water (blank condition), up to five year age. Additionally these cements were tested conforming ASTM 452 and Koch and Steinegger test. Recommended acceptance limits for sulfate resistance of cements concerning to each used test method were evaluated in order to explore their suitability. Relationships between cement characteristics, degradation, expansive products obtained by X-ray diffraction techniques and maximum expansion after applied storage treatments, were correlated at final age, to redefine cement characteristics for sulfate resistant and marine resistant Portland cement

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Bakers are repeatedly exposed to wheat flour (WF) and may develop sensitization and occupational rhinoconjunctivitis and/or asthma to WF allergens.1 Several wheat proteins have been identified as causative allergens of occupational respiratory allergy in bakery workers.1 Testing of IgE reactivity in patients with different clinical profiles of wheat allergy (food allergy, wheat-dependent exercise-induced anaphylaxis, and baker's asthma) to salt-soluble and salt-insoluble protein fractions from WF revealed a high degree of heterogeneity in the recognized allergens. However, mainly salt-soluble proteins (albumins, globulins) seem to be associated with baker's asthma, and prolamins (gliadins, glutenins) with wheat-dependent exercise-induced anaphylaxis, whereas both protein fractions reacted to IgE from food-allergic patients.1 Notwithstanding, gliadins have also been incriminated as causative allergens in baker's asthma.2 We report on a 31-year-old woman who had been exposed to WF practically since birth because her family owned a bakery housed in the same home where they lived. She moved from this house when she was 25 years, but she continued working every day in the family bakery. In the last 8 years she had suffered from work-related nasal and ocular symptoms such as itching, watery eyes, sneezing, nasal stuffiness, and rhinorrhea. These symptoms markedly improved when away from work and worsened at work. In the last 5 years, she had also experienced dysphagia with frequent choking, especially when ingesting meats or cephalopods, which had partially improved with omeprazole therapy. Two years before referral to our clinic, she began to have dry cough and breathlessness, which she also attributed to her work environment. Upper and lower respiratory tract symptoms increased when sifting the WF and making the dough. The patient did not experience gastrointestinal symptoms with ingestion of cereal products. Skin prick test results were positive to grass (mean wheal, 6 mm), cypress (5 mm) and Russian thistle pollen (4 mm), WF (4 mm), and peach lipid transfer protein (6 mm) and were negative to rice flour, corn flour, profilin, mites, molds, and animal dander. Skin prick test with a homemade WF extract (10% wt/vol) was strongly positive (15 mm). Serologic tests yielded the following results: eosinophil cationic protein, 47 ?g/L; total serum IgE, 74 kU/L; specific IgE (ImmunoCAP; ThermoFisher, Uppsala, Sweden) to WF, 7.4 kU/L; barley flour, 1.24 kU/L; and corn, gluten, alpha-amylase, peach, and apple, less than 0.35 kU/L. Specific IgE binding to microarrayed purified WF allergens (WDAI-0.19, WDAI-0.53, WTAI-CM1, WTAI-CM2, WTAI-CM3, WTAI-CM16, WTAI-CM17, Tri a 14, profilin, ?-5-gliadin, Tri a Bd 36 and Tri a TLP, and gliadin and glutamine fractions) was assessed as described elsewhere.3 The patient's serum specifically recognized ?-5-gliadin and the gliadin fraction, and no IgE reactivity was observed to other wheat allergens. Spirometry revealed a forced vital capacity of 3.88 L (88%), an FEV1 of 3.04 L (87%), and FEV1/forced vital capacity of 83%. A methacholine inhalation test was performed following an abbreviated protocol,4 and the results were expressed as PD20 in cumulative dose (mg) of methacholine. Methacholine inhalation challenge test result was positive (0.24 mg cumulative dose) when she was working, and after a 3-month period away from work and with no visits to the bakery house, it gave a negative result. A chest x-ray was normal. Specific inhalation challenge test was carried out in the hospital laboratory by tipping WF from one tray to another for 15 minutes. Spirometry was performed at baseline and at 2, 5, 10, 15, 20, 30, 45, and 60 minutes after the challenge with WF. Peak expiratory flow was measured at baseline and then hourly over 24 hours (respecting sleeping time). A 12% fall in FEV1 was observed at 20 minutes and a 26% drop in peak expiratory flow at 9 hours after exposure to WF,