944 resultados para Irrigation farming.
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En la conferencia se expone la situación en España de los riegos a presión considerando los condicionantes de escasez de agua y el precio de la energía.
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Modernization of irrigation schemes, generally understood as transformation of surface irrigation systems into pressure –sprinkler and trickle- irrigation systems, aims at, among others, improving irrigation efficiency and reduction of operation and maintenance efforts made by the irrigators. However, pressure irrigation systems, in contrast, carry a serious energy cost. Energy requirements depend on decisions taken on management strategies during the operation phase, which are conditioned by previous decisions taken on the design project of the different elements which compose the irrigation system. Most of the countries where irrigation activity is significant bear in mind that modernization irrigation must play a key role in the agricultural infrastructure policies. The objective of this study is to characterize and estimate the mean and variation of the energy consumed by common types of irrigation systems and their management possibilities. The work includes all processes involved from the diversion of water into irrigation specific infrastructure to water discharge by the emitters installed on the crop fields. Simulation taking into account all elements comprising the irrigation system has been used to estimate the energy requirements of typical irrigation systems of several crop production systems. It has been applied to extensive and intensive crop systems, such us extensive winter crops, summer crops and olive trees, fruit trees and vineyards and intensive horticulture in greenhouses. The simulation of various types of irrigation systems and management strategies, in the framework imposed by particular cropping systems, would help to develop criteria for improving the energy balance in relation to the irrigation water supply productivity.
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El potencial hídrico del tronco es una herramiento útil para el manejo del riego. Los umbrales de riego deben establecerse para cada periodo fisiológico. En este experimento, realizado en Arbequina en seto, se estudio la relacion entre los potenciales hídricos y la produccion de aceite. Cuando los potenciales hidricos son inferiores a -1.3 MPa el crecimiento vegetativo se reduce mas del 50%. En cuanto a la produccion, se observó que regando en Julio cuando se alcanzan potenciales cercanos a -2.9 MPa se puede ahorrar agua sin afectar a la produccion. Sin embargo en Agosto el potencial debe mantenerse por encima de -2 MPa para que no se resienta la producción.
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La presente Tesis Doctoral se realizó con el fin de estimar conjuntamente la respuesta agronómica y fisiológica de la vid (Vitis vinifera L.), así como los efectos sobre la evolución de la maduración, composición y la calidad de la uva y del vino, bajo la aplicación de diferentes déficit hídricos en pre-envero y post-envero, dentro de un marco de referencia de cambio climático. La variación climática que prevén los estudios sobre el cambio climático, resulta un factor decisivo en la eficiencia del uso del agua en la vid. En zonas cálidas, las estrategias de cultivo del viñedo frente al cambio climático deben de ir dirigidas a atenuar sus efectos sobre el crecimiento y el desarrollo de la vid, haciéndose imprescindible el estudio pormenorizado del déficit hídrico como factor decisivo en la obtención de las uvas adecuadas, ya que son la clave indispensable para el éxito en la elaboración del vino, y de forma muy especial en los vinos enfocados a un sector de alta calidad. El ensayo se llevó a cabo en un viñedo comercial de Bodegas Licinia, en la Comunidad de Madrid, durante los años 2010 y 2011. La variedad estudiada fue Cabernet sauvignon / 41 B, plantada a un marco de plantación de 3 m x 1 m, con un guiado vertical de la vegetación. El dispositivo experimental fue totalmente al azar, y se establecieron 4 tratamientos experimentales con 4 grados de disponibilidad hídrica, déficit moderado continuo (T0,45-0,6), déficit severo continuo (T0-0,3), déficit severo después de envero (T0,45-0,3) y déficit severo antes de envero (T0-0,6). En cada tratamiento se distribuyeron 3 repeticiones. El año 2010 fue el más lluvioso de los años de ensayo, con 478 mm de precipitaciones anuales, lo que supuso 146 mm más que en el año 2011. Su distribución a lo largo del ciclo fue más homogénea en el año 2010, mientras que en 2011 las precipitaciones contabilizadas en el período de maduración de la uva fueron nulas. La temperatura media subió 0,9ºC en 2011, respecto a 2010 y en cuanto a la integral térmica eficaz, en 2011 se acumularon, desde el 1 de abril hasta el final de ciclo, 217 grados•día más que en 2010. El déficit hídrico en pre-envero, modificó notablemente el crecimiento vegetativo y la producción de cosecha de la parcela de ensayo, no así la fertilidad de las yemas. El tratamiento con mayor disponibilidad hídrica (T0,45-0,6) obtuvo el mayor peso de baya, y los tratamientos con menor déficit hídrico en pre-envero (T0,45-0,6 y T0,45-0,3) registraron los mayores rendimientos de cosecha, mientras que las menores tasas de cuajado correspondieron al tratamiento con un déficit severo continuo (T0-0,3). La parcela de ensayo se caracterizó por un exceso de vigor y un alto crecimiento vegetativo. El pH del mosto se vio afectado por el déficit hídrico, disminuyendo su valor en el tratamiento de déficit hídrico severo antes de envero (T0-0,6). Organolépticamente, no se percibieron diferencias significativas en los vinos elaborados en función del déficit hídrico, y respecto a su composición físico-química, solo existieron diferencias en la concentración de ácido L-Málico, con mayores concentraciones en los tratamientos sin déficit hídrico en pre-envero, T0,45-0,6 y T0,45-0,3. El déficit hídrico modificó notablemente el color del vino, aumentando los valores de las coordenadas CIELAB a* y b*, la luminosidad (L*), croma (C*) y tonalidad (H*), para los tratamientos con un déficit severo en pre-envero (T0-0,3 y T0-0,6) y disminuyendo estas en el tratamiento con mayor disponibilidad hídrica (T0,45-0,6). Del mismo modo, mediante el análisis de color por métodos tradicionales, IPT e IC de los vinos, aumentó en los tratamientos con mayor déficit hídrico en pre-envero (T0-0,3 y T0-0,6), respecto a los tratamientos de mayor disponibilidad (T0,45-0,6 y T0,45-0,3). La concentración de taninos de la baya en vendimia, no se vio afectada por el déficit hídrico, aunque sí estuvo relacionada positivamente con el tamaño de las bayas. Organolépticamente, los hollejos del año 2011 resultaron con menor frescura, acidez, afrutado, sensación herbácea e intensidad tánica, aunque con mayor astringencia respecto a 2010. Las pepitas fueron más astringentes y aromáticas pero menos crujientes, sin llegar a los niveles de madurez del año 2010. El catador relacionó los taninos con la calidad del vino, asociándolos con un mayor cuerpo, acidez, intensidad, equilibrio gustativo, amargor y menor astringencia en la fase gustativa. La concentración de taninos en los vinos se vio favorecida con el déficit hídrico en pre-envero y post-envero. Los tratamientos con mayor déficit hídrico en pre-envero, T0-0,6 y T0-0,3, obtuvieron las menores concentraciones de potasio en mostos y vinos. Las relaciones entre la concentración de potasio, ácido L-Málico y el porcentaje de color rojo puro (dA(%)) resultaron altamente significativas, de modo que las mayores tasas de potasio en el vino se asociaron a los valores más bajos de color rojo y a los mayores de ácido L-Málico. ABSTRACT The present Doctoral Thesis has been done in order to estimate the grapevine (Vitis vinifera L.) agronomic and physiologic performance or response as well as the impact in the grape and wine maturity, composition and quality evolution, with different water deficits. The variation in climate that the global warming studies for seen is a key factor for the grapevine water use efficiency. In warm areas the farming vineyards strategy to face the climatic change, should be focused on diminish the effects on the grapevine growth and development, so that the water deficit detailed analysis becomes decisive to obtain the appropriate grapes, that are the main subject for a successful wine production and especially for top quality wines. The trial was carried out in a commercial vineyard in Chinchón (Madrid), Licinia winery, during the 2010 and 2011 seasons. The grape variety studied was Cabernet Sauvignon grafted onto 41B with a vine spacing 3m x 1m trained as VSP. Experimental design consisted on 4 irrigation treatments with 3 replications totally randomized. Irrigation treatments were: moderate regulated deficit (T0,45-0,6), severe continuous deficit (T0-0,3), severe post-veraison deficit (T0,45-0,3) and severe pre veraison deficit (T0-0,6). The 2010 was rainier year than the 2011; Total annual rain in 2010 was 478 mm, which resulted in 146 mm more than in 2011. The distribution along the vine cycle was more homogeneous in the 2010, whereas precipitations in 2011 along the grape maturity period were nonexistent. The average temperature in 2011 was 0,9ºC higher than that of the 2010 and regarding to the thermal integral, in the 2011 from 1st April to the end of the growing cycle, was 217 degrees•day higher than that in 2010. Water deficit significantly modified the vegetative growth and yield but, it did not modified bud fertility. The treatment with the highest water availability (T0,45-0,6) got the highest berry size, the lowest berry set rates were found in the severe continuous deficit treatment (T0-0,3). The plot studied in this trial was characterized by both excessive vigour and vegetative growth. Water deficit modified the pH must by, reducing it in the severe water deficit during pre-veraison (T0-0,6). There were not differences in wine tasting between the water deficits treatments. Regarding to the physical-chemical composition, it only existed differences in the L-malic acid concentration, resulting higher concentrations in the water deficit pre-veraison treatments: T0,45-0,6 y T0,45-0,3. Water deficit significantly modified wine colour by, increasing the CIELAB coordinates a* and b*, the brightness (L*), croma (C*) and tonality (H*), in the lower water availability pre-veraison treatments (T0-0,3 y T0-0,6), and reducing them in the in the moderate continuous water deficit ones (T0,45-0,6). By means of traditional wine colour parameters analyses, red colour percentage, TPI, they became higher in the lower water availability pre-veraison treatments (T0-0,3 y T0-0,6), than in those with higher availability (T0,45-0,6 y T0,45-0,3). At harvest, berry tannins concentrations was not affected by the water deficit although it did in a positive way, in the berry size. Berry tasting in 2011, resulted in a lower freshness, acidity, fruity, herbaceous flavour and tannic intensity, but with higher astringency respect to the 2010 season. Seeds, in 2011, were more astringent and aromatic as in the 2010, but less crunchy, without getting to the point of maturity. The taster linked the tannins to wine quality, associating them with a higher bodiest wine, acidity, intensity, taste balance, bitterness and with a lower astringency in the tasting stage. Treatments with a higher water deficit up to veraison T0-0,6 y T0-0,3 got less musts and wines potassium concentration. The relation between L-malic acid and the full red color percentage (dA(%)), were highly related, resulting the higher potassium content the lower wine quality.
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En este ensayo se evaluó el efecto del déficit hídrico en el verano en la calidad del aceite de la variedad Arbequina. Para ello se establecieron 3 tratamientos de riego deficitario y un Control en un olivar en seto. El deficit severo aplicado en Julio provocó un incremento en polifenoles comparado con los otros tratamientos.
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En un olivar en seto de la variedad Arbequina, situado en la Puebla de Montalbán (Toledo), se aplicaron diferentes estrategias de riego deficitario durante el verano. Se evaluó el efecto del riego sobre la calidad del aceite. Los aceite procedentes del tratamiento de deficit severo de julio presentarion una mayor estabilidad oxidativa, lo que coincide con un mayor contenido en polifenoles
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In this paper, we investigate the real demand for climate protection when the purely individual perspective of existing revealed preference studies is relaxed. This is achieved in two treatments; first, we determine the information subjects receive about the demand revealed by other subjects in a similar decision making situation, second, collective action is implemented whereby all subjects are required to purchase the group?s median quantity at a given price. Participants in the experiment were offered the opportunity to contribute to climate protection by purchasing European Union Allowances. Allowances purchased were withdrawn from the European Emissions Trading Scheme. In our experiment, information about other subjects? behaviour has no treatment effect on the demand for climate protection. Under collective action however, the probability of purchasing allowances is higher compared to the reference treatment situation, an individual contribution mechanism. Furthermore, we observe a strong correlation between subjects? demand and their expectations about other participants? behaviour. When collective action is not available, subjects? e xpectations are consistent with free rider behaviour.
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As part of the Mediterranean area, the Guadiana basin in Spain is particularly exposed to increasing water stress due to climate change. Future warmer and drier climate will have negative implications for the sustainability of water resources and irrigation agriculture, the main socio- economic sector in the region. This paper illustrates a systematic analysis of climate change impacts and adaptation in the Guadiana basin based on a two-stage modeling approach. First, an integrated hydro-economic modeling framework was used to simulate the potential effects of regional climate change scenarios for the period 2000-2069. Second, a participatory multi-criteria technique, namely the Analytic Hierarchy Process (AHP), was applied to rank potential adaptation measures based on agreed criteria. Results show that, in the middle-long run and under severe climate change, reduced water availability, lower crop yields and increased irrigation demands might lead to water shortages, crop failure, and up to ten percent of income losses to irrigators. AHP results show how private farming adaptation measures, including improving irrigation efficiency and adjusting crop varieties, are preferred to public adaptation measures, such as building new dams. The integrated quantitative and qualitative methodology used in this research can be considered a socially-based valuable tool to support adaptation decision-making.
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The objective of this study is to analyze the common pool resource appropriation and public good provisiondecisions in a dynamic setting, testing the differences in behavior and performance between lab and field subjects. We performeda total of 45 games in Nicaragua, including 88 villagers in rural communities and 92 undergraduate students. In order to analyze sequential decision making, we introduce a dynamic and asymmetric irrigation game that combines the typical social dilemmas associated to irrigation systems management.In addition, in 9 out of 22 villagers’ groups, we implemented a treatment that included the disclosure of subjects’ appropriation of the common pool resource. The results reveal that the provision of individuals’ appropriation level results in higher appropriation in subsequent rounds. In addition, the results show that non-treated villagers provide more public good than treated villagers but if compared with students the differences are not significant. The results also suggest that appropriation levels are below the Nash prediction of full appropriation, but above the social efficient level. This results in an efficiency loss in the game that can be explained to a large extent by individual decisions on appropriation and public good contribution and by group appropriation behavior.
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Rising water demands are difficult to meet in many regions of the world. In consequence, under meteorological adverse conditions, big economic losses in agriculture can take place. This paper aims to analyze the variability of water shortage in an irrigation district and the effect on farmer?s income. A probabilistic analysis of water availability for agriculture in the irrigation district is performed, through a supply-system simulation approach, considering stochastically generated series of stream-flows. Net margins associated to crop production are as well estimated depending on final water allocations. Net margins are calculated considering either single-crop farming, either a polyculture system. In a polyculture system, crop distribution and water redistribution are calculated through an optimization approach using the General Algebraic Modeling System (GAMS) for several scenarios of irrigation water availability. Expected net margins are obtained by crop and for the optimal crop and water distribution. The maximum expected margins are obtained for the optimal crop combination, followed by the alfalfa monoculture, maize, rice, wheat and finally barley. Water is distributed as follows, from biggest to smallest allocation: rice, alfalfa, maize, wheat and barley.
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This work studies the most beneficial way of allocating water in an irrigation community in water shortage situations. Therefore, it proposes that the irrigation surface area be divided into homogeneous zones, each with a beneficial relationship with respect to the water applied. The mathematical formula that enables one to obtain the optimal quota for the users or irrigation community as a whole has been found for individual relations of a quadratic or power type, and these have yielded different and complementary characteristics. Dimensionless variables have been used to display the results, and to compare with other alternative allocation rules such as the proportional rule, referencing the situation without water restrictions. As a result, for each water shortage situation, the water that is allocated to each user is obtained, together with the losses in individual income and the losses for the community as a whole. Furthermore, a proposal is put forth for establishing the marginal benefit from the water available, which could be of interest in enabling each community to analyze whether it is in its best interest to invest in increasing the resource, or to sell the resource to other users. Finally, an example is given to demonstrate how the method works and to show that, when the differences between the production schemes are considered, the differences in benefit reduction between the proportional allocation and the optimal allocation are also sizeable. Read More: http://ascelibrary.org/doi/abs/10.1061/(ASCE)IR.1943-4774.0000667
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Sustaining irrigated agriculture to meet food production needs while maintaining aquatic ecosystems is at the heart of many policy debates in various parts of the world, especially in arid and semi-arid areas. Researchers and practitioners are increasingly calling for integrated approaches, and policy-makers are progressively supporting the inclusion of ecological and social aspects in water management programs. This paper contributes to this policy debate by providing an integrated economic-hydrologic modeling framework that captures the socio-economic and environmental effects of various policy initiatives and climate variability. This modeling integration includes a risk-based economic optimization model and a hydrologic water management simulation model that have been specified for the Middle Guadiana basin, a vulnerable drought-prone agro-ecological area with highly regulated river systems in southwest Spain. Namely, two key water policy interventions were investigated: the implementation of minimum environmental flows (supported by the European Water Framework Directive, EU WFD), and a reduction in the legal amount of water delivered for irrigation (planned measure included in the new Guadiana River Basin Management Plan, GRBMP, still under discussion). Results indicate that current patterns of excessive water use for irrigation in the basin may put environmental flow demands at risk, jeopardizing the WFD s goal of restoring the ?good ecological status? of water bodies by 2015. Conflicts between environmental and agricultural water uses will be stressed during prolonged dry episodes, and particularly in summer low-flow periods, when there is an important increase of crop irrigation water requirements. Securing minimum stream flows would entail a substantial reduction in irrigation water use for rice cultivation, which might affect the profitability and economic viability of small rice-growing farms located upstream in the river. The new GRBMP could contribute to balance competing water demands in the basin and to increase economic water productivity, but might not be sufficient to ensure the provision of environmental flows as required by the WFD. A thoroughly revision of the basin s water use concession system for irrigation seems to be needed in order to bring the GRBMP in line with the WFD objectives. Furthermore, the study illustrates that social, economic, institutional, and technological factors, in addition to bio-physical conditions, are important issues to be considered for designing and developing water management strategies. The research initiative presented in this paper demonstrates that hydro-economic models can explicitly integrate all these issues, constituting a valuable tool that could assist policy makers for implementing sustainable irrigation policies.
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Mediterranean climate is characterized by hot summer, high evapotranspiration rates, and scarce precipitations (400 mm per year) during grapevine cycle. These extremely dry conditions affect vineyard productivity and sustainability. Supplementary irrigation is a needed practice in order to maintain yield and quality. Almost all Spanish grape growing regions are characterized by these within this context, especially in the center region, where this study was performed. The main objective of this work was to study the influence of irrigation on yield and quality. For this aim, we applied different levels of irrigation (mm of water applied) during different stages of growth and berry maturity. Four experimental treatments were applied considering the amount of water and the moment of the application: T1: Water irrigation (420 mm) applied from bloom to maturity. T2: Corresponded to the traditional irrigation scheduling, from preveraison to maturity (154 mm). T3: Water irrigation from bloom to preveraison, and water deficit from veraison to maturity (312 mm). T4: Irrigation applied from preveraison to maturity (230 mm) Experimental vineyard, cv. Cabernet Sauvignon, was located in a commercial vineyard (Bodegas Licinia S.L.) in the hot region of Morata de Tajuña (Madrid). The trial was performed during 2010 and 2011 seasons. Our results showed that yield increased from 2010 to 2011 in the treatments with a higher amount of water appli ed, T1 and T3 (24 and 10 % of yield increase respectively). This was mainly due to an increase in bud fertility (nº of bunches per shoot). Furthermore, sugar content was higher in T3 (27.3 ºBrix), followed by T2 (27 ºBrix). By contrast, T4 (irrigation from veraison) presented the lowest solid soluble concentration and the highest acidity. These results suggest that grapevine has an intrinsic capacity to adapt to its environment. However, this adaptation capacity should be evaluated considering the sensibility of quality parameters during the maturity period (acidity, pH, aroma, color...) and its impact on yield. Here, we demonstrated that a higher amount of water irrigation applied was no linked to a negative effect on quality.
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Agricultural water management needs to evolve in view of increased water scarcity, especially when farming and natural protected areas are closely linked. In the study site of Don?ana (southern Spain), water is shared by rice producers and a world heritage biodiversity ecosystem. Our aim is to contribute to defining adaptation strategies that may build resilience to increasing water scarcity and minimize water conflicts among agricultural and natural systems. The analytical framework links a participatory process with quantitative methods to prioritize the adaptation options. Bottom-up proposed adaptation measures are evaluated by a multi-criteria analysis (MCA) that includes both socioeconomic criteria and criteria of the ecosystem services affected by the adaptation options. Criteria weights are estimated by three different methods?analytic hierarchy process, Likert scale and equal weights?that are then compared. Finally, scores from an MCA are input into an optimization model used to determine the optimal land-use distribution in order to maximize utility and land-use diversification according to different scenarios of funds and water availability. While our results show a spectrum of perceptions of priorities among stakeholders, there is one overriding theme that is to define a way to restore part of the rice fields to natural wetlands. These results hold true under the current climate scenario and evenmore so under an increased water scarcity scenario.
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Drip irrigation combined with split application of fertilizer nitrogen (N) dissolved in the irrigation water (i.e. drip fertigation) is commonly considered best management practice for water and nutrient efficiency. As a consequence, its use is becoming widespread. Some of the main factors (water-filled pore space, NH4+ and NO3−) regulating the emissions of greenhouse gases (i.e. N2O, CO2 and CH4) and NO from agroecosystems can easily be manipulated by drip fertigation without yield penalties. In this study, we tested management options to reduce these emissions in a field experiment with a melon (Cucumis melo L.) crop. Treatments included drip irrigation frequency (weekly/daily) and type of N fertilizer (urea/calcium nitrate) applied by fertigation. Crop yield, environmental parameters, soil mineral N concentrations and fluxes of N2O, NO, CH4 and CO2 were measured during 85 days. Fertigation with urea instead of calcium nitrate increased N2O and NO emissions by a factor of 2.4 and 2.9, respectively (P < 0.005). Daily irrigation reduced NO emissions by 42% (P < 0.005) but increased CO2 emissions by 21% (P < 0.05) compared with weekly irrigation. We found no relation between irrigation frequency and N2O emissions. Based on yield-scaled Global Warming Potential as well as NO cumulative emissions, we conclude that weekly fertigation with a NO3−-based fertilizer is the best option to combine agronomic productivity with environmental sustainability. Our study shows that adequate management of drip fertigation, while contributing to the attainment of water and food security, may provide an opportunity for climate change mitigation.