transpiration

蒸腾
  • 文章类型: Journal Article
    气候不稳定直接影响农业环境。缺水,空气温度高,土壤生物群的变化是环境变化引起的一些因素。需要经过验证和精确的表型性状,以评估各种胁迫因素对作物性能的影响,同时将表型成本保持在合理水平。使用密度计方法来测量蒸腾效率的实验通常是昂贵的并且需要复杂的基础设施。本研究提出了一种自动化的开发和测试过程,可靠,小,和低成本的原型系统,使用具有接近实时的高频潜力的物联网。因为它的防水性,我们的设备-LysipheN-单独评估每个植物,可以在不同的环境条件下进行实验(农场,字段,温室,等。).LysipheN集成了多个传感器,根据所需的干旱情况自动灌溉,还有一个遥控器,无线连接,通过数据平台监控每个工厂和设备的性能。在测试过程中,LysipheN被证明足够灵敏,可以检测和测量植物蒸腾作用,从早期到最终的植物发育阶段。即使结果是在普通豆类上产生的,LysipheN可以扩大/适应其他作物。这个工具用来筛选蒸腾作用,蒸腾效率,和蒸腾作用相关的生理性状。因为它的价格,耐力,和防水设计,LysipheN将在现实的生态和育种背景下用于筛选种群。它通过对最合适的亲本系进行表型分型来运作,表征基因库的加入,并允许育种者根据现实的农艺背景,使用功能性状(与LysipheN单元所在的位置相关)进行目标特定的选择。
    Climate instability directly affects agro-environments. Water scarcity, high air temperature, and changes in soil biota are some factors caused by environmental changes. Verified and precise phenotypic traits are required for assessing the impact of various stress factors on crop performance while keeping phenotyping costs at a reasonable level. Experiments which use a lysimeter method to measure transpiration efficiency are often expensive and require complex infrastructures. This study presents the development and testing process of an automated, reliable, small, and low-cost prototype system using IoT with high-frequency potential in near-real time. Because of its waterproofness, our device-LysipheN-assesses each plant individually and can be deployed for experiments in different environmental conditions (farm, field, greenhouse, etc.). LysipheN integrates multiple sensors, automatic irrigation according to desired drought scenarios, and a remote, wireless connection to monitor each plant and device performance via a data platform. During testing, LysipheN proved to be sensitive enough to detect and measure plant transpiration, from early to ultimate plant developmental stages. Even though the results were generated on common beans, the LysipheN can be scaled up/adapted to other crops. This tool serves to screen transpiration, transpiration efficiency, and transpiration-related physiological traits. Because of its price, endurance, and waterproof design, LysipheN will be useful in screening populations in a realistic ecological and breeding context. It operates by phenotyping the most suitable parental lines, characterizing genebank accessions, and allowing breeders to make a target-specific selection using functional traits (related to the place where LysipheN units are located) in line with a realistic agronomic background.
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  • 文章类型: Journal Article
    如今,来自传感器的数据在监测作物灌溉实践中的主导作用是无可争议的。地面和空间监测数据与农业水文模型的结合使评估作物灌溉的有效性成为可能。本文介绍了位于俄罗斯联邦伏尔加河左岸的Privolzhskaya灌溉系统领土上最近发表的实地研究结果的一些补充,在2012年的生长季节。在其生长期的第二年,获得了19种灌溉苜蓿作物的数据。对这些作物的灌溉水应用是由中心枢轴喷头进行的。使用SEBAL模型从MODIS卫星图像数据得出实际的作物蒸散量及其成分。因此,获得了每种作物所占面积的蒸散和蒸腾日值的时间序列。为了评估苜蓿作物灌溉的有效性,根据产量数据的使用,使用了六个指标,灌溉深度,实际蒸散量,蒸腾作用和基本蒸发量不足。对估算灌溉效果的一系列指标进行了分析和排名。利用所得排序值对苜蓿作物灌溉效果指标的相似性和非相似性进行分析。作为这个分析的结果,证明了借助地面和空间传感器的数据评估灌溉有效性的机会。
    Nowadays, the leading role of data from sensors to monitor crop irrigation practices is indisputable. The combination of ground and space monitoring data and agrohydrological modeling made it possible to evaluate the effectiveness of crop irrigation. This paper presents some additions to recently published results of field study at the territory of the Privolzhskaya irrigation system located on the left bank of the Volga in the Russian Federation, during the growing season of 2012. Data were obtained for 19 crops of irrigated alfalfa during the second year of their growing period. Irrigation water applications to these crops was carried out by the center pivot sprinklers. The actual crop evapotranspiration and its components being derived with the SEBAL model from MODIS satellite images data. As a result, a time series of daily values of evapotranspiration and transpiration were obtained for the area occupied by each of these crops. To assess the effectiveness of irrigation of alfalfa crops, six indicators were used based on the use of data on yield, irrigation depth, actual evapotranspiration, transpiration and basal evaporation deficit. The series of indicators estimating irrigation effectiveness were analyzed and ranked. The obtained rank values were used to analyze the similarity and non-similarity of indicators of irrigation effectiveness of alfalfa crops. As a result of this analysis, the opportunity to assess irrigation effectiveness with the help of data from ground and space-based sensors was proved.
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