首页> 外文期刊>Irrigation Science >Yield components and grape composition responses to seasonal water deficits in Tempranillo grapevines. (Special Issue: Water management in grapevines.)
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Yield components and grape composition responses to seasonal water deficits in Tempranillo grapevines. (Special Issue: Water management in grapevines.)

机译:滕普拉尼洛葡萄的产量组成和葡萄组成对季节性缺水的响应。 (特刊:葡萄中的水管理。)

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摘要

A field experiment was carried out over three seasons on Vitis vinifera cv. Tempranillo in order to compare pre-veraison and post-veraison water restrictions on vine performance and fruit composition. Rain-fed vines were compared with a treatment named MAX that was constantly irrigated at 75% of the estimated crop evapotranspiration (ETc). In addition, an early (pre-veraison) water deficit strategy (ED) was applied by withholding irrigation until plant water stress experienced by vines surpassed a threshold value of midday stem water potential of -1.0 MPa. After that, 75% of ETc was applied. A late season deficit (LD) treatment was irrigated as per the MAX up to veraison, and thereafter, water application was reduced to approximately 37% of ETc. All irrigation regimes increased vine yield up to 58% with respect to the rain-fed treatment, and no differences in yield among the irrigated treatments occurred. However, there were differences in berry composition among the different irrigation strategies. The ED strategy was more effective than the LD one in reducing berry growth leading to more concentrated berries in terms of sugars and anthocyanins. The LD water shortage impaired berry sugar accumulation due to the detrimental effect of water stress on leaf photosynthesis.
机译:在三个季节上对Vitis vinifera cv进行了田间试验。 Tempranillo为了比较试验前和试验后的水分限制对葡萄的生长性能和果实成分的影响。将雨养的葡萄藤与一种名为MAX的处理进行比较,该处理以估计的作物蒸散量(ETc)的75%不断灌溉。此外,采用了早期(缺水前)缺水策略(ED),方法是不灌溉直到葡萄藤承受的植物水分胁迫超过日中茎水势的阈值-1.0 MPa。之后,应用了75%的ETc。按照MAX的规定,灌溉晚季亏缺(L​​D)处理方法,然后将用水量减少至ETc的37%。相对于雨养处理,所有灌溉制度都将葡萄产量提高了58%,而且在灌溉处理之间没有出现产量差异。但是,不同灌溉策略之间的浆果组成存在差异。 ED策略在减少浆果生长方面比LD方法更有效,从而导致糖和花色苷的浓度更高。由于水分胁迫对叶片光合作用的不利影响,LD缺水会损害浆果糖的积累。

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