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基于行向分析巨峰葡萄茎流特征及植株生长发育状况OA

Analysis of sap flow characteristics and plant growth and development status of Kyoho grapevines based on row orientation

中文摘要英文摘要

[目的]探究栽植行向对巨峰葡萄茎流特征及植株生长发育的影响,明确北疆干旱半干旱区葡萄蒸腾量与最佳栽植行向,为葡萄节本增效生产提供理论依据.[方法]以新疆干旱区主栽葡萄品种巨峰为研究对象,采用包裹式茎流仪、土壤水分传感器监测葡萄茎干茎流速率与土壤温湿度;从气象站采集气象因子数据;同时测定植株生长发育相关指标.[结果]在典型天气条件下,葡萄茎流速率日动态呈"几"字形变化规律,其大小顺序依次为晴天>中雨天>阴天>小雨天;在不同发育阶段,茎流速率表现为果实膨大期>转色期>成熟采收期.茎流日累计量呈S形增长趋势,其大小顺序依次为晴天>中雨天>阴天>小雨天.在日尺度上,晴天茎流启动时间早于阴天,而峰值出现时间晚于阴天.东-西行向栽植的葡萄茎流速率显著高于南-北行向,且茎流启动时间与峰值出现时间均较南-北行向延迟.东-西行向植株的单位叶面积茎流速率、果实干物质积累能力、单株产量及果实可溶性固形物含量均高于南-北行向,但其果实品质均一性较差.[结论]在北疆产区,巨峰葡萄更适宜采用东-西行向栽植,但需注意该行向栽培下的灌溉量更高.

[Objective]This study aimed to investigate the effects of row orientation on stem sap flow characteristics and plant growth and development of Kyoho grapevines,in order to determine the tran-spiration amount and the optimal row orientation for grapevines in the arid and semi-arid regions of Northern Xinjiang.The goal was to establish precise irrigation schedules based on transpiration,utilize row orientation to create suitable canopy microclimate conditions,improve fruit quality and yield,and provide a theoretical basis for irrigation decision-making and cost-effective efficiency enhancement in grape production.[Methods]Using the main fresh grape cultivar Kyoho in the arid region of Xinjiang as the research material,this study employed the wrapped stem flow gauge(heat balance principle)and soil moisture sensors to monitor real-time grape stem sap flow velocity and soil temperature and humidi-ty.Meteorological factor data were collected from a weather station,while yield and quality-related indi-cators during plant growth and development were also measured.[Results]The results showed that un-der different weather conditions,grape sap flow velocity exhibited an"inverted U-shaped"pattern,be-ing highest on sunny days and lowest on rainy days(though sap flow on rainy days with sufficient sun-light could exceed that on cloudy days).On sunny days,sap flow velocity displayed a bimodal curve;on cloudy days,a multimodal curve;and on rainy days,no clear pattern was observed.Grapevines plant-ed in the east-west(E-W)row orientation exhibited higher sap flow rates than those in the north-south(N-S)orientation,indicating stronger transpiration and a greater need for irrigation to prevent water stress.Across different growth stages,sap flow velocity followed the order:Berry expansion stage>maturation stage>harvest stage,with E-W rows consistently showing higher mean values.Under vary-ing weather conditions,daily cumulative sap flow exhibited an"S-shaped"trend,with the magnitude ordered as:Sunny days>moderate rain days>cloudy days>light rain days.Transpiration in E-W rows was 6.2%,10.4%,21.5%,and 5.36%higher than in N-S rows on sunny,moderate rain,cloudy,and light rain days,respectively.Significant differences in transpiration were observed between row orientations,and within the same orientation,transpiration varied significantly among sunny,cloudy,and moderate rain days,but not between cloudy and light rain days.On a diurnal scale,sap flow initiation occurred earlier on sunny days than on cloudy days,while peak flow and cessation times were later.Under both cloudy and sunny conditions,peak sap flow in E-W rows occurred 15 and 30 minutes later,respectively,compared to N-S rows.During moderate rain,sap flow could initiate prematurely due to active root wa-ter uptake,potentially starting during the night when rainfall was heavy.Comparative analysis revealed that sap flow velocity in E-W rows was significantly higher than in N-S rows,with both initiation and cessation times delayed.Sap flow velocity showed highly significant positive correlations with sun-shine duration,vapor pressure deficit,and mean air temperature(correlation coefficients:0.89,0.88,and 0.85,respectively),and highly significant negative correlations with air relative humidity and soil temperature(coefficients:-0.71 and-0.77,respectively).A significant negative correlation was ob-served with soil moisture(coefficient:-0.38).The order of correlation strength with meteorological fac-tors was:Air temperature>vapor pressure deficit>sunshine duration>soil temperature>air relative humidity>soil moisture>wind speed.After fruit set,berry longitudinal diameter increased rapidly in the early stage,entering a rapid expansion phase 45 days after flowering,during which transverse diam-eter growth dominated.By 55 days after flowering,berries entered the color change and sugar accumu-lation stage,with size growth slowing.After 65 days,berry size stabilized,and sugar accumulation and flavor compound formation became dominant.E-W rows outperformed N-S rows in berry size,dry mat-ter accumulation,soluble solid content,and yield,with most indicators showing significant differences.However,E-W rows were inferior in fruit quality uniformity and leaf dry matter accumulation.[Conclu-sion]In conclusion,under the arid and semi-arid climate conditions in northern Xinjiang,Kyoho grapes are more suitable for east-west row orientation planting.However,it should be noted that the irrigation volume required for this row orientation is higher than that for the south-north row orientation.

张小琴;马昊;边凤霞;王继;杨伟伟

石河子大学农学院·新疆生产建设兵团特色果蔬栽培生理与种质资源利用重点实验室,新疆石河子 832000||石河子农业科学研究院,新疆石河子 832000石河子大学农学院·新疆生产建设兵团特色果蔬栽培生理与种质资源利用重点实验室,新疆石河子 832000石河子农业科学研究院,新疆石河子 832000石河子大学农学院·新疆生产建设兵团特色果蔬栽培生理与种质资源利用重点实验室,新疆石河子 832000石河子大学农学院·新疆生产建设兵团特色果蔬栽培生理与种质资源利用重点实验室,新疆石河子 832000

农业科技

巨峰葡萄茎流特征环境因子产量品质

Kyoho grapeStem flow characteristicsEnvironmental factorsYieldQuality

《果树学报》 2026 (6)

1451-1466,16

石河子大学国际科技合作项目(GJHZ202401)石河子市财政科技计划项目(2025BX01)财政部农业农村部:现代农业产业技术体系建设专项(CARS-29-29)

10.13925/j.cnki.gsxb.20250558

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