Response of grain yield and water productivity to plant density in drought-tolerant maize cultivar under irrigated and rainfed conditions

IF 5.9 1区 农林科学 Q1 AGRONOMY
Baozhen Hao , Jingli Ma , Shihua Si , Xiaojie Wang , Shuli Wang , Fengmei Li , Lina Jiang
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Abstract

Adopting drought-tolerant (DT) cultivars is an effective strategy to sustain maize (Zea mays L.) production under water shortage. Optimizing plant density is an important management practice for improving maize yield. In a two-year field trial, the response of yield, actual evapotranspiration (ETc act), and water productivity (WP) to plant density (6, 7.5, 9 plants m−2) was assessed under irrigated and rainfed conditions using a DT (ZD958) and a drought-susceptible (DS, ZY309) maize cultivar, and additionally, the comparison of soil water depletion will be conducted among soils growing different DT maize varieties. Under rainfed, average yield, ETc act, and WP were 24.7%, 8.6% and 14.8% greater in ZD958 than ZY309, respectively. When density increased from 6 to 9 plants m−2, for ZD958 and ZY309 ETc act remained relatively constant, whereas their yield and WP first increased and then decreased and ultimately reached their maximum at 7.5 plants m−2. Under irrigation, increasing density (6–9 plants m−2) significantly increased yield and WP for ZD958, but for ZY309, yield and WP were not significantly impacted. Yield across seasons did not differ between cultivars at 6 and 7.5 plants m−2, and ZD958 had a 10.2% yield advantage over ZY309 at 9 plants m−2. The findings imply that DT cultivar showed greater high density tolerance than DS cultivar and thus higher optimal density under irrigation. Under rainfed, both cultivars had similar density tolerance and optimum density, whereas DT cultivar had stronger drought tolerance than DS cultivar, which could explain DT cultivar’s greater yield and WP. This study indicate that DT cultivar showed higher and more stable yields than DS cultivar across rainfed and irrigated conditions when grown at optimal densities. Thus, sustainable maize production could be achieved by adopting DT cultivars and optimizing density for different conditions in the study region.

灌溉和雨养条件下耐旱玉米品种的谷物产量和水分生产率对植株密度的响应
采用耐旱(DT)栽培品种是在缺水条件下维持玉米(Zea mays L.)产量的有效策略。优化种植密度是提高玉米产量的一项重要管理措施。在一项为期两年的田间试验中,利用一个 DT 玉米品种(ZD958)和一个易旱玉米品种(DS,ZY309),在灌溉和雨浇条件下评估了产量、实际蒸散量(ETc act)和水分生产率(WP)对植株密度(6、7.5、9 株 m-2)的响应,此外,还将在种植不同 DT 玉米品种的土壤中比较土壤水分消耗情况。在雨水灌溉条件下,ZD958 的平均产量、ETc 作用和 WP 分别比 ZY309 高 24.7%、8.6% 和 14.8%。当密度从 6 株/米-2 增加到 9 株/米-2 时,ZD958 和 ZY309 的蒸腾作用保持相对稳定,而产量和可湿性粉剂则先增加后减少,最终在 7.5 株/米-2 时达到最大值。在灌溉条件下,增加密度(6-9 株 m-2)可显著提高 ZD958 的产量和可湿性粉剂,但对 ZY309 而言,产量和可湿性粉剂没有显著影响。不同栽培品种在 6 株/米-2 和 7.5 株/米-2 时的产量没有差异,ZD958 在 9 株/米-2 时的产量比 ZY309 高 10.2%。研究结果表明,在灌溉条件下,DT 栽培品种比 DS 栽培品种表现出更强的高密度耐受性,因此最佳密度更高。在雨水灌溉条件下,两个品种的耐密度和最适密度相似,但 DT 品种的耐旱性强于 DS 品种,这也是 DT 品种产量和可湿性粉剂产量较高的原因。本研究表明,在雨水灌溉和灌溉条件下,DT 栽培品种在最佳密度下的产量比 DS 栽培品种更高且更稳定。因此,在研究地区的不同条件下,采用 DT 栽培品种并优化密度可实现玉米的可持续生产。
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来源期刊
Agricultural Water Management
Agricultural Water Management 农林科学-农艺学
CiteScore
12.10
自引率
14.90%
发文量
648
审稿时长
4.9 months
期刊介绍: Agricultural Water Management publishes papers of international significance relating to the science, economics, and policy of agricultural water management. In all cases, manuscripts must address implications and provide insight regarding agricultural water management.
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