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首页> 外文期刊>Nutrient Cycling in Agroecosystems >Nitrogen and carbon transformations, water use efficiency and ecosystem productivity in monocultures and wheat-bean intercropping systems
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Nitrogen and carbon transformations, water use efficiency and ecosystem productivity in monocultures and wheat-bean intercropping systems

机译:单作和小麦/大豆间作系统中的氮和碳转化,水分利用效率和生态系统生产力

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摘要

Enhancing soil organic carbon (SOC), nitrogen (N) and water use efficiency (WUE) are significant challenges in intensive wheat production. An intercropping system combining wheat and grain legumes may help maintain SOC, soil mineral N and WUE while also providing an opportunity to sequester carbon (C) in low input organic systems. We grew wheat (Triticum aestivum cv. 'Scarlet') as a monoculture and intercropped with either common bean (Phaseolus vulgaris cv. 'Red Kidney', or cv. 'Black Turtle'), or fava bean (Vicia faba cv. 'Bell') in rows of 1:1, 2 wheat: 1 bean or broadcast arrangement without fertilizers for 2 years to assess the effects of genotype and spatial arrangement on biological nitrogen fixation and seasonal transfer, WUE, gross ecosystem photosynthesis (GEP), and net ecosystem productivity (NEP). Stable isotope methods (C-13 and N-15 natural abundance) were used to quantify C and N within the plant and soil system. Field CO2 exchange measurements used a dynamic closed transparent chamber connected to a portable CO2 analyzer. Intercropped plots had higher percent N derived from symbiotic N-2 fixation, and increased C and N accumulation compared to monocultured wheat. The fava bean cv. Bell intercrops showed increased nodulation (60-80 % more nodules) and percent N derived from symbiotic N-2 fixation (10-12 % higher) compared to common beans resulting in the fixation of 74 kg N ha(-1) biologically from the 1:1 arrangement. The highest rate of N-transfer (13 %) was observed in the wheat-fava bean cv. Bell combination when planted in the 1:1 arrangement. All intercrops accumulated more N in shoot biomass compared to monoculture wheat with wheat-fava bean cv. Bell (1:1 arrangement) accumulating the highest N (34 kg N ha(-1), i.e., 176 % higher) and C (214 g C m(-2) year(-1), i.e., 26 % higher). All plots fixed the most CO2 (i.e., greatest GEP) during mid-growth stage (50 days after seeding i.e., prior to flowering) however, wheat-fava bean cv. Bell in the 1:1 arrangement displayed the greatest NEP sequestering C at the seasonal daytime average rate of 208 mg C m(-2) h(-1) (i.e., 7 % higher than wheat monoculture plots). Intrinsic WUE of wheat, as indicated by delta C-13, was also improved when grown with fava bean cv. Bell or common bean cv. Red Kidney. This study demonstrated that intercropping wheat and fava bean is an effective strategy to achieve greater nitrogen fixation and transfer to the wheat counterparts, higher WUE, and ecosystem productivity than wheat monocultures in areas with low soil N and C. Furthermore, the wheat-fava bean cv. Bell (1:1 arrangement) was more productive than either the 2:1 or mixed planting arrangements.
机译:在集约化小麦生产中,提高土壤有机碳(SOC),氮(N)和水分利用效率(WUE)是重大挑战。小麦和谷物豆科作物的间作系统可以帮助维持土壤有机碳,土壤矿质氮和水分利用效率,同时还提供了隔离低输入有机系统中碳(C)的机会。我们以单作的方式种植小麦(Triticum aestivum cv。'Scarlet'),并与普通豆(Phaseolus vulgaris cv。'Red Kidney'或cv。'Black Turtle')或蚕豆(Vicia faba cv。'Bell。 ')以1:1排,2粒小麦:1粒豆或无肥料的播种布置,为期2年,以评估基因型和空间布置对生物固氮和季节性转移,WUE,总生态系统光合作用(GEP)和净生态系统生产力(NEP)。稳定同位素方法(C-13和N-15自然丰度)用于定量植物和土壤系统中的C和N。现场CO2交换测量使用与便携式CO​​2分析仪连接的动态封闭透明腔室。与单一栽培的小麦相比,间作的田间具有更高的氮源,来自共生N-2固定,并且增加了C和N积累。蚕豆简历。贝尔间作显示与普通豆相比,结瘤(增加了60-80%的结节)和源自共生N-2固定的氮百分比(提高了10-12%),从而从生物学上固定了74 kg N ha(-1)。 1:1排列。在小麦蚕豆cv中观察到最高的N转移率(13%)。钟形组合以1:1的比例种植。与单粒小麦和小麦蚕豆相比,所有间作在茎生物量中均积累了更多的氮。贝尔(1:1布置)累积了最高的N(34 kg N ha(-1),即高176%)和C(214 g C m(-2)年(-1),即高26%) 。所有地块在生长中期(播种后50天,即开花前)固定了最多的CO2(即最大的GEP),但是小麦蚕豆的Cv。贝尔以1:1的排列方式显示出最大的NEP螯合C,季节性季节性平均速率为208 mg C m(-2)h(-1)(即比小麦单一栽培田高7%)。当与蚕豆CV一起生长时,小麦的内在WUE(如C 13所示)也得到了改善。贝尔或普通豆简历。红腰豆。这项研究表明,在土壤和氮含量低的地区,与小麦单作相比,套种小麦和蚕豆是一种有效的策略,可以实现更高的固氮和向小麦对应的固氮转移,更高的水分利用效率和生态系统生产力。简历。贝尔(1:1布置)比2:1或混合种植布置生产率更高。

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