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Soil physical properties, yield trends and economics after five years of conservation agriculture based rice-maize system in north-western India

机译:印度西北部基于稻谷玉米的保护性农业制度实施五年后的土壤物理性质,产量趋势和经济状况

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Rice-maize system (RMS) is emerging as dominant option for diversification of existing rice-wheat systems in Asia due to better suitability and higher yields of maize compared to wheat after long duration rice cultivars, and increasing demand of maize from poultry and fish industries. The conventional practice of cultivation of RMS is input intensive, deteriorates soil health and is less profitable. Conservation agriculture (CA) based management practices such as dry direct-seeded rice (DSR), zero tillage (ZT) and residue retention may hold potential to increase yields, reduce costs and increase farmers' profits in RMS. Therefore, replicated 5-year field study was conducted to evaluate the effects of six combinations of three tillage and crop establishment (TCE) techniques and two residue management options on soil physical properties, system productivity and economics of an irrigated RMS in north-west India. The TCE techniques consisted of transplanted puddled rice (TPR) followed by conventionally tilled maize (CTM); CTDSR followed by CTM; and ZTDSR followed by ZTM in main plots and two residue management options; removal of residues of both the crops (-R) and partial residue (5 t ha(-1)) either retained at soil surface on ZT plots or incorporated into the soil in CT plots (+R) for both rice and maize in sub-plots. Compared with TPR/CTM-R, soil physical parameters such as water-stable aggregates >0.2 mm were 89% higher, and bulk density, penetrometer resistance and infiltration rate showed significant (P 0.05) improvement in ZTDSR/ZTM (+R) treatment. Similarly, root mass density was 6 to 49% greater in rice and 21 to 53% in maize under ZTDSR/ZTM (+R) plots compared to conventional RMS in different soil layers to 60 cm depth. The total amount of soil organic carbon (SOC) in 0-30 cm layer increased by 2.86 Mg ha(-1) in ZTDSR/ZTM (+R) over conventional practice. Grain yield of TPR was 5-7% higher compared to CTDSR and ZTDSR, which was attributed to increased number of grains panicle(-1) and grain weight. Maize yield under ZTDSR/ZTM was significantly higher by 4.0% and 14.2% compared to CTDSR/CTM and TPR/CTM, respectively, due to increase in number of cobs plant(-1) and grain number cob(-1). Gradual improvement in soil physical health in ZTDSR/ZTM +R system resulted in higher and stable crop productivity (17.4-17.6 kg m(-3)) with higher profitability in different years over conventional system. Our study demonstrates that CA based management practices can be adopted for RMS on sandy loam or similar soils for sustaining soil and crop productivity in South Asia. (C) 2015 Elsevier B.V. All rights reserved.
机译:水稻-玉米系统(RMS)正在成为亚洲现有稻-麦系统多样化的主要选择,这是由于长期耕种水稻后,与小麦相比,玉米具有更好的适应性和更高的玉米产量,以及家禽和鱼类行业对玉米的需求增加。种植RMS的常规做法是投入大量耕作,使土壤健康恶化并且利润较低。基于保护性农业(CA)的管理实践,例如干直播水稻(DSR),零耕种(ZT)和残留残留物,可能具有提高产量,降低成本和增加农民的RMS收益的潜力。因此,进行了为期5年的重复田间研究,以评估三种耕作和农作物种植(TCE)技术以及两种残留物管理选项的六种组合对印度西北部灌溉RMS的土壤物理性质,系统生产力和经济性的影响。 TCE技术由移栽的小米(TPR)和常规的耕种玉米(CTM)组成; CTDSR,然后是CTM; ZTDSR,其次是ZTM在主要地块和两个残留物管理选项;去除残留在ZT地块土壤表面上的作物(-R)和部分残留物(5 t ha(-1))的残留量,或将亚种中的水稻和玉米的残留物(CT)(+ R)掺入土壤-图。与TPR / CTM-R相比,土壤物理参数(例如> 0.2 mm的耐水团粒)高89%,堆积密度,抗渗透性和渗透率显示ZTDSR / ZTM(+ R)显着改善(P <0.05)治疗。同样,在60 cm深度的不同土壤层中,与传统RMS相比,在ZTDSR / ZTM(+ R)图下,水稻的根质量密度高出6%至49%,玉米的根质量密度高出21%至53%。与传统做法相比,ZTDSR / ZTM(+ R)中0-30 cm层中土壤有机碳(SOC)的总量增加了2.86 Mg ha(-1)。与CTDSR和ZTDSR相比,TPR的籽粒产量高5-7%,这归因于籽粒穗数(-1)和籽粒重量的增加。由于增加了穗轴数(-1)和籽粒数cob(-1),ZTDSR / ZTM下的玉米产量分别比CTDSR / CTM和TPR / CTM高出4.0%和14.2%。 ZTDSR / ZTM + R系统中土壤物理健康状况的逐步改善导致更高,更稳定的农作物生产力(17.4-17.6 kg m(-3)),与传统系统相比,不同年份的获利能力更高。我们的研究表明,基于CA的管理实践可用于沙壤土或类似土壤的RMS,以维持南亚的土壤和作物生产力。 (C)2015 Elsevier B.V.保留所有权利。

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