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Comparison of yield traits in rice among three mechanized planting methods in a rice-wheat rotation system

机译:稻麦轮作三种机械化种植方式下水稻的产量性状比较

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摘要

Understanding the differences in yield traits of rice among pothole seedling of mechanical transplanting (PSMT), carpet seedling of mechanical transplanting (CSMT) and mechanical direct seeding (MDS) is of great importance not only for rice scientists but also for rice farmers to develop a high-yield production system under mechanical conditions in a rice-wheat rotation system. However, such traits are yet to be studied among rice varieties of japonica-indica hybrid rice (JIHR), japonica conventional rice (JCR) and indica hybrid rice (IHR). Field experiments were conducted in 2014 and 2015, where six cultivars of the three rice types JIHR, JCR and IHR were grown individually with PSMT, CSMT and MDS methods, under respective managements for each method to achieve the maximum attainable yield. Results showed that (ⅰ) the PSMT significantly increased grain yield of JIHR by 22.0 and 7.1%, of JCR by 15.6 and 3.7% and of IHR by 22.5 and 7.4%, compared to MDS and CSMT on average across the two years, respectively. The highest yield was produced by the combination of JIHR and PSMT; (ⅱ) high yield under PSMT was mainly attributed to large sink capacity and high-efficient dry matter accumulation. With sufficient panicles per hectare, the increase of spikelet number per panicle, especially the increase in spikelet number of the secondary rachis-branches was determined to be the optimal approach for developing a large sink capacity for rice under PSMT. The optimal tillers development, large leaf area index at heading stage, and high leaf area duration, crop growth rate and net assimilation rate during grain-filling phase could be the cause of sufficient dry matter accumulation for rice under PSMT; (ⅲ) moreover, the PSMT favored plant growth as well as enriched the stems plus sheaths during grain-filling phase, as compared with CSMT and MDS. These results suggest that PSMT may be an alternative approach to increasing grain yield in a rice-wheat rotation system in the lower reaches of the Yangtze River in China.
机译:了解机械移植坑洼育苗(PSMT),机械移植地毯育苗(CSMT)和机械直接播种(MDS)的水稻产量性状差异不仅对水稻科学家具有重要意义,而且对水稻种植者发展水稻具有重要意义。稻麦轮作系统中机械条件下的高产生产系统。然而,在粳稻-ind杂交稻(JIHR),粳稻常规稻(JCR)和in杂交稻(IHR)的水稻品种中尚待研究这些性状。在2014年和2015年进行了田间试验,其中三种水稻类型JIHR,JCR和IHR的六个品种分别通过PSMT,CSMT和MDS方法分别种植,并在每种方法的管理下达到最大产量。结果显示(ⅰ)与MTS和CSMT相比,PSMT分别平均显着提高了JIHR的谷物产量22.0%和7.1%,JCR的谷物产量分别提高了15.6和3.7%和IHR的22.5%和7.4%。 JIHR和PSMT的结合产生了最高的产量; (ⅱ)PSMT下的高产量主要归因于较大的库容量和高效的干物质积累。如果每公顷有足够的穗数,则确定每穗的小穗数的增加,尤其是次生轴枝的小穗数的增加,是在PSMT下开发水稻大水槽容量的最佳方法。最佳分till发育,抽穗期叶面积指数大,灌浆期叶面积持续时间长,作物生长率高和净同化率高可能是PSMT下水稻干物质充分积累的原因。 (ⅲ)此外,与CSMT和MDS相比,PSMT在灌浆期有利于植物生长并丰富茎干和鞘。这些结果表明,在中国长江下游的稻麦轮作系统中,PSMT可能是提高谷物产量的另一种方法。

著录项

  • 来源
    《农业科学学报(英文版)》 |2017年第7期|1451-1466|共16页
  • 作者单位

    Key Laboratory of Crop Genetics & Physiology of Jiangsu Province/Agricultural College, Yangzhou University, Yangzhou 225009, P.R.China;

    Innovation Center of Rice Technology in Yangtze Rice Val ey, Ministry of Agriculture, Yangzhou 225009, P.R.China;

    Key Laboratory of Crop Genetics & Physiology of Jiangsu Province/Agricultural College, Yangzhou University, Yangzhou 225009, P.R.China;

    Innovation Center of Rice Technology in Yangtze Rice Val ey, Ministry of Agriculture, Yangzhou 225009, P.R.China;

    Key Laboratory of Crop Genetics & Physiology of Jiangsu Province/Agricultural College, Yangzhou University, Yangzhou 225009, P.R.China;

    Innovation Center of Rice Technology in Yangtze Rice Val ey, Ministry of Agriculture, Yangzhou 225009, P.R.China;

    Key Laboratory of Crop Genetics & Physiology of Jiangsu Province/Agricultural College, Yangzhou University, Yangzhou 225009, P.R.China;

    Innovation Center of Rice Technology in Yangtze Rice Val ey, Ministry of Agriculture, Yangzhou 225009, P.R.China;

    Key Laboratory of Crop Genetics & Physiology of Jiangsu Province/Agricultural College, Yangzhou University, Yangzhou 225009, P.R.China;

    Innovation Center of Rice Technology in Yangtze Rice Val ey, Ministry of Agriculture, Yangzhou 225009, P.R.China;

    Key Laboratory of Crop Genetics & Physiology of Jiangsu Province/Agricultural College, Yangzhou University, Yangzhou 225009, P.R.China;

    Innovation Center of Rice Technology in Yangtze Rice Val ey, Ministry of Agriculture, Yangzhou 225009, P.R.China;

    Key Laboratory of Crop Genetics & Physiology of Jiangsu Province/Agricultural College, Yangzhou University, Yangzhou 225009, P.R.China;

    Innovation Center of Rice Technology in Yangtze Rice Val ey, Ministry of Agriculture, Yangzhou 225009, P.R.China;

    Key Laboratory of Crop Genetics & Physiology of Jiangsu Province/Agricultural College, Yangzhou University, Yangzhou 225009, P.R.China;

    Innovation Center of Rice Technology in Yangtze Rice Val ey, Ministry of Agriculture, Yangzhou 225009, P.R.China;

    Key Laboratory of Crop Genetics & Physiology of Jiangsu Province/Agricultural College, Yangzhou University, Yangzhou 225009, P.R.China;

    Innovation Center of Rice Technology in Yangtze Rice Val ey, Ministry of Agriculture, Yangzhou 225009, P.R.China;

    Key Laboratory of Crop Genetics & Physiology of Jiangsu Province/Agricultural College, Yangzhou University, Yangzhou 225009, P.R.China;

    Innovation Center of Rice Technology in Yangtze Rice Val ey, Ministry of Agriculture, Yangzhou 225009, P.R.China;

    Key Laboratory of Crop Genetics & Physiology of Jiangsu Province/Agricultural College, Yangzhou University, Yangzhou 225009, P.R.China;

    Jointing Laboratory in Agricultural Sciences Between Agriculture and Agri-Food Canada (AAFC) and Yangzhou University, Yangzhou 225009, P.R.China;

  • 收录信息 中国科学引文数据库(CSCD);中国科技论文与引文数据库(CSTPCD);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-18 00:24:04
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