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棉花特宽膜覆膜下种床水热耦合特性模拟与试验

Simulation and experiment of the hydrothermal coupling characteristics of seedbed under cotton ultra-wide film mulching conditions

  • 摘要: 为研究特宽膜覆膜下种床水热特性,明晰其对棉花生长发育的影响机制,以棉花机械化铺膜播种后的种床为研究对象,利用对比分析的方法,设置4.4 m特宽膜(T1处理)和2.05 m膜(T2处理)两种处理进行种床水热模拟和棉花生长监测。结果表明:水、热和溶质运移模拟软件HYDRUS-2D模型能较好模拟播种后种床的水热变化。在相同田间管理下,T1处理较T2处理耕层含水率、温度分别提升9.7%、5.3%,深层含水率、温度分别提升2.8%、3.6%,耕层储水量、有效积温分别提升9.3%、18%,T1处理的种床水热环境更好;T1的出苗率为91.7%,T2的出苗率为89.8%;全生育期内T1较T2株高、茎粗平均分别提升6.7%、11.5%;T1的棉铃数、单铃质量分别为6.16、6.3g,棉铃分布在中、上层,T2的棉铃数、单铃质量分别为6.03、5.9 g,棉铃分布在中、下层,T1的生长特征更好,籽棉产量提升9.1%。结合数据综合分析,特宽膜覆膜改变了种床水热状况,具有更优异的种床水热环境,能提供更多的养分,促使棉种出苗快、齐、均、壮,且后续长势好,提升棉花生长发育中各项特征指标,将整体生育期提升3~4 d,增加棉铃数,优化棉铃分布结构,籽棉产量提升,是一种高效的覆膜种植模式。该研究可为棉花高效种植技术的研制、应用提供理论依据和技术基础。

     

    Abstract: Extra-wide film sowing can be expected to strengthen cotton seedlings during production. Among them, the handover row is reduced to increase the effective lighting surface. This study aims to clarify the hydrothermal coupling characteristics of the seed beds for the mechanized sowing with the extra-wide membranes. The seedbeds after mechanized sowing of cotton were taken as the research objects. A systematic investigation was then made on the influencing on the growth and development of cotton. Two treatments were carried out: 4.4-meter extra-wide film (T1) and 2.05-meter membrane (T2). The seed beds were hydrothermally simulated to monitor the cotton growth. The results showed that the HYDRUS model was performed better to simulate the hydrothermal properties of the seed bed after sowing. The simulated values were in the good agreement with the measured ones. The correlation coefficient R2 was above 0.97, and the mean absolute error (MAE) and root mean square error (RMSE) were low, respectively. The moisture content and temperature of the T1 increased by 9.7% and 5.3%, respectively, compared with the T2. The deep moisture content and temperature increased by 2.8% and 3.6%, respectively, and the water storage and effective accumulated temperature of tillage layer increased by 9.3% and 18%, respectively. The emergence rates of the T1 and T2 were 91.7% and 89.8%, respectively. The better growth was observed in the T1. The plants height and stem diameter of the T1 increased by 6.7% and 11.5%, respectively, during the whole growth period, compared with the T2. The number of the cotton bolls and the weight of a single boll in the T1 were 6.16 and 6.3 g, respectively. The cotton bolls were distributed in the middle and upper layers. While the number of cotton bolls and the weight of a single boll in the T2 were 6.03 and 5.9 g, respectively. The cotton bolls were distributed in the middle and lower layers. The yield of the seed cotton increased by 9.1%. Comprehensive analysis show that the mechanized sowing of the extra-wide film shared a better hydrothermal environment of the seed bed, due to the great variation in the structure of the seed bed. Much more nutrients were gained to rapidly, uniformly, evenly and strongly promote the emergence of the cotton seedlings. The better growth was achieved, according to the indicators of the cotton growth and development. The overall growth period increased by 3-4 days. The number of cotton bolls increased to optimize the distribution structure of the cotton bolls. The yield of seed cotton was also enhanced under the efficient mechanized planting.

     

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