郑春莲, 冯棣, 李科江, 马俊永, 党红凯, 曹彩云, 孙景生, 张俊鹏. 咸水沟灌对土壤水盐变化与棉花生长及产量的影响[J]. 农业工程学报, 2020, 36(13): 92-101. DOI: 10.11975/j.issn.1002-6819.2020.13.011
    引用本文: 郑春莲, 冯棣, 李科江, 马俊永, 党红凯, 曹彩云, 孙景生, 张俊鹏. 咸水沟灌对土壤水盐变化与棉花生长及产量的影响[J]. 农业工程学报, 2020, 36(13): 92-101. DOI: 10.11975/j.issn.1002-6819.2020.13.011
    Zheng Chunlian, Feng Di, Li Kejiang, Ma Junyong, Dang Hongkai, Cao Caiyun, Sun Jingsheng, Zhang Junpeng. Effects of furrow irrigation with saline water on variation of soil water-salt, cotton growth and yield[J]. Transactions of the Chinese Society of Agricultural Engineering (Transactions of the CSAE), 2020, 36(13): 92-101. DOI: 10.11975/j.issn.1002-6819.2020.13.011
    Citation: Zheng Chunlian, Feng Di, Li Kejiang, Ma Junyong, Dang Hongkai, Cao Caiyun, Sun Jingsheng, Zhang Junpeng. Effects of furrow irrigation with saline water on variation of soil water-salt, cotton growth and yield[J]. Transactions of the Chinese Society of Agricultural Engineering (Transactions of the CSAE), 2020, 36(13): 92-101. DOI: 10.11975/j.issn.1002-6819.2020.13.011

    咸水沟灌对土壤水盐变化与棉花生长及产量的影响

    Effects of furrow irrigation with saline water on variation of soil water-salt, cotton growth and yield

    • 摘要: 为持续高效利用咸水资源,在棉花长期定位咸水沟灌试验(始于2006年)的基础上,研究了不同矿化度(1、2、4、6、8、10 g/L)咸水连续灌溉第10年土壤水盐分布与棉花生长响应以及历年土壤盐分和籽棉产量的变化特征。结果表明:1)年际间,各处理0~100 cm土层土壤盐分受灌溉和降水影响而波动,但未随灌溉年限的增加而逐渐累积,灌溉水矿化度≤4 g/L处理可基本维持土壤盐分周年补排平衡。单个棉花生长季(2015年),各处理沟底部位的土壤含水率大于垄上,灌溉水矿化度≥6 g/L时主根层土壤含水率高于1 g/L处理;土壤盐分随灌溉水矿化度增加而增大,随棉花生育期的推进先增大后降低,灌水沟剖面土壤盐分呈向垄上和深层运移的趋势;与播种时比,棉花收获后各处理主根层土壤盐分均未出现累积。2)低矿化度咸水沟灌对棉花成苗率、株高和叶面积指数影响不明显,超过一定限值后3项指标显著下降,与1 g/L处理相比,当灌溉水矿化度达到6 g/L时棉花成苗率和叶面积指数显著降低,当灌溉水矿化度达到8 g/L时株高显著降低;咸水沟灌对棉花纤维品质影响较小,5项品质指标在处理间差异均不显著。3)适量浓度的咸水灌溉对籽棉产量影响较小,与1 g/L灌水处理相比,2和4 g/L处理对历年籽棉产量(2006-2015年)无显著影响,大于6 g/L时历年籽棉产量显著降低。在该研究灌溉制度下,推荐试验区咸水沟灌棉花的灌溉水矿化度阈值为4 g/L。

       

      Abstract: Shallow saline groundwater is expected to alleviate the shortage of freshwater resources in the Hebei Low Plain, China. However, using saline water for irrigation can increase soil salinity, thereby to pose some negative impacts on soil environment and crop growth. It is necessary to understand how salinity affects a crop, to find an acceptable range of salinity level for plants. In this study, a long-term furrow irrigation experiment with saline water for cotton (since 2006) was conducted to investigate the distribution of soil water-salt and response of cotton growth in the 10th year (in 2015), as well the variation of soil salt and yield of seed cotton over the years (2006 to 2015) at the Hengshui Experimental Station, China, in order to ensure sustainable and efficient use of saline water resources. Five salinity levels of irrigation water were tested: 2 (T1), 4 (T2), 6 (T3), 8 (T4), and 10 g/L (T5), and fresh groundwater (1 g/L) was used as control treatment (CK). The salinity level from T1 to T5 was formed by mixing sea salt into the freshwater. Irrigation water was supplied when the moisture content of soil was lower than 65% of the field capacity at each irrigation quota of 37.5 mm during cotton growing period. The results showed that the salt content in the soil layer of 0-100 cm increased with increasing salinity of irrigation water from 2006 to 2015, indicating a fluctuation with the precipitation and irrigation amount during the interannual period. In the treatment with the salinity of irrigation water, ≤4 g/L, there was no much increase in the soil salt content after cotton harvest in 2015, compared with the initial value in 2006. During the cotton growing period in 2015, the soil moisture in the furrow was higher than that in the ridge, while the soil moisture in the main root layer (0-40 cm) was higher in the treatment with the salinity of irrigation water, ≥6 g/L than that in CK. The soil salt content increased as the increase in the salinity of irrigation water, whereas increased first and then decreased with the advance of cotton growth. There was a trend of moving to the ridge and deep layer in the furrow of cotton field during furrow irrigation. There was no soil salt that accumulated in the main root layer after harvest, compared with that before cotton sowing. Saline water irrigation had a certain inhibitory effect on cotton growth. Lower salinity levels of irrigation water generally had few negative effects on cotton seedling rate, plant height and leaf area index (LAI), but the growth indicators of cotton were inhibited significantly when water salinity reached a certain limit. Compared with CK, the seedling rate and LAI significantly decreased when the salinity of irrigation water reached 6 g/L, where the threshold for the plant height was 8 g/L. There was no significant difference in the five quality indexes (upper half mean length, fiber uniformity, micronaire value, fiber strength and fiber elongation) among treatments, indicating furrow irrigation with saline water has little effect on the fiber quality of cotton. The yield of seed cotton in saline water treatments from 2006 to 2015 did not decrease gradually, but showing a large year-to-year fluctuation as the increased in irrigation over the years. There was an inconsistent state in the annual variation between cotton yield and soil salinity. Compared with CK, the cotton yield in the treatments of 2 g/L and 4 g/L showed no significant difference, but a significant decrease when the salinity of irrigation water beyond 6 g/L. The finding demonstrated that the critical salinity threshold of irrigation water can be set as 4 g/L for furrow-irrigated cotton.

       

    /

    返回文章
    返回