植物生态学报 ›› 2011, Vol. 35 ›› Issue (8): 825-833.DOI: 10.3724/SP.J.1258.2011.00825
收稿日期:
2011-04-06
接受日期:
2011-06-21
出版日期:
2011-04-06
发布日期:
2011-07-28
通讯作者:
宋尚有
作者简介:
**E-mail: gssongshy@163.com
WANG Hong-Li1,2(), ZHANG Xu-Cheng2,3,4, SONG Shang-You2,**(
)
Received:
2011-04-06
Accepted:
2011-06-21
Online:
2011-04-06
Published:
2011-07-28
Contact:
SONG Shang-You
摘要:
为探讨半干旱区旱地不同种植方式玉米(Zea mays)田的土壤水分动态特征, 测定了全膜双垄沟播(PMF)、全沙覆盖(SM)和裸地(CK) 3种不同处理0-200 cm土壤水分季节变化、垂直变化及年际变化。结果表明: PMF明显改善玉米拔节前0-200 cm土壤的水分条件, 有利于玉米前期生长; 随着玉米生育进程的推进, 3种处理的耗水量依次为: PMF﹥SM﹥CK, 而土壤贮水量表现为CK﹥SM﹥PMF; 在相同降雨条件下, PMF处理0-200 cm土壤水分降雨入渗补给深度最大, SM次之, CK最小。随着种植年限增加, PMF的耗水量和耗水深度增加, 两年种植期间耗水深度从20-120 cm向120-200 cm推移; 连续种植两年后, 3种处理40-120 cm土壤含水量下降至9.0%以下, 其中PMF下降最快(7.9%), 土壤含水量接近萎蔫系数7.2%, 玉米只能靠当年降水生长, 如种植年限继续增加, 土壤极有可能形成干层。3种处理之间耗水量、产量、水分利用效率都存在显著差异, PMF最高, SM次之, CK最低。因此, 在半干旱区采用全膜双垄沟播种植玉米可显著提高产量, 但连续种植可导致土壤贮水量显著降低, 对农田可持续生产能力造成不利影响。
王红丽, 张绪成, 宋尚有. 半干旱区旱地不同覆盖种植方式玉米田的土壤水分和产量效应. 植物生态学报, 2011, 35(8): 825-833. DOI: 10.3724/SP.J.1258.2011.00825
WANG Hong-Li, ZHANG Xu-Cheng, SONG Shang-You. Effects of mulching methods on soil water dynamics and corn yield of rain-fed cropland in the semiarid area of China. Chinese Journal of Plant Ecology, 2011, 35(8): 825-833. DOI: 10.3724/SP.J.1258.2011.00825
图3 不同覆盖种植方式玉米田0-200 cm土壤贮水量的季节变化。CK, 裸地平作; PMF, 全膜双垄沟播; SM, 全沙覆盖平作。
Fig. 3 Seasonal dynamics of soil water storage in 0-200 cm profile in different mulching methods. CK, uncovered and flat planting; PMF, double ridges and furrows mulched with plastic film and furrow planting; SM, whole field surface sand mulching and flat planting.
图4 不同覆盖种植方式玉米田0-200 cm土壤含水量的垂直变化。A1和A2、B1和B2、C1和C2、D1和D2分别为2009年和2010年玉米拔节期、大喇叭口期、灌浆期、成熟期的土壤含水量。CK, 裸地平作; PMF, 全膜双垄沟播; SM, 全沙覆盖平作。
Fig. 4 Vertical dynamics of soil water content in 0-200 cm profile in different mulching methods. A1 and A2, B1 and B2, C1 and C2, D1 and D2 is soil water content of corn jointing, large bell, filling and maturity in 2009 and 2010, respectively. CK, uncovered and flat planting; PMF, double ridges and furrows mulched with plastic film and furrow planting; SM, whole field surface sand mulching and flat planting.
土层 Soil depth (cm) | 2009 | 2010 | |||||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
播前 Before sowing | 收后 Harvest | 播前 Before sowing | 收后 Harvest | ||||||||||||
PMF | SM | CK | PMF | SM | CK | PMF | SM | CK | PMF | SM | CK | ||||
0-20 | 32.9a | 32.9a | 32.9a | 33.8b | 35.9a | 32.4b | 28.2a | 27.6b | 25.5c | 26.9a | 27.5a | 23.1b | |||
20-40 | 35.9a | 35.9a | 35.9a | 25.7c | 30.0a | 27.3b | 33.1a | 30.6b | 30.1b | 22.9a | 20.3b | 21.3b | |||
40-60 | 39.1a | 39.1a | 39.1a | 28.3b | 33.5a | 32.7a | 31.0a | 24.2b | 25.9b | 18.6b | 18.9b | 19.5a | |||
60-80 | 39.6a | 39.6a | 39.6a | 28.4c | 31.3b | 34.8a | 25.0a | 21.8b | 25.0a | 18.2b | 18.0b | 20.1a | |||
80-100 | 36.3a | 36.3a | 36.3a | 26.6c | 30.7b | 33.5a | 28.0a | 24.8c | 27.2b | 18.2c | 19.7b | 22.4a | |||
100-120 | 36.1a | 36.1a | 36.1a | 32.7b | 33.3b | 34.7a | 24.8b | 24.4b | 27.6a | 20.5b | 21.2b | 25.1a | |||
120-140 | 42.7a | 42.7a | 42.7a | 39.8b | 39.7b | 40.1a | 34.7c | 39.9a | 38.9b | 28.1c | 34.1b | 37.1a | |||
140-160 | 45.5a | 45.5a | 45.5a | 43.1b | 44.4a | 44.6a | 35.1b | 33.9c | 37.7a | 29.6c | 33.0b | 36.6a | |||
160-180 | 52.1a | 52.1a | 52.1a | 50.5a | 48.5c | 49.1b | 39.6b | 40.6a | 39.8b | 34.4c | 41.1a | 39.5b | |||
180-200 | 52.0a | 52.0a | 52.0a | 48.6a | 48.9a | 48.8a | 41.0a | 39.9b | 39.8b | 35.1b | 42.5a | 42.5a |
表1 不同覆盖种植方式玉米田0-200 cm贮水量的年际变化(mm)
Table 1 Annual changes of soil water storage in 0-200 cm profile in different mulching methods (mm)
土层 Soil depth (cm) | 2009 | 2010 | |||||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
播前 Before sowing | 收后 Harvest | 播前 Before sowing | 收后 Harvest | ||||||||||||
PMF | SM | CK | PMF | SM | CK | PMF | SM | CK | PMF | SM | CK | ||||
0-20 | 32.9a | 32.9a | 32.9a | 33.8b | 35.9a | 32.4b | 28.2a | 27.6b | 25.5c | 26.9a | 27.5a | 23.1b | |||
20-40 | 35.9a | 35.9a | 35.9a | 25.7c | 30.0a | 27.3b | 33.1a | 30.6b | 30.1b | 22.9a | 20.3b | 21.3b | |||
40-60 | 39.1a | 39.1a | 39.1a | 28.3b | 33.5a | 32.7a | 31.0a | 24.2b | 25.9b | 18.6b | 18.9b | 19.5a | |||
60-80 | 39.6a | 39.6a | 39.6a | 28.4c | 31.3b | 34.8a | 25.0a | 21.8b | 25.0a | 18.2b | 18.0b | 20.1a | |||
80-100 | 36.3a | 36.3a | 36.3a | 26.6c | 30.7b | 33.5a | 28.0a | 24.8c | 27.2b | 18.2c | 19.7b | 22.4a | |||
100-120 | 36.1a | 36.1a | 36.1a | 32.7b | 33.3b | 34.7a | 24.8b | 24.4b | 27.6a | 20.5b | 21.2b | 25.1a | |||
120-140 | 42.7a | 42.7a | 42.7a | 39.8b | 39.7b | 40.1a | 34.7c | 39.9a | 38.9b | 28.1c | 34.1b | 37.1a | |||
140-160 | 45.5a | 45.5a | 45.5a | 43.1b | 44.4a | 44.6a | 35.1b | 33.9c | 37.7a | 29.6c | 33.0b | 36.6a | |||
160-180 | 52.1a | 52.1a | 52.1a | 50.5a | 48.5c | 49.1b | 39.6b | 40.6a | 39.8b | 34.4c | 41.1a | 39.5b | |||
180-200 | 52.0a | 52.0a | 52.0a | 48.6a | 48.9a | 48.8a | 41.0a | 39.9b | 39.8b | 35.1b | 42.5a | 42.5a |
图5 不同覆盖种植方式玉米的耗水量、产量和水分利用效率(平均值±标准误差)。CK, 裸地平作; PMF, 全膜双垄沟播; SM, 全沙覆盖平作。不同字母表示在5%水平上差异显著。
Fig. 5 Water consumption, corn yield and water use efficiency (WUE) in different mulching methods (mean ± SE). CK, uncovered and flat planting; PMF, double ridges and furrows mulched with plastic film and furrow planting; SM, whole field surface sand mulching and flat planting. Different letter mean significant difference at p < 0.05 level.
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