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1.
利用锦州农业气象试验站的作物生长发育和土壤实测数据对WOFOST模型水分胁迫模块进行了调参,适用性验证表明,WOFOST模型适用于辽宁省春玉米生长发育和产量的模拟,辽宁省春玉米受干旱的影响可以利用WOFOST模型较敏感地反映出来。利用调参后的WOFOST模型模拟了全生育期及出苗~拔节、拔节~抽雄、抽雄~乳熟和乳熟~成熟各阶段发生轻、中、重旱情景对辽宁省春玉米产量的影响,并根据模拟结果确定了不同干旱风险等级下辽宁省东、中、西部玉米生产的灾损范围。结果表明:不同生育期发生干旱对产量的影响不同,总体上,抽雄~乳熟期发生干旱的影响最大,其次是拔节~抽雄期,而出苗~拔节期和乳熟~成熟期发生干旱对产量的影响较小,全省春玉米在抽雄~乳熟期发生重旱的减产风险达30%~70%;在相同干旱水平下,不同区域受影响程度也不同,在全生育期及各生育阶段发生轻、中、重旱情景下,干旱导致的减产率总体上表现为由东部向西部地区逐渐加重的趋势,在全生育期重旱情景下,辽宁省东部的春玉米减产率为40%~75%,中部为60%~90%,西部达65%~95%。  相似文献   
2.
分别在玉米拔节期(BJ)和抽雄期(CX)进行水分胁迫试验,利用微根管技术观测不同发育期干旱过程中根分布动态,并利用根分布模型模拟相关参数(d_(50)和d_(95):累积根比例分别为50%和95%的土层深度),对不同干旱胁迫处理的土壤湿度、根系分布及相关参数时空动态特征进行分析。结果表明:水分控制后的土壤湿度在130cm以上基本达到预期干旱效果,即BJ和CX处理在控水时段0~100 cm土层土壤相对湿度都降至40%以下,但深层土壤湿度并未受到水分控制影响;拔节和抽雄期干旱胁迫条件下,根长密度(RLD)最大值分别为2.18±0.89cm·cm~(-3)和2.10±0.47 cm·cm~(-3),所在土壤深度为60 cm,对照(CK)RLD最大值为1.24±0.77 cm·cm~(-3),所在深度为40 cm,CK和BJ处理的RLD在最大值深度以下随土层深度增加而减小,CX处理的RLD在80 cm以下仍保持较大值;BJ和CX比CK的d50分别增大45%和59%,d95分别增大8%和41%,证明玉米根系因干旱胁迫而向深层土壤生长。  相似文献   
3.
Potassium (K) plays an important role in maize yield, but K accumulation characteristics in high yielding maize is still not well documented. A two-year field experiment was conducted to investigate the K accumulation characteristics of high yield (HY)(>15 t ha?1)spring maize compared with medium yield (MY)(10–15 t ha?1), and low yield (LY)(<10 t ha?1). The maximum K accumulation stage in maize appeared between V6 and V12 stage (LY, MY, and HY was 125.46, 138.05, and 146.22?kg ha?1, respectively). Most of the K (94.27–97.13%) was accumulated during vegetative stages. HY exhibited a significantly higher K accumulation than either MY or LY. For different organs, the K remobilization amount of leaf was the highest, and the remobilization amount of stalk was the lowest, the K remobilization amount of leaf and stalk showed as HY?<?MY?<?LY, same as the total K remobilization amount, but the K remobilization amount of sheath and husk plus cob showed the opposite order. These results indicated that sufficient nutrient supply for maize can not only accumulate more K but also delay leaf senescence and maintain high photosynthetic activity, resulting in reduced K remobilization from vegetative organs, and reduced K loss in whole plant.  相似文献   
4.
The aim of this study is to assess control effects of 2-methyl-4-chlorophenoxyacetic acid (MCPA) dosage, application timing and crop presence on the weed Cirsium arvense. Swedish farmers are recommended to control C. arvense chemically when most shoots are 10-20 cm tall, and mechanically at the compensation point (CP). Recent studies have shown that the CP occurs before shoots reach the three-leaf stage. We hypothesised that (i) herbicide application near the three-leaf stage gives the strongest control, (ii) crop presence increases herbicide effects, and (iii) a 50% herbicide dose gives the same effect as 100%. Treatments of the pot experiment consisted of MCPA 750; 0%, 50% and 100% of the recommended dose applied at leaf stages 3-8, with and without barley. The strongest control was obtained at four leaves and a maximum shoot height of 13 cm, using the recommended dose and with spring barley. In a field population, a maximum shoot height of 13 cm corresponded to a medium height of 6 cm. The 50% dose gave poorer control. Spraying with the recommended dose at the four-leaf stage reduced the development of C. arvense most effectively. Based on this, we recommend that herbicide spraying should be performed at earlier leaf stages/median heights than previously recommended.  相似文献   
5.
科尔沁草甸湿地土壤碳氮剖面分布及生长季动态特征   总被引:1,自引:0,他引:1  
采用定位观测的试验方法,于2016年5-10月及2017年8月对科尔沁草甸湿地0~100 cm土层土壤有机碳、全氮剖面分布及生长季动态特征进行了实验分析,旨在为科尔沁草甸湿地保护提供科学指导并为干旱半干旱地区湿地土壤碳氮储量估算提供借鉴。结果表明:1)科尔沁草甸湿地土壤有机碳、全氮含量整体随土层深度下降,0~20 cm土层间下降显著,20 cm以下趋于相对稳定,范围分别为11.9~23.5 g·kg-1和0.66~1.50 g·kg-1。2)各土层土壤碳氮含量月间差异显著(全氮40~60 cm土层除外),变化幅度随土层深度先减小后增大;土壤碳氮密度(100 cm)生长季变化大于年际变化,有机碳密度全生长季呈上升趋势,范围为15.44~20.82 kg·m-2,全氮密度生长初期明显下降,之后趋于相对稳定,范围为1.01~1.16 kg·m-2。3)土壤有机碳含量与全氮含量呈极显著正相关;植被和水文是影响其分布、变化的关键因子。科尔沁草甸湿地生长季土壤有机碳、全氮密度变化较大,且表现为潜在的碳汇和氮源,但年际间碳汇潜力未充分发挥,本研究建议禁牧力度应加大并增加氮肥投入以提高科尔沁草甸湿地生态系统功能。  相似文献   
6.
Environmental conditions influence phenology and physiological processes of plants. It is common for maize and sorghum to be sown at two different periods: the first cropping (spring/summer) and the second cropping (autumn/winter). The phenological cycle of these crops varies greatly according to the planting season, and it is necessary to characterize the growth and development to facilitate the selection of the species best adapted to the environment. The aim of this study was to characterize phenological phases and physiological parameters in sorghum and maize plants as a function of environmental conditions from the first cropping and second cropping periods. Two parallel experiments were conducted with both crops. The phenological characterization was based on growth analyses (plant height, leaf area and photoassimilate partitioning) and gas exchange evaluations (net assimilation rate, stomatal conductance, transpiration and water-use efficiency). It was found that the vegetative stage (VS) for sorghum and maize plants was 7 and 21 days, respectively, longer when cultivated during the second cropping. In the first cropping, the plants were taller than in the second cropping, regardless of the crop. The stomatal conductance of sorghum plants fluctuated in the second cropping during the development period, while maize plants showed decreasing linear behaviour. Water-use efficiency in sorghum plants was higher during the second cropping compared with the first cropping. In maize plants, in the second cropping, the water-use efficiency showed a slight variation in relation to the first cropping. It was concluded that the environmental conditions as degree-days, temperature, photoperiod and pluvial precipitation influence the phenology and physiology of both crops during the first and the second cropping periods, specifically cycle duration, plant height, leaf area, net assimilation rate, stomatal conductance and water-use efficiency, indicating that both crops respond differentially to environmental changes during the growing season.  相似文献   
7.
以甬优538、甬优9号为供试材料,研究了轻多效唑水育秧(T1)、重多效唑水育秧(T2)和轻多效唑旱育秧(T3)三种育秧方式对水稻超秧龄机插的影响。结果表明,与T1处理相比,T2、T3处理的苗高、生物量受到抑制,成秧率变高,漏秧率降低,基本苗数增加;机插后2个品种的抽穗期均推迟,甬优538 T2、T3处理的产量高于T1处理,甬优9号T2、T3处理的产量低于T1处理。  相似文献   
8.
覆膜玉米不同生育期土壤酶活性对大气CO2浓度升高的响应   总被引:1,自引:1,他引:0  
为探讨旱区覆膜玉米农田土壤酶活性对未来气候变化的响应,在田间条件下通过改进的开顶式气室(OTC)系统自动控制大气CO_2浓度,设置自然大气CO_2浓度(CK)、OTC对照(OTC)、OTC系统自动控制CO_2浓度(700μmol·mol~(-1),OTC+CO_2)3个处理,研究了旱区覆膜高产栽培春玉米播前、六叶期(V6)、十二叶期(V12)、吐丝期(R1)、乳熟期(R3)及完熟期(R6)土壤脲酶、碱性磷酸酶、蔗糖酶及过氧化氢酶活性对大气CO_2浓度升高的响应特征。研究发现:OTC处理条件下,土壤碱性磷酸酶活性相比CK在V12期降低8.80%(P0.05),而在R6期提高8.95%(P0.05);蔗糖酶活性在播前、V6、R1期降低12.65%~21.43%(P0.05),R3期升高17.50%(P0.05);过氧化氢酶活性在V12、R1、R6期均显著降低。大气CO_2浓度升高对玉米各生育期土壤脲酶活性均无显著影响;使R1、R6期碱性磷酸酶活性降低8.74%和6.39%(P0.05);使V6、R3期蔗糖酶活性升高30.18%和18.37%(P0.05);此外,增加了V12期过氧化氢酶活性,而降低了R3期过氧化氢酶活性。结果表明:当前旱作覆膜高产栽培模式下,大气CO_2浓度升高对春玉米农田土壤酶活性的影响因作物生育期和酶种类不同而异;土壤酶活性对OTC及大气CO_2浓度升高的响应程度不一,在当前试验条件下,OTC对土壤酶活性的影响较大气CO_2浓度升高更为显著。  相似文献   
9.
为促进河套灌区地膜春小麦生产并实现精量播种,设置不同的穴播量,监测露地直播春小麦(对照)和地膜覆盖穴播春小麦的生长性状和经济性状。结果表明:地膜覆盖春小麦较露地直播的早出苗7 d,早分蘖5 d,早抽穗5 d,早成熟4 d。地膜覆盖春小麦的分蘖力高于露地直播,但分蘖成穗力则与露地直播的基本一致。与露地直播春小麦相比,地膜覆盖春小麦的株高较高,茎秆较粗,单茎生物量较高,根系分布较浅。地膜覆盖春小麦的单茎根系生物量在扬花期前高于露地直播,扬花期后则低于露地直播。地膜覆盖春小麦的单穴茎数、单穴生物量及单穴根系生物量高于露地直播,但根冠比却低于露地直播。露地直播春小麦以穴播14粒的产量最高,地膜覆盖的以穴播12粒的产量最高。相同穴播量下地膜覆盖春小麦的产量高于露地直播,千粒重和经济系数则低于露地直播。河套灌区地膜覆盖春小麦的适宜穴播量为10~12粒,即为常规露地条播量的70%~84%。  相似文献   
10.
2015—2016年以先玉335和郑单958为试验材料,设置深松+旋耕(S+R)和旋耕(R)2个处理,研究了深松对春玉米根系分布及氮素积累与利用的影响。结果表明:深松疏松了土壤,有利于根系的生长,促进根系下扎,深松措施下先玉335和郑单958完熟期总根干重较旋耕处理分别提高了7.35%和9.25%,其中20~40 cm土层分别提高了15.52%和24.07%,30 cm以下土层根条数和根幅明显增加。深松改善根系形态特征,增加了根系与氮素的接触机会,促进了春玉米对氮素的吸收和累积,使单位重量根系氮素吸收量明显提高,吐丝前S+R处理的先玉335和郑单958单位重量根系氮素吸收量较R处理分别提高了11.22%和12.03%,处理间差异达到了显著水平。S+R处理的氮素吸收效率先玉335和郑单958较R处理分别提高6.11~6.40 kg·kg-1和7.17~7.51 kg·kg-1,氮肥偏生产力分别提高了3.86~8.00 kg·kg-1和5.40~9.86 kg·kg-1,氮素积累量分别提高了33.73~35.66 kg·hm-1和27.85~36.61 kg·hm-1。与先玉335相比,郑单958对深松更为敏感。  相似文献   
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