明确不同水氮互作对强筋优质小麦师栾02-1产量和加工品质的影响,为强筋小麦生产中如何通过合理灌溉和优化氮肥施用量来实现协同提高籽粒产量和加工品质的目标提供理论依据。2017-2020年,大田条件下设置浇水次数和施氮量二因子裂区试验,...明确不同水氮互作对强筋优质小麦师栾02-1产量和加工品质的影响,为强筋小麦生产中如何通过合理灌溉和优化氮肥施用量来实现协同提高籽粒产量和加工品质的目标提供理论依据。2017-2020年,大田条件下设置浇水次数和施氮量二因子裂区试验,主区为浇水次数,设春浇一水(W1,拔节水)和春浇两水(W2,拔节水+开花水);副区为氮肥施用量,设N0、N1、N2、N3、N4和N5(0、60、120、180、240和300 kg hm^(-2))6个水平。结果表明,施氮量0~300 kg hm^(-2)时,不同降水年型春浇一水、春浇两水小麦产量随施氮量的增加均先增加后减少,产量最高值对应的施氮量均为240 kg hm^(-2)。施氮量120~300 kg hm^(-2)时,春浇两水处理产量显著高于春浇一水处理。水氮互作对小麦单位面积收获穗数的影响最大,其次是千粒重,对穗粒数的影响最小。施氮量0~300 kg hm^(-2)时,2017-2018年度(丰水年型),春浇两水小麦湿面筋含量、沉降值、吸水率、面团稳定时间、拉伸能量、最大拉伸阻力平均值均高于春浇一水,而2018-2019、2019-2020年度(干旱年型)则相反:春浇一水高于春浇两水。不同降水年型春浇一水、春浇两水小麦湿面筋含量和沉降值随施氮量的增加先增加后减少或逐渐增加,二者最大值对应的施氮量为240 kg hm^(-2)或300 kg hm^(-2);稳定时间、拉伸能量和最大拉伸阻力随施氮量的增加均先增加后减少,施氮量240 kg hm^(-2)时达到最大值。不同降水年型强筋优质小麦师栾02-1生育期春浇两水、施氮量240 kg hm^(-2)时,籽粒产量和加工品质表现最佳。展开更多
以不同基因型的小麦品种(13个强筋小麦品种和2个中筋小麦品种),不同试验地点(馆陶、宁晋、藁城)和不同施氮水平(0、180、240和300 kg hm^(–2))的田间试验,综合分析基因型、环境对小麦产量、品质、氮肥利用率的影响,以期为优质强筋小麦...以不同基因型的小麦品种(13个强筋小麦品种和2个中筋小麦品种),不同试验地点(馆陶、宁晋、藁城)和不同施氮水平(0、180、240和300 kg hm^(–2))的田间试验,综合分析基因型、环境对小麦产量、品质、氮肥利用率的影响,以期为优质强筋小麦品种选育、栽培调控及高产提质增效的协同目标提供科学依据。研究表明,不同小麦品种产量在9289~10,088 kg hm^(–2)之间,强筋小麦品种平均产量9548 kg hm^(–2),比中筋小麦品种减产3.1%。藁城、宁晋、馆陶三地的产量分别达9932、9433和9223kghm^(–2)。不同小麦品种籽粒蛋白质均值14.5%,湿面筋28.5%,沉淀指数39.5mL,稳定时间15.4 min,拉伸能量87.5 cm2,最大拉伸阻力428.8 BU。藁优5218、藁优5766、冀麦738、科农2009、师栾02-1、藁优2018、冀麦867综合品质表现较好。馆陶和宁晋的小麦品质性状相对较好,藁城的品质较差。氮肥利用率随施氮量增加呈降低趋势, N180处理的氮肥农学效率、氮肥吸收利用效率、氮肥生理利用率最高,依次为4.3 kg kg^(–1)、26.2%、16.6 kg kg^(–1)。兼顾产量、品质、效率三方面,藁城适宜种植品种有冀麦738、冀麦867、师栾02-1;宁晋有师栾02-1、科农2009、冀麦738;馆陶有藁优5766、藁优2018、师栾02-1。综合考虑小麦产量、籽粒品质和氮素利用率, 180 kg hm^(–2)为本研究条件下的最佳施氮量。展开更多
Ultrasonic acoustic emissions (AEs) from leaf xylem of both water stressed and well watered potted winter wheat (Triticum aestivum L.) plants during drought and rewatering cycle were investigated with a ‘PCI-2 Ba...Ultrasonic acoustic emissions (AEs) from leaf xylem of both water stressed and well watered potted winter wheat (Triticum aestivum L.) plants during drought and rewatering cycle were investigated with a ‘PCI-2 Based AE System' (Physical Acoustics Corp. New Jersey, USA) for estimation of leaf xylem cavitation and embolism. Very few AEs occurred in xylem of wheat leaves in well-watered plant, and also in plant subject to mild and moderate soil water stress conditions over the first 4 d of the drought cycle. Great amounts of AEs have occurred since d 5 of the drought cycle as plant showed obvious leaf curling, indicating significant cavitation in leaf xylem on plant exposed to severe soil water deficit. At this point, relative soil water content (RSWC) and leaf xylem pressure (ψ1) dropped to 24.0-26.5% and -1.92 MPa, respectively, with reductions in leaf stomatal conductance (gs), leaf transpiration (Tr) and leaf CO2 assimilation rate (A) of as much as 69.8, 60.7 and 46.5%, respectively. The effect of soil water deficit was in the order gs 〉 Tr 〉 A 〉 AE. Waveform physical property parameters such as amplitude, counts, rise time, duration, absolute energy and signal strength were analyzed. These parameters varied within very broad ranges, with frequency distribution of most parameters being well fitted by the exponential function y = yo- A exp (-x/t). The proportion of stronger AE signals rose as soil dehydrated. While AEs occurrence in water stressed plant remained higher than in well-watered control at the following day after rewatering, waveform signal strength and related physical property parameters dropped immediately to that of control. Difference in AEs occurrence characterization between field-grown and potted wheat leaves was discussed.展开更多
文摘明确不同水氮互作对强筋优质小麦师栾02-1产量和加工品质的影响,为强筋小麦生产中如何通过合理灌溉和优化氮肥施用量来实现协同提高籽粒产量和加工品质的目标提供理论依据。2017-2020年,大田条件下设置浇水次数和施氮量二因子裂区试验,主区为浇水次数,设春浇一水(W1,拔节水)和春浇两水(W2,拔节水+开花水);副区为氮肥施用量,设N0、N1、N2、N3、N4和N5(0、60、120、180、240和300 kg hm^(-2))6个水平。结果表明,施氮量0~300 kg hm^(-2)时,不同降水年型春浇一水、春浇两水小麦产量随施氮量的增加均先增加后减少,产量最高值对应的施氮量均为240 kg hm^(-2)。施氮量120~300 kg hm^(-2)时,春浇两水处理产量显著高于春浇一水处理。水氮互作对小麦单位面积收获穗数的影响最大,其次是千粒重,对穗粒数的影响最小。施氮量0~300 kg hm^(-2)时,2017-2018年度(丰水年型),春浇两水小麦湿面筋含量、沉降值、吸水率、面团稳定时间、拉伸能量、最大拉伸阻力平均值均高于春浇一水,而2018-2019、2019-2020年度(干旱年型)则相反:春浇一水高于春浇两水。不同降水年型春浇一水、春浇两水小麦湿面筋含量和沉降值随施氮量的增加先增加后减少或逐渐增加,二者最大值对应的施氮量为240 kg hm^(-2)或300 kg hm^(-2);稳定时间、拉伸能量和最大拉伸阻力随施氮量的增加均先增加后减少,施氮量240 kg hm^(-2)时达到最大值。不同降水年型强筋优质小麦师栾02-1生育期春浇两水、施氮量240 kg hm^(-2)时,籽粒产量和加工品质表现最佳。
文摘以不同基因型的小麦品种(13个强筋小麦品种和2个中筋小麦品种),不同试验地点(馆陶、宁晋、藁城)和不同施氮水平(0、180、240和300 kg hm^(–2))的田间试验,综合分析基因型、环境对小麦产量、品质、氮肥利用率的影响,以期为优质强筋小麦品种选育、栽培调控及高产提质增效的协同目标提供科学依据。研究表明,不同小麦品种产量在9289~10,088 kg hm^(–2)之间,强筋小麦品种平均产量9548 kg hm^(–2),比中筋小麦品种减产3.1%。藁城、宁晋、馆陶三地的产量分别达9932、9433和9223kghm^(–2)。不同小麦品种籽粒蛋白质均值14.5%,湿面筋28.5%,沉淀指数39.5mL,稳定时间15.4 min,拉伸能量87.5 cm2,最大拉伸阻力428.8 BU。藁优5218、藁优5766、冀麦738、科农2009、师栾02-1、藁优2018、冀麦867综合品质表现较好。馆陶和宁晋的小麦品质性状相对较好,藁城的品质较差。氮肥利用率随施氮量增加呈降低趋势, N180处理的氮肥农学效率、氮肥吸收利用效率、氮肥生理利用率最高,依次为4.3 kg kg^(–1)、26.2%、16.6 kg kg^(–1)。兼顾产量、品质、效率三方面,藁城适宜种植品种有冀麦738、冀麦867、师栾02-1;宁晋有师栾02-1、科农2009、冀麦738;馆陶有藁优5766、藁优2018、师栾02-1。综合考虑小麦产量、籽粒品质和氮素利用率, 180 kg hm^(–2)为本研究条件下的最佳施氮量。
基金the support from the National Natural Science Foundation of China (NSFC) (30370848) Natural Science Foundation of Hebei Province, China (C2006000738)+1 种基金 A Special Program in Food Production Promotion of China: Integration and Extension of Crop Yielding-Promotion Management Techniques Under Wheat-Maize Double-Cropping System in Hebei Province, China (2004BA520A07) the Key Research Program of the Hebei Academy of Agricultural and Foestry Sciences, China (A03-1-02-14).
文摘Ultrasonic acoustic emissions (AEs) from leaf xylem of both water stressed and well watered potted winter wheat (Triticum aestivum L.) plants during drought and rewatering cycle were investigated with a ‘PCI-2 Based AE System' (Physical Acoustics Corp. New Jersey, USA) for estimation of leaf xylem cavitation and embolism. Very few AEs occurred in xylem of wheat leaves in well-watered plant, and also in plant subject to mild and moderate soil water stress conditions over the first 4 d of the drought cycle. Great amounts of AEs have occurred since d 5 of the drought cycle as plant showed obvious leaf curling, indicating significant cavitation in leaf xylem on plant exposed to severe soil water deficit. At this point, relative soil water content (RSWC) and leaf xylem pressure (ψ1) dropped to 24.0-26.5% and -1.92 MPa, respectively, with reductions in leaf stomatal conductance (gs), leaf transpiration (Tr) and leaf CO2 assimilation rate (A) of as much as 69.8, 60.7 and 46.5%, respectively. The effect of soil water deficit was in the order gs 〉 Tr 〉 A 〉 AE. Waveform physical property parameters such as amplitude, counts, rise time, duration, absolute energy and signal strength were analyzed. These parameters varied within very broad ranges, with frequency distribution of most parameters being well fitted by the exponential function y = yo- A exp (-x/t). The proportion of stronger AE signals rose as soil dehydrated. While AEs occurrence in water stressed plant remained higher than in well-watered control at the following day after rewatering, waveform signal strength and related physical property parameters dropped immediately to that of control. Difference in AEs occurrence characterization between field-grown and potted wheat leaves was discussed.