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Salinity reduces crop yield by limiting water uptake and causing ion‐specific stress. Soybean [Glycine max (L.) Merr.] is sensitive to soil salinity. However, there is variability among soybean genotypes and wild relatives for salt tolerance, suggesting that genetic improvement may be possible. The objective of this study was to identify differences in salt tolerance based on ion accumulation in leaves, stems and roots among accessions of four Glycine species. Four NaCl treatments, 0, 50, 75 and 100 mm , were imposed on G. max, G. soja, G. tomentella and G. argyrea accessions with different levels of salinity tolerance. Tolerant genotypes had less leaf scorch and a greater capacity to prevent Na+ and Cl? transport from soil solution to stems and leaves than sensitive genotypes. Magnitude of leaf injury per unit increase in leaf Na+ or Cl? concentrations was lower in tolerant than in susceptible accessions. Also, plant injury was associated more with Na+ rather than with Cl? concentration in leaves. Salt‐tolerant accessions had greater leaf chlorophyll‐meter readings than sensitive genotypes at all NaCl concentrations. Glycine argyrea and G. tomentella accessions possessed higher salt tolerance than G. soja and G. max genotypes.  相似文献   
3.
为解决喷油泵试验台量油系统测量误差较大的问题,本研究通过采集喷油器针阀升程、喷油压力、转速等信号精确测得喷油量。  相似文献   
4.
A number of optical sensing tools are now available and can potentially be used for refining need-based fertilizer nitrogen (N) topdressing decisions.Algorithms for estimating field-specific fertilizer N needs are based on predictions of yield made while the crops are still growing in the field.The present study was conducted to establish and validate yield prediction models using spectral indices measured with proximal sensing using GreenSeeker canopy reflectance sensor,soil and plant analyzer ...  相似文献   
5.
为依据作物对药液的实际需求进行变量喷施,达到节约农药和保护环境的目的,该文针对3WY-A3手推式喷雾机,设计了一种实时混药式变量喷雾系统.该系统主要包括混药装置、差压流量计、流量控制阀和控制系统硬件及软件等.通过实时混药控制试验,结果表明,药流量的控制范围为0.1~0.9 mL/s,误差在士5%左右.该研究可为实时混药...  相似文献   
6.
实验地貌的动态观测装置   总被引:1,自引:0,他引:1  
实验地貌的动态观测对于研究沟坡的侵蚀过程和发生机制具有重要意义.在介绍实验地貌动态观测装置——MX - 2010 -G型地貌仪的基础上,采用传统钢尺+水准仪观测方法以及地貌仪测量方法,测量同一坡体的体积,以率定地貌仪的观测精度.结果表明:对于5组不同坡度、体积约为2.4万cm3的沟坡模型,地貌仪测量的体积相对误差可以控制在±10%以内,其中绝对值最大相对误差为9.0%,绝对值最小误差为-0.4%;对于120 cm×140 cm范围内的坡面,10个检查点空间坐标在x、y、z 3个方向上的均方误差平均值分别为0.99、0.84和0.42 cm;在6个断面测点系列高程值线性回归分析中,回归系数6与相关系数R2值均接近于1.结果表明,该地貌仪能够对沟坡微地貌的变化过程进行精确的观测.  相似文献   
7.
A field trial was conducted over a 3-year period at the Hokkaido Kitami Agricultural Experiment Station to examine whether the grain protein content (GPC) of a winter wheat cultivar (Triticum aestivum L. cv. Chihokukomugi) suitable for Japanese noodle-making could be predicted before harvest. The prediction of the GPC was accurate based on the color of the second leaf (just below the flag leaf) at the end of the emergence of the inflorescence, when nitrogen application was graded. In order to evaluate the reliability of this test, a survey of 95 wheat fields in the eastern part of Hokkaido was also carried out during a 3-year period. The prediction of the GPC for this cultivar based on the color of the second leaf was less accurate across many sites. The results of this survey, however, suggested that the leaf color could be used as an index for ranking the GPC as low or high in relation to processing requirements. When the leaf color value of the second leaf measured with a chlorophyll meter at the end of the emergence of the inflorescence was less than 40, it was predicted that the GPC would be lower than the processing requirement. This index could be applied to the cultivars grown in the eastern part of Hokkaido, except for those grown on peat soils.  相似文献   
8.
组合孔内充式油莎豆排种器设计与试验   总被引:1,自引:0,他引:1  
针对油莎豆种子表面凹凸不平、形状不规则导致的流动性差,种群压实导致充种性能不佳和每穴3粒种子投种时轴向分散等问题,设计了一种组合孔内充式油莎豆排种器。对复式型孔的外孔和内孔长度进行了设计,提高了充填性能;基于最速降线原理设计了回流板曲面,理论分析了回流板上端倾角范围、安装位置及种子在回流板上运动情况;分析了种子与强制排种装置碰撞过程,设计优化了强制排种装置。利用EDEM仿真分析了种群回流运动过程和强制排种过程,探明了回流板种群运动过程,得出在倾斜角为32°的回流板安放位置回流效果较好,表明回流板可以增强种群流动性,避免种群堆积;分析证明了强制排种装置可提高排种器的集穴效果,实现3粒投种一致性。最后进行了投种一致性高速摄影试验、排种轮单排孔排种试验、双因素试验和集穴试验,通过高速摄影分析了油莎豆种子位移及速度变化规律,其结果与数值模拟基本一致,从排种轮单排孔排种试验得出3排型孔排种合格率差异不显著,双因素试验得出在复式型孔内孔长度为8mm、转速为20r/min条件下,排种器合格指数、漏播指数、重播指数可达96.4%、1.5%和2.1%。在较优内窝孔长度和回流板条件下进行集穴试验,试验结果表明在转速为10、20r/min时集穴效果最佳。  相似文献   
9.
针对现有玉米精密电驱排种控制系统无法快速适应多类型排种器排种控制的问题,在玉米CAN总线电动排种的基础上,设计了一种对玉米排种器排种驱动进行现场标定的电驱控制系统。系统在排种驱动电动机控制信号与排种盘转速之间的对应关系中,采用分段线性插值的方法现场获取排种器驱动曲线,实现排种盘转速标定与控制。以国产气吸式玉米精密排种器和指夹式玉米精密排种器为试验对象,在模拟车速下,对系统排种盘转速现场标定的控制准确性进行试验。电驱气吸式排种器排种盘转速控制性能试验中,株距设定为25 cm,车速设定为3~12 km/h(间隔3 km/h),结果表明,系统调节时间最长为0.80 s,稳态误差最大为0.81 r/min,控制精度最低为97.42%。电驱指夹式排种器排种盘转速控制性能试验中,株距分别设定为20、25、32 cm,车速设定为4~9 km/h(间隔1 km/h),结果表明,总体排种盘转速平均调节时间为1.09 s,标准差为0.26 s;总体平均稳态误差为0.38 r/min,标准差为0.23 r/min;总体平均控制精度为98.30%,标准差为1.01%。与分段PID排种转速控制系统控制性能进行对比得出,支持转速现场标定的系统具有更好的适应性,平均调节时间减少0.51 s,平均稳态误差增大0.16 r/min,平均控制精度降低0.63个百分点。选用指夹式排种器,进行了播种均匀性田间试验,株距为20 cm,车速范围为4~7 km/h(间隔1 km/h),结果表明,播种合格指数大于等于84.26%,变异系数小于等于18.29%,说明系统能够完成对玉米精密排种器排种转速控制曲线的高控制精度现场标定,能够精准控制电驱排种转速。  相似文献   
10.
Mobile nitrogen (N) forms may be better N indicators of the N status of trees than total nitrogen (TN) due to their higher sensitivity to increasing N supply. A field experiment was carried out over a 3-year period to compare foliar concentrations of total N (TN), soluble N (SN), chlorophyll (Minolta SPAD readings), NH4–N and NO3–N as indicators of soil N availability in nectarine, Prunus persica L. Batsch, cv. ‘Fantasia’ (grafted on ‘Nemaguard’ peach, P. persica × P. davidiana) trees. Young trees were exposed to a range of fertilizer-N application rates. Based on correlation analysis, the best association between leaf N compounds with soil N supply and trunk diameter and/or fruit yield was obtained with TN and chlorophyll SPAD readings. Leaf concentrations of mobile N compounds (NH4–N and NO3–N) increased more than any other N compound under high N supply; however, their inconsistency among years and low leaf concentration difficult their use as N indicators. The optimum foliar TN for growth decreased with tree age, 4.4%, 3.6% and 3.3% in non-bearing 1-year-old trees, non-bearing 2-year-old trees and 3.3 fruit-bearing 3-year-old trees. The optimum SPAD readings were 40 in 2-year-old trees and 42 in 3-year-old trees. Stable N compounds (TN and chlorophyll SPAD) could be used to N diagnosis in the zone of N deficiency, and soluble N compounds (NH4–N and NO3–N) to diagnoses N excess.  相似文献   
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