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论文一
Optimum crop density 最优栽种密度
Grain amaranth 籽粒苋
Combine yield 联合收割机产量
Adapted genotype 采用的基因型
Morphological characters 形态特征
Shoot biomass 地上生物量root biomass 地下、根生物量
Split plot design 裂区设计
Stem diameter 茎粗
Plant height 株高
Harvest index 收获指数
Plant population 植物种群
Population pressure 种群压力
Hand thinning 人工疏果
Amino acid 氨基酸
Grain yield 粮食产量
Seed loss 种子损失
Grain water content 粮食水分含量
Unsaturated fatty acid 不饱和脂肪酸
Inflorescence head 花序头
Field study 田间试验
Analysis of variance=ANOVA 方差分析
Stationary ear thresher 固定脱粒机
error term 误差项
Non-linear regressions非线性相关关系
Significant effect 显著差异、效应
Multiple comparisons of means 均数多重比较
Soil level 土壤水平
Emergence rate 出苗率
Interspecific competition 种间竞争
Intraspecific competition 种内竞争
Uniform distribution 均匀分配
Optimum crop densities for potential yield and harvestable yield of grain amaranth are conflicting
最佳密度对苋科植物的潜在产量和最佳产量是否有影响仍有争议
Abstract
Grain amaranth is a C4 crop with potentially increasing cultivation area. Yet, no standards exist for optimum plant density. The aim of the study was to determine how crop density affects amaranth morphology, biological grain production and combine yield. A field experiment was conducted under semiarid conditions (9.8 °C, 546 mm) in Eastern Austria during 2002, 2004 and 2005. Two adapted genotypes (Amaranthus cruentus, Amaranthus hypochondriacus) were established at five densities (8, 17, 35, 70, 140 plants m?2) by hand thinning at a row spacing of 37.5 cm. The obtained densities at harvest averaged across years and genotypes were 8, 15, 32, 54, 89 plants m?2. Plant samples were hand-harvested for the determination of morphological characters, grain and total shoot biomass. Subsequently a plot combine was used for harvesting the plots. Rising plant population reduced the number of branches and the stem diameter from 11 plant?1 and 19 mm for the lowest density to 2 plant?1 and 8 mm for the highest density, respectively. Overall plant height decreased with rising density except for 2004 when plan
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