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Potential quality and quantity assessment of sesame plant residue in dry land vertisols of Tigrai Ethiopia; Approach for sustainability of dry-land farming

机译:埃塞俄比亚蒂格莱卫地山谷芝麻植物残留的潜力质量和数量评估;干土农业可持续性方法

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摘要

In dryland areas, the increasing demand for sustainable production needs to effectively utilize and manage residue. The aim of this study was to evaluate the potential, quality, and quantity assessment of sesame residue in dryland areas. Quantification of residue potential was performed at <650, 650–850, 850–1050, and >1050 m elevation by summing the weight of stack, standing residue, and straw. Whereas, assessment in the residues nutrient content was performed at <650, 650–850, 850–1050, and >1050 m elevation and age of residue (fresh and old). The TN, S and P in the residue were determined by Kjeldahl digestion Method, wet acid digestion Method, and two percent acetic acid (CH3COOH) as extracting to extract PO4 respectively. Atomic absorption spectrophotometer was used to determine micronutrient cations such as Fe, Zn, and Cu. B was determined by extraction using a mixture of hydrochloric (HCl) and hydrofluoric (HF) acids to plant tissue digests. The nutrient potential was calculated by multiplying nutrient content in residue with the amount of residue estimated ha−1. R software (R version 3.5.2) was used to analyze the data. The result indicates that during the last 20 years, the total cultivated land size covered by sesame was 170,000 (ha) and total grain yield of 0.09 Mt. This implies that the size of cultivated land put under sesame cultivation has increased by 79.5%. On average 2.01 t ha− 1 of residue was produced annually and about 0.34 Mt yr−1 of residue was harvested from sesame production. The age of residue differed significantly (p < 0.05) on TN, S, P, Zn, Fe, Cu, and B content of sesame residue. Nutrient content in residue was ranged from 34.55–24.53 g TN/kg, 9.6–4.2 g S/kg, 5.2–4.3 g P/kg, 23–14.6 mg Zn/kg, 130.23–94.78 mg Fe/kg, 17–6.2 mg Cu/kg and 10.67–9.12 mg B/kg during fresh and old residue analysis respectively. Elevation differed significantly (p < 0.05) for TN, S, P, Zn, and Fe. Nutrient content in residue was ranged from 27.1–32.2 g TN/kg, 6–8.5 g S/kg, 6.6–4.1 g P/kg, 20.8–17 mg Zn/kg, 109–116 mg Fe/kg, 12.9–10.4 mg Cu/kg and 10.1–9.6 mg B/kg for the elevation range of <650 m and >1050 m respectively. The TN, S, P, Zn, Fe, Cu, and B potentially produced from sesame residue were in the range of 49.4–69.6 kg N ha−1, 8.5–19.3 kg S ha−1, 8.7–10.5 kg P ha−1, 294–463 mg Zn ha−1, 1.99–2.62 g Fe ha−1, 125–342 mg Cu ha−1 and 183–214 mg B ha−1 respectively. This study clearly concludes that fresh and old residue as well as elevation are critical factors that need to be considered for exploring crop residue and its nutrient potential, quality, and quantity aspects in dryland farming systems.
机译:在Dryland领域,对可持续生产需求的日益增长需要有效地利用和管理残留物。本研究的目的是评估芝麻残留在旱地区域的潜在,质量和数量评估。通过求解堆叠,站残留物和吸管的重量,在<650,650-850,850-1050和> 1050m升高中进行残留电位的定量。然而,残留物营养含量的评估在<650,650-850,850-1050和残留物(新鲜和旧)的650-1050和> 1050m升高和年龄。残余物中的Tn,S和P通过KjeldaHl消化方法,湿法消化方法和两种乙酸(CH 3 COOH)确定分别提取PO4。原子吸收分光光度计用于测定微量营养素阳离子,例如Fe,Zn和Cu。通过使用盐酸(HCl)和氢氟酸(HF)酸的混合物来萃取来测定植物组织消化。通过将残余物中的营养含量乘以残留物估计的HA-1的量来计算营养潜力。 R软件(R 3.5.2)用于分析数据。结果表明,在过去的20年中,芝麻覆盖的总耕地大小为170,000(HA),总籽粒产量为0.09吨。这意味着芝麻栽培栽培的耕地尺寸增加了79.5%。平均每年2.01吨残留物,从芝麻生产中收获约0.34mt YR-1的残余物。残留的年龄在TN,S,P,Zn,Fe,Cu和B含量上有显着(P <0.05)不同。残留物中的营养含量为34.55-24.53g tn / kg,9.6-4.2g s / kg,5.2-4.3g p / kg,23-14.6mg Zn / kg,130.23-94.78mg Fe / kg,17-6.2在新鲜和旧残留物分析期间Mg Cu / kg和10.67-9.12 mg b / kg。升高有显着不同(P <0.05)对于TN,S,P,Zn和Fe。残留物中的营养含量范围为27.1-32.2g tn / kg,6-8.5g s / kg,6.6-4.1g p / kg,20.8-17mg Zn / kg,109-116mg Fe / kg,12.9-10.4 Mg Cu / kg和10.1-9.6 mg b / kg分别为<650 m和> 1050米的升高范围。由芝麻残基可能产生的TN,S,P,Zn,Fe,Cu和B均为49.4-69.6kg n-1,8.5-19.3kg s ha-1,8.7-10.5 kg p ha- 1,294-463mg Zn HA-1,1.99-2.62g Fe HA-1,125-342mg Cu-1和183-214mg B HA-1。这项研究明显得出结论,新鲜和旧的残留物以及高程是需要考虑探索作物残留物及其营养潜力,质量和数量方面的关键因素。

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