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Biochar from Kon Tiki flame curtain and other kilns: Effects of nutrient enrichment and kiln type on crop yield and soil chemistry

机译:来自 Kon Tiki火焰幕和其他窑炉的生物炭:养分富集和窑炉类型对作物产量和土壤化学的影响

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摘要

Biochar application to soils has been investigated as a means of improving soil fertility and mitigating climate change through soil carbon sequestration. In the present work, the invasive shrub "Eupatorium adenophorum" was utilized as a sustainable feedstock for making biochar under different pyrolysis conditions in Nepal. Biochar was produced using several different types of kilns; four sub types of flame curtain kilns (deep-cone metal kiln, steel shielded soil pit, conical soil pit and steel small cone), brick-made traditional kiln, traditional earth-mound kiln and top lift up draft (TLUD). The resultant biochars showed consistent pH (9.1 ± 0.3), cation exchange capacities (133 ± 37 cmolc kg-1), organic carbon contents (73.9 ± 6.4%) and surface areas (35 to 215 m2/g) for all kiln types. A pot trial with maize was carried out to investigate the effect on maize biomass production of the biochars made with various kilns, applied at 1% and 4% dosages. Biochars were either pretreated with hot or cold mineral nutrient enrichment (mixing with a nutrient solution before or after cooling down, respectively), or added separately from the same nutrient dosages to the soil. Significantly higher CEC (P< 0.05), lower Al/Ca ratios (P< 0.05), and high OC% (P<0.001) were observed for both dosages of biochar as compared to non-amended control soils. Importantly, the study showed that biochar made by flame curtain kilns resulted in the same agronomic effect as biochar made by the other kilns (P > 0.05). At a dosage of 1% biochar, the hot nutrient-enriched biochar led to significant increases of 153% in above ground biomass production compared to cold nutrient-enriched biochar and 209% compared to biochar added separately from the nutrients. Liquid nutrient enhancement of biochar thus improved fertilizer effectiveness compared to separate application of biochar and fertilizer.
机译:已经研究了将生物炭应用于土壤的方法,作为通过土壤固碳提高土壤肥力和缓解气候变化的一种手段。在目前的工作中,入侵性灌木“紫茎泽兰”被用作尼泊尔在不同热解条件下生产生物炭的可持续原料。生物炭是使用几种不同类型的窑炉生产的。火焰幕窑分为四种子类型(深锥金属窑,钢屏蔽土坑,圆锥形土坑和钢小锥),砖制传统窑,传统土堆窑和顶举式通风炉(TLUD)。生成的生物炭显示出一致的pH(9.1±0.3),阳离子交换容量(133±37 cmolc kg -1 ),有机碳含量(73.9±6.4%)和表面积(35至215 m < sup> 2 / g)。进行了一项针对玉米的盆栽试验,研究了以1%和4%的剂量施用各种窑炉制成的生物炭对玉米生物量生产的影响。对生物炭进行热或冷矿物质营养富集预处理(分别在冷却之前或之后与营养溶液混合),或将相同养分剂量的生物碳分别添加到土壤中。与未改良的对照土壤相比,两种生物炭剂量均观察到较高的CEC(P <0.05),较低的Al / Ca比(P <0.05)和较高的OC%(P <0.001)。重要的是,该研究表明,火焰幕窑产生的生物炭与其他窑产生的生物炭具有相同的农艺效果(P> 0.05)。在生物炭含量为1%的情况下,与富含营养素的冷态生物炭相比,富含营养素的热态生物炭导致地上生物量生产显着增加153%,与与营养素分开添加的生物炭相比,显着增加209%。与单独施用生物炭和肥料相比,生物炭的液体养分增强因此提高了肥料效力。

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