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Decomposition of soybean grown under elevated concentrations of CO2 and O-3

机译:在高浓度的CO2和O-3下生长的大豆分解

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A critical global climate change issue is how increasing concentrations of atmospheric CO2 and ground-level O-3 will affect agricultural productivity. This includes effects on decomposition of residues left in the field and availability of mineral nutrients to subsequent crops. To address questions about decomposition processes, a 2-year experiment was conducted to determine the chemistry and decomposition rate of aboveground residues of soybean (Glycine max (L.) Merr.) grown under reciprocal combinations of low and high concentrations of CO2 and O-3 in open-top field chambers. The CO2 treatments were ambient (370 mu mol mol(-1)) and elevated (714 mu mol mol(-1)) levels (daytime 12 h averages). Ozone treatments were charcoal-filtered air (21 nmol mol(-1)) and nonfiltered air plus 1.5 times ambient O-3 (74 nmol mol(-1)) 12 h day(-1). Elevated CO2 increased aboveground postharvest residue production by 28-56% while elevated O-3 suppressed it by 15-46%. In combination, inhibitory effects of added O-3 on biomass production were largely negated by elevated CO2. Plant residue chemistry was generally unaffected by elevated CO2, except for an increase in leaf residue lignin concentration. Leaf residues from the elevated O-3 treatments had lower concentrations of nonstructural carbohydrates, but higher N, fiber, and lignin levels. Chemical composition of petiole, stem, and pod husk residues was only marginally affected by the elevated gas treatments. Treatment effects on plant biomass production, however, influenced the content of chemical constituents on an areal basis. Elevated CO2 increased the mass per square meter of nonstructural carbohydrates, phenolics, N, cellulose, and lignin by 24-46%. Elevated O-3 decreased the mass per square meter of these constituents by 30-48%, while elevated CO2 largely ameliorated the added O-3 effect. Carbon mineralization rates of component residues from the elevated gas treatments were not significantly different from the control. However, N immobilization increased in soils containing petiole and stem residues from the elevated CO2, O-3, and combined gas treatments. Mass loss of decomposing leaf residue from the added O-3 and combined gas treatments was 48% less than the control treatment after 20 weeks, while differences in decomposition of petiole, stem, and husk residues among treatments were minor. Decreased decomposition of leaf residues was correlated with lower starch and higher lignin levels. However, leaf residues only comprised about 20% of the total residue biomass assayed so treatment effects on mass loss of total aboveground residues were relatively small. The primary influence of elevated atmospheric CO2 and O-3 concentrations on decomposition processes is apt to arise from effects on residue mass input, which is increased by elevated CO2 and suppressed by O-3.
机译:全球气候变化的一个关键问题是,大气中二氧化碳和地面O-3浓度的增加将如何影响农业生产力。这包括对田间残留残渣分解的影响,以及后续作物可获得的矿物质营养。为了解决有关分解过程的问题,进行了一项为期2年的实验,以确定在低,高浓度的CO2和O-互作的情况下生长的大豆地上残留物(Glycine max(L.)Merr。)的化学性质和分解速率3在敞开式野战室中。 CO2处理为常温(370μmol mol(-1))和升高的水平(714μmol mol(-1))(白天平均12小时)。臭氧处理是用炭过滤的空气(21 nmol mol(-1))和未过滤的空气加上1.5倍的环境O-3(74 nmol mol(-1)),每天处理12小时(-1)。升高的二氧化碳使地上采后残留物产量增加了28-56%,而升高的O-3抑制了15-46%。结合起来,增加的O-3对生物量生产的抑制作用在很大程度上被CO2升高所抵消。植物残渣化学通常不受升高的CO2的影响,除了增加叶片残渣木质素浓度外。升高的O-3处理后的叶片残留物中非结构性碳水化合物的浓度较低,但N,纤维和木质素的含量较高。叶柄,茎和豆荚残留物的化学成分仅受到提高的气体处理的影响。然而,处理对植物生物量生产的影响从面积上影响了化学成分的含量。较高的二氧化碳使每平方米非结构性碳水化合物,酚,氮,纤维素和木质素的质量增加了24-46%。升高的O-3使这些成分的每平方米质量降低30-48%,而升高的CO2则大大改善了所添加的O-3效果。升高的气体处理过程中残留成分的碳矿化率与对照组无显着差异。但是,在含有因提高的CO2,O-3和联合气体处理而产生的叶柄和茎秆残留物的土壤中,氮的固定化增加了。 20周后,加入O-3和联合气体处理后,分解叶片残留物的质量损失比对照处理少48%,而处理之间叶柄,茎和果壳残留物分解的差异很小。叶片残留物分解的减少与较低的淀粉和较高的木质素水平相关。但是,叶残留物仅占所测残留物总生物量的约20%,因此处理对总地上残留物质量损失的影响相对较小。大气中CO2和O-3浓度升高对分解过程的主要影响易于来自对残渣质量输入的影响,残余物输入随CO2升高而被O-3抑制。

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