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首页> 外文期刊>Global change biology >Postfire carbon pools and fluxes in semiarid ponderosa pine in Central Oregon
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Postfire carbon pools and fluxes in semiarid ponderosa pine in Central Oregon

机译:俄勒冈州中部半干旱美国黄松的火后碳库和通量

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Forest fire dramatically affects the carbon storage and underlying mechanisms that control the carbon balance of recovering ecosystems. In western North America where fire extent has increased in recent years, we measured carbon pools and fluxes in moderately and severely burned forest stands 2 years after a fire to determine the controls on net ecosystem productivity (NEP) and make comparisons with unburned stands in the same region. Total ecosystem carbon in soil and live and dead pools in the burned stands was on average 66% that of unburned stands (11.0 and 16.5 kg C m(-2), respectively, P < 0.01). Soil carbon accounted for 56% and 43% of the carbon pools in burned and unburned stands. NEP was significantly lower in severely burned compared with unburned stands (P < 0.01) with an increasing trend from -125 +/- 44 g C m(-2) yr(-1) (+/- 1 SD) in severely burned stands (stand replacing fire), to -38 +/- 96 and +50 +/- 47 g C m(-2) yr(-1) in moderately burned and unburned stands, respectively. Fire of moderate severity killed 82% of trees < 20 cm in diameter (diameter at 1.3 m height, DBH); however, this size class only contributed 22% of prefire estimates of bole wood production. Larger trees (> 20 cm DBH) suffered only 34% mortality under moderate severity fire and contributed to 91% of postfire bole wood production. Growth rates of trees that survived the fire were comparable with their prefire rates. Net primary production NPP (g C m(-2) yr(-1), +/- 1 SD) of severely burned stands was 47% of unburned stands (167 +/- 76, 346 +/- 148, respectively, P < 0.05), with forb and grass aboveground NPP accounting for 74% and 4% of total aboveground NPP, respectively. Based on continuous seasonal measurements of soil respiration in a severely burned stand, in areas kept free of ground vegetation, soil heterotrophic respiration accounted for 56% of total soil CO2 efflux, comparable with the values of 54% and 49% previously reported for two of the unburned forest stands. Estimates of total ecosystem heterotrophic respiration (R-h) were not significantly different between stand types 2 years after fire. The ratio NPP/R-h averaged 0.55, 0.85 and 1.21 in the severely burned, moderately burned and unburned stands, respectively. Annual soil CO2 efflux was linearly related to aboveground net primary productivity (ANPP) with an increase in soil CO2 efflux of 1.48 g C yr(-1) for every 1 g increase in ANPP (P < 0.01, r(2) = 0.76). There was no significant difference in this relationship between the recently burned and unburned stands. Contrary to expectations that the magnitude of NEP 2 years postfire would be principally driven by the sudden increase in detrital pools and increased rates of R-h, the data suggest NPP was more important in determining postfire NEP.
机译:森林火灾极大地影响了碳储量和控制恢复生态系统碳平衡的潜在机制。在近年来火势加剧的北美西部地区,我们测量了大火发生2年后中度和重度燃烧林分的碳库和通量,以确定对净生态系统生产力(NEP)的控制,并与未燃烧林分进行比较。同一地区。燃烧林分土壤和生,死池中的生态系统总碳平均为未燃烧林分的66%(分别为11.0和16.5 kg C m(-2),P <0.01)。在已燃烧和未燃烧林分中,土壤碳分别占碳库的56%和43%。与未燃烧林分相比,严重燃烧林分的NEP显着降低(P <0.01),严重燃烧林分的NEP从-125 +/- 44 g C m(-2)yr(-1)(+/- 1 SD)增加(替换为火的架子),在中度燃烧和未燃烧的架子中分别达到-38 +/- 96和+50 +/- 47 g C m(-2)yr(-1)。中度烈度的大火杀死了直径小于20厘米(直径为1.3 m高度,DBH)的82%的树木;但是,这种规模的产品仅占烧前木材产量估计值的22%。在中度烈度下,较大的树木(> 20 cm DBH)仅遭受34%的死亡率,并贡献了91%的篝火后木材产量。在大火中幸存下来的树木的生长速度与他们的预燃速度相当。严重燃烧林分的净初级生产力NPP(g C m(-2)yr(-1),+/- 1 SD)是未燃烧林分的47%(分别为167 +/- 76、346 +/- 148,P <0.05),其中地上和地下的NPP分别占总NPP的74%和4%。根据对严重烧毁林分土壤呼吸的连续季节性测量,在没有地面植被的地区,土壤异养呼吸占土壤总CO2外流的56%,与先前报道的两个国家的54%和49%相当未燃烧的森林站立。火灾后2年的林分类型之间,生态系统总异养呼吸(R-h)的估计值无显着差异。在严重燃烧,中度燃烧和未燃烧林分中,NPP / R-h比分别为0.55、0.85和1.21。每年土壤CO2排放量与地上净初级生产力(ANPP)线性相关,每增加1 g ANPP,土壤CO2排放量就增加1.48 g C yr(-1)(P <0.01,r(2)= 0.76) 。最近燃烧和未燃烧的林分之间的关​​系没有显着差异。与火后2年NEP的幅度主要由碎屑池的突然增加和R-h速率增加所驱动的预期相反,数据表明NPP在确定火后NEP方面更为重要。

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