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Modeling net primary productivity of tropical deciduous forests in North India using bio-geochemical model

机译:使用生物地球化学模型建模北印度热带落叶林的净初级生产力

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The present work investigates the applicability of a widespread bio-geochemical model (Biome BGC) to simulate monthly net primary productivity (NPP) and leaf area index (LAI) of Indian tropical deciduous forests. We simulated the monthly NPP and LAI of three plant functional types (PFTs) [dry mixed (DM), sal mixed (SM) and teak plantation (TP)] having distinct tree species compositions, canopy structure, different carbon assimilation rates and microclimate within a broad tropical deciduous forest during 2011-2012. The parameterization of 11 major eco-physiological parameters of Biome BGC was performed from in-situ physiological measurements gathered from 9 long-term ecological research plots in above three PFTs and PFT specific indices were developed. Bimodal trends, with highest peak in September during autumn and second peak in January during winter were observed for simulated monthly NPP in all three PFTs. Simulated NPP (gC/m(2)/year) values were 408.8 and 414.6; 376.8 and 392.9; and 327.5 and 338.2 during 2011 and 2012 in DM, SM and TP PFTs respectively. Observed NPP (gC/m(2)/year) values ranged between 463.4 and 493.1; 498.0 and 529.5; and 542.1 and 677.9 in 2012 in DM, SM and TP PFTs respectively. Biome BGC simulated NPP were in positive agreement with observed NPP in all PFTs (R-2=0.92, 0.83 and 0.72 in DM, SM and TP respectively). In all PFTs Biome BGC led toan underestimation of LAI. The current investigation evaluated the operational application of Biome BGC in Indian tropical deciduous forest and opens scope for further improvement for LAI algorithms for better in-situ LAI simulation.
机译:本工作调查了广泛的生物地球化学模型(BIOME BGC)的适用性模拟印度热带落叶林的月度净初级生产率(NPP)和叶面积指数(LAI)。我们模拟了三种植物功能类型(PFT)[干混(DM),SAL混合(SM)和柚木种植园(TP)]的每月NPP和LAI,具有不同的树种组成,冠层结构,不同的碳同化率和微气密2011 - 2012年期间宽阔的热带落叶林。 B生态生态生态生态生态学参数的参数化从原位的生理测量中进行,从9个长期生态研究地块中收集,在上述三个PFT和PFT特定指数中开发。在冬季秋季和第二次高峰期间,在冬季和第二个峰值期间,在冬季的第二次峰值中,在所有三个PFT中模拟了每月NPP,在秋季和第二次峰值中达到了最高峰。模拟NPP(GC / M(2)/年)值为408.8和414.6; 376.8和392.9; 327.5和338.2分别在DM,SM和TP PFTS中的2011和2012年。观察到的NPP(GC / M(2)/年)值范围为463.4和493.1; 498.0和529.5;和2012年的542.1和677.9分别在DM,SM和TP PFTS中。 BIMOME BGC模拟NPP与在所有PFT(R-2 = 0.92,0.83和0.83和0.72分别为DM,SM和TP)中观察到的NPP阳性协议。在所有PFTS Biome BGC LED Toan低估了Lai。目前的调查评估了Biome BGC在印度热带落叶林中的运作应用,并为LAI算法进行了进一步改进的范围,以便更好地赖莱模拟。

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