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个体树规模的碳预算:占主导地位的树树分区减去地下碳
Ezequiel Fernandez-Tschieder1,2, John D Marshall3,4,5,6, Dan Binkley7
1National Institute of Agricultural Technology (INTA), Agricultural Experimental Station of Delta del Paraná, Campana, B2804, Argentina.
The New phytologist
|April 20, 2024
概括
大型白树通过将更多的碳分配到木材生产中来产生更多的木材,而不仅仅是更高的光合作用效率. 压抑的树木优先考虑地下生长,影响种植园的整体木材产量.
科学领域:
- 植物生理学 植物生理学
- 林业科学 林业科学
- 生态生态学 生态生态学
背景情况:
- 种植园中的大树通常比较小的树产生更多的木材.
- 这种规模驱动的生产率差异归因于增强的光合作用效率或改变的碳分配策略.
研究的目的:
- 为了研究较大的白树木中增加木材生产背后的机制.
- 量化地面木材生产和地下碳流在主导树木和被抑制树木之间的碳分区.
主要方法:
- 使用透气和光合作用水利用效率的个人规模原始生产总值 (GPP) 估计.
- 在地面上通过全度方程和模拟呼吸计算生产流量.
- 总地下碳流量 (TBCF) 通过从GPP中减去地表碳流量来确定.
- 通过将组件流量与GPP划分来估计碳分区.
主要成果:
- 主导树木产生的木材几乎是被压制树木的三倍.
- 木材生产占主导树木的光合作用量的25%,而抑制树木的12%.
- 被压抑的树木在地下分配了58%的光合作用,而在主导树木中,这一比例为27%.
- 光合成用水效率在主导树木中大约高出13%.
结论:
- 碳分割策略,特别是增加对木材生产的分配,是占主导地位的树木产量更高的主要驱动因素.
- 碳分配的差异大大超过了GPP或光合成用水效率的差异.
- 了解这些分配模式对于优化种植园生产力和资源使用至关重要.
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