质量与数量:二氧化碳升高对木材生物材料特性的影响。

IF 2.2 3区 生物学 Q1 ZOOLOGY
Philip S L Anderson
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引用次数: 0

摘要

自 19 世纪末以来,化石燃料消耗和森林砍伐等人为活动使全球大气中的二氧化碳浓度上升了 45% 以上。据估计,到本世纪末,全球气温将上升 2-5 度。虽然这种气候变化大多被认为是有害的,但大量的实验工作表明,大气中二氧化碳浓度的增加实际上会促进各种植物的生长,这可能会导致生物量的增加,从而有可能收获或封存二氧化碳。然而,这种生长或生物量的增加是否对植物有益尚不清楚,因为这种增加可能会导致植物材料变弱。在这篇综述中,我将探讨我们目前对人为影响造成的大气二氧化碳升高可能如何影响植物材料特性的认识,重点是对木材的潜在影响。在综述的第一部分,我将探讨木材的解剖和结构如何影响抗弯曲和抗断裂性能。然后利用这些信息来探讨二氧化碳含量的变化会如何对木材解剖和结构的这些方面产生机械影响。得出的主要结论是,二氧化碳浓度升高对木材特性的影响在很大程度上取决于树种和环境,不同树种对大气变化的反应是相互矛盾的。最后,我将介绍几种未来研究的途径,以便更好地了解大气中二氧化碳水平对植物生物材料力学的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Quality vs. Quantity: The Consequences of Elevated CO2 on Wood Biomaterial Properties.

Since the late 1800s, anthropogenic activities such as fossil fuel consumption and deforestation have driven up the concentration of atmospheric CO2 around the globe by >45%. Such heightened concentrations of carbon dioxide in the atmosphere are a leading contributor to global climate change, with estimates of a 2-5° increase in global air temperature by the end of the century. While such climatic changes are mostly considered detrimental, a great deal of experimental work has shown that increased atmospheric CO2 will actually increase growth in various plants, which may lead to increased biomass for potential harvesting or CO2 sequestration. However, it is not clear whether this increase in growth or biomass will be beneficial to the plants, as such increases may lead to weaker plant materials. In this review, I examine our current understanding of how elevated atmospheric CO2 caused by anthropogenic effects may influence plant material properties, focusing on potential effects on wood. For the first part of the review, I explore how aspects of wood anatomy and structure influence resistance to bending and breakage. This information is then used to review how changes in CO2 levels may later these aspects of wood anatomy and structure in ways that have mechanical consequences. The major pattern that emerges is that the consequences of elevated CO2 on wood properties are highly dependent on species and environment, with different tree species showing contradictory responses to atmospheric changes. In the end, I describe a couple avenues for future research into better understanding the influence of atmospheric CO2 levels on plant biomaterial mechanics.

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来源期刊
CiteScore
4.70
自引率
7.70%
发文量
150
审稿时长
6-12 weeks
期刊介绍: Integrative and Comparative Biology ( ICB ), formerly American Zoologist , is one of the most highly respected and cited journals in the field of biology. The journal''s primary focus is to integrate the varying disciplines in this broad field, while maintaining the highest scientific quality. ICB''s peer-reviewed symposia provide first class syntheses of the top research in a field. ICB also publishes book reviews, reports, and special bulletins.
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