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林业科学 ›› 2026, Vol. 62 ›› Issue (9): 177-186.doi: 10.11707/j.1001-7488.LYKX20250737

• 研究论文 • 上一篇    

古建筑落叶松木材浅表层化学组分变化规律

吕一冉1,2,张涛3,郭娟1,陈勇平1,*()   

  1. 1. 中国林业科学研究院木材工业研究所 北京 100091
    2. 南京林业大学 南京 210037
    3. 北京市考古研究院(北京市文化遗产研究院) 北京 100009)
  • 收稿日期:2025-12-09 修回日期:2026-04-22 出版日期:2026-09-10 发布日期:2026-09-16
  • 通讯作者: 陈勇平 E-mail:chenyp@caf.ac.cn
  • 基金资助:
    中央级公益性科研院所基本科研业务费专项资金项目(CAFYBB2023PA004)。

Changes Regularity of Chemical Composition on the Shallow Surface of Larch Wood Used in Ancient Buildings

Yiran Lü1,2,Tao Zhang3,Juan Guo1,Yongping Chen1,*()   

  1. 1. Research Institute of Wood Industry, Chinese Academy of Forestry Beijing 100091
    2. Nanjing Forestry University Nanjing 210037
    3. Beijing Institute of Archaeology (Beijing Institute of Cultural Heritage) Beijing 100009
  • Received:2025-12-09 Revised:2026-04-22 Online:2026-09-10 Published:2026-09-16
  • Contact: Yongping Chen E-mail:chenyp@caf.ac.cn

摘要:

目的: 探究不同时期古建筑落叶松木材浅表层化学组分的降解情况和变化规律,为木结构古建筑的劣化评估与科学保护提供理论支撑。方法: 以木结构古建筑常用树种落叶松为研究对象,将落叶松木材浅表层按照主降解区(浅表Ⅰ区、径向0~3 mm)、次降解区(浅表Ⅱ区、径向3~6 mm)、弱降解区(浅表Ⅲ区、径向6~9 mm)进行细化,根据“清代—民国—现代—新材”年代线,采用化学抽提、傅里叶变换红外光谱(FTIR)和X射线衍射(XRD)等技术,分析不同时期古建筑落叶松木材浅表层化学组分含量和纤维素结晶度等变化情况。结果: 不同时期古建筑落叶松木材浅表层木质素和综纤维素与新材(22#)相比均发生明显降解,且木质素降解程度高于综纤维素,部分古建材半纤维素降解较为显著;纤维素无定形区化学组分降解导致古建材纤维素结晶度与新材相比均出现一定程度上升;不同时期古建筑落叶松木材浅表层化学组分综合降解程度为清代木材(17#)>民国木材(3#)>现代木材(15#)。同一时期古建筑落叶松木材由浅表Ⅰ区至浅表Ⅲ区降解程度呈下降趋势,清代木材浅表Ⅰ区(17-1#)降解程度最为严重,其木质素和综纤维素含量分别为新材(22#)的0.72、0.87,纤维素结晶度与新材(22#)相比增加17.80%;现代木材(15#)降解程度最轻,其浅表Ⅰ区(15-1#)木质素和综纤维素含量分别为新材(22#)的0.94、0.86,纤维素结晶度与新材(22#)相比增加11.28%。古建筑服役木构件测试结果表明,随时间推移,古建筑落叶松木材浅表层化学组分降解程度加重,与新材(N1)相比,清代(Oj1)、现代(Oj2)落叶松木材纤维素结晶度分别增加32.39%、28.95%,其中檐柱(Oy1)比金柱(Oj1)的降解程度更严重,纤维素结晶度分别增加35.51%、32.39%。结论: 不同时期古建筑落叶松木材浅表层化学组分与新材相比发生明显降解,降解程度随时间推移逐渐加重,同一时期古建材由浅表Ⅰ区至浅表Ⅲ区降解程度整体呈下降趋势。古建筑落叶松木材浅表层径向劣化存在明显差异,通过分析木材浅表层化学组分变化,可探究木材化学组分径向演变规律,为古建筑服役木构件的现场劣化评估提供技术支撑。

关键词: 古建筑木材, 落叶松, 浅表层, 自然老化, 化学组分

Abstract:

Objective: This study aims to investigate the degradation and variation regularity of chemical composition on the shallow surface of Larix gmelinii (larch) wood used in ancient buildings in different periods, and provide theoretical support for the deterioration assessment and scientific protection of ancient wooden buildings. Method: Larch, a common tree species used in ancient wooden buildings, was taken as the research object. The shallow surface layer of the wood was divided into the primary degradation layer (layer Ⅰ, radial direction 0?3 mm), the secondary degradation layer (layer Ⅱ, radial direction 3?6 mm), and the weak degradation layer (layer Ⅲ, radial direction 6?9 mm), and the research was conducted based on the chronological line of “the Qing Dynasty-the Republican Period-the Morden Period-fresh wood”. The chemical extraction, Fourier transform infrared spectrometer (FTIR) and X-ray diffraction (XRD) techniques were used to investigate the changes in the chemical composition content and crystallinity of cellulose on the shallow surface of larch wood used in ancient buildings in different period. Result: Compared with the fresh wood (22#), the lignin and holocellulose on the shallow surface of larch wood used in ancient buildings in different periods exhibited significant degradation, and the degree of lignin degradation was more significant than that of holocellulose. Some wood used in ancient buildings had more significant degradation of hemicellulose. Due to the degradation of chemical composition in the amorphous region of cellulose, the crystallinity of cellulose increased to a certain extent compared with the fresh wood. The comprehensive degradation degree of chemical composition on the shallow surface of larch wood used in ancient buildings in different periods was as follows: Qing Dynasty (17#) > Republican Period (3#) > Morden Period (15#). In the same period, the degradation degree of larch wood used in ancient buildings from the shallow surface layer Ⅰ to shallow surface layer Ⅲ showed a downward trend. The degradation degree of the wood during the Qing Dynasty in the shallow surface layer Ⅰ (17-1#) was the most severe. The lignin and holocellulose content of the wood during the Qing Dynasty (17-1#) were 0.72 and 0.87, respectively, of the fresh wood (22#), and the crystallinity of cellulose increased by 17.80% compared with the fresh wood (22#). The wood during the Morden Period (15#) had the least degradation degree. The lignin and holocellulose content in the shallow surface layer Ⅰ (15-1#) were 0.94 and 0.86, respectively, of the fresh wood (22#), and the crystallinity of cellulose increased by 11.28% compared with the fresh wood (22#). The test results of the service wood components of ancient buildings confirmed that the degradation of chemical composition on the shallow surface of larch wood used in ancient buildings increased over time. Compared with the fresh wood (N1), the crystallinity of cellulose the larch wood during the Qing Dynasty (Oj1) and the Morden Period (Oj2) had increased by 32.39% and 28.95%, respectively. Among them, the degradation of eave columns (Oy1) was more severe than that of golden columns (Oj1), and the crystallinity of cellulose in eave columns and golden columns had increased by 35.51% and 32.39% respectively. Conclusion: Compared with the fresh wood, the chemical composition on the shallow surface of larch wood used in ancient buildings in different periods has significantly degraded. The degree of degradation gradually increases over time, and the comprehensive degradation degree shows a downward trend from shallow surface layer Ⅰ to shallow surface layer Ⅲ in the same period. There are significant differences in the radial deterioration of the shallow surface layer of larch wood used in ancient buildings. By analyzing the changes in the chemical composition on the shallow surface, the radial evolution of chemical composition of wood can be explored, providing a technological support for on-site deterioration assessment of wooden composition used in ancient buildings.

Key words: ancient architectural wood, Larix gmelinii, shallow surface, natural aging, chemical composition

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