Towards improved understanding of PEG-impregnated waterlogged archaeological wood: A model study on recent oak

Pub Date : 2010-02-01 DOI:10.1515/hf.2010.024
Ingela Bjurhager, Jonas Ljungdahl, L. Wallström, E. Gamstedt, L. Berglund
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引用次数: 62

Abstract

Abstract To prevent deformation and cracking of waterlogged archaeological wood, polyethylene glycol (PEG) as a bulk impregnation agent is commonly applied. PEG maintains the wood in a swollen state during drying. However, swelling of wood can reduce its mechanical properties. In this study, the cellular structure of oak and cell wall swelling was characterized by scanning electron microscopy (SEM) of transverse cross-sections, and the microfibril angle of oak fibers was determined by wide angle X-ray scattering (WAXS). Samples of recent European oak (Quercus robur L) impregnated with PEG (molecular weight of 600) were tested in axial tension and radial compression. Mechanical tests showed that axial tensile modulus and strength were only slightly affected by PEG, whereas radial compressive modulus and yield strength were reduced by up to 50%. This behavior can be explained by the microstructure and deformation mechanisms of the material. Microfibril angles in tensile test samples were close to zero. This implies tensile loading of cellulose microfibrils within the fiber cell walls without almost any shear in the adjacent amorphous matrix. These results are important because they can help separate the impact of PEG on mechanical properties from that of chemical degradation in archaeological artifacts, which display only small to moderate biological degradation.
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提高对peg浸渍的浸水考古木材的认识:对近代橡木的模型研究
摘要为防止考古木材浸水变形开裂,常用聚乙二醇(PEG)作为块状浸渍剂。PEG使木材在干燥过程中保持膨胀状态。然而,木材的膨胀会降低其机械性能。本研究采用扫描电镜(SEM)对橡木的细胞结构和细胞壁膨胀进行了横断面的表征,并用广角x射线散射(WAXS)测定了橡木纤维的微纤维角。用分子量为600的聚乙二醇(PEG)浸渍近代欧洲栎(Quercus robur L)样品,进行了轴向拉伸和径向压缩试验。力学试验表明,聚乙二醇对轴向拉伸模量和强度的影响很小,而对径向压缩模量和屈服强度的影响高达50%。这种行为可以用材料的微观结构和变形机制来解释。拉伸试样中的微纤维角接近于零。这意味着纤维素微原纤维在纤维细胞壁内的拉伸载荷几乎没有在邻近的无定形基质中发生任何剪切。这些结果很重要,因为它们可以帮助将聚乙二醇对机械性能的影响与考古文物中化学降解的影响分开,这些文物只显示出小到中度的生物降解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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