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两步热等静压致密化工艺制备出了无孔隙的全致密木材,其物理和力学性能得到了增强。

Two-step hot isostatic pressing densification achieved non-porous fully-densified wood with enhanced physical and mechanical properties.

作者信息

Maturana J C, Guindos P, Lagos J, Arroyave C, Echeverría F, Correa E

机构信息

Grupo de Investigación Materiales con Impacto - MAT&MPAC, Facultad de Ingenierías, Universidad de Medellín UdeMedellín, Carrera 87 No. 30 - 65, Medellín, 050026, Colombia.

Grupo de Investigación Valoración y Aprovechamiento de la Biodiversidad - VALORABIO, Universidad Tecnológica del Chocó UTCH, Carrera 22 No. 18B - 10, Quibdó, Colombia.

出版信息

Sci Rep. 2023 Aug 31;13(1):14324. doi: 10.1038/s41598-023-41342-8.

Abstract

A new two-step densification method for wooden materials entitled hot isostatic pressing (HIP) is proposed. This method has the advantage over previous densification methods that can achieved almost the full densification of wood, reaching values up to 1.47 kg/m, which exceeds any value ever reported for a hardwood species. Furthermore, it can preserve about 35% of the original volume, in comparison to other methods which typically can preserve only 20% of the volume. Although not tested in this investigation, in principle, the HIP method should be capable of densifying any shape of wood including circular and tubular cross sections because the main densification mechanism is based on gas pressure that is equally exerted in the entire surface, rather than localized mechanical compression, which can only be effective with rectangular cross sections. In the first stage of the two-step proposed method, the compressive strength of the anatomical wood structure is reduced by delignification, and, in the second, a full densification is achieved by hot isostatic pressing under argon atmosphere. Three tropical hardwood species with distinct anatomical characteristics and properties were used to test the method. The HIP-densified wood's microstructural, chemical, physical, and mechanical properties were assessed. Apart from the high densification values and volume preservation, the results indicate that proposed method was effective for all the tested species, showing homogenous density patterns, stable densification without noticeable shape recovery, and enhanced mechanical properties. Future research should test the HIP method in softwoods and consider the ring orientation in order to enhance the control of the densified geometry.

摘要

提出了一种用于木质材料的名为热等静压(HIP)的新两步致密化方法。该方法优于先前的致密化方法,它能够使木材几乎完全致密化,密度值高达1.47千克/立方米,超过了以往报道的任何硬木树种的密度值。此外,与其他通常只能保留20%体积的方法相比,它能保留约35%的原始体积。尽管在本研究中未进行测试,但原则上,热等静压方法应该能够使任何形状的木材致密化,包括圆形和管状横截面,因为主要的致密化机制基于在整个表面均匀施加的气体压力,而不是局部机械压缩,局部机械压缩仅对矩形横截面有效。在所提出的两步法的第一阶段,通过脱木质素降低木材解剖结构的抗压强度,在第二阶段,在氩气气氛下通过热等静压实现完全致密化。使用了三种具有不同解剖特征和性能的热带硬木树种来测试该方法。对热等静压致密化木材的微观结构、化学、物理和力学性能进行了评估。除了高致密化值和体积保留外,结果表明所提出的方法对所有测试树种均有效,显示出均匀的密度模式、稳定的致密化且无明显的形状恢复,以及增强的力学性能。未来的研究应在软木中测试热等静压方法,并考虑年轮方向,以加强对致密化几何形状的控制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cba1/10471585/bb5e967e4903/41598_2023_41342_Fig1_HTML.jpg

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