Itauba Wood Fiber (Mezilaurus lindaviana) and Itauba Wooden Board: A Survey on the Physical, Chemical, Thermal, and Mechanical Properties

IF 4.3 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
ACS Omega Pub Date : 2025-09-19 DOI:10.1021/acsomega.5c05179
Heitor Luiz Ornaghi Júnior, , , Matheus Poletto, , , Matheus de Prá Andrade*, , , Francisco Maciel Monticeli, , , Everton Hillig, , , Pierre Blanchet, , , Amirouche Sadaoui, , and , Ademir José Zattera, 
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Abstract

The aim of this research is to evaluate the physical, chemical, thermal, and mechanical properties of Itauba (Mezilaurus itauba) wood fiber and Itauba wooden board. The chemical composition presented 33, 29, and 10% lignin, cellulose, and hemicellulose, respectively. The thermal stability was found to be 250 °C for both atmospheres (air and nitrogen), and the simulated TG curve was similar to the one performed on a nitrogen atmosphere. Cone calorimetric results showed a higher steady state when compared to other wood fibers found in the literature with peak heat release rates of 281.762, 424.029, and 482.335 kW/m2 when exposed to constant levels of radiant heat flux of 25, 50, and 75 kW/m2 at similar weights and densities. Furthermore, X-ray diffraction (13.5% crystallinity) and mechanical tests (flexural and tensile Young’s modulus of 12010 and 969.9 MPa, respectively) were performed on the Itauba wooden board. The tensile results showed to be higher than propylene composites reinforced with 40% wood fiber found in the literature while the storage modulus obtained in the dynamic mechanical thermal analysis found to be higher (11.5 GPa at −130 °C) than most of the commercial thermoplastics used in the industry (polypropylene (9 × 102 MPa), high-density polyethylene (2 × 103 MPa), and polyvinyl chloride (3000 MPa)). This study showed the potential in using Itauba wooden boards in replacing many commercial products, mainly when an adequate mechanical performance is required.

Itauba木纤维(Mezilaurus lindaviana)和Itauba木板:物理、化学、热学和机械性能综述
本研究的目的是评价Itauba (Mezilaurus Itauba)木纤维和Itauba木板的物理、化学、热学和机械性能。木质素、纤维素和半纤维素的化学成分分别为33%、29%和10%。两种气氛(空气和氮气)的热稳定性均为250°C,模拟的热重曲线与氮气气氛的热重曲线相似。锥形量热法结果显示,与文献中发现的其他木材纤维相比,当暴露于相同重量和密度的恒定辐射热通量为25、50和75 kW/m2时,其峰值热释放率分别为281.762、424.029和482.335 kW/m2。此外,对Itauba木板进行了x射线衍射(结晶度13.5%)和力学测试(弯曲和拉伸杨氏模量分别为12010和969.9 MPa)。拉伸结果高于文献中发现的含有40%木纤维增强的丙烯复合材料,而动态机械热分析中获得的储存模量(- 130°C时11.5 GPa)高于工业中使用的大多数商业热塑性塑料(聚丙烯(9 × 102 MPa),高密度聚乙烯(2 × 103 MPa)和聚氯乙烯(3000 MPa))。这项研究表明,主要是在需要适当的机械性能时,使用Itauba木板取代许多商业产品的潜力。
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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来源期刊
ACS Omega
ACS Omega Chemical Engineering-General Chemical Engineering
CiteScore
6.60
自引率
4.90%
发文量
3945
审稿时长
2.4 months
期刊介绍: ACS Omega is an open-access global publication for scientific articles that describe new findings in chemistry and interfacing areas of science, without any perceived evaluation of immediate impact.
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