浸渍胶膜纸覆贴超薄纤维板工艺对其表面胶合强度的影响
Effect of Pressing Process of Impregnated Paper on Surface Bonding Strength of Ultra-Thin Fiberboard
- 2024年38卷第6期 页码:15-22
DOI: 10.12326/j.2096-9694.2024072
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1.东北林业大学木质新型材料教育部工程研究中心,黑龙江哈尔滨 150040
2.山东新港企业集团有限公司,山东临沂 276000
纸质出版日期: 2024-11-30 ,
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卢泽潭, 魏明, 刘亮先, 等. 浸渍胶膜纸覆贴超薄纤维板工艺对其表面胶合强度的影响[J]. 木材科学与技术, 2024,38(6):15-22.
LU ZETAN, WEI MING, LIU LIANGXIAN, et al. Effect of Pressing Process of Impregnated Paper on Surface Bonding Strength of Ultra-Thin Fiberboard. [J]. Chinese journal of wood science and technology, 2024, 38(6): 15-22.
超薄纤维板是近年来开发的一种高精深加工和高附加值的木质新材料,具有厚度薄、密度高和表面质量平整光洁的特点,已经广泛应用于饰面材料领域。为了探究三聚氰胺浸渍胶膜纸覆贴超薄纤维板(简称饰面板)的关键参数及表面胶合性能机制,设置
L
16
(4
5
)正交试验探讨热压温度、时间和压力工艺因素,以及单因素试验分析超薄纤维板砂光工艺、初始含水率对饰面板表面胶合强度的影响。结果表明,饰面板的表面胶合强度主要受热压温度的影响,试验优化条件(热压时间10 s、温度205℃、压力2.7 MPa)下,表面胶合强度达到最大值1.95 MPa。采用180目砂光带处理超薄纤维板的表面胶合强度比未砂光的能提高1.5倍;超薄纤维板的初始含水率在8%左右时,表面胶合强度最佳。同时,扫描电镜(SEM)、接触角结果表明超薄纤维板在砂光处理后表面更加粗糙,初始含水率在8%左右时亲水性更强,有利于超薄纤维板与三聚氰胺浸渍胶膜纸形成更强的机械互锁作用和界面润湿作用。
The ultra-thin fiberboard
a novel wood material made with high precision
advanced processing
and high added value
has emerged in recent years. This material features a thin thickness
high density
and a smooth surface
making it widely applicable in the decorative materials industry. To investigate the critical parameters and the underlying mechanism of surface bonding performance for melamine-impregnated film paper-coated ultra-thin fiberboard
an
L
16
(4
5
) orthogonal test was conducted to examine the effects of hot-pressing temperature
time
and pressure. Additionally
single-factor tests were employed to analyze the impact of the sanding process and the initial moisture content of the ultra-thin fiberboard on the surface bonding strength of the melamine-impregnated film paper-coated ultra-thin fiberboard. The results indicated that the surface bonding strength was primarily affected by the hot-pressing temperature. Under the optimal conditions (hot pressing time: 10 seconds
temperature: 205°C
pressure: 2.7 MPa)
the surface bonding strength reached its maximum value of 1.95 MPa. The surface bonding strength of ultra-thin fiberboard with 180-mesh sanding was 1.5 times higher than that without sanding. When the initial moisture content of the ultra-thin fiberboard was approximately 8%
the surface bonding strength was optimal. Furthermore
SEM and contact angle analysis revealed that sanding treatment increased surface roughness
while an initial moisture content of approximately 8% enhanced hydrophilicity
facilitating stronger mechanical interlocking and interfacial wetting between the ultra-thin fiberboard and the melamine-impregnated film paper.
超薄纤维板热压工艺砂光工艺初始含水率浸渍胶膜纸表面胶合强度
ultra-thin fiberboardhot-pressing processsanding treatment processinitial moisture contentimpregnated film papersurface bonding strength
张镭, 邹淼, 唐启恒, 等. 热压时间和温度对酚醛树脂型超薄高密度纤维板性能的影响[J]. 木材科学与技术, 2023, 37(1): 68-73.
ZHANG L, ZOU M, TANG Q H, et al. Effects of hot-pressing time and temperature on properties of phenolic resin ultra-thin high density fiberboards[J]. Chinese Journal of Wood Science and Technology, 2023, 37(1): 68-73.
零醛超薄高密度纤维板制造与应用技术[J]. 中国人造板, 2023, 30(8): 45.
Manufacturing and application technology of zero-formaldehyde ultra-thin high-density fiberboard[J]. China Wood-Based Panels, 2023, 30(8): 45.
李坚, 甘文涛, 王立娟. 木材仿生智能材料研究进展[J]. 木材科学与技术, 2021, 35(4): 1-14.
LI J, GAN W T, WANG L J. Research progress on wood biomimetic intelligent materials[J]. Chinese Journal of Wood Science and Technology, 2021, 35(4): 1-14. DOI:10.12326/j.2096-9694.2021051http://dx.doi.org/10.12326/j.2096-9694.2021051.
唐启恒, 邹淼, 徐盛栋, 等. 施胶量对异氰酸酯胶高密度纤维板性能的影响[J]. 木材科学与技术, 2022, 36(3): 40-45.
TANG Q H, ZOU M, XU S D, et al. Effect of isocyanate resin content on properties of high-density fiberboards[J]. Chinese Journal of Wood Science and Technology, 2022, 36(3): 40-45. DOI: 10.12326/j.2096-9694.2021177http://dx.doi.org/10.12326/j.2096-9694.2021177.
郑胜军. 超薄型高密度纤维板智能化生产技术与设备研究[J]. 造纸装备及材料, 2023, 52(2): 81-83.
ZHENG S J. Research on intelligent production technology and equipment of ultra-thin high density fiberboard[J]. Papermaking Equipment & Materials, 2023, 52(2): 81-83.
山东新港集团0.5mm超薄高密度纤维板成功下线[J]. 中国人造板, 2022, 29(8): 48.
“超薄高密度纤维板”通过新产品鉴定[J]. 中国人造板, 2017, 24(1): 30.
GUAN C, ZHANG H J, HUNT J F, et al. Determining shear modulus of thin wood composite materials using a cantilever beam vibration method[J]. Construction and Building Materials, 2016, 121: 285-289.
HUNT J F, ZHANG H J, HUANG Y. Analysis of cantilever-beam bending stress relaxation properties of thin wood composites[J]. BioResources, 2015, 10(2): 3131-3145.
LUO P, YANG C M, WANG T. Making ultra-thin high density fiberboard using old corrugated container with kraft lignin[J]. BioResources, 2022, 17(2): 2696-2704.
彭晓瑞, 张占宽. 塑膜增强薄木贴面高密度纤维板的工艺优化[J]. 木材工业, 2017, 31(4): 39-42.
PENG X R, ZHANG Z K. Process optimization of high density fiberboard overlaid with veneer reinforced using low density polyethylene films[J]. China Wood Industry, 2017, 31(4): 39-42. DOI: 10.19455/j.mcgy.20170409http://dx.doi.org/10.19455/j.mcgy.20170409.
詹先旭, 谢序勤, 叶交友, 等. 浸渍胶膜纸饰面胶合板和细木工板生产工艺[J]. 木材工业, 2016, 30(2): 57-59.
ZHAN X X, XIE X Q, YE J Y, et al. Technology of surface decorated plywood and blockboard overlaid with impregnated paper[J]. China Wood Industry, 2016, 30(2): 57-59. DOI: 10.19455/j.mcgy.201602018http://dx.doi.org/10.19455/j.mcgy.201602018.
邵雪婧. 覆贴超薄高密度纤维板的可饰面胶合板工艺优化研究[D]. 泰安: 山东农业大学, 2023.
卢希珍, 桂成胜, 方露, 等. 浸渍胶膜纸饰面细木工板的制备及性能[J]. 林业工程学报, 2022, 7(5): 74-79.
LU X Z, GUI C S, FANG L, et al. Preparation and performance of impregnated film paper veneered blockboard[J]. Journal of Forestry Engineering, 2022, 7(5): 74-79.
王春兰, 张晓坤. 影响三聚氰胺浸渍纸饰面板质量的因素分析[J]. 林业机械与木工设备, 2010, 38(10): 53-54.
WANG C L, ZHANG X K. Analysis of the factors influencing the quality of decorative melamine resin impregnated paper laminate[J]. Forestry Machinery & Woodworking Equipment, 2010, 38(10): 53-54.
池永亮. 浸渍胶膜纸饰面细木工板生产工艺及影响质量的主要因素分析[J]. 中国人造板, 2014, 21(4): 17-21.
CHI Y L. Production process and key quality factors of impregnated paper decorated blockboard[J]. China Wood-Based Panels, 2014, 21(4): 17-21.
吴义强. 木材科学与技术研究新进展[J]. 中南林业科技大学学报, 2021, 41(1): 1-28.
WU Y Q. Newly advances in wood science and technology[J]. Journal of Central South University of Forestry & Technology, 2021, 41(1): 1-28.
李海英. 高含水率木材用胶粘剂与胶接技术的研究[D]. 哈尔滨: 东北林业大学, 2004.
王蕊, 田飞宇, 徐德良, 等. 含水率对三聚氰胺甲醛树脂浸渍薄木贴面性能的影响[J]. 西北农林科技大学学报(自然科学版), 2020, 48(12): 64-71, 80.
WANG R, TIAN F Y, XU D L, et al. Effect of moisture content on overlaying performance of melamine formaldehyde resin impregnated thin veneer[J]. Journal of Northwest A & F University (Natural Science Edition), 2020, 48(12): 64-71, 80.
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