Rheological parameters and characteristics of bamboo in compression perpendicular to grain under hot-pressing process

Springer Science and Business Media LLC - Tập 25 - Trang 313-325 - 2020
Feng Jin1, Guoqing Song1, Zhuoping Shao1
1School of Forestry and Landscape, Anhui Agricultural University, Hefei, China

Tóm tắt

Bamboo with high specific strength is a renewable biomaterial. Studying the rheological properties of bamboo is helpful to improve the performance and quality of bamboo products. In this paper, four-element Burgers model was applied to describe the creep behavior of moso bamboo (Phyllostachs pubescens) in compression perpendicular to grain under hot-pressing process. The relationship between creep components and experimental factors (temperature, moisture content and stress level) was investigated. More importantly, four rheological parameters in Burgers model were also determined at different temperatures, moisture contents and stress levels. And the effect of experimental factors on rheological parameters was quantitatively explored. The results showed that, when compressive stress was below the yield limit, the amount of three components of creep was proportional to experimental factors, but the increase in temperature and moisture content could reduce the proportion of elastic deformation, and improve the proportion of viscoelastic deformation and viscous deformation. Besides, rheological parameters were insensitive to stress level when temperature and moisture content remained unchanged. But they were greatly affected by temperature and moisture content, presenting a linear inverse proportion to them.

Tài liệu tham khảo

Bailey, W.J., Weir, I.S.: Investigation of methods for direct rheological model parameter estimation. J. Pet. Sci. Eng. 21(1–2), 1–13 (1998) Blanchet, P., Gendron, G., Cloutier, A., Beauregard, R.: Numerical prediction of engineered wood flooring deformation. Wood Fiber Sci. J. Soc. Wood Sci. Technol. 37(3), 484–496 (2005) Chassagne, P., Bou-Saïd, E., Jullien, J., Galimard, P.: Three dimensional creep model for wood under variable humidity—numerical analyses at different material scales. Mech. Time-Depend. Mater. 9, 203–223 (2006) De Magistris, F., Salmén, L.: Mechanical behaviour of wet wood in sequences of compression and combined compression and shear. Nord. Pulp Pap. Res. J. 21(2), 231–236 (2006) Dornyak, O.R.: Modeling of the rheological behavior of wood in compression processes. J. Eng. Phys. Thermophys. 76(3), 648–654 (2003) Dubois, F., Randriambololona, H., Petit, C.: Creep in wood under variable climate conditions: numerical modeling and experimental validation. Mech. Time-Depend. Mater. 9(2–3), 173–202 (2005) Fortino, S., Mirianon, F., Toratti, T.: A 3d moisture-stress fem analysis for time dependent problems in timber structures. Mech. Time-Depend. Mater. 13(4), 333–356 (2009) Fortino, S., Hradil, P., Salminen, L.I., De Magistris, F.: A 3D micromechanical study of deformation curves and cell wall stresses in wood under transverse loading. J. Mater. Sci. 50(1), 482–492 (2015) Fukuta, S., Takasu, Y., Sasaki, Y., Hirashima, Y.: Compressive deformation process of Japanese cedar (cryptomeria japonica). Wood Fiber Sci. J. Soc. Wood Sci. Technol. 39(4), 548–555 (2007) Gao, H., Wang, F.L., Shao, Z.P.: Study on the rheological model of Xuan paper. Wood Sci. Technol. 50(2), 427–440 (2016) Gao, H., Song, Y.M., Wang, Q.W., et al.: Rheological and mechanical properties of wood fiber-PP/PE blend composites. J. For. Res. (English edition) 19(4), 315–318 (2008) Gibson, L.J., Ashby, M.F.: Cellular Solids: Structure and Properties. Cambridge University Press, Cambridge (1999) Hanhijärvi, A., Mackenzie-Helnwein, P.: Computational analysis of quality reduction during drying of lumber due to irrecoverable deformation. I: Orthotropic viscoelastic-mechanosorptive-plastic material model for the transverse plane of wood. J. Eng. Mech. 129(9), 996–1005 (2003) Haque, M.N., Tag, L., Keep, L.B., et al.: Model fitting for visco-elastic creep of Pinus radiata during kiln drying. Wood Sci. Technol. 34(5), 447–457 (2000) Hassani, M.M., Wittel, F.K., Hering, S., et al.: Rheological model for wood. Comput. Methods Appl. Mech. Eng. 28, 1032–1060 (2015) Huc, S., Hozjan, T., Svensson, S.: Rheological behavior of wood in stress relaxation under compression. Wood Sci. Technol. 52, 793–808 (2018) Jain, S.K., Kurhekar, S.P., Kothe, S.: Effect of dimensions of bamboo on their strength properties. Int. J. Agric. Eng. 8(2), 215–219 (2015) Kamke, F.A., Kutnar, A.: Influence of stress level on compression deformation of wood in 170 °C transient steam conditions. Wood Mat. Sci. Eng. 6(3), 105–111 (2011) Khechiba, K., Mamou, M., Hachemi, M., et al.: Effect of Carreau–Yasuda rheological parameters on subcritical Lapwood convection in horizontal porous cavity saturated by shear-thinning fluid. Phys. Fluids 29(6), 508–521 (2017) Kúdela, J., Rousek, R., Rademacher, P., Rešetka, M., Dejmal, A.: Influence of pressing parameters on dimensional stability and density of compressed beech wood. Eur. J. Wood Prod. 76, 1241–1252 (2018) Lewandowski, K., Piszczek, K., Zajchowski, S., et al.: Rheological properties of wood polymer composites at high shear rates. Polym. Test. 51, 58–62 (2016) Mackenzie-Helnwein, P., Hanhijärvi, A.: Computational analysis of quality reduction during drying of lumber due to irrecoverable deformation. II: Algorithmic aspects and practical application. J. Eng. Mech. 129(9), 1006–1016 (2003) Melo, R.R.D., Cláudio, H.S.D.M.: Rheological behavior of wood and wood based materials. Rev. Ciênc. Da Madeira 1(1), 25–40 (2010) Moutee, M., Fortin, Y., Fafard, M.: A global rheological model of wood cantilever as applied to wood drying. Wood Sci. Technol. 41(3), 209–234 (2007) Moutee, M., Fafard, M., Fortin, Y., Laghdir, A.: Modeling the creep behavior of wood cantilever loaded at free end during drying. Wood Fiber Sci. 37(3), 521–534 (2005) Pearson, R.G.: Time dependent properties. In: Oliver, J.F. (ed.) Adhesion in Cellulosic and Wood-Based Composites. NATO Conference Series (Series VI: Materials Science), vol. 3. Springer, Boston, MA (1981) Ranta-Maunus, A.: Rheological behavior of wood in directions perpendicular to the grain. Mater. Struct. 26(6), 362–369 (1993) Schmidt, J., Kaliske, M.: Models for numerical failure analysis of wooden structures. Eng. Struct. 31, 571–579 (2009) Shao, Z.P.: Variable parameter rheological model of wood. Wood Sci. Technol. 39(1), 19–26 (2005) Shao, Z.P., Wang, F.L.: Mechanical characteristics of bamboo structure and its components. In: The Fracture Mechanics of Plant Materials, pp. 125–130. Springer, Singapore (2018) Svensson, S., Toratti, T.: Mechanical response of wood perpendicular to grain when subjected to changes of humidity. Wood Sci. Technol. 36, 145–156 (2002) Tabarsa, T.: Compression Perpendicular-to-Grain Behaviour of Wood. Ph.D. Thesis, Forestry and Environmental Management, the University of New Brunswick, Canada (1999) Tancrède, A., Gronvold, A., Arie, V.D.L., Clair, B., Montero, C.: Contribution of cellulose to the moisture-dependent elastic behaviour of wood. Compos. Sci. Technol. 138, 151–160 (2017) Toratti, T., Svensson, S.: Mechano-sorptive experiments perpendicular to grain under tensile and compressive loads. Wood Sci. Technol. 34, 317–326 (2000) Vidal-Sallé, E., Chassagne, P.: Constitutive equations for orthotropic nonlinear viscoelastic behaviour using a generalized Maxwell model application to wood material. Mech. Time-Depend. Mater. 11(2), 127–142 (2007) Zhang, W.F., Jiang, Z.H., Wang, G., Cheng, H.T., Zhang, D.: Radial compression mechanical properties of bamboo-culm by ring stiffness. J. Beijing For. Univ. 35(1), 119–122 (2013) Zhou, Y., Fushitani, M., Kubo, T., Ozawa, M.: Bending creep behavior of wood under cyclic moisture changes. J. Wood Sci. 45(2), 113–119 (1999)