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Drying kinetics of poplar lumber during periodic hot-press drying

机译:周期热压干燥期间杨树木材干燥动力学

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The drying kinetics of poplar lumber was experimentally investigated as a function of drying temperature (115, 135, 160, 185 and 205 degrees C) during a periodic hot-press-drying process. Poplar lumber was dried under contact (compression ratio of 10%) and high-press states (compression ratio of 44%). Compared with the contact-state, the high-press-state showed higher drying rate and higher efficiency of removing free water than bound water in wood. Eight mathematical models from the literature were established to analyze the drying behavior. The Weibull model, with an average determination coefficient R-2 of 0.9958, fitted well for all applied drying conditions. The scale parameter decreased with increasing drying temperature and was lower for high-press-state drying compared with that for contact-state drying. Moisture diffusivity and activation energy were calculated according to the Weibull model. Diffusivity increased with increasing drying temperature, with the average value of 1.734 x 10(-6) and 3.313 x 10(-6) m(2)/s and activation energy of 34.79 and 32.85 kJ/mol for contact-state drying and high-press-state drying, respectively. Hot-press drying created an M-shaped curve of density distribution, with high density at the two surface regions gradually decreasing toward the core region. The contact state-dried wood showed increased density near the wood surface. Both average density and peak density improved in the case of high-press-state-dried wood. Furthermore, the hydrophilic index of wood for high-press-state drying was lower than that of the contact-state drying, and the opposite was true regarding crystallinity index. The hygroscopicity of high-press-dried poplar decreased with lower equilibrium moisture content and higher moisture excluding efficiency, compared with contact-state-dried poplar. The rapid, high-quality drying of poplar lumber through periodic hot-press was more potentially achieved by the high-press-state compared with contact-state drying.
机译:通过在周期性热压干燥过程中,通过实验研究杨树木材的干燥动力学作为干燥温度(115,135,160,185和205℃)的函数。杨树木材在接触(压缩比为10%)和高压态(压缩比为44%)下干燥。与接触状态相比,高压元件显示出更高的干燥速率和更高的去除自由水的效率而不是木材中的结合水。建立了来自文献的八种数学模型以分析干燥行为。 Weibull模型,平均测定系数R-2为0.9958,适用于所有施加的干燥条件。随着干燥状态干燥的增加而降低,测量参数随着干燥温度的增加而降低,与接触状态干燥相比。根据Weibull模型计算湿度扩散性和活化能量。扩散率随着干燥温度的增加而增加,平均值为1.734×10(-6)和3.313×10(-6)m(2)/ s和34.79和32.85kJ / mol的活化能量,用于接触状态干燥和高 - 分别对状态干燥。热压干燥产生了密度分布的M形曲线,两个表面区域的高密度逐渐降低朝向芯区域。接触状态干燥的木材在木表面附近显示出增加的密度。在高压固态干燥的木材的情况下,平均密度和峰密度的均匀性。此外,用于高压态干燥的木材的亲水指数低于接触状态干燥的纤维率,并且对于结晶性指数,相反是正确的。与接触状态干燥的杨树相比,高压干燥的杨树的吸湿性随着均衡的含水量降低和较高的水分效率而降低。与接触状态干燥相比,通过高压状态更潜在地实现杨树木材通过周期性热压的快速,高质量的干燥。

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