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Parabolic modeling of the pultrusion process with thermal property variation

机译:热特性变化对拉挤成型过程的抛物线建模

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Pultrusion is a manufacturing method for fiber-reinforced composite with constant cross-section. In this process, a fiber creel is impregnated in a resin bath and passes through a heated die with a constant pulling force and the elevated die temperature induces the curing-resin process. At the present work the effect of variable properties (thermal conductivity and volumetric heat capacity) during the pultrusion process of thermoset-ting composite materials is numerically studied. The thermal properties are considered as a function of both temperature and degree of cure distributions inside the carbon/epoxy matrix composites. A two-dimensional parabolic model using the finite element method to solve the energy and degree of cure transport equations was used. These two equations are coupled by a source term from resin curing exothermic reaction. The resin cure kinetics and the properties that are temperature-dependent are both modeled by expressions obtained from the literature. The computational domain is discretized using an unstructured mesh with triangular elements and an adaptive refinement. Iterative algorithms are used to solve the algebraic equation system. Results showed that as the temperature and degree of cure along the die extension increase the volumetric heat capacity and the thermal conductivity also elevate. The influence of the pulling speed and the die temperature in the thermal property variation is also analyzed. It is verified that the temperature profile at the pultruded bar centerline for the variable property case is smoother than the constant one, similarly when the pulling speed is increased. The degree of cure development is delayed for the variable property simulation, requiring a larger die length to reach a suitable degree of cure design value. Moreover, the proper knowledge of these characteristics allows a better pultrusion process design.
机译:拉挤成型是具有恒定横截面的纤维增强复合材料的制造方法。在该过程中,纤维筒架浸渍在树脂浴中,并以恒定的拉力穿过加热的模具,升高的模具温度引发了固化树脂的过程。在目前的工作中,数值研究了热固性复合材料拉挤成型过程中可变性质(导热系数和体积热容)的影响。热性质被认为是温度/碳/环氧树脂基复合材料内部固化分布程度的函数。使用二维有限元方法的抛物线模型来求解能量和固化传输方程的程度。这两个方程由树脂固化放热反应的源项耦合。树脂固化动力学和与温度有关的性质均通过从文献中获得的表达式来建模。使用具有三角形元素的非结构化网格和自适应细化来离散化计算域。迭代算法用于求解代数方程组。结果表明,随着温度和沿模头延伸的固化程度的增加,体积热容和热导率也会提高。还分析了拉拔速度和模具温度对热性能变化的影响。可以证明,对于拉杆中心线,在可变特性的情况下,温度曲线比恒定温度曲线更平滑,这与拉速提高时类似。对于可变特性模拟,固化发展的程度被延迟,需要更大的模具长度才能达到合适的固化设计值的程度。此外,对这些特性的适当了解可以实现更好的拉挤成型工艺设计。

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