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Critical compressive stress for continuous fiber unidirectional composites

机译:连续纤维单向复合材料的临界压应力

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摘要

Dow and Rosen's work in 1965 formed an intellectual framework for compressive strength of unidirectional composites. Compressive strength was explained in terms of micro-buckling, in which filaments are beams on an elastic foundation. While groundbreaking, the discrepancy between model predictions and observed compressive strength is well known. This study builds on Dow and Rosen's model specifically with respect to the dominant shear mode instability. A new method that accounts for matrix thermal residual strain, matrix compressive and shear stresses, with associated reductions in tangent modulus due to matrix non-linearity, is proposed. The method is validated using a specific test case, which is conducted to precisely account for microscopic fiber alignment and matrix non-linearity. Accordingly, a method of measuring and accounting for a continuum of fiber misalignment is developed. Predictions are compared to literature values, with variations in fiber modulus, matrix modulus, and volume fraction. Good agreement is shown, both in terms of trend and magnitude. The approach successfully preserves initial in-plane shear stiffness, while showing that in-plane shear stiffness decreases significantly as compressive stress increases.
机译:陶氏和罗森在1965年的工作为单向复合材料的抗压强度形成了智力框架。用微屈曲来解释抗压强度,其中细丝是在弹性基础上的梁。开创性的同时,模型预测与观察到的抗压强度之间的差异是众所周知的。本研究建立在陶氏和罗森模型的基础上,特别是关于主导剪切模式的不稳定性。提出了一种考虑基质热残余应变,基质压应力和剪应力以及由于基质非线性而导致切线模量降低的新方法。该方法使用特定的测试案例进行了验证,该案例用于精确说明微观纤维对准和基体非线性。因此,开发了一种测量和解决连续纤维错位的方法。将预测值与文献值进行比较,并随纤维模量,基体模量和体积分数的变化而变化。在趋势和规模方面都显示出良好的一致性。该方法成功地保留了初始面内剪切刚度,同时表明面内剪切刚度随着压缩应力的增加而显着降低。

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