Simulation and experiment of the degree of cure during CFRP pultrusion
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摘要: 碳纖維增強塑料(CFRP)拉擠成型過程中固化度和溫度變化為強耦合關系.通過差示掃描量熱(DSC)實驗計算得到模型所需的固化動力學參數,根據固化動力學和傳熱學理論建立了非穩態溫度場與固化動力學數學模型,采用有限元與有限差分相結合的方法和ANSYS求解耦合場的間接耦合法對拉擠工藝不同工況下CFRP固化度進行數值模擬.采用特殊設計制作的鋁毛細管封裝的布拉格光柵光纖(FBG)傳感器,屏蔽了荷載效應應變干擾,對CFRP溫度場實時檢測,從而計算得到實時固化度;同時采用索氏萃取實驗測定CFRP制品固化度.結果表明,模擬與實驗結果基本吻合.Abstract: The degree of cure and temperature are coupled during the pultrusion of carbon fiber reinforced plastics (CFRP). The models of unsteady temperature field and curing were established according to the curing kinetics and heat transfer theory. Kinetic parameters needed for simulation were obtained from differential scanning calorimetry (DSC) experiment. The finite element method, finite different method and indirect decoupling method based on ANSYS were implemented to simulate degree-of-cure profiles in CFRP during pultrusion. A fiber Bragg grating (FBG) sensor, encapsulated in the aluminum capillary, was employed to monitor the temperature of CFRP on real-time from which the real-time degree of cure was calculated. The degree of cure of CFRP was also measured by using Sorbitic extraction. It is found that the simulated results are in good agreement with the experimental ones.
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