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The Study of Thermal Boundary Condition for CFRP Pressure Vessel with Metallic Liner during Manufacture Process

机译:含金属衬里CFRP压力容器制造过程中热边界条件的研究

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The heat convection was considered the main heat exchange type in the autoclave where CFRP pressure vessel was cured in this analysis. To determine the heat convection coefficient, it needed the combination of theoretical calculation and temperature test. In the theoretical calculation, the determination of the heat convection coefficient was considered as an inversion problem of thermal conduction. By adjusting convection coefficient value in the finite element calculation, optimization method was employed to obtain a good agreement between calculated temperature and measured temperature. In the temperature test, the metallic liner of CFRP pressure vessel was used as test component to record temperature data which was compared with the calculated temperature. The calculated results reveal that the maximum value in convection coefficient sequence is 19.87 W/m2/K; the minimum value is 0.16 W/m2/K; the maximum temperature deviation between calculation and test is 1.67 °C. The results present the equivalent thermal boundary condition for the simulation of curing process of CFRP pressure vessel.
机译:在此分析中,热对流被认为是固化了CFRP压力容器的高压釜中的主要热交换类型。要确定热对流系数,需要将理论计算和温度测试相结合。在理论计算中,热对流系数的确定被认为是导热的反演问题。通过在有限元计算中调节对流系数值,采用优化方法获得了计算温度与实测温度之间的良好一致性。在温度测试中,将CFRP压力容器的金属衬里用作测试组件,以记录温度数据,并将其与计算出的温度进行比较。计算结果表明,对流系数序列的最大值为19.87 W / m2 / K。最小值为0.16 W / m2 / K;计算和测试之间的最大温度偏差为1.67°C。结果为模拟CFRP压力容器的固化过程提供了等效的热边界条件。

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