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PROCESSING OF HIGHLY FILLED ENERGETIC COMPOSITIONS SIMULATION OF A DOUBLE CO-ROTATING SCREW EXTRUDER AND A COMPLEX DIE DESIGN

机译:加工高度填充的精力组合物模拟双共旋螺杆挤出机和复合模具设计

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At TNO Prins Maurits Laboratory research work has been performed on extrusion and extrusion rheometry for several years. A Theysohn co-rotating self-wiping 45 mm twin screw extruder is used for production and a Bohlin-Rosand twin bore capillary extrusion rheometer (CER) for characterisation. We started to work with thermoplastic elastomers (TPE's) because of an international trend towards the development and application of propellants using TPE's as a binder matrix for reasons of filler recovery at the end of service life. Another reason is that in extrusion processing, less solvent is needed compared to the traditional way of processing, which is beneficial from an environmental point of view. For the safe processing of energetic materials using an extruder it is important to keep pressure and temperature within safe boundaries. Although pressures and temperatures are measured during extrusion it is preferred to predict these parameters before processing. Several years ago we only used a simple model to approximate the head pressure value for ram extrusion using capillary rheometry test results as input. The result was promising. Nowadays we use commercially available simulation software. The twin screw extruder simulation software Ludovic of SCC and several Flow2000 modules of Compuplast have been used for analysing the results presented in this paper. The results of extrusion trials with a TPE bonded HE-simulant and a TPE based LOVA propellant are compared with the predictions made with the simple approximation model and with the models used in the Flow2000 and Ludovic simulations. It can be concluded that the rheology of highly filled materials may be described with a power law model and Arrhenius or exponential temperature dependency in the shear rate range of interest. Processing pressures and temperatures can be estimated using Flow2000 and Ludovic if the physical properties and rheology of the material and the processing parameters are known. Results obtained with Flow2000 correspond better with the measured pressures during ram extrusion experiments than the Benbow approach. The predictions made with Ludovic show the same trends and are in the same order of magnitude as experimental results but more experiments are needed to evaluate the software correctly.
机译:在TNO王子Maurits的实验室的研究工作已经在挤出和挤出流变几年来进行的。甲Theysohn共旋转自擦拭45毫米双螺杆挤出机用于生产和的Bohlin-ROSAND双孔毛细管流变仪挤出(CER)用于表征。我们开始用,因为对发展和推进剂的应用国际趋势热塑性弹性体(TPE的)工作中使用的TPE作为在使用寿命结束填料复苏的原因粘合剂基体。另一个原因是,在挤出加工,进行比较处理的传统方式,这从环境观点来看有利的需要较少的溶剂。对于使用挤出机的高能材料的安全处理是要保持安全边界内的压力和温度是重要的。虽然压力和温度下在挤出期间被测量它是优选的加工前,预测这些参数。几年前,我们只用了一个简单的模型来近似使用毛细管流变仪的测试结果输入柱塞挤出头压力值。其结果是有希望的。现在我们用市售的模拟软件。双螺杆挤出机仿真软件SCC的朱利和Compuplast的几个Flow2000模块已经用于分析在本文呈现的结果。挤压试验的一个TPE结果结合HE-模拟和TPE基于LOVA推进剂与用简单的近似模型,并与在Flow2000和朱利模拟中使用的模型进行的预测比较。由此可以得出的结论是高度填充的材料的流变性可与在感兴趣的剪切速率范围内的幂律模型和阿仑尼乌斯或指数温度相关性进行说明。处理的压力和温度可以使用Flow2000和朱利如果物理性能和材料的流变性和加工参数是已知的来估计。与Flow2000获得的结果期间柱塞挤出实验比本博方法对应与所述测得的压力更好。与朱利作出的预测显示了同样的趋势,并在幅度上的作为实验的结果,但更多的实验,需要正确评估该软件的顺序相同。

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