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Airship and Hot Air Balloon Real Time Envelope Shape Prediction through a Cloth Simulation Technique

机译:飞艇和热空气气球实时包络形状通过布仿真技术预测

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The flight simulation of airships and hot air balloons usually considers the envelope geometry as a fixed shape, whose volume is eventually reduced by ballonets. However, the dynamic pressure or helium leaks in airships, and the release of air to allow descent in hot air balloons can significantly change the shape of the envelope leading to potential dangerous situations. In fact, in case of semi-rigid and non-rigid airships a reduction in envelope internal pressure can reduce the envelope bending stiffness leading to the loss of the typical axial-symmetric shape. For hot air balloons thing goes even worse since the lost of internal pressure can lead to the collapsing of the balloon shape to a sort of vertically stretched geometry (similar to a torch) which is not able to sustain the attached basket and its payload. These effect should be considered in simulations, however to compute in real time the envelope shape with Finite Element Methods is a complex and demanding task due to the high deformations, complex fabric model, and wrinkling effects. A possible solution to overcome this problem is to apply a Cloth Simulation Technique (CST) to the prediction of the envelope behaviour. This paper describes how such a model can be implemented for airship envelops and hot air balloons shape predictions. Appropriate algorithms have been developed in Matlab and validation test have been conducted. Results show that this model can provide qualitatively good results, in agreement with the experience and the physics of the problem.
机译:飞艇和热空气气球的飞行模拟通常认为包络几何形状作为固定形状,其体积最终通过气球减少。然而,飞艇中的动态压力或氦气泄漏,以及空气释放以允许在热空气气球中下降可以显着改变信封的形状,导致潜在的危险情况。实际上,在半刚性和非刚性飞艇的情况下,包膜内部压力的减小可以减少包络弯曲刚度,导致典型的轴对称形状的损失。对于热空气气球,由于内部压力的损失可能导致气球形状的坍塌到一种垂直拉伸的几何形状(类似于焊炬),因此更糟糕的是,这是不可能维持连接的篮筐的垂直拉伸的几何形状和其有效载荷。这些效果应在模拟中考虑,但是在实时计算具有有限元方法的包络形状是由于高变形,复杂织物模型和皱纹效果的复杂和苛刻的任务。克服这个问题的可能解决方案是将布料仿真技术(CST)应用于包络行为的预测。本文介绍了如何为飞艇包围和热空气气球形状预测实施这种模型。已经在MATLAB中开发了适当的算法,并进行了验证测试。结果表明,该模型可以在与问题的经验和物理协议一致的情况下提供定性良好的结果。

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