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INFLUENCE OF THE SUBTENDED ANGLE ON THE BEHAVIOR OF FOLDED TAPE SPRINGS

机译:斜角对折带弹簧性能的影响

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Tape springs are thin-walled structures with zero longitudinal and constant transverse curvature. Folding them twice and connecting both ends creates a tape loop which acts as a linear guide. When using a tape spring with a non-constant cross-section, a force generator can be created. At this time there is insufficient understanding of the influence of the tape spring's cross-section on its behavior. This study investigates the influence of the subtended angle on the tape spring's behavior, especially the energy distribution and the fold radius. A tape spring is once folded in a finite element model. By performing a curvature analysis of this folded geometry, the different regions within a tape spring are identified. This information is used to identify the amount of strain energy of each region. Finally, the fold radius and fold angle are determined by analyzing the geometry of the bent region. The analysis showed that the energy within the transition regions cannot be neglected. The energy within these regions as ratio of the total energy and the length of the transition regions both increase with the subtended angle. It is also shown that the fold radius is not constant when the subtended angle is small. Therefore, when designing a force generator using tape loops, the energy within the transition regions should be taken into account. The subtended angle should not be small to ensure a constant radius.
机译:板簧是具有零纵向和恒定横向曲率的薄壁结构。将它们折叠两次并连接两端会创建一个带环,该带环可作为线性导轨。当使用横截面不恒定的带状弹簧时,会产生力产生器。这时,对于带状弹簧的横截面对其行为的影响还没有足够的了解。这项研究调查了对角对带状弹簧性能的影响,特别是能量分布和折叠半径。一次将带状弹簧折叠成有限元模型。通过对该折叠的几何形状进行曲率分析,可以识别带状弹簧内的不同区域。该信息用于识别每个区域的应变能大小。最后,通过分析弯曲区域的几何形状来确定折叠半径和折叠角度。分析表明,过渡区域内的能量不能忽略。这些区域内的能量(占总能量的比)和过渡区域的长度均随对向角的增加而增加。还显示出当对向角小时,折叠半径不是恒定的。因此,在设计使用带环的力发生器时,应考虑过渡区域内的能量。对角不应太小以确保恒定的半径。

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