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Variable Stiffness Springs for Energy Storage Applications

机译:储能应用中的可变刚度弹簧

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Theory suggests an inverse relation between the stiffness and the energy storage capacity for linear helical springs: reducing the active length of the spring by 50% increases its stiffness by 100%, but reduces its energy storage capacity by 50%. State-of-the-art variable stiffness actuators used to drive robots are characterized by a similar inverse relation, implying reduced energy storage capacity for increased spring stiffness. This relation limits the potential of the variable stiffness actuation technology when it comes to human performance augmentation in natural tasks, e.g., jumping, weight-bearing and running, which may necessitate a spring exoskeleton with large stiffness range and high energy storage capacity. In this paper, we theoretically show that the trade-off between stiffness range and energy storage capacity is not fundamental; it is possible to develop variable stiffness springs with simultaneously increasing stiffness and energy storage capacity. Consistent with the theory, we experimentally show that a controllable volume air spring, has a direct relation between its stiffness range and energy storage capacity. The mathematical conditions presented in this paper may be used to develop actuators that could bypass the limited energy storage capacity of current variable stiffness spring technology.
机译:理论表明,线性螺旋弹簧的刚度与能量存储能力成反比关系:将弹簧的有效长度减少50%,会使弹簧的刚度增加100%,但将能量存储能力减少50%。用于驱动机器人的最先进的可变刚度执行器的特征在于相似的逆关系,这意味着降低的储能能力可提高弹簧的刚度。这种关系限制了可变刚度致动技术在自然任务(例如跳跃,承重和奔跑)中的人类性能增强方面的潜力,这可能需要具有较大刚度范围和高储能能力的弹簧外骨骼。本文从理论上表明,刚度范围和储能能力之间的权衡不是根本性的。可以开发出刚度和能量存储能力同时提高的可变刚度弹簧。与该理论一致,我们通过实验证明了可控体积的空气弹簧在其刚度范围和储能能力之间具有直接关系。本文介绍的数学条件可用于开发可绕过当前可变刚度弹簧技术有限的储能能力的执行器。

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