提出统一框架,让触觉模拟更真实地呈现材料的时变特性。
Haptic Rendering of Fractional-Order Viscoelasticity: Passivity and Rendering Fidelity

- 基于分数阶导数构建触觉渲染模型,确保系统稳定。
- 理论推导出保持稳定性的条件,且可推广至传统模型。
- 实验验证了稳定性边界与触觉感知真实度,适合医学仿真应用。
具有蠕变和应力松弛特性的粘弹性材料的触觉渲染对医疗训练等应用至关重要。分数阶粘弹性模型以少量参数有效描述固有的时间依赖动力学,并能自然捕捉记忆效应。本研究分析了在有限记忆离散化下,分数阶粘弹性模型的稳定性与渲染性能。基于Grünwald-Letnikov导数,推导出分数阶标准线性固体(FO-SLS)模型在短记忆离散化下的闭式表达式,以保证触觉渲染的被动性。同时给出了该模型的有效刚度与阻尼的符号表达式。所得的稳定性条件构成一个统一框架,广义化了此前针对整数阶Kelvin-Voigt、Maxwell和SLS模型的结论,因后者均为新条件的特例。此外,还提供了理论稳定性边界的实验验证及人类受试者对FO-SLS模型感知真实度的评估。总体而言,本研究建立了短记忆离散化下分数阶粘弹性渲染的统一理论框架与实验验证。
原文摘要 · Abstract (English)
Haptic rendering of viscoelastic materials that exhibit creep and stress relaxation is crucial for many applications, such as medical training with realistic biological tissue models. Fractional-order viscoelastic models provide an effective means of describing intrinsically time-dependent dynamics with few parameters, as these models can naturally capture memory effects. In this study, we present analyses of passivity and rendering performance for fractional-order viscoelastic models under finite-memory discretization. We derive closed-form expressions to ensure the passivity of haptic rendering with a fractional-order (FO) standard linear solid (SLS) model based on Grunwald-Letnikov derivative under short-memory discretization. We also provide symbolic expressions for the effective stiffness and damping of such FO-SLS models. The resulting passivity conditions constitute a unified framework that generalizes previously reported results for integer-order Kelvin-Voigt, Maxwell, and SLS models, since these results are special cases of the newly derived condition. Furthermore, we provide experimental validations of the theoretical passivity bounds and human-subject evaluations of perceived realism of FO-SLS models. Overall, this study establishes a unified theoretical framework and experimental evaluations for FO viscoelastic rendering under short-memory discretization.
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