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Variation in setal micromechanics and performance of two gecko species

机译:两种壁虎的固定微力学和性能的变化

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Biomechanical models of the gecko adhesive system typically focus on setal mechanics from a single gecko species, Gekko gecko. In this study, we compared the predictions from three mathematical models with experimental observations considering an additional gecko species Phelsuma grandis, to quantify interspecific variation in setal micromechanics. We also considered the accuracy of our three focal models: the frictional adhesion model, work of detachment model, and the effective modulus model. Lastly, we report a novel approach to quantify the angle of toe detachment using the Weibull distribution. Our results suggested the coupling of frictional and adhesive forces in isolated setal arrays, first observed in G. gecko is also present in P. grandis although P. grandis displayed a higher toe detachment angle, suggesting they produce more adhesion relative to friction than G. gecko. We also found the angle of toe detachment accurately predicts a species' maximum performance limit when fit to a Weibull distribution. When considering the energy stored during setal attachment, we observed less work to remove P. grandis arrays when compared with G. gecko, suggesting P. grandis arrays may store less energy during attachment, a conclusion supported by our model estimates of stored elastic energy. Our predictions of the effective elastic modulus model suggested P. grandis arrays to have a lower modulus, E (eff), but our experimental assays did not show differences in moduli between the species. The considered mathematical models successfully estimated most of our experimentally measured performance values, validating our three focal models as template models of gecko adhesion (see Full and Koditschek in J Exp Biol 202(23):3325-3332, 1999), and suggesting common setal mechanics for our focal species and possibly for all fibular adhesives. Future anchored models, built upon the above templates, may more accurately predict performance by incorporating additional parameters, such as variation in setal length and diameter. Variation in adhesive performance may affect gecko locomotion and as a result, future ecological observations will help to determine how species with different performance capabilities use their habitat.
机译:壁虎胶粘剂系统的生物力学模型通常集中在单一壁虎物种Gekko壁虎的固定力学上。在这项研究中,我们将三种数学模型的预测结果与考虑了其他壁虎物种Phelsuma grandis的实验观察结果进行了比较,以量化固定微机械中的种间差异。我们还考虑了三个焦点模型的准确性:摩擦粘附模型,分离功模型和有效模量模型。最后,我们报告了一种使用威布尔分布来量化脚趾脱离角度的新颖方法。我们的研究结果表明,在孤立的脚掌阵列中,摩擦力和粘附力之间存在耦合关系,尽管在大壁虎中显示出较高的脚趾脱离角度,但在大壁虎中也存在壁虎。虽然它们在脚趾上的分离角更高,这表明它们相对于摩擦产生的附着力比G.壁虎。我们还发现,当与Weibull分布拟合时,脚趾脱离的角度可以准确预测物种的最大性能极限。当考虑固定结石过程中存储的能量时,与壁虎G. Gecko相比,我们观察到去除巨假列阵的工作较少,这表明巨假列阵在附着过程中可能存储较少的能量,这一结论得到了我们模型中存储的弹性能的估计支持。我们对有效弹性模量模型的预测表明,P。grandis阵列具有较低的模量E(eff),但我们的实验分析未显示出物种之间的模量差异。所考虑的数学模型成功地估计了我们大部分的实验测量性能值,验证了我们的三个焦点模型作为壁虎附着力的模板模型(请参见J Exp Biol 202(23):3325-3332,1999中的Full和Koditschek),并建议使用通用模型我们所关注的物种以及可能所有腓骨粘合剂的力学。建立在上述模板之上的将来的锚定模型可以通过合并其他参数(例如固定长度和直径的变化)来更准确地预测性能。胶粘剂性能的变化可能会影响壁虎的运动,因此,未来的生态观测将有助于确定具有不同性能的物种如何利用其栖息地。

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