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Effects of gape and tooth position on bite force and skull stress in the dingo (Canis lupus dingo) using a 3-dimensional finite element approach

机译:使用3D有限元方法,牙间隙和牙齿位置对丁戈犬(Canis lupus dingo)的咬力和颅骨应力的影响

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摘要

Models of the mammalian jaw have predicted that bite force is intimately linked to jaw gape and to tooth position. Despite widespread use, few empirical studies have provided evidence to validate these models in ono-human mammals and none have considered the influence of gape angle on the distribution of stress. Here using a multi-property finite element (FE) model of Canis lupus dingo, we exmained the influence of gape angle and bite point on both bite force and cranial stress. Bite force data in relation to jaw gape and along the tooth row, are in broad agreement with previously reported results. However stress data showed that the skull of C. I. dingo is mechanically suited to withstand stresses at wide gapes; a result that agreed well with previously held views regarding carnivoran evolution. Stress data, combined with bite force information, suggested that there us an optimal bite angle of between 25° and 35° in C. I. dingo. The function of these rather small bite angles remains unclear.
机译:哺乳动物颌骨的模型已经预测,咬合力与颌骨间隙和牙齿位置密切相关。尽管得到了广泛的应用,但很少有经验研究提供证据来验证小动物哺乳动物中的这些模型,并且没有人考虑过间隙角对应力分布的影响。在这里,使用犬天狼犬的多属性有限元(FE)模型,我们保留了缝隙角度和咬合点对咬合力和颅骨应力的影响。与颚间隙和沿齿排有关的咬力数据与先前报道的结果基本一致。然而,压力数据显示,丁香狗的头骨在机械上适合于承受较大间隙的压力。这一结果与以前关于食肉动物进化的观点非常吻合。应力数据与咬合力信息相结合,表明在C. I. dingo中存在25°至35°的最佳咬合角。这些较小的咬合角的功能尚不清楚。

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