首页> 外文期刊>European journal of physics: A journal of the European Physical Society >A haptic model of vibration modes in spherical geometry and its application in atomic physics, nuclear physics and beyond
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A haptic model of vibration modes in spherical geometry and its application in atomic physics, nuclear physics and beyond

机译:球形几何中振动模式的触觉模型及其在原子物理,核物理及超越中的应用

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摘要

Vibration modes in spherical geometry can be classified based on the number and position of nodal planes. However, the geometry of these planes is non-trivial and cannot be easily displayed in two dimensions. We present 3D-printed models of those vibration modes, enabling a haptic approach for understanding essential features of bound states in quantum physics and beyond. In particular, when applied to atomic physics, atomic orbitals are obtained in a natural manner. Applied to nuclear physics, the same patterns of vibration modes emerge as cornerstone for the nuclear shell model. These applications of the very same model in a range of more than 5 orders of magnitude in length scales leads to a general discussion of the applicability and limits of validity of physical models in general.
机译:球面几何中的振动模式可以根据节点平面的数量和位置进行分类。 然而,这些平面的几何形状是非微观的,不能容易地以两个维度显示。 我们展示了那些振动模式的3D印刷模型,实现了触觉方法,以了解量子物理学及更远的常规态的基本特征。 特别地,当应用于原子物理学时,以自然的方式获得原子轨道。 适用于核物理学,与核壳模型的基石出现相同的振动模式。 在长度尺度的大于5个级范围内的这些应用在超过5级的范围内导致了一般讨论了物理模型的有效性的适用性和限制。

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