Negative poisson’s ratio-spacer design and its thermo-mechanical coupling analysis considering specific force output

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Abstract

Aiming at the problems of a complex structure or poor controllability of the existing bearing preload control devices, a method of self-regulation via a negative Poisson’s ratio (NPR) spacer is proposed. Firstly, the principle of preload automatic adjustment at the bearing operation was introduced and the NPRs with three types of cell structures were analyzed. Furthermore, a thermo-mechanical coupling analysis model of the NPR spacer was established and the deformation and force output characteristics of the NPR spacer were studied and experimentally verified. It is found that the concave hexagonal cell structure has the optimal deformation characteristics for bearing preload adjustment. When the temperature is considered, the absolute value of Poisson’s ratio of the NPR spacer decreases as the speed increases and the elongation of the NPR spacer and the output forces are much larger than those without temperature consideration. With the increase in temperature or rotating speed, the axial elongation and output forces of the NPR spacer increases while the effect of temperature is relatively larger.

Original languageEnglish
Article number3421
JournalMaterials
Volume14
Issue number12
DOIs
StatePublished - 2 Jun 2021

Keywords

  • Low-porosity structure
  • Negative Poisson’s ratio-spacer
  • Rolling bearing
  • Self-regulation of preload
  • Thermo-mechanical coupling

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