Bond-number-controlled durability of cohesive granular materials under repeated vibration
Hikari Yokota, Rei Kurita
Abstract
Cohesive granular materials derive their mechanical stability not only from the strength of individual interparticle bonds but also from the number of bonds forming the load-bearing network. However, these two effects are difficult to separate experimentally because conventional control parameters, such as liquid content, generally alter both simultaneously. Here, we use a mixed granular system composed of cohesive and noncohesive grains to control the cohesive bond number while keeping the bond strength approximately unchanged. We investigate the failure lifetime under repeated vibration and find that the number of cycles to failure, Nf, depends strongly on the mixing ratio α. The data are well collapsed by Nf α2/G, where α2 represents the fraction of cohesive contacts and G is a peak acceleration normalized by gravitational acceleration. Remarkably, although the Young's modulus is nearly independent of α above the rigidity threshold, the lifetime continues to increase strongly with α. This demonstrates that mechanical rigidity and durability against repeated perturbations exhibit distinct dependences on the cohesive network. These results identify bond number as a key control parameter for the durability of cohesive granular materials.
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