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It is found that the critical failure mode transition depth increases with the back rake angle.
This critical failure mode transition depth depends not only on rock properties but also on cutting operational parameters, in particular, the back rake angle.
In this work, a series of rock cutting tests were performed to investigate the influence of back rake angle on the critical failure mode transition depth.
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To estimate mode transition depths, such as the yielding depth, the cutting initiating depth and the crack starting depth, theoretical models are employed and compared with the experimental results.
The transition depth off Alaska is just 85 meters.
The mode transition probability is chosen to be p0=p1=0.8.
Firstly, the mode transition process was analyzed, and ride comfort issues during the mode transition process were demonstrated.
The work has done in this paper provides a very useful approach for predicting the critical depth of cut which can be used to optimize the drilling parameters, and makes a well understanding of ductile-brittle failure mode transition in rock cutting.
The critical transition depth, beyond which energy consumed in brittle fracturing surpasses the energy consumed in plastic flow, is the key to differentiating between the ductile and brittle cutting modes and therefore is an important parameter to optimise tool design and operational parameters to meet specific application requirements.
In all cases, hysteresis has to be included in this mode transition to prevent fast mode switching.
We next mapped reproductive modes onto the rRNA consensus phylogeny to identify the evolutionary origins of reproductive mode transitions.
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