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Branch-chain criticality and thermal explosion of Oldroyd 6-constant fluid for a generalized Couette reactive flow

机译:用于广义Couette反应流动的oldroyd 6恒液流体的分支临界和热爆炸

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This study examines Oldroyd 6-constant fluid and thermal explosion branch-chain criticality of a reactive flow in a generalized Couette device. With material consumption assumption, the reactive fluid is assumed to be actively exothermic, and the exchange of heat within the system is greater than the ambient heat exchange. Compared to the diffusion coefficient, the nondimensioned momentum and energy balance fields are influenced by a thermal Grashof number, non-Newtonian term, pressure gradient, branch-chain reaction order, and reaction initiation rate. The weighted residual collocation method is used to analytically obtain solutions to the dimensionless temperature and velocity equations as well as the bifurcation slice branch-chain solutions. The results are graphically presented, and it is revealed that a decrease in the fluid material terms will assist in managing the excessive heat generated by reaction initiation rate, and Frank Kamenetskii term. Also, a rise in the reaction branch order and reaction initiation rate can lead to system thermal runaway. Moreover, for industrial processes as obtained from the study, reactive non-Newtonian Oldroyd 6-constant fluid is thermally stable than reactive Newtonian fluid.
机译:本研究审查了在广义耦合装置中的反应流动的oldroyd 6恒定的流体和热爆炸分支 - 链临界性。利用材料消耗假设,假设反应性流体是主动放热的,并且系统内的热交换大于环境热交换。与扩散系数相比,非敏感的动量和能量平衡田受到热法雷流数,非牛顿术语,压力梯度,分支反应顺序和反应起始率的影响。加权残留搭配方法用于分析对无量纲温度和速度方程的解以及分叉切片分支溶液的溶液。图形地提出了结果,并揭示了流体材料术语的减少将有助于管理反应启动率产生的过量热量,以及Frank Kamenetskii术语。此外,反应分支阶和反应起始速率的升高可以导致系统热失控。此外,对于从研究中获得的工业过程,反应性非牛顿oldroyd 6恒定流体与反应性牛顿流体热稳定。

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