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Carbon Oxides in Gas Flows and Earth and Planetary Atmospheres: State-to-State Simulations of Energy Transfer and Dissociation Reactions

机译:气体流动和地球和行星大气中的碳氧化物:能量转移和解离反应的状态对态模拟

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In this paper we illustrate an approach to the study of the molecular collision dynamics, suited for massive calculations of vibra-tional state-specific collision cross sections and rate constants of elementary gas phase processes involving carbon oxides. These data are used in the theoretical modeling of the Earth and planetary atmospheres and of non-equilibrium reactive gas flows containing the CO_2 and CO molecules. The approach is based on classical trajectory simulations of the collision dynamics and on the bond-bond semi-empirical description of the in-termolecular interaction potential, that allows the formulation of full dimension potential energy surfaces (the main input of simulations) for small and medium size systems. The bond-bond potential energy surfaces account for the dependence of the intermolecular interaction on some basic physical properties of the colliding partners, including modulations induced by the monomer deformation. The approach has been incorporated into a Grid empowered simulator able to handle the modeling of the CO_2 + CO_2 collisions, while extensions to other processes relevant for the modeling of gaseous flows and atmospheres, such as CO + CO →C + CO_2 and CO_2 + N_2, are object of current work. Here the case of CO_2 + CO_2 collisions will be illustrated in detail to exemplify an application of the method.
机译:本文说明了对分子碰撞动力学研究的方法,适用于诸如涉及碳氧化物的基本气相过程的振动状态特异性碰撞横截面和速率常数的巨大计算。这些数据用于地球和行星大气的理论建模和含有CO_2和CO分子的非平衡反应气流。该方法基于碰撞动力学的经典轨迹模拟和粘合键合半经验描述的单分子相互作用电位,这允许为小而设计全尺寸电位能量表面(模拟的主要输入)。中等大小系统。键合势能能量表面涉及分子间相互作用对碰撞伙伴的一些基本物理性质的依赖性,包括由单体变形引起的调制。该方法已被纳入电网授权的模拟器,能够处理CO_2 + CO_2冲突的建模,而对与气态流和气氛建模相关的其他过程的延伸,例如CO + CO→C + CO_2和CO_2 + N_2 ,是当前工作的对象。这里将详细说明CO_2 + CO_2冲突的情况以举例说明该方法的应用。

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