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粗粒化分子动力学模拟聚合物热解:参数研究。

Mesoscale Simulation of Polymer Pyrolysis by Coarse-Grained Molecular Dynamics: A Parametric Study.

机构信息

Functional Materials and Applied Mechanics Lab, School of Mechanical Engineering, Chung-Ang University, 84 Heukseok-Ro, Dongjak-Gu, Seoul 06974, Republic of Korea.

Mechanical Energy Engineering Division, School of Energy Systems Engineering, Chung-Ang University, 84 Heukseok-Ro, Dongjak-Gu, Seoul 06974, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2023 Jun 28;15(25):30742-30755. doi: 10.1021/acsami.3c04192. Epub 2023 Jun 12.

Abstract

Full comprehension of the pyrolysis of polymer materials is crucial for the design and application of thermal protection systems; however, it involves complex phenomena at different spatial and temporal scales. To bridge the gap between the abundant atomistic simulations and continuum modeling in the literature, we perform a novel mesoscale study of the pyrolysis process using coarse-grained molecular dynamics (CG MD) simulations. Polyethylene (PE) consisting of united atoms including implicit hydrogen is considered a model polymer, and the configurational change of PE in thermal degradation is modeled by applying the bond-breaking phenomenon based on bond energy or bond length criteria. A cook-off simulation is implemented to optimize the heuristic protocol of bond dissociation by comparing the reaction products with a ReaxFF simulation. The aerobic hyperthermal pyrolysis under oxygen bombardment is simulated at a large scale of hundreds of nanometers to observe the intricate phenomena occurring from the surface to the depth inside the material. The intrinsic thermal durability of the model polymer at extreme conditions with and without oxygen environment can be effectively simulated from the proposed mesoscale simulation to predict important thermal degradation properties required for continuum-scale pyrolysis and ablation simulations. This work serves as an initial investigation of polymer pyrolysis at the mesoscale and helps understand the concept at a larger scale.

摘要

充分理解聚合物材料的热解过程对于热防护系统的设计和应用至关重要;然而,这涉及到不同时空尺度上的复杂现象。为了弥合文献中丰富的原子级模拟和连续体建模之间的差距,我们使用粗粒化分子动力学(CG MD)模拟对热解过程进行了新的介观研究。我们选择包括隐式氢原子的聚乙稀(PE)作为模型聚合物,通过应用基于键能或键长标准的键断裂现象来模拟 PE 在热降解过程中的构象变化。通过与 ReaxFF 模拟比较反应产物,实施了烹饪式模拟以优化键离解的启发式协议。在有氧环境下进行的有氧过热热解在数百纳米的大尺度下进行模拟,以观察从材料表面到内部深处发生的复杂现象。通过提出的介观模拟,可以有效地模拟模型聚合物在极端条件下以及有氧环境下的固有热耐久性,从而预测连续体热解和烧蚀模拟所需的重要热降解特性。这项工作是对介观尺度聚合物热解的初步研究,有助于在更大的尺度上理解这一概念。

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