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Modeling of Laser Vaporization and Plume Chemistry in a Boron Nitride Nanotube Production Rig

机译:氮化硼纳米管生产装置中激光汽化和羽流化学的建模

摘要

Flow in a pressurized, vapor condensation (PVC) boron nitride nanotube (BNNT) production rig is modeled. A laser provides a thermal energy source to the tip of a boron ber bundle in a high pressure nitrogen chamber causing a plume of boron-rich gas to rise. The buoyancy driven flow is modeled as a mixture of thermally perfect gases (B, B2, N, N2, BN) in either thermochemical equilibrium or chemical nonequilibrium assuming steady-state melt and vaporization from a 1 mm radius spot at the axis of an axisymmetric chamber. The simulation is intended to define the macroscopic thermochemical environment from which boron-rich species, including nanotubes, condense out of the plume. Simulations indicate a high temperature environment (T > 4400K) for elevated pressures within 1 mm of the surface sufficient to dissociate molecular nitrogen and form BN at the base of the plume. Modifications to Program LAURA, a finite-volume based solver for hypersonic flows including coupled radiation and ablation, are described to enable this simulation. Simulations indicate that high pressure synthesis conditions enable formation of BN vapor in the plume that may serve to enhance formation of exceptionally long nanotubes in the PVC process.
机译:模拟了加压蒸汽凝结(PVC)氮化硼纳米管(BNNT)生产设备中的流动。激光为高压氮气室中的硼bundle束的尖端提供热能源,导致富含硼的气体羽流上升。浮力驱动的流建模为热理想气体(B,B2,N,N2,BN)在热化学平衡或化学非平衡状态下的混合物,并假设稳态熔融和从轴对称轴上1 mm半径点处蒸发而达到稳态室。该模拟旨在定义宏观的热化学环境,富硼物质(包括纳米管)从该环境中从羽流中冷凝出来。模拟表明高温环境(T> 4400K)在表面1毫米内的高压足以解离分子氮并在羽流底部形成BN。描述了对程序LAURA的修改,它是一种基于有限体积的高超声速流求解器,包括耦合的辐射和烧蚀,可以实现此仿真。模拟表明,高压合成条件能够在烟羽中形成BN蒸气,这可能有助于增强PVC工艺中超长纳米管的形成。

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