Hindered Sedimentation of Tungsten Carbide Particles in a Hydroxyl-Terminated Polybutadiene-Based Polymer-Bonded Explosive Energetic Composite System.

IF 2.8 2区 化学 Q3 CHEMISTRY, PHYSICAL
Kaixiang Yang, Jinying Wang, Jie Dong, Kang Niu, Zhineng Wang, Jiaxin Lu, Yuan Tian Jing, Lixin Mu, Zixuan Su
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引用次数: 0

Abstract

Energetic composite systems with uniform particle distributions are of considerable interest, but sedimentation is a persisting challenge. Tungsten carbide (WC, density: 15.36 g/cm3) particles are promising cemented carbide particles owing to their desirable properties. In this study, we investigated the mitigation of sedimentation in a polymer-bonded explosive (PBX) energetic composite by optimizing the viscosity and particle distribution using WC particles and a hydroxyl-terminated polybutadiene-based binder. A simulation based on a modified version of Stokes' law is used to study the sedimentation behaviors of the system at different viscosities, and the resistance coefficient of particle sedimentation is estimated. The PBX energetic composite system loaded with the WC particles is prepared and analyzed. In the early curing stages, when the resistance coefficient is 0.65-1.95 (×109), the sedimentation rate is low, but increases rapidly as the viscosity of the system increases. When the effective viscosity is ≥11,510 MPa·s, the particle sedimentation is improved. The energetic components are tightly entangled within the binder, with no exposure or agglomeration, and the WC particles are evenly distributed. The system can reach a solid content of 91% and retain its pourability. Thus, an energetic composite system loaded with high-density metal particles is prepared, providing a reference for use in PBX formulation.

具有均匀颗粒分布的高能复合材料系统备受关注,但沉积问题一直是个难题。碳化钨(WC,密度:15.36 克/立方厘米)颗粒因其理想的特性而成为很有前途的硬质合金颗粒。在本研究中,我们使用碳化钨颗粒和羟基端聚丁二烯基粘结剂,通过优化粘度和颗粒分布,研究了如何减轻聚合物粘结炸药(PBX)高能复合材料中的沉降问题。根据修正版斯托克斯定律进行的模拟研究了该系统在不同粘度下的沉降行为,并估算了颗粒沉降的阻力系数。制备并分析了装有 WC 颗粒的 PBX 高能复合材料体系。在固化初期,当阻力系数为 0.65-1.95 (×109) 时,沉降速率较低,但随着体系粘度的增加,沉降速率迅速增加。当有效粘度≥11,510MPa-s 时,颗粒沉降速度提高。高能成分在粘合剂中紧密缠结,没有外露或团聚现象,而碳化钨颗粒则分布均匀。该系统的固体含量可达到 91%,并保持其可浇注性。因此,我们制备出了一种含有高密度金属颗粒的高能复合材料体系,为 PBX 配方的使用提供了参考。
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来源期刊
CiteScore
5.80
自引率
9.10%
发文量
965
审稿时长
1.6 months
期刊介绍: An essential criterion for acceptance of research articles in the journal is that they provide new physical insight. Please refer to the New Physical Insights virtual issue on what constitutes new physical insight. Manuscripts that are essentially reporting data or applications of data are, in general, not suitable for publication in JPC B.
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