CHINESE JOURNAL OF ENERGETIC MATERIALS
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热塑性高粘药料立式螺压挤出工艺数值模拟
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1山西北方兴安化学工业有限公司, 山西 太原 030008;2.3南京理工大学 化学与化工学院 国家特种超细粉体工程技术研究中心, 江苏 南京 210094;3.2含能材料全国重点实验室, 陕西 西安 710065

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含能材料全国重点实验室基金(2025-JCJQ-LB-100-3)


Numerical Simulation of Vertical Screw Extrusion Process for Thermoplastic High-viscous Materials
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Affiliation:

1Shanxi North Xingan Chemical Industry Co. Ltd., Taiyuan 030008, China;2.3National Special Superfine Powder Engineering Research Center of China, School of Chemistry and Chemical Engineering, Nanjing University of Science and Technology, Nanjing 210094, China;3.2National Key Laboratory of Energetic Materials, Xi′an 710065, China

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    摘要:

    针对当前热塑性含能材料传统装药工艺存在的自动化程度低、危险性高以及装药质量均一性差等问题,引入立式螺压装药工艺,并建立了一套定量化的综合性能评价方法以指导工艺优化,旨在系统提升其工艺效率、装药质量及过程安全性。研究在解析药浆粘弹特性的基础上,模拟分析了不同工艺条件以及配方组分下药浆挤出过程中的流变行为,探索了高温、高压等热点区域的产生机理。结果表明,将配方固含量质量分数由75%提升至85%,药浆流动性会显著降低。同时,流场压力和剪切应力的增幅分别达827%和600%,且粘性耗散热增加了384 kW·m-3,致使螺压挤出过程热-力耦合行为加剧,工艺安全性降低,工艺风险系数由0.99升至3.36。然而,通过调控螺杆转速(转速范围,10~30 r·min-1)、利用金属颗粒增强“机筒-药浆-螺杆”间导热网络等措施,能够使温度波动范围缩小0.8~1.9 ℃,抑制局部热点形成。

    Abstract:

    To address the challenges of low automation, high danger, and poor uniformity in conventional charging processes of thermoplastic energetic materials, this study introduced a vertical screw charging technology and established a quantitative comprehensive performance evaluation method to guide process optimization, aiming to systematically enhance process efficiency, charging quality, and operational safety. Based on an analysis of the viscoelastic properties of the slurry, the rheological behavior of the slurry during extrusion under different process conditions and formulation components was simulated, and the formation mechanisms of high-temperature and high-pressure hot spots were investigated. The results show that increasing the solid content mass fraction from 75% to 85% significantly reduces the slurry flowability, with increases in flow field pressure and shear stress by 827% and 600%, respectively, and an increase in viscous heating by 384 kW·m-3. These changes intensify the thermo-mechanical coupling behavior during screw extrusion, reduce process safety, and raise the process risk coefficient from 0.99 to 3.36. However, by adjusting the screw speed (within the range of 10 r·min-1 to 30 r·min-1) and incorporating metal particles to enhance the thermal conduction network among the barrel, slurry, and screw, the temperature fluctuation range can be reduced by 0.8 ℃ to 1.9 ℃, effectively suppressing the formation of local hot spots.

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林高明,王苏炜,刘晓璐,等. 热塑性高粘药料立式螺压挤出工艺数值模拟[J]. 含能材料,DOI:10.11943/CJEM2025242.

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  • 收稿日期: 2025-11-08
  • 最后修改日期: 2026-03-23
  • 录用日期: 2026-03-16
  • 在线发布日期: 2026-03-18
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