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ENHANCED PROPELLANT PERFORMANCE VIA ENVIRONMENTALLY FRIENDLY CURABLE SURFACE COATING

机译:通过环保可固化表面涂层增强推进剂性能

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(Full Manuscript submitted to the Defence Technology Journal) Surface coating of granularpropellants is widely used in a multiplicity of propellants for small, medium and large caliberammunition. All small caliber ball propellants exhibit burning progressivity due to application ofeffective deterrent coatings. Large perforated propellant grains have also begun utilizing plasticizingand impregnated deterrent coatings with the purpose of increasing charge weights for greater energyand velocity for the projectile. The deterrent coating and impregnation process utilizes volatileorganic compounds (VOCs) and hazardous air pollutants (HAPs) which results in propellants thatneed to be forced air dried which impacts air quality. Propellants undergo temperature fluctuationsduring their life. Diffusion coefficients vary exponentially with variations in temperature. A smalltemperature increase can induce a faster migration, even over a short period of time, which can leadto large deviations in the concentration. This large concentration change in the ammunition becomesa safety or performance liability. The presence of both polymeric deterrents and nitroglycerin (NG)in the nitrocellulose matrix and organic solvents leads to higher diffusion rates. This results incontinued emissions of VOCs and HAPs. Conventional polymers tend to partition within thepropellant matrix. In other words, localized mixing can occur between the polymer and underlyingpropellant. This is due to solvent induced softening of the polymer vehicle over the propellant grain.In effect this creates a path where migration can occur. Since nitrate esters, like NG, are relativelysmall, it can exude to the surface and create a highly unstable and dangerous situation for thewarfighter. Curable polymers do not suffer from this partitioning due to “melting” because no VOCsolvents are present. They remain surface coated. The objective of the research effort is to replacethe current solvent based wet deterrent and impregnation coating technology, currently used inpropellant production, with the environmentally friendly novel Light Emitting Diode Ultra-Violet(LED-UV) cured solvent-less advanced surface coating technology. This research effort work is toexplore the use of LED UV curable polymers as deterrent coating materials, which do not sufferfrom this partitioning due to “melting” because of the highly adjustable and attainable networkstructure. The additional objectives are to increase performance without increasing maximumbreech pressure by the slowed and inhibited burning and obtain progressivity at the grain and chargelevels. The surface coating objective is also to achieve a flat temperature coefficient. The low Tgcan prevent the initiation, disrobing, cracking, ablation, penetration, and coating separation at coldtemperatures. The improved mechanical properties across the ballistic temperature range areexpected to improve Insensitive Munitions (IM) characteristics against thermal and spall threats. Thecrosslink LED UV coating polymer structure can inhibit/reduce migration which can preventplasticizer migration and degradation of performance resulting from migration. This migrationresults in large concentration changes in ammunition which becomes a safety or performanceliability].The small scale characterization testing, such as closed bomb testing, small scalesensitivity, thermal stability, and chemical compatibility, will be presented. The 30mm gundemonstration firing data at hot, cold, and ambient temperatures will also be presented.
机译:(完整的稿件提交给防御技术期刊)粒状表面涂层推进剂广泛用于小型,中型和大口径的多种推进剂中弹药。所有小口径球推进剂由于应用而表现出燃烧的渐进效力有效的威慑涂层。大型穿孔推进剂颗粒也开始使用塑化并浸渍威慑涂层,目的是增加电荷的电力更大的能量和射弹的速度。耐用涂层和浸渍过程利用挥发性有机化合物(VOCS)和有害空气污染物(HAPS),导致推进剂需要强制风干,影响空气质量。推进剂经过温度波动在他们的生活中。扩散系数随温度变化而呈指数增量。一个小的温度升高可以引起更快的迁移,即使在短时间内也可以引导浓度的大偏差。弹药中的这种大的浓度变化变为安全或绩效责任。聚合物威慑物和硝酸甘油(NG)的存在在硝酸纤维素基质中,有机溶剂导致更高的扩散速率。这导致了这一点持续的VOC和HAPS排放。常规聚合物倾向于在其中分配推进剂基质。换句话说,聚合物和底层之间可以发生局部混合推进剂。这是由于溶剂诱导聚合物载体在推进剂颗粒上软化。实际上,这会产生可能发生迁移的路径。由于硝酸酯,如ng,相对小,它可以偏离表面,为此产生一个非常不稳定和危险的情况战士。由于“熔化”,可固化聚合物不会遭受这种分区,因为没有VOC溶剂存在。它们保持表面涂层。研究努力的目的是取代目前使用的电流溶剂的湿耐泄压和浸渍涂层技术推进剂生产,具有环保新颖的发光二极管超紫(LED-UV)固化溶剂的先进表面涂层技术。这项研究努力工作是探索LED UV可固化聚合物作为威慑涂料,不会受到影响由于网络的高度可调节和可达到的网络,因此由于“熔化”而导致的划分结构体。额外的目标是提高性能而不增加最大值通过减速和抑制燃烧的臀位压力,并在谷物和充电时获得累进效力水平。表面涂层目的还可以实现平坦的温度系数。低TG.可以防止寒冷的发起,偏移,破裂,消融,渗透和涂层分离温度。弹性温度范围内的改进的机械性能是预计将改善不敏感的弹药(IM)特征免受热和痉挛威胁。这交联LED UV涂层聚合物结构可以抑制/减少可以预防的迁移迁移造成的增塑剂迁移和降解性能。这个迁移导致弹药的浓度大变化,成为安全或性能责任]。小规模表征测试,如封闭式炸弹测试,小规模呈现灵敏度,热稳定性和化学兼容性。 30毫米的枪支还将呈现出热,冷,环境温度的演示数据。

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