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首页> 外文期刊>Health Physics: Official Journal of the Health Physics Society >Physicochemical characterization of Capstone depleted uranium aerosols III: morphologic and chemical oxide analyses.
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Physicochemical characterization of Capstone depleted uranium aerosols III: morphologic and chemical oxide analyses.

机译:枯竭层贫化铀气溶胶的理化特征III:形态和化学氧化物分析。

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摘要

The impact of depleted uranium (DU) penetrators against an armored target causes erosion and fragmentation of the penetrators, the extent of which is dependent on the thickness and material composition of the target. Vigorous oxidation of the DU particles and fragments creates an aerosol of DU oxide particles and DU particle agglomerations combined with target materials. Aerosols from the Capstone DU aerosol study, in which vehicles were perforated by DU penetrators, were evaluated for their oxidation states using x-ray diffraction (XRD), and particle morphologies were examined using scanning electron microscopy/energy dispersive spectroscopy (SEM/EDS). The oxidation state of a DU aerosol is important as it offers a clue to its solubility in lung fluids. The XRD analysis showed that the aerosols evaluated were a combination primarily of U3O8 (insoluble) and UO3 (relatively more soluble) phases, though intermediate phases resembling U4O9 and other oxides were prominent in some samples. Analysis of particle residues in the micrometer-size range by SEM/EDS provided microstructural information such as phase composition and distribution, fracture morphology, size distribution, and material homogeneity. Observations from SEM analysis show a wide variability in the shapes of the DU particles. Some of the larger particles were spherical, occasionally with dendritic or lobed surface structures. Others appear to have fractures that perhaps resulted from abrasion and comminution, or shear bands that developed from plastic deformation of the DU material. Amorphous conglomerates containing metals other than uranium were also common, especially with the smallest particle sizes. A few samples seemed to contain small bits of nearly pure uranium metal, which were verified by EDS to have a higher uranium content exceeding that expected for uranium oxides. Results of the XRD and SEM/EDS analyses were used in other studies described in this issue of Health Physics to interpret the results of lung solubility studies and in selecting input parameters for dose assessments.
机译:贫铀(DU)穿透器对装甲目标的撞击会导致穿透器腐蚀和破碎,其程度取决于目标的厚度和材料成分。 DU颗粒和碎片的剧烈氧化会形成DU氧化物颗粒和DU颗粒与目标材料结合的气溶胶。来自Capstone DU气溶胶研究的气溶胶,其中使用DU渗透剂对车辆进行了穿孔,使用X射线衍射(XRD)评估了其氧化态,并使用扫描电子显微镜/能量色散光谱(SEM / EDS)检查了颗粒形态。 DU气雾剂的氧化态很重要,因为它提供了其在肺液中溶解度的线索。 XRD分析表明,所评估的气溶胶主要是U3O8(不溶)和UO3(相对更易溶)相的组合,尽管在某些样品中类似U4O9和其他氧化物的中间相也很突出。通过SEM / EDS对微米级范围内的颗粒残留物进行分析,可提供微观结构信息,例如相组成和分布,断裂形态,尺寸分布和材料均匀性。 SEM分析表明,DU颗粒的形状变化很大。一些较大的颗粒为球形,偶有树突或浅叶表面结构。其他人似乎有可能是由于磨损和粉碎导致的断裂,或者是由于DU材料的塑性变形而形成的剪切带。含有非铀金属的非晶态团块也很常见,尤其是具有最小的粒径。一些样品似乎含有少量的近乎纯净的铀金属,EDS对其进行了验证,证明其铀含量高于铀氧化物的预期含量。 XRD和SEM / EDS分析的结果用于本期《健康物理学》中描述的其他研究中,以解释肺溶解度研究的结果以及选择用于剂量评估的输入参数。

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