蛋壳衍生颗粒复合材料与环氧树脂增强辐射屏蔽应用。

IF 1.5 4区 环境科学与生态学 Q3 BIOLOGY Radiation and Environmental Biophysics Pub Date : 2024-12-30 DOI:10.1007/s00411-024-01101-3
Gunjanaporn Tochaikul, Nutthapong Moonkum
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引用次数: 0

摘要

本研究探讨了蛋壳衍生的环氧树脂颗粒复合材料在增强辐射屏蔽应用中的发展和效果。蛋壳主要由碳酸钙组成,被加工成三种大小的颗粒:小、中、大。这些颗粒以50%的重量比掺入环氧树脂中,并使用激光粒度分布分析仪进行表征。使用诊断x射线设备和Radcal Accu-Gold探测器确定辐射屏蔽性能,评估衰减参数,如半值层(HVL)和线性衰减系数(LAC)。力学测试结果表明,大颗粒复合材料的力学性能最差,最大受力为5674 N,应力为52 MPa。相比之下,小颗粒复合材料表现出优异的力学性能,最大力为9125 N,应力为97 MPa。此外,小颗粒复合材料(S50%)表现出最高的LAC和最低的HVL,证实了其优异的辐射屏蔽效率,因为它具有更好的色散和更大的表面积。这些发现强调了使用精细研磨的蛋壳颗粒来制造具有成本效益,环保的辐射防护材料的潜力,强调了颗粒尺寸优化在开发先进复合材料中的重要性。
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Eggshell-derived particle composites with epoxy resin for enhanced radiation shielding applications.

This study explores the development and efficacy of eggshell-derived particle composites with epoxy resin for enhanced radiation shielding applications. Eggshells, primarily composed of calcium carbonate, were processed into particles of three sizes: small, medium, and large. These particles were incorporated into epoxy resin at a 50% weight ratio and characterized using a Laser Particle Size Distribution Analyzer. Radiation shielding properties were determined using diagnostic X-ray equipment and a Radcal Accu-Gold detector, evaluating attenuation parameters such as the Half-Value Layer (HVL) and Linear Attenuation Coefficient (LAC). Mechanical testing revealed that composites with large particles exhibited the weakest performance, with a maximum force of 5674 N and stress of 52 MPa. In contrast, small particle composites demonstrated superior mechanical properties, achieving a maximum force of 9125 N and stress of 97 MPa. Additionally, small particle composites (S50%) displayed the highest LAC and lowest HVL, confirming their superior radiation shielding efficiency due to better dispersion and increased surface area. These findings highlight the potential of using finely ground eggshell particles to create cost-effective, environmentally friendly materials for radiation protection, underscoring the importance of particle size optimization in the development of advanced composite materials.

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来源期刊
CiteScore
4.00
自引率
5.90%
发文量
53
审稿时长
>36 weeks
期刊介绍: This journal is devoted to fundamental and applied issues in radiation research and biophysics. The topics may include: Biophysics of ionizing radiation: radiation physics and chemistry, radiation dosimetry, radiobiology, radioecology, biophysical foundations of medical applications of radiation, and radiation protection. Biological effects of radiation: experimental or theoretical work on molecular or cellular effects; relevance of biological effects for risk assessment; biological effects of medical applications of radiation; relevance of radiation for biosphere and in space; modelling of ecosystems; modelling of transport processes of substances in biotic systems. Risk assessment: epidemiological studies of cancer and non-cancer effects; quantification of risk including exposures to radiation and confounding factors Contributions to these topics may include theoretical-mathematical and experimental material, as well as description of new techniques relevant for the study of these issues. They can range from complex radiobiological phenomena to issues in health physics and environmental protection.
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