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Engineering and gamma-ray attenuation properties of steel furnace slag heavyweight concrete with nano calcium carbonate and silica

机译:钢炉渣配重纳米碳酸钙和二氧化硅的工程和伽马射线衰减特性

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As the nuclear energy sector continues to grow worldwide, the improvement of concrete's radioactive isolation properties for preserving both the environment and human lives in nuclear power plant applications has received a global interest among researchers. Although nano-silica, nano-calcium carbonate, and steel furnace slag have high molar mass and favorable physical properties to improve the concrete's radioactive insulation properties, scarce literature on the subject matter has been published. The goal of this study is to investigate the appropriateness of using nanomaterials such as nano-silica slurry and nano-calcium carbonate as additives for the production of steel furnace slag (aggregate of steel furnace slag: ASFS)-based heavyweight concrete (HWC) with improved durability, mechanical strength, and gamma (gamma)-ray attenuation properties. A new contribution of the study is the use of nano-SiO2 slurry and nano-CaCO3 in concrete binder formulation to enhance concrete gamma-ray shielding capability. An optimized content was developed for the nano calcium carbonate, in combination with a constant amount of nano-silica slurry, to improve the performance of the HWC. An investigation program was implemented with eight concrete mixes, which were prepared by utilizing ASFS as the main aggregate with 3% of nano-silica slurry in combination with (0-3%) of nano-calcium carbonate as additives to produce high strength HWC. The hardened concrete samples were evaluated for mechanical strength, fluid transport and gamma-ray shielding properties. The effect of 3% nano-SiO2 slurry and 2.0% nano-CaCO3 on the compressive strength and gamma-ray shielding increased by 10.3 and 3.4%, respectively, at 28 days as compared to the control mix without nanomaterials additives. The other mechanical and fluid transport properties of the concrete were also improved significantly. In conclusion, the combined use of nanosilica slurry and nano-calcium carbonate would enhance the mechanical strength, fluid transport and gamma-ray shielding properties of steel furnace-slag heavyweight concrete. (C) 2020 Elsevier Ltd. All rights reserved.
机译:由于核能部门在全球范围内继续增长,因此在核电站应用程序中改善混凝土放射性隔离性能,以获得核电站应用的环境和人类生活在研究人员中得到了全球兴趣。虽然纳米二氧化硅,纳米碳酸钙和钢制炉渣具有高摩尔质量和有利的物理性质,以提高混凝土的放射性绝缘性能,缺乏对主题的文献已发表。本研究的目标是研究使用纳米二氧化硅浆料和纳米钙碳酸钙的使用纳米材料的适当性作为生产钢制炉渣(钢铁炉渣:ASF的骨料)的添加剂 - 基于重量级混凝土(HWC)提高了耐久性,机械强度和γ(γ) - 射线衰减性能。该研究的新贡献是在混凝土粘合剂配方中使用纳米-SiO2浆料和纳米CacO3,以提高混凝土伽马射线屏蔽能力。为纳米碳酸钙开发了优化的含量,与恒定量的纳米二氧化硅浆料组合,以改善HWC的性能。调查方案用八个混凝土混合物实施,该混凝土通过用ASF为主要聚集体,其中3%的纳米二氧化硅浆料与(0-3%)组合的纳米碳酸钙作为添加剂,以产生高强度HWC。评估硬化的混凝土样品,用于机械强度,流体输送和伽马射线屏蔽性能。 3%纳米-SiO2浆料和2.0%纳米CaCO3对抗压强度和γ射线屏蔽的影响分别增加了10.3和3.4%,与没有纳米材料添加剂的对照混合物相比,在28天内分别增加了10.3和3.4%。混凝土的其他机械和流体运输性能显着提高。总之,纳米硅浆料和纳米碳酸钙的合并使用将增强钢炉渣重量级混凝土的机械强度,流体输送和伽马射线屏蔽性能。 (c)2020 elestvier有限公司保留所有权利。

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