首页> 外文期刊>Materials and structures >Sandwich panels with high performance concrete thin plates at elevated temperatures: numerical studies
【24h】

Sandwich panels with high performance concrete thin plates at elevated temperatures: numerical studies

机译:高温下具有高性能混凝土薄板的夹芯板:数值研究

获取原文
获取原文并翻译 | 示例

摘要

Performance of conventional load-carrying sandwich structures made of concrete can be improved by the use of high performance concrete (HPC) plates of thin sections (30 mm), linked by shear connectors ensuring the composite behaviour of the structure. This paper proposes the application of a coupled heat and mass transfer (HMT) model to HPC thin plates to study their behaviour at elevated temperatures, predicting temperature and pore pressure distributions. The same model was applied to a sandwich structure including thin plate, stiffening rib, and insulation layer. A last simulation concerned HMT modelling and elastic stress analysis with non-linear temperature effects of a full size loaded sandwich wall, qualitatively assessing the location of critically stressed zones. Modelling output was compared to published experimental results. The model reproduced experimental temperature recordings satisfactorily, except phase changes of water at low heating rates. It was suggested that the function governing moisture evolution with temperature and pressure should be updated for HPC. Pore pressure was found critical for sandwich structures due their higher temperatures. Adding polypropylene (PP) fibres for pressure release is recommended. Stress analysis showed the stiffening rib assumes the major load-carrying role. The thin plate was found largely sensitive to heat, its thermal bowing restrained by shear connectors creating high localised tensile stresses. It was suggested to anchor the shear connectors in the ribs. Geometric discontinuities were also found critical; therefore separation of rib and plate is advised for hazardous situations such as fire events.
机译:通过使用薄截面(30毫米)的高性能混凝土(HPC)板,通过剪切连接器将其连接起来,可确保结构的复合性能,从而改善传统的混凝土承载结构。本文提出将传热传质(HMT)模型应用于HPC薄板,以研究它们在高温下的行为,预测温度和孔压分布。将同一模型应用于包含薄板,加劲肋和绝缘层的三明治结构。最后一个模拟涉及HMT建模和弹性应力分析,以及全尺寸加载的夹心墙的非线性温度效应,定性评估临界应力区域的位置。将模型输出与已发布的实验结果进行了比较。该模型令人满意地再现了实验温度记录,只是在低加热速率下水的相变除外。建议针对HPC更新控制水分随温度和压力逸出的功能。由于较高的温度,发现孔隙压力对于三明治结构至关重要。建议添加聚丙烯(PP)纤维以释放压力。应力分析表明,加劲肋承担了主要的载荷作用。发现该薄板对热非常敏感,其热弯曲受到剪切连接器的约束,从而产生较高的局部拉伸应力。建议将剪切连接器锚固在肋中。几何上的不连续性也很关键。因此,在发生火灾等危险情况时,建议将肋骨和板分开。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号