A new composite protective structure based on controllability of blast load on structure layer (Ⅱ): influence factors and design concept
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摘要: 为明确泡沫混凝土厚度和强度对组合式防护结构抗爆性能的影响,充分发挥和合理利用泡沫混凝土良好的消波特性,首先通过试验及数值模拟探讨不同泡沫混凝土厚度和强度对组合式防护结构抗爆性能的影响,并分析分层梯度泡沫混凝土在爆炸波作用下的消波特性。然后将组合式防护结构与采用中粗砂为分配层的传统成层式结构进行对比分析验证其优越性,在此基础上,总结凝练出组合式防护结构的主体结构荷载可控的设计理念。结果表明,利用泡沫混凝土材料较长的屈服平台和较低的波阻抗,以泡沫混凝土作为能量调控层,通过设计泡沫混凝土强度等级(密度等级)和厚度以及采用多层梯度泡沫混凝土,可使得作用于主体结构上的爆炸荷载峰值恰为泡沫混凝土屈服强度,实现对主体结构上荷载的可控设计,有效解决了中粗砂为分配层的传统成层式结构不易控制作用于主体结构上荷载的问题。研究结果可为抗新型钻地弹的防护设计提供重要参考。Abstract: The experimental and numerical investigation was carried out to clarify the influence of thickness and strength of foam concrete layer on blast resistance of the new composite protective structure. And the multilayer graded foam concrete was applied to adequately and rationally use the good wave dissipation performance of foam concrete. Then the advantage of new composite protective structure is verified by the comparison with the traditional layered structure with medium/coarse sand as the distribution layer. Finally, the design concept of composite protective structure based on controllability of blast load on structure layer is summarized. The foam concrete can be used as energy control layer of composite protective structure, which is mainly due to its long yield plateau and low wave impedance. The blast load acting on the structure layer can be exactly equal to the yield strength of foam concrete by choosing the appropriate thickness and strength (density) of foam concrete layer, as well as the use of the multilayer graded foam concrete. Based on the controllable design concept of blast load on structure layer in the new composite protective structure, the defects of traditional layered protective structure with medium/coarse sand as the distribution layer can be solved thoroughly, all of which can provide important reference for design of protective structure against new earth penetration weapons.
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Key words:
- foam concrete /
- composite protective structure /
- controllable design /
- blast load /
- wave dissipation
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表 1 泡沫混凝土配合比
Table 1. Mix proportion of foam concrete
强度等级 设计密度/(kg·m−3) 粉煤灰/(kg·m−3) 矿渣/(kg·m−3) 硅酸钠溶液/(kg·m−3) 氢氧化钠固体/(kg·m−3) 水/(kg·m−3) 泡沫/(L·m−3) C1 500 202 202 188 14 72 600 C3 900 362 362 339 25 133 406 C5 1200 484 484 452 33 182 108 C10 1400 564 564 528 38 213 65 -
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