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Microstructural design, manufacturing and dual-scale modelling of an adaptable porous composite sound absorber

机译:自适应多孔复合吸声体的微观结构设计,制造和双尺度建模

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This work investigates a porous composite with modifiable micro-geometry so that its ability to absorb noise can be accommodated to different frequency ranges. The polymeric skeleton of the composite has a specific periodic structure with two types of pores (larger and smaller ones) and two types of channels (wide and narrow ones), and each of the large pores contains a small steel ball. Depending on the situation, the balls block different channels that connect the pores, and therefore alter the visco-inertial phenomena between the saturating air and solid skeleton which take place at the micro-scale level and are responsible for the dissipation of the energy of acoustic waves penetrating the porous composite. All this is studied numerically using advanced dual-scale modelling, and the results are verified by the corresponding experimental tests of 3D-printed samples. Particular attention is paid to the prototyping and additive manufacturing of such adaptive porous composites.
机译:这项工作研究了具有可修改的微几何形状的多孔复合材料,以便其吸收噪声的能力可以适应不同的频率范围。复合材料的聚合物骨架具有特定的周期性结构,具有两种类型的孔(较大和较小的孔)和两种类型的通道(宽和窄的孔),并且每个大孔都包含一个小钢球。根据情况,这些球会阻塞连接孔隙的不同通道,因此会改变饱和空气与固体骨架之间的微惯性现象,这些现象发生在微观尺度上,并负责消散声能。波穿透多孔复合材料。所有这些都使用高级的双比例模型进行了数值研究,结果通过3D打印样品的相应实验测试得到了验证。特别注意此类自适应多孔复合材料的原型设计和增材制造。

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