Miturska-Barańska Izabela, Rudawska Anna, Sobotova Lydia, Badida Miroslav, Olewnik-Kruszkowska Ewa, Müller Miroslav, Hromasová Monika
Department of Production Computerisation and Robotisation, Faculty of Mechanical Engineering, Lublin University of Technology, Nadbystrzycka 36, 20-618 Lublin, Poland.
Department of Business Management and Environmental Engineering, Faculty of Mechanical Engineering, Technical University of Kosice, Letná 9, 042 00 Košice, Slovakia.
Materials (Basel). 2024 Sep 10;17(18):4452. doi: 10.3390/ma17184452.
Material development in acoustic engineering plays a significant role in various applications, such as industrial noise control. It is important and relevant to consider alternative materials capable of reducing noise levels in different frequency ranges. One commonly used material in engineering structures is epoxy adhesive compositions. Favoring the use of adhesive compositions are their main characteristics, including weight reduction in structures, corrosion resistance, relatively low manufacturing costs, and high mechanical strength. This paper aims to discuss the relationship between the mechanical properties of modified epoxy adhesives, their structure, and sound absorption efficiency. The subjects of this study were specimens of an epoxy composition in the cured state. Acoustic absorption coefficients were evaluated using a dual-microphone impedance tube, and tensile, compressive, and bending strength properties were determined using a testing machine. The impact strength of the compositions was also investigated. An analysis of the structure of the adhesives in the cured state was carried out using a scanning electron microscope. The test specimens were made from Epidian 5 epoxy resin cured with a polyamide PAC curing agent. Nanobent ZR2 aluminosilicate in an amount of 1%, CaCO calcium carbonate in an amount of 5%, and CWZ-22 activated carbon in an amount of 20% were used as modifiers. The conducted studies revealed that the highest tensile strength was obtained for the adhesive composition with the addition of ZR2 filler. The highest compressive strength was exhibited by the adhesive composition with the addition of CWZ-22 filler. The highest flexural strength was demonstrated by the unmodified composition. For all the tested adhesive compositions, low sound absorption values were achieved, with a maximum of approximately 0.18. From the perspective of the reduction index , it was observed that these samples performed better in reduction than in absorption. The best values were achieved in the compositions modified with CaCO.
声学工程中的材料开发在各种应用中发挥着重要作用,例如工业噪声控制。考虑能够在不同频率范围内降低噪声水平的替代材料是重要且相关的。工程结构中常用的一种材料是环氧胶粘剂组合物。有利于使用胶粘剂组合物的主要特性包括结构减重、耐腐蚀、制造成本相对较低以及机械强度高。本文旨在探讨改性环氧胶粘剂的力学性能、其结构与吸声效率之间的关系。本研究的对象是固化状态的环氧组合物试样。使用双传声器阻抗管评估吸声系数,并使用试验机测定拉伸、压缩和弯曲强度性能。还研究了组合物的冲击强度。使用扫描电子显微镜对固化状态的胶粘剂结构进行了分析。测试试样由用聚酰胺PAC固化剂固化的Epidian 5环氧树脂制成。使用1%的纳米弯曲ZR2硅铝酸盐、5%的CaCO碳酸钙和20%的CWZ - 22活性炭作为改性剂。进行的研究表明,添加ZR2填料的胶粘剂组合物获得了最高的拉伸强度。添加CWZ - 22填料的胶粘剂组合物表现出最高的压缩强度。未改性的组合物表现出最高的弯曲强度。对于所有测试的胶粘剂组合物,吸声值都很低,最大值约为0.18。从降噪指数的角度来看,观察到这些样品在降噪方面比在吸声方面表现更好。用CaCO改性的组合物取得了最佳值。