Jaskula Piotr, Ejsmont Jerzy A, Gardziejczyk Wladyslaw, Mioduszewski Piotr, Stienss Marcin, Motylewicz Marek, Szydlowski Cezary, Gierasimiuk Pawel, Rys Dawid, Wasilewska Marta
Department of Transportation Engineering, Faculty of Civil and Environmental Engineering, Gdansk University of Technology, 11/12 Gabriela Narutowicza St., 80-233 Gdansk, Poland.
Automotive and Military Technology Division, Faculty of Mechanical Engineering and Ship Technology, Gdansk University of Technology, 11/12 Gabriela Narutowicza St., 80-233 Gdansk, Poland.
Materials (Basel). 2023 Jan 20;16(3):983. doi: 10.3390/ma16030983.
This article presents the development process of designing and testing poroelastic pavement based on highly polymer-modified bitumen. Poroelastic wearing course was composed of mineral and rubber aggregate mixed with highly polymer-modified bitumen, in contrast to previous trials, during which polyurethane resins were mainly used as binder, which led to several serious technological problems concerning difficult production, insufficient bonding to the base layer, and unsatisfactory durability. The laboratory testing phase was aimed at finding the proper composition of the poroelastic mixture that would ensure required internal shear strength and proper bonding of the poroelastic layer with the base layer. After selecting several promising poroelastic mixture compositions, field test sections were constructed and tested in terms of noise reduction, rolling resistance and interlayer bonding. Despite the very good acoustic properties of the constructed poroelastic wearing course, it was not possible to solve the problem of its insufficient durability. Still, the second major issue of poroelastic pavements that concerns premature debonding of the poroelastic layer from the base layer was completely solved. Experience gained during the implementation of the described research will be the basis for further attempts to develop a successive poroelastic mixture in the future.
本文介绍了基于高聚物改性沥青设计和测试多孔弹性路面的开发过程。与之前主要使用聚氨酯树脂作为粘结剂的试验不同,多孔弹性磨耗层由矿物和橡胶集料与高聚物改性沥青混合而成,之前的试验导致了一些严重的技术问题,如生产困难、与基层粘结不足以及耐久性不理想。实验室测试阶段旨在找到合适的多孔弹性混合料组成,以确保所需的内部抗剪强度以及多孔弹性层与基层的良好粘结。在选择了几种有前景的多孔弹性混合料组成后,建造了现场试验路段,并对其降噪、滚动阻力和层间粘结进行了测试。尽管所建造的多孔弹性磨耗层具有非常好的声学性能,但仍无法解决其耐久性不足的问题。不过,多孔弹性路面的第二个主要问题,即多孔弹性层与基层过早脱粘的问题已完全解决。在开展上述研究过程中获得的经验将为未来进一步开发连续多孔弹性混合料的尝试奠定基础。