Kim Yeong-Min, Kim Kyungnam, Le Tri Ho Minh
Department of Highway & Transportation Research, Korea Institute of Civil Engineering and Building Technology, 283 Goyangdae-Ro, Ilsanseo-Gu, Goyang 10223, Republic of Korea.
Korea Expressway Corporation Research Institute, Pavement Research Division, Dong-tansunhwan-daero 17-gil, Hwaseong-Si 18489, Republic of Korea.
Polymers (Basel). 2024 Feb 22;16(5):600. doi: 10.3390/polym16050600.
This manuscript presents a comprehensive study on the sustainable optimization of asphalt mixtures tailored for regions prone to flooding. The research addresses the challenges associated with water damage to asphalt pavements by incorporating innovative additives. The study centers on incorporating recycled Low-Density Polyethylene (LDPE) and a tailored Carnauba-Soybean Oil Additive, advancing asphalt mixtures with a Control mix, LDPE (5%) + Control, and LDPE (5%) + 3% Oil + Control. A critical aspect of the research involves subjecting these mixtures to 30 wetting and drying cycles, simulating the conditions prevalent in tropical flood-prone areas. The incorporation of innovative additives in asphalt mixtures has demonstrated significant improvements across various performance parameters. Tensile Strength Ratio (TSR) tests revealed enhanced tensile strength, with the LDPE (5%) + 3% Oil-modified mixture exhibiting an impressive TSR of 85.7%. Dynamic Modulus tests highlighted improved rutting resistance, showcasing a remarkable increase to 214 MPa in the LDPE (5%) with a 3% Oil-modified mixture. The Semi-Circular Bending (SCB) test demonstrated increased fracture resistance and energy absorption, particularly in the LDPE (5%) with 3% Oil-modified mixture. Hamburg Wheel-Tracking (HWT) tests indicated enhanced moisture resistance and superior rutting resistance at 20,000 cycles for the same mixture. Cantabro tests underscored improved aggregate shatter resistance, with the LDPE (5%) + 3% Oil-modified mixture exhibiting the lowest weight loss rate at 9.820%. Field tests provided real-world insights, with the LDPE (5%) + 3% Oil mixture displaying superior stability, a 61% reduction in deflection, and a 256% improvement in surface modulus over the control mixture. This research lays the groundwork for advancing the development of sustainable, high-performance road pavement materials, marking a significant stride towards resilient infrastructure in flood-prone areas.
本手稿展示了一项针对易发生洪水地区定制的沥青混合料可持续优化的综合研究。该研究通过加入创新添加剂来应对沥青路面水损害相关的挑战。研究重点是加入回收的低密度聚乙烯(LDPE)和定制的巴西棕榈 - 大豆油添加剂,形成对照混合料、LDPE(5%)+对照、LDPE(5%)+ 3%油+对照的改良沥青混合料。该研究的一个关键方面是使这些混合料经历30次干湿循环,模拟热带易发生洪水地区的普遍条件。在沥青混合料中加入创新添加剂已在各种性能参数上显示出显著改善。拉伸强度比(TSR)测试显示拉伸强度增强,LDPE(5%)+ 3%油改性混合料的TSR高达85.7%。动态模量测试突出了抗车辙性能的改善,LDPE(5%)+ 3%油改性混合料的动态模量显著提高到214兆帕。半圆弯曲(SCB)测试表明抗断裂性和能量吸收增加,特别是在LDPE(5%)+ 3%油改性混合料中。汉堡轮辙(HWT)测试表明相同混合料在20000次循环时的耐湿性增强和优异的抗车辙性能。坎塔布罗测试强调了集料抗破碎性的改善,LDPE(5%)+ 3%油改性混合料的重量损失率最低,为9.820%。现场测试提供了实际见解,LDPE(5%)+ 3%油混合料显示出卓越的稳定性,与对照混合料相比,挠度降低61%,表面模量提高256%。这项研究为推进可持续、高性能道路路面材料的发展奠定了基础,标志着在易发生洪水地区迈向弹性基础设施的重要一步。