A Review of Electrically Conductive Cement Concrete Pavement for Sustainable Snow-Removal and Deicing: Road Safety in Cold Regions

M. Anis, Mohamed Abdel-Raheem
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Abstract

Within cold U.S. regions, winter storms can cause interruptions in transportation networks, affecting transportation entities’ revenue streams. Conventional snow-removal methods on roadways efficiently remove snow and ice, yet their adverse environmental impacts further make winter maintenance more challenging. In response to these concerns, electrically conductive cement concrete (ECCC) pavement has become an effective alternative for deicing and snow melting on road surfaces. ECCC utilizes the Joule heating principles to effectively melt snow and ice by incorporating conductive elements into conventional concrete. This paper comprehensively reviews the current literature on ECCC pavement. Previous studies have diligently explored various aspects of ECCC pavement, including concrete conductivity enhancement, heat transfer processes, and meticulous performance assessments, ranging from controlled laboratory scale experiments to small-scale field evaluations. The conclusions drawn from these investigations highlight the potential of ECCC pavement to considerably enhance winter road maintenance, consequently improving road safety and minimizing traffic interruptions during winter storms. The present review emphasizes ECCC pavement as a promising paradigm for effectively addressing the complexities associated with winter road maintenance in colder regions. Moreover, its environmentally friendly deicing capabilities present a sustainable departure from conventional methodologies. However, certain limitations currently impede widespread adoption of ECCC pavement, mainly concerning optimizing cost-effective construction techniques, ensuring long-lasting durability, and enhancing energy efficiency. Addressing these limitations could accelerate the broader adoption of ECCC pavement, promoting safer and more sustainable winter transportation practices.
用于可持续除雪和除冰的导电水泥混凝土路面综述:寒冷地区的道路安全
在美国寒冷地区,冬季暴风雪会导致交通网络中断,影响运输实体的收入来源。传统的道路除雪方法虽然能有效清除冰雪,但其对环境的不利影响却进一步增加了冬季维护的难度。针对这些问题,导电水泥混凝土(ECCC)路面已成为路面除冰和融雪的有效替代方法。导电水泥混凝土利用焦耳加热原理,在传统混凝土中加入导电元素,从而有效融化冰雪。本文全面回顾了有关 ECCC 路面的现有文献。以往的研究对 ECCC 路面的各个方面进行了深入探讨,包括混凝土传导性增强、传热过程和细致的性能评估,从实验室规模的受控实验到小规模的实地评估,不一而足。从这些研究中得出的结论突出表明,ECCC 路面具有显著提高冬季道路养护水平的潜力,因此可以改善道路安全,最大限度地减少冬季暴风雨期间的交通中断。本综述强调,ECCC 路面是有效解决寒冷地区冬季道路维护相关复杂问题的一种有前途的范例。此外,其环境友好型除冰能力与传统方法相比具有可持续性。然而,某些限制因素目前阻碍了 ECCC 路面的广泛采用,主要涉及优化具有成本效益的施工技术、确保长期耐久性和提高能源效率。解决这些局限性可加快 ECCC 路面的广泛应用,促进更安全、更可持续的冬季交通实践。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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