用于未来交通基础设施的基因可编辑材料:聚氨酯基路面研究进展

Hong, Bin, Lu, Guoyang, Li, Tianshuai, Lin, Jiao, Wang, Dawei, Liang, Dong, Oeser, Markus
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引用次数: 14

摘要

随着社会和工业的快速发展,与路面工程相关的新技术、新材料不断涌现。然而,随着人们需求的不断提高,路面工程也面临着越来越大的挑战,路面材料必须具有优异的工程性能和环境效益。同时,智能化是现代社会的主流发展方向,也是未来交通基础设施的发展趋势。材料基因组计划是一项新材料开发计划,通过前期模拟和预测进行材料设计,然后进行关键验证实验,科学技术和人工智能工具集(大数据和机器学习)的快速发展为路面材料开发提供了新的机遇和强大的技术支持,缩短了新材料的开发应用周期。降低成本,推动智能传感元件等新型载体在交通运输工程中的应用,实现交通运输工程的智能化。然而,传统的路面材料存在着一些不可避免的缺点,这表明它们很难满足对未来路面材料的上述要求。因此,开发未来新型路面材料,既能按需设计,又具有足够的力学性能、高耐久性、实用功能和高环保性,迫在眉睫。近年来,聚氨酯(PU)作为一种具有各种优良工程性能的“可设计”高分子材料,通过改变原材料的化学结构及其配比,在路面修补材料、透水路面材料、隧道铺装材料、桥面铺装材料等方面得到了广泛的应用。尽管聚氨酯材料在实践中得到了广泛的应用,但系统的总结对于进一步了解聚氨酯材料的工作机理和优化其工程应用仍是十分必要的。为了填补这一空白,本文提出了对未来交通基础设施材料的特殊要求,并介绍了PU材料的基本性能和工作机理,以期弥补常规道路材料的缺陷。在此基础上,本文还总结了近年来应用PU作为不同道路基础设施材料粘结剂的工程性能和环境效益。考虑到聚氨酯的基因可编辑性,建议进一步研究聚氨酯路面材料的按需设计原则。重点介绍了原料基因数据库、原料终端性能数据库的建立及其构效关系。本研究对道路基础设施聚氨酯材料的实践指导和进一步优化具有重要意义,符合未来的碳中和政策。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Gene-editable materials for future transportation infrastructure: a review for polyurethane-based pavement
With the rapid development of society and industry, novel technologies and materials related to pavement engineering are constantly emerging. However, with the continuous improvement of people’s demands, pavement engineering also faces more and more enormous challenges that the pavement materials must have excellent engineering properties and environmental benefits. Meanwhile, the intelligence is the mainstream development direction of modern society, and the development trend of future transportation infrastructure. Materials Genome Initiative, a program for the development of new materials that materials design is conducted by up-front simulations and predictions, followed by key validation experiments, the rapid development of science and technology and AI toolset (big data and machine learning) provide new opportunities and strong technical supports for pavement materials development that shorten the development-application cycle of new material, reduce cost and promote the application of new carriers such as intelligent sensing components in transportation engineering, to achieve the intelligence of transportation engineering. However, traditional pavement materials possess several unavoidable shortcomings, indicating that it is exceedingly difficult for them to meet the above requirements for future pavement materials. Therefore, the development of future new pavement materials, which can be designed on-demand as well as possessing enough mechanical properties, high durability, practical functionality, and high environmental protection, is urgent. In recent years, as a “designable” polymer material with various excellent engineering performances, polyurethane (PU) has been widely applied in pavement practices by changing the chemical structures of raw materials and their mix proportions, for instance pavement repairing material, permeable pavement material, tunnel paving material and bridge deck paving materials, etc. Although PU material has been widely applied in practices, a systematically summarization is still quite necessary for further understanding the working mechanism of PU materials and optimization it’s engineering applications. To fill the gap, this article puts forward the special requirements for future transportation infrastructure materials, and introduces the basic properties and working mechanism of PU materials in order to make up for the defects of conventional road materials. Based on this, this article also summarizes the engineering performances and environmental benefits of applying PU as the binder for different road infrastructure materials in recent years. Considering the gene-editable nature of polyurethane, further research of the on-demand design principles of PU pavement materials is recommended. The establishment of raw material gene database, material terminal performance database and their structure-activity relationship are highlighted. The current research is essential to the practice guidance and further optimization of the PU materials for road infrastructures, which in line with the future Carbon neutral policy.
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