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首页> 外文期刊>Croatian Journal of Forest Engineering >Pavement Engineering for Forest Roads: Development and Opportunities
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Pavement Engineering for Forest Roads: Development and Opportunities

机译:森林道路的路面工程:发展和机遇

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Pavement is an essential component of roads as it carries the traffic and provides the required riding comfort. Considering that numerous forest roads are approaching their end of life, the critical issue is identifying the best rational pavement design methods to reengineer existing and build new pavement structures. The purpose of this contribution was (1) to review the big development lines of pavement systems, (2) to have a critical look at the pavement engineering framework, and (3) to bring selected empirical design equations into a comparable scheme. The study resulted in the following significant findings. First, the Trésaguet and McAdam pavement systems represented the state of the art from the beginning of a formal forest road engineering discipline at the beginning of the 19th century and remained for almost 150 years. Second, the emergence of soil mechanics as a scientific discipline in the 1920s resulted in the optimal grading of aggregates and improvement of soils and aggregates with binders, such as lime, cement, and bitumen. Third, the rational pavement design consists of five essential components: (1) bearing resistance of the subsoil, (2) bearing resistance of the pavement structure, (3) lifecycle traffic volume, (4) uncertainties that amplify deterioration, and (5) the limit state criterion, defining thresholds, above which structural safety and serviceability are no longer met. Fourth, rational, formal pavement design approaches used for forest roads were ?downsized? from methodologies developed for high-volume roads, among which the approaches of the American Association of State Highway and Transportation Officials (AASHTO) and US Army Corps of Engineers (USACE) are of primary interest. Fifth, the conversion of the AASHTO '93 and USACE '70 methods into the SI system indicated that both equations are sensitive to soil bearing resistance, measured in California Bearing Ratio (CBR). However, there is a lack of validation for the AASHTO and USACE equations for forest road conditions. Consequently, a factorial observational study to gain a basis for validation should be developed and implemented. Additionally, the conversion of simple soil bearing resistance measures, such as CBR, into the resilient modulus will be improved.
机译:路面是道路的重要组成部分,因为它带来了交通,并提供了所需的骑行舒适度。考虑到众多森林道路正在接近生命结束,关键问题正在识别重新登记的最佳理性路面设计方法,并建立新的路面结构。本贡献的目的是(1)审查路面系统的大开发线,(2)对人行道工程框架的关键外观,以及(3)将选定的经验设计方程带入可比方案。该研究导致了以下重要发现。首先,Trésaguet和McAdam路面系统从19世纪初开始,从正式的森林公路工程学科开始,近150年来代表了本领域。其次,20世纪20年代的土壤力学的出现作为科学学科导致骨料聚集和改善土壤和粘合剂的含量,如石灰,水泥和沥青。第三,理性路面设计由五个基本组件组成:(1)亚底轴承电阻,(2)路面结构的轴承电阻,(3)生命周期交通量,(4)放大恶化的不确定性,(5)限制状态标准,定义阈值,高于不再满足结构安全性和可维护性。第四,用于森林道路的理性,正式的人行道设计方法是庞大的?从为大批量道路开发的方法,其中美国公路和运输官员(AASHTO)和美国陆军工程兵团(USACE)的方法是主要兴趣的方法。第五,AASHTO'93和USACE'70方法的转换为SI系统表明,两个方程对土壤轴承率敏感,在加州轴承比(CBR)中测量。然而,缺乏森林公路状况的AASHTO和USACE方程缺乏验证。因此,应制定和实施衡量验证依据的因子观测研究。另外,将改善简单的土壤轴承电阻措施,例如CBR,进入弹性模量的转化。

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