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基于离散事件模拟沥青路面施工对环境的影响

于斌 孙悦

于斌, 孙悦. 基于离散事件模拟沥青路面施工对环境的影响[J]. 交通运输工程学报, 2018, 18(4): 12-21. doi: 10.19818/j.cnki.1671-1637.2018.04.002
引用本文: 于斌, 孙悦. 基于离散事件模拟沥青路面施工对环境的影响[J]. 交通运输工程学报, 2018, 18(4): 12-21. doi: 10.19818/j.cnki.1671-1637.2018.04.002
YU Bin, SUN Yue. Environmental impact of asphalt pavement construction based on discrete event simulation[J]. Journal of Traffic and Transportation Engineering, 2018, 18(4): 12-21. doi: 10.19818/j.cnki.1671-1637.2018.04.002
Citation: YU Bin, SUN Yue. Environmental impact of asphalt pavement construction based on discrete event simulation[J]. Journal of Traffic and Transportation Engineering, 2018, 18(4): 12-21. doi: 10.19818/j.cnki.1671-1637.2018.04.002

基于离散事件模拟沥青路面施工对环境的影响

doi: 10.19818/j.cnki.1671-1637.2018.04.002
基金项目: 

国家自然科学基金项目 51408114

江苏省自然科学基金项目 BK20171359

教育部留学回国人员科研启动基金项目 2015-1098

详细信息
    作者简介:

    于斌(1985-), 男, 江苏淮安人, 东南大学副教授, 工学博士, 从事道路材料设计与性能评价、环境影响研究

  • 中图分类号: U416.217

Environmental impact of asphalt pavement construction based on discrete event simulation

More Information
    Author Bio:

    YU Bin(1985-), male, associate professor, PhD, yb@seu.edu.cn

  • 摘要: 为了降低沥青路面施工过程中能耗及温室气体和污染物排放, 建立了基于离散事件模拟的沥青路面施工环境影响计算模型, 利用概率分布函数和逻辑语句将施工步骤抽象化, 应用图形化离散事件模拟软件构建了沥青路面施工离散事件模型, 将Nonroad计算模型植入, 进行了不同温室气体和污染物的动态计算, 并对比了不同施工情况的模拟排放结果。分析结果表明: 运料车将沥青混合料运输至摊铺现场的过程为沥青路面施工的主要能耗源, 为总能耗的44%, 摊铺过程与运料车返回过程的能源消耗分别为总能耗的32%、12%;温室气体与污染物排放的主要施工步骤为运输和摊铺过程, 占排放总量的50%以上; 摊铺与压实过程产生的排放物主要为NOx, 运输过程产生的排放物主要为CO2; 对施工工艺进行调整, 使用不间断摊铺施工会明显减少NOx的排放, 减排量约为15%;在施工设备方面, 适当增大摊铺设备的容量会减少CO2和HC的排放, 前者减排量约为25%, 后者约为17%。可见, 基于离散事件模拟沥青路面施工环境影响计算模型, 可量化沥青路面施工过程的能耗及温室气体和污染物排放, 优化沥青路面施工技术方案。

     

  • 图  1  沥青路面施工流程

    Figure  1.  Construction process of asphalt pavement

    图  2  路面施工离散事件模型

    Figure  2.  Discrete event model of pavement construction

    图  3  施工步骤能耗模拟结果

    Figure  3.  Energy consumption simulation results of construction steps

    图  4  GHGs和污染物相对含量模拟结果

    Figure  4.  Simulation results of relative contents of GHGs and pollutants

    图  5  施工步骤GHGs和污染物排放模拟结果

    Figure  5.  Simulation results of GHGs and pollutant emissions in construction steps

    图  6  施工设备GHGs和污染物排放模拟结果

    Figure  6.  Simulation results of GHGs and pollutant emissions from construction equipments

    图  7  改进后路面施工离散事件模型

    Figure  7.  Discrete event model of improved pavement construction

    图  8  改进前后能耗模拟结果对比

    Figure  8.  Comparison of simulation results for energy consumption before and after improvement

    图  9  改进前后GHGs和污染物排放模拟结果对比

    Figure  9.  Comparison of simulation results for GHGs and pollutant emissions before and after improvement

    图  10  改进前后CO2排放模拟结果对比

    Figure  10.  Comparison of simulation results for CO2 emission before and after improvement

    图  11  改进前后NOx排放模拟结果对比

    Figure  11.  Comparison of simulation results for NOxemission before and after improvement

    图  12  施工设备改进前后能耗模拟结果对比

    Figure  12.  Comparison of simulation results for energy consumption before and after improvement of construction equipment

    图  13  施工设备改进前后GHGs和污染物排放模拟结果对比

    Figure  13.  Comparison of simulation results for GHGs and pollutant emissions before and after improvement of construction equipment

    表  1  施工设备参数

    Table  1.   Parameters of construction equipments

    下载: 导出CSV

    表  2  施工设备Nonroad排放参数

    Table  2.   Nonroad emission parameters of construction equipments

    下载: 导出CSV

    表  3  基本事件的连接情况

    Table  3.   Connection cases for basic events

    下载: 导出CSV

    表  4  施工步骤持续时间与载荷系数

    Table  4.   Durations and load coefficients of construction steps

    下载: 导出CSV

    表  5  改进后施工设备Nonroad排放参数

    Table  5.   Nonroad emission parameters of construction equipments after improvement

    下载: 导出CSV
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出版历程
  • 收稿日期:  2017-12-19
  • 刊出日期:  2018-08-25

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