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嵌锁块路面受力特性与设计方法

单景松 李惠 蒋含莞

单景松, 李惠, 蒋含莞. 嵌锁块路面受力特性与设计方法[J]. 交通运输工程学报, 2015, 15(4): 9-17. doi: 10.19818/j.cnki.1671-1637.2015.04.002
引用本文: 单景松, 李惠, 蒋含莞. 嵌锁块路面受力特性与设计方法[J]. 交通运输工程学报, 2015, 15(4): 9-17. doi: 10.19818/j.cnki.1671-1637.2015.04.002
DAN Jing-song, LI Hui, JIANG Han-guan. Mechanical characteristics and design method of interlocking concrete block pavement[J]. Journal of Traffic and Transportation Engineering, 2015, 15(4): 9-17. doi: 10.19818/j.cnki.1671-1637.2015.04.002
Citation: DAN Jing-song, LI Hui, JIANG Han-guan. Mechanical characteristics and design method of interlocking concrete block pavement[J]. Journal of Traffic and Transportation Engineering, 2015, 15(4): 9-17. doi: 10.19818/j.cnki.1671-1637.2015.04.002

嵌锁块路面受力特性与设计方法

doi: 10.19818/j.cnki.1671-1637.2015.04.002
基金项目: 

山东省自然科学基金项目 ZR2011EEQ027

国家自然科学基金项目 51408346

详细信息
    作者简介:

    单景松(1978-), 男, 山东东营人, 山东科技大学副教授, 同济大学博士后, 从事路面结构与材料研究

  • 中图分类号: U416.2

Mechanical characteristics and design method of interlocking concrete block pavement

More Information
    Author Bio:

    SHAN Jing-song(1978-), male, associate professor, PhD, +86-532-86057633, cyhsjs@163.com

  • 摘要: 为了提高传统路面嵌锁块尺寸与嵌锁块竖向嵌锁能力, 开发了大尺寸企口连接嵌锁块, 分析了其受力特性。以有限元方法建立了嵌锁块路面整体模型, 以弹簧单元模拟嵌锁块间传荷能力, 分析了嵌锁块尺寸、嵌锁块传荷能力、碎石基层厚度与路基强度对路表弯沉和路基顶面竖向压应变的影响。以路基顶面永久应变为控制指标, 建立了路基顶面应变水平与标准累计轴次的关系。计算结果表明: 在相同地基和基层条件下, 嵌锁块尺寸由30cm×20cm增大到50cm×30cm时, 路表弯沉可减小25%~30%, 路基顶面压应变可减小25%~45%。当接缝弹簧弹性系数由102 N·m-1增加至108 N·m-1时, 路表弯沉降低50%~55%, 路基顶面压应变降低65%~75%。可见, 采用较大尺寸的嵌锁块与加强嵌锁块的传荷能力对提升路面性能有显著作用, 路面设计时应依据道路的交通水平查图确定路基顶面的压应变水平, 据此确定合理的基层厚度和嵌锁块尺寸, 使路基顶面竖向压应变满足要求。

     

  • 图  1  大型企口嵌锁块

    Figure  1.  Large interlocking blocks with tongue and groove

    图  2  嵌锁块路面结构

    Figure  2.  Interlocking block pavement structure

    图  3  有限元模型

    Figure  3.  Finite element model

    图  4  接缝处节点

    Figure  4.  Nodes at joint

    图  5  接缝两侧剪切弹簧

    Figure  5.  Shear springs at joint section

    图  6  荷载简化模式

    Figure  6.  Simplified loading modes

    图  7  嵌锁块最不利加载位置

    Figure  7.  Critical loading positions of interlocking blocks

    图  8  嵌锁块尺寸对路表弯沉的影响

    Figure  8.  Effect of interlocking block dimension on surface deflection

    图  9  嵌锁块尺寸对路基顶面压应变的影响

    Figure  9.  Effect of interlocking block dimension on vertical strain at top of subgrade

    图  10  弹簧弹性系数对路基顶面压应变的影响

    Figure  10.  Effect of spring elastic coefficient on vertical strain at top of subgrade

    图  11  路基支承对路基顶面压应变的影响

    Figure  11.  Effect of subgrade resilient modulus on vertical strain at top of subgrade

    图  12  路表弯沉与路基支承能力的关系

    Figure  12.  Relation between surface deflection and subgrade resilient modulus

    图  13  路基顶面压应变与路基支承能力的关系

    Figure  13.  Relation between vertical strain at top of subgrade and subgrade resilient modulus

    图  14  尺寸影响系数A1

    Figure  14.  Dimension factor A1

    图  15  尺寸影响系数A2

    Figure  15.  Dimension factor A2

    图  16  传荷能力影响系数B1

    Figure  16.  Load transfer factor B1

    图  17  传荷能力影响系数B2

    Figure  17.  Load transfer factor B2

    图  18  竖向压应变随深度的变化规律

    Figure  18.  Changing rules of vertical strain with depth

    图  19  路基压应变与累计标准轴次的关系

    Figure  19.  Relation between vertical strain of subgrade and normative accumulated axle-load acting number

    表  1  材料参数

    Table  1.   Material parameters

    表  2  路基顶面压应变比

    Table  2.   Vertical strain ratios at top of subgrade

    表  3  基层厚度对路基顶面压应变的影响

    Table  3.   Effect of base thickness on vertical strain at top of subgrade

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出版历程
  • 收稿日期:  2015-03-02
  • 刊出日期:  2015-04-25

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