Application of self-consolidating concrete to segment for shield tunnel

被引:1
|
作者
Uno, Yoshiki
机构
关键词
self-consolidating concrete; concrete product; manufacturing system; rationalization; reduction of costs; environment;
D O I
10.1617/2912143624.072
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
In manufacturing conventional shield tunnel segments in Japan, ultra-hard mixed concrete with slump of about 2 cm was used to facilitate molding and to obtain high strength. So, during concrete placement, powerful table vibrators were used for compaction with intense noise and vibration far from ideal. Recently, self-consolidating concrete with slump-flow of about 65 cm is applied to shield tunnel segments. It is possible that three advantages are obtained in a case of the application of self-consolidating concrete. The advantages are the following. (1) improvements of the manufacturing environment: elimination of noise and vibration generated by vibrators on placing concrete (2) rationalization of manufacturing system: change of manufacturing process except concrete placement (3) reduction of manufacturing costs: reduction of labor and equipment for reasons of the rationalization. There are some achievements on the application of Self-Consolidating Concrete to shield tunnel segments at present, total volume has about 12,000 m(3) (about 1,500 rings) including maximum diameter size of 7,100 mm and minimum diameter size of 3,600 mm. This paper shows that Self-Consolidating Concrete gives a new variable method to manufacturing concrete products such as shield tunnel segment.
引用
收藏
页码:665 / 672
页数:8
相关论文
共 50 条
  • [21] ASTM puts self-consolidating concrete to the test
    Vachon, Martin
    2002, American Society for Testing and Materials (30):
  • [22] Mechanical properties of prestressed self-consolidating concrete
    Long, Wu-Jian
    Khayat, Kamal H.
    Hwang, Soo-Duck
    MATERIALS AND STRUCTURES, 2013, 46 (09) : 1473 - 1487
  • [23] Properties of self-consolidating concrete produced in Brazil
    Campos, Renan S.
    Barbosa, Monica P.
    Maciel, Geraldo de F.
    V CONGRESO IBEROAMERICANO DE HORMIGON AUTOCOMPACTANTE Y HORMIGONES ESPECIALES, 2018, : 269 - 278
  • [24] Utilization of Self-Consolidating Concrete Technology for Large Placements in New Nuclear Construction: A Study on Self-Consolidating Concrete Stability and Constructability
    Haranki, Boris
    Dilek, Ufuk
    JOURNAL OF NUCLEAR ENGINEERING AND RADIATION SCIENCE, 2022, 8 (02):
  • [25] Properties of self-consolidating concrete for prestressed members
    Schindler, Anton K.
    Barnes, Rbert W.
    Roberts, James B.
    Rodriguez, Sergio
    ACI MATERIALS JOURNAL, 2007, 104 (01) : 53 - 61
  • [26] Modelling the abrasion resistance of self-consolidating concrete
    Ghafoori, Nader
    Najimi, Meysam
    Sobhani, Jafar
    MAGAZINE OF CONCRETE RESEARCH, 2015, 67 (17) : 938 - 953
  • [27] Modeling Dynamic Segregation of Self-Consolidating Concrete
    Shen, Lin
    Struble, Leslie
    Lange, David
    ACI MATERIALS JOURNAL, 2009, 106 (04) : 375 - 380
  • [28] Strategies to Mitigate Cracking of Self-Consolidating Concrete
    Kassimi, Fodhil
    Khayat, Kamal H.
    ACI MATERIALS JOURNAL, 2019, 116 (03) : 73 - 83
  • [29] Mechanical properties of prestressed self-consolidating concrete
    Wu-Jian Long
    Kamal H. Khayat
    Soo-Duck Hwang
    Materials and Structures, 2013, 46 : 1473 - 1487
  • [30] Using Self-Consolidating Concrete for Bridge Repairs
    Ozyildirim, H. Celik
    Moruza, Gail M.
    Concr. Int., 4 (42-46): : 42 - 46