語系:
繁體中文
English
說明(常見問題)
回圖書館首頁
手機版館藏查詢
登入
回首頁
切換:
標籤
|
MARC模式
|
ISBD
An all fiber-reinforced-polymer-comp...
~
Eckel, Douglas Anthony, II.
FindBook
Google Book
Amazon
博客來
An all fiber-reinforced-polymer-composite bridge: Design, analysis, fabrication, full-scale experimental structural validation, construction and erection.
紀錄類型:
書目-電子資源 : Monograph/item
正題名/作者:
An all fiber-reinforced-polymer-composite bridge: Design, analysis, fabrication, full-scale experimental structural validation, construction and erection./
作者:
Eckel, Douglas Anthony, II.
面頁冊數:
413 p.
附註:
Source: Dissertation Abstracts International, Volume: 62-05, Section: B, page: 2416.
Contained By:
Dissertation Abstracts International62-05B.
標題:
Engineering, Civil. -
電子資源:
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=3013608
ISBN:
049323540X
An all fiber-reinforced-polymer-composite bridge: Design, analysis, fabrication, full-scale experimental structural validation, construction and erection.
Eckel, Douglas Anthony, II.
An all fiber-reinforced-polymer-composite bridge: Design, analysis, fabrication, full-scale experimental structural validation, construction and erection.
- 413 p.
Source: Dissertation Abstracts International, Volume: 62-05, Section: B, page: 2416.
Thesis (Ph.D.)--University of Delaware, 2001.
Bridge 1-351 on Business Route 896 in Glasgow, Delaware, was replaced with one of the first state-owned Fiber Reinforced Polymer (FRP) composite bridges in the nation. FRP composites are durable and lightweight construction materials with superior corrosion resistance resulting in benefits such as ease of construction, rapid erection and substantially reduced maintenance costs. The FRP composite bridge was designed using the American Association of State Highway and transportation Officials (AASHTO) Load and Resistance Factor Bridge Design Specifications. The completed bridge superstructure consists of two 13ft x 32ft sections joined by a unique longitudinal joint. The superstructure sections are web core sandwich construction composed of two facesheets (top of 0.5in and bottom 0.7in thick) and a core (28in deep) that provide flexural and shearing rigidity, respectively. The FRP composite bridge was fabricated with E-glass fiber preforms and vinyl-ester resin. Each FRP section was fabricated to near net shape in a single step by a vacuum assisted resin transfer molding process. The overall structural behavior was accurately predicted with design equations based on laminated plate and sandwich theory for anisotropic materials. Finite Element Modeling was conducted to approximate structural behavior of the bridge due to truck loads. Full scale experimental structural validation of FRP bridge subcomponents was conducted to validate that the design satisfied AASHTO Service I (deflection), Fatigue and Strength I limit states for a bridge service lifetime of 75 years. The structurally redundant longitudinal joint was designed and erected as a butt joint with an adhesively bonded vertical joint and splice plates. Assembly procedures were developed and implemented and transverse testing and structural validation of the full scale longitudinal joint was conducted. The final bridge superstructure sections were proof tested to the Strength I limit state. Both superstructure sections exceeded the performance criteria based on experimentally measured stiffnesses, deformations and facesheet strains. The construction phase included section positioning, anchorage, longitudinal joint assembly and application of the latex modified concrete wearing surface. The bridge was reopened to traffic on November 20, 1998. The completed bridge received the ASCE Delaware section project of the year in February 1999.
ISBN: 049323540XSubjects--Topical Terms:
783781
Engineering, Civil.
An all fiber-reinforced-polymer-composite bridge: Design, analysis, fabrication, full-scale experimental structural validation, construction and erection.
LDR
:03427nmm 2200289 4500
001
1842580
005
20050921082516.5
008
130614s2001 eng d
020
$a
049323540X
035
$a
(UnM)AAI3013608
035
$a
AAI3013608
040
$a
UnM
$c
UnM
100
1
$a
Eckel, Douglas Anthony, II.
$3
1930840
245
1 3
$a
An all fiber-reinforced-polymer-composite bridge: Design, analysis, fabrication, full-scale experimental structural validation, construction and erection.
300
$a
413 p.
500
$a
Source: Dissertation Abstracts International, Volume: 62-05, Section: B, page: 2416.
500
$a
Professor in charge: Dennis R. Mertz.
502
$a
Thesis (Ph.D.)--University of Delaware, 2001.
520
$a
Bridge 1-351 on Business Route 896 in Glasgow, Delaware, was replaced with one of the first state-owned Fiber Reinforced Polymer (FRP) composite bridges in the nation. FRP composites are durable and lightweight construction materials with superior corrosion resistance resulting in benefits such as ease of construction, rapid erection and substantially reduced maintenance costs. The FRP composite bridge was designed using the American Association of State Highway and transportation Officials (AASHTO) Load and Resistance Factor Bridge Design Specifications. The completed bridge superstructure consists of two 13ft x 32ft sections joined by a unique longitudinal joint. The superstructure sections are web core sandwich construction composed of two facesheets (top of 0.5in and bottom 0.7in thick) and a core (28in deep) that provide flexural and shearing rigidity, respectively. The FRP composite bridge was fabricated with E-glass fiber preforms and vinyl-ester resin. Each FRP section was fabricated to near net shape in a single step by a vacuum assisted resin transfer molding process. The overall structural behavior was accurately predicted with design equations based on laminated plate and sandwich theory for anisotropic materials. Finite Element Modeling was conducted to approximate structural behavior of the bridge due to truck loads. Full scale experimental structural validation of FRP bridge subcomponents was conducted to validate that the design satisfied AASHTO Service I (deflection), Fatigue and Strength I limit states for a bridge service lifetime of 75 years. The structurally redundant longitudinal joint was designed and erected as a butt joint with an adhesively bonded vertical joint and splice plates. Assembly procedures were developed and implemented and transverse testing and structural validation of the full scale longitudinal joint was conducted. The final bridge superstructure sections were proof tested to the Strength I limit state. Both superstructure sections exceeded the performance criteria based on experimentally measured stiffnesses, deformations and facesheet strains. The construction phase included section positioning, anchorage, longitudinal joint assembly and application of the latex modified concrete wearing surface. The bridge was reopened to traffic on November 20, 1998. The completed bridge received the ASCE Delaware section project of the year in February 1999.
590
$a
School code: 0060.
650
4
$a
Engineering, Civil.
$3
783781
650
4
$a
Engineering, Mechanical.
$3
783786
650
4
$a
Plastics Technology.
$3
1023683
690
$a
0543
690
$a
0548
690
$a
0795
710
2 0
$a
University of Delaware.
$3
1017826
773
0
$t
Dissertation Abstracts International
$g
62-05B.
790
1 0
$a
Mertz, Dennis R.,
$e
advisor
790
$a
0060
791
$a
Ph.D.
792
$a
2001
856
4 0
$u
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=3013608
筆 0 讀者評論
館藏地:
全部
電子資源
出版年:
卷號:
館藏
1 筆 • 頁數 1 •
1
條碼號
典藏地名稱
館藏流通類別
資料類型
索書號
使用類型
借閱狀態
預約狀態
備註欄
附件
W9192094
電子資源
11.線上閱覽_V
電子書
EB
一般使用(Normal)
在架
0
1 筆 • 頁數 1 •
1
多媒體
評論
新增評論
分享你的心得
Export
取書館
處理中
...
變更密碼
登入