ASCE 26-97-2000 Standard Practice for Direct Design of Buried Precast Concrete Box Sections《填埋式预制混凝土箱部分包装设计的标准规范》.pdf
《ASCE 26-97-2000 Standard Practice for Direct Design of Buried Precast Concrete Box Sections《填埋式预制混凝土箱部分包装设计的标准规范》.pdf》由会员分享,可在线阅读,更多相关《ASCE 26-97-2000 Standard Practice for Direct Design of Buried Precast Concrete Box Sections《填埋式预制混凝土箱部分包装设计的标准规范》.pdf(45页珍藏版)》请在麦多课文档分享上搜索。
1、STDmASCE 2b-ENGL 1997 0759b00 00345b3 703 SPECIAL NOTICE The material presented in this publication has been prepared in accordance with recognized engineering principles. This Standard and Commentary should not be used without first securing competent advice with respect to their suitability for an
2、y given application. The publication of the material contained herein is not intended as a representation or warranty on the part of the American Society of Civil Engineers, or of any other person named herein, that this information is suitable for any general or particular use or promises freedom f
3、rom infringement of any patent or patents. Anyone making use of this information assumes all liability from such use. 1 STD-ASCE 2b-ENGL 1777 M 0757b00 011345b4 b4T $II 1 _- ASCE 26-97 ASCE 26-97 American Society of Civil Engineers Standard Practice for Direct Design of Buried Precast Concrete Box S
4、ections This document uses both Systme International (SI) units and customary units. Published by the American Society of Civil Engineers 1801 Alexander Bell Drive Reston, Virginia 201 91 -4400 STD-ASCE 2b-ENGL 1997 H 0759b00 00345bb 912 = ABSTRACT This publication, Standard Practice for Direct Desi
5、gn of Buried Precast Concrete Box Sections, discusses the direct design of buried one-cell precast reinforced concrete box sections installed in accordance with Part 111 of this Practice intended for the conveyance of sewage, industrial wastes, storm water, and drainage. The publication also discuss
6、es these box sec- tions as they are intended to serve as tunnels. Part II of this Practice presents the method of design for buried one-cell precast reinforced concrete box sections. Part 111 of this Prac- tice presents construction requirements for precast reinforced concrete box sections designed
7、in accordance with this Prac- tice. The commentary provides supporting background data. Library of Congress Cataloging-in-Publication Data Standard practice for direct design of buried precast concrete box sections / American Society of Civil Engineers. Includes bibliographical references and index.
8、 p. cm.- (ASCE Standard) “ASCE 26-97.” ISBN 0-7844-0472-0 1. Reinforced concrete construction. 2. Boxes- Design. 3. Precast concrete. 4. Soil-structure interaction. I. American Society of Civil Engineers. TA683.2. S72 2000 624.1 8341 4-dc21 00-038955 Photocopies. Authorization to photocopy material
9、for internal or personal use under circumstances not falling within the fair use provisions of the Copyright Act is granted by ASCE to libraries and other users registered with the Copyright Clear- ance Center (CCC) Transactional Reporting Service, pro- vided that the base fee of $8.00 per article p
10、lus $.50 per page is paid directly to CCC, 222 Rosewood Drive, Danvers, MA 01923. The identification for ASCE Books is O-7844-0472-0/ 00/$8.00 + $.50 per page. Requests for special permission or bulk copying should be addressed to Permissions taken as 12 in. (English units); and taken as 1,000 mm (S
11、I units) b = unit length of box section, ft (m); taken as 1 ft (English units); and taken as 1 m (SI units) B, = outside horizontal span of box, ft (m) Bd = horizontal width of trench at top of box, ft (m) BI = crack control coefficient for effect of concrete cover and spacing of reinforcement Cd =
12、load coefficient for trench installations CI = crack control coefficient for type of reinforcement tension reinforcement, in. (mm) d = distance from compression face to centroid of db = diameter of tensile reinforcing bar, in. (mm) d, = thickness of concrete cover measured from ex- treme tension fib
13、er to center of bar or wire lo- cated closest thereto, in. (mm) (MPa) steel for crack control, lbs/in.* (MPa) rial, 1bs/h2 (MPa) fi = design compressive strength of concrete, lbs/in.* fs = maximum service load stress of reinforcing i, = maximum developable strength of stirrup mate- 2 STD-ASCE 2b-ENG
14、L 1777 0759bUU UU3Li575 q25 ASCE 26-91 TRENCH n FINISHED GRADE or BOTTOM OF TIES FOR RAILROADS SUBGRADE FIGURE 3.4-1. Box SectionlInstailation Terminology f, = design yield strength of reinforcement, 1bsh2 F, = factor for adjusting crack control relative to av- (MPa) erage maximum crack width of 0.0
15、1 in. (0.3 mm) when F, = 1.0 Fd = factor for crack depth effect resulting in in- crease in diagonal tension (shear) strength with decreasing d Fe = soil-structure interaction factor Fe, = soil-structure interaction factor for embankment installations Fe, = soil-structure interaction factor for trenc
16、h FN = coefficient for effect of thrust on shear strength h = overall thickness of member (wall thickness), in. (mm) H = design height of earth cover above top of box section, ft (m) if = for railroads, design height of cover above top of box section to bottom of the ties, ft (m) installations HH =
17、horizontal dimension of haunch, in. (mm) H, = vertical dimension of haunch, in. (mm) 3 STD-ASCE Zb-ENGL 1997 W 0757b00 003457b 3bL DIRECT DESIGN OF BURIED PRECAST CONCRETE BOX SECTIONS K = ratio of active lateral unit pressure to vertical L, = reinforcement lap or development length, in. M, = servic
18、e load bending moment acting on length Mu = factored moment acting on length 6, in.-lbs/ft M, = factored moment acting on length b as modi- unit pressure (mm) b, in.-lbs/ft (N-mdm) (N-mdm) fied for effects of compressive or tensile thrust, in.-lbs/ft (N-mm/m) n = number of layers of reinforcement in
19、 a cage N, = service load axial thrust acting on length b (+ when compressive, - when tensile), lbs/ft Nu = factored axial thrust acting on length b (+ when compressive, - when tensile), lbs/ft (N/m) PL = PL denotes the prism load (weight of the col- umn of earth) over the box sections outside span,
20、 wB,H, lbs/ft (N/m) R = inside vertical rise of box section, ft (m) R, = outside vertical rise of box section, ft (m) s, = circumferential spacing of stirrups, in. (mm) S = inside span of box section, ft (m) t, = clear cover over reinforcement, in. (mm) T, = thickness of bottom slab, in. (mm) T, = t
21、hickness of side wall, in. (mm) T, = thickness of top slab, in. (mm) V, = basic shear strength of length b at critical sec- tion where M,/(V,) ? 3.0, lbs/ft (N/m) V, = nominal shear strength provided by concrete in length b, lbs/ft (N/m) Vu = factored shear force acting on length b, lbs/ft w = unit
22、weight of soil, lbs/ft3 (N/m3) (N1n-d WE = total earth load on box for length b, lbs/ft Z, = extension of A, reinforcement into bottom slab, Z, = extension of A, reinforcement into top slab, in. (N/m) in. (mm) (mm) p = approximate ratio of distance from neutral axis to location of crack width divide
23、d by the dis- tance from neutral axis to centroid of tensile reinforcing p = coefficient of internal friction of the soil p = coefficient of friction between overfill and C#I = strength reduction factor for flexure handling and installation; fatigue limits; and crack width control. 5.4 The design of
24、 a one-cell precast reinforced con- crete box section is based on the assumption that specified design bedding and installation requirements will be achieved during construction of the installation. 4 STD-ASCE 2b-ENGL 1777 D 0759b00 003Y577 2TB D PART II. DIRECT DESIGN METHOD ASCE 26-97 7.1.3 Crack
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