AASHTO HB-17 DIVISION I SEC 9-2002 Division I Design - Prestressed Concrete ((Part A Part B Part C and Part D))《预应力混凝土》.pdf
《AASHTO HB-17 DIVISION I SEC 9-2002 Division I Design - Prestressed Concrete ((Part A Part B Part C and Part D))《预应力混凝土》.pdf》由会员分享,可在线阅读,更多相关《AASHTO HB-17 DIVISION I SEC 9-2002 Division I Design - Prestressed Concrete ((Part A Part B Part C and Part D))《预应力混凝土》.pdf(25页珍藏版)》请在麦多课文档分享上搜索。
1、Section 9 PRESTRESSED CONCRETE Part A GENERAL REQUIREMENTS AND MATERIALS 9.1 APPLICATION 9.1.1 General The specifications of this section are intended for de- sign of prestressed concrete bridge members. Members designed as reinforced concrete, except for a percentage of tensile steel stressed to im
2、prove service behavior, shall conform to the applicable specifications of Section 8. Exceptionally long span or unusual structures require detailed consideration of effects which under this Section may have been assigned arbitrary values. Notations = area of non-prestressed tension reinforcement = a
3、rea of compression reinforcement (Article = area of prestressing steel (Article 9.17) = steel area required to develop the compressive strength of the overhanging portions of the flange (Article 9.17) = steel area required to develop the compressive strength of the web of a flanged section (Arti- cl
4、es 9.17-9.19) (Articles 9.7 and 9.19) 9.19) = area of web reinforcement (Article 9.20) = width of flange of flanged member or width of rectangular member = width of cross section at the contact surface being investigated for horizontal shear (Arti- cle 9.20). = width of a web of a flanged member = l
5、oss of prestress due to creep of concrete (Ar- = loss of prestress due to relaxation of pre- = nominal diameter of prestressing steel (Arti- ticle 9.16) stressing steel (Article 9.16) cles 9.17 and 9.27) d = distance from extreme compressive fiber to centroid of the prestressing force, or to cen- tr
6、oid of negative moment reinforcing for pre- cast girder bridges made continuous = distance from the extreme compressive fiber to the centroid of the non-prestressed tension reinforcement (Articles 9.7 and 9.17-9.19) = loss of prestress due to elastic shortening (Ar- ticle 9.16) = base of Naperian lo
7、garithms (Article 9.16) = average concrete compressive stress at the c.g. of the prestressing steel under full dead load (Article 9.16) = average concrete stress at the c.g. of the pre- stressing steel at time of release (Article 9.16) = compressive strength of concrete at 28 days = compressive stre
8、ngth of concrete at time of initial prestress (Article 9.15) = average splitting tensile strength of light- weight aggregate concrete, psi = stress due to unfactored dead load, at extreme fiber of section where tensile stress is caused by externally applied loads (Article 9.20) fPC = compressive str
9、ess in concrete (after al- lowance for all prestress losses) at centroid of cross section resisting externally applied loads or at junction of web and flange when the centroid lies within the flange (In a com- posite member, fpc is resultant compressive stress at centroid of composite section, or at
10、 junction of web and flange when the centroid lies within the flange, due to both prestress and moments resisted by precast member act- ing alone.)(Article 9.20) = compressive stress in concrete due to effective prestress forces only (after allowance for all prestress losses) at extreme fiber of sec
11、tion where tensile stress is caused by externally applied loads (Article 9.20) dt ES e fCdS fcir fC ci fCt fd fpe 225 226 HIGHWAY BRIDGES 9.1.2 = guaranteed ultimate tensile strength of the = the modulus of rupture of concrete, as defined = total prestress loss, excluding friction (Article = effecti
12、ve steel prestress after losses = average stress in prestressing steel at ultimate load = ultimate stress of prestressing steel (Articles 9.15 and 9.17) = yield stress of non-prestressed conventional reinforcement in tension (Articles 9.19 and 9.20) = yield stress of non-prestressed conven- tional r
13、einforcement in compression (Article 9.19) = yield stress of prestressing steel (Article 9.15) = 0.90 f: for low-relaxation wire or strand = 0.85 f, for stress-relieved wire or strand = 0.85 fi for Type I (smooth) high-strength bar = 0.80 f, for Type II (deformed) high-strength = overall depth of me
14、mber (Article 9.20) = moment of inertia about the centroid of the cross section (Article 9.20) = friction wobble coefficient per foot of pre- stressing steel (Article 9.16) = length of prestressing steel element from jack end to point x (Article 9.16) = moment causing flexural cracking at sec- tion
15、due to externally applied loads (Article 9.20) prestressing steel, Atf, in Article 9.15.2.3 (Article 9.18) 9.16) bar = cracking moment (Article 9.18) = composite dead load moment at the section (Commentary to Article 9.18) = noncomposite dead load moment at the sec- tion (Article 9.18) = maximum fac
16、tored moment at section due to externally applied loads (Article 9.20) = nominal moment strength of a section = factored moment at section 3 +Mn (Articles = A,bd, ratio of non-prestressed tension rein- = AYbd, ratio of prestressing steel (Articles = A:/bd, ratio of compression reinforcement = factor
17、ed tendon force = statical moment of cross-sectional area, above or below the level being investigated for shear, about the centroid (Article 9.20) 9.17 and 9.18) forcement (Articles 9.7 and 9.17-9.19) 9.17 and 9.19) (Article 9.19) = loss of prestress due to concrete shrinkage (Article 9.16) = longi
18、tudinal spacing of the web reinforcement (Article 9.20) = noncomposite section modulus for the ex- treme fiber of section where the tensile stress is caused by externally applied loads (Article 9.18) = composite section modulus for the extreme fiber of section where the tensile stress is caused by e
19、xternally applied loads (Article 9.18) = average thickness of the flange of a flanged member (Articles 9.17 and 9.18) = steel stress at jacking end (Article 9.16) = steel stress at any point x (Article 9.16) = permissible horizontal shear stress (Article 9.20) nominal shear strength provided by conc
20、rete (Article 9.20) nominal shear strength provided by concrete when diagonal cracking results from com- bined shear and moment (Article 9.20) nominal shear strength provided by concrete when diagonal cracking results from exces- sive principal tensile stress in web (Article 9.20) shear force at sec
21、tion due to unfactored dead load (Article 9.20) factored shear force at section due to exter- nally applied loads occurring simultaneously with M, (Article 9.20) nominal horizontal shear strength (Article 9.20) vertical component of effective prestress force at section (Article 9.20) nominal shear s
22、trength provided by shear re- inforcement (Article 9.20) factored shear force at section (Article 9.20) distance from centroidal axis of gross section, neglecting reinforcement, to extreme fiber in tension (Article 9.20) friction curvature coefficient (Article 9.16) total angular change of prestress
23、ing steel pro- file in radians from jacking end to point x (Ar- ticle 9.16) factor for concrete strength, as defined in Ar- ticle 8.16.2.7 (Articles 9.17, 9.18 and 9.19) factor for type of prestressing steel (Article 9.17) = 0.28 for low-relaxation steel = 0.40 for stress-relieved steel = 0.55 for b
24、ars 9.1.3 DIVISION I-DESIGN 227 9.1.3 Definitions The following terms are defined for general use. Specialized definitions appear in individual articles. Anchorage Device-The hardware assembly used for transfening a post-tensioning force from the tendon wires, strands or bars to the concrete. Anchor
- 1.请仔细阅读文档,确保文档完整性,对于不预览、不比对内容而直接下载带来的问题本站不予受理。
- 2.下载的文档,不会出现我们的网址水印。
- 3、该文档所得收入(下载+内容+预览)归上传者、原创作者;如果您是本文档原作者,请点此认领!既往收益都归您。
下载文档到电脑,查找使用更方便
5000 积分 0人已下载
下载 | 加入VIP,交流精品资源 |
- 配套讲稿:
如PPT文件的首页显示word图标,表示该PPT已包含配套word讲稿。双击word图标可打开word文档。
- 特殊限制:
部分文档作品中含有的国旗、国徽等图片,仅作为作品整体效果示例展示,禁止商用。设计者仅对作品中独创性部分享有著作权。
- 关 键 词:
- AASHTOHB17DIVISIONISEC92002DIVISIONIDESIGNPRESTRESSEDCONCRETEPARTAPARTBPARTCANDPARTD 预应力 混凝土 PDF

链接地址:http://www.mydoc123.com/p-417565.html