, 390=0.3%×200×450×=99.12 2<106 2
2.已知一矩形截面梁b×h=250mm×500mm,采用C25级混凝土,纵筋采用6〇14的HRB400级钢筋,箍筋采用Φ10@150的HPB300级钢筋,试求其能承担的设计扭矩T。
解:
22(1)C25混凝土 =11.9 / =1.27 /
2纵筋HRB400 =360 /
箍筋HPB300 =270 / 2
2(3 ) ==1.302×107 3 =2×(190+440)=1260mm
=190×440=83600 2
ξ=
取ξ=1.7
T=0.35 + 1 360×923×150 ==1.866>1.7 1 =0.35×1.27×1.302×107+=2.427×107N·mm =2.33 / 2<0.25 =2.95
截面尺寸满足要求
270×78.5×83600