(3) 求钢筋面积 由
Ne??1fcbx(h0?0.5x)850000?565?1?11.9?300?238(460?0.5?238)As?As'???300?(460?40)fy'(h0?a') 1382mm,取 4 #22,As = 1520mm2 (4)验算配筋率
A1520?1?s??1%??min?0.002bh300?500
垂直于弯矩作用方向的承载力验算l0/b=15, 可得??0.9
??As)]?2073kN>850kN 满足要求 N?0.9?[fcbh?fy(As
例2. 已知矩形截面柱 b×h = 300×600,柱的计算长度为 L = 6 m,柱上承受M = 110 kN·m,N = 1680 kN,混凝土强度等级为 C30,采用HRB335钢筋,对称配筋,试确定该柱的配筋。 解:
(1)设计参数
?1?1.0, a??a?40mm, h0=560, ?1?1.0, e0 = 65.5,ea = 20,ei = 85.5,l0 / h = 10,
0.5fcA0.5?14.3?300?600?1???0.
N1680000l6000?2?1.15?0.010?1.15?0.01??1.05h600,取ζ2=1
160002?l0???1??()?1?1?1.46 ???1?2?1?eh85.56001400?1400i??560h0(2)受压区高度
ηei = 125 < 0.3 h0=168 按小偏压计算
he??ei??a= 385,
2N??b?1fcbh0h0=436.745 ????b= 0.773, x =ξ×2Ne?0.43?1fcbh0??1fcbh0(?1??b)(h0?a')(3)求钢筋面积
12Ne?a1fcbh0?(1?0.5?)1680000?385?1.0?14.3?300?5602?0.773?(1?0.5?0.773)As?A's ??fy?(h0?a?)300?(560?40)= 56
取As= ?minbh0?0.002×300×560=336 取3#12
2(4) 垂直于弯矩作用方向的承载力验算 l0/b=20, 可得??0.75
满足要求 ??As)]?1873kN?1680kNN?0.9?[fcbh?fy(As