?1?0.5fcA0.5?16.7?300?400??2.505?1.0N400?103
?1?1.0
l0h?3000?7.5?15,?2?1.040012?l0???1?????ei?h?121400h0?1?11400?608365?1.024?1.0?7.52?1.0?1.0
??1.024
e??ei?h2?as?1.024?608?400?35?787.7mm20
(2)判别大小偏压
?ei?1.024?608?622.6mm?0.3h0?0.3?365?109.5mm
属于大偏压
'A和As (3)求s因为对称配筋,故有N??1fcbh0?
N400?10370????0.219??0.192?fbh1.0?16.7?300?3653651c0所以
As?'Ne??1fcbh0??1?0.5?2 As?fyh0?as'?'??
400?103?787.7?1.0?16.7?300?3652?(0.219?0.5?0.219)?360?(365?35)2'2?2037mm??bh?0.002?300?400?240mmmin
符合要求, 各选配
,As?As?1964mm2,稍小于计算配筋,但差值在5%范围内,可认为
''满足要求。
6.(矩形对称配筋小偏压)条件同4,但采用对称配筋,求As?As??
解:⑴求ei、η、e
题4中已求得:ei?100.3mm,??1.372,?ei?137.6mm
e??ei?h2?as?(2)判别大小偏压
?1085.4KN137.6?500?40?347.6mm2
Nb??1fcbh0?b?1.0?14.3?300?460?0.550
N?1512KN?Nb?1085.4KN,属于小偏压
??N??b?1fcbh0??b2Ne?0.43?1fcbh0??1fcbho(?1??b)(h0?a's)1512?103?0.550?1.0?14.3?300?460??0.550321512?10?347.6?0.43?14.3?300?460?1.0?14.3?300?460(0.8?0.550)?(460?40)?0.681 x?0.681?460?313.3mm
'As(3)计算As、
As?'Ne??1fcbx?h0?0.5x?fyh0?as'?'?1512?103?347.6?1.0?14.3?300?313.3?(460?0.5?313.3)?300?(460?40)?935.3mm2??minbh?0.002?300?500?300mm2 选用
,
As?As?1017mm2
'a?ab?h?200mm?400mms?35mm,7.已知某柱子截面尺寸,s混凝土用C25,
'fc =11.9N/mm2,钢筋用HRB335级,fy=f’y=300N/mm2,钢筋采用
',对称配
筋,As?As?226mm2,柱子计算长度l0=3.6m,偏心距e0=100mm, 求构件截面的承载力设计值N。
解:⑴求ei、η、e 已知e0=100mm
h400??13.3mm?20mm3030
取ea?20mm
ei?e0?ea?100?20?120mm
取?1?1.0
3600?9?15,?2?1.040012l0h??l0???1?????ei?h?121400h0?1?11400?120365?1.176?1.0?92?1.0?1.0
??1.176
e??ei?h2?as?1.176?120?400?35?306.12mm2
(2)判别大小偏压
求界
限偏心率
''Mb0.5?1fcb?bh0(h??bh0)?0.5(fyAs?fyAs)(h?2as)eob??Nb?1fcb?bh0?fy'As'?fyAs0.5?1.0?11.9?200?0.550?365?(400?0.550?365)?0.5?(300?226?300?226)?(400?2?35)1.0?11.9?200?0.550?365?146.5mm又因为 ??ei?1.176?120?141.1mm?146.5mm,故为小偏压。
(3)求截面承载力设计值N
N??1fcbx?fyAs''????1fyAs?b??1
x?0.8365?1.0?11.9?200?x?300?226??300?2260.550?0.8?3123x?149160 (A)
x??N?e??1fcbx?h0???f'yA's?h0?a's?2??又由
得:N?306.12?1.0?11.9?200x(365?0.5x)?300?226?(365?35)
2N?2839x?3.889x?73117 (B) 整理得:
联立(A)(B)两式,解得x?205mm,代入(A)式中得:
N?491060N
根据求得的N值,重新求出?1、?值:
?1?0.5fcA0.5?11.9?200?400??0.969N491060
相应?值为1.717,与原来的?1、?值相差不大,故无需重求N值。
8.某I形柱截面尺寸如图6-22所示,柱的计算长度l0= 6.8m 。对称配筋。混
'a?a?35mm,fc=14.3N/mm2,钢筋为HRB400, ss凝土等级为C30,
fy=f’y=360N/mm2,轴向力设计值N = 800KN,弯矩M=246KN·m 求钢筋截面面积。
解:⑴求ei、η、e
h0?h?as?700?35?665mm
M246?106e0???307.5mmN800?103 h700??23.3mm?20mm3030
ea?23.3mm
ei?e0?ea?307.5?23.3?330.8mm
?1?0.5fcA0.5?14.3?130000??1.162?1.03N800?10
?1?1.0
l0h?6800?9.71?15,?2?1.070012?l0???1?????ei?h?121400h0?1?1(9.71)2?1.0?1.0?1.135?1.0330.81400665
??1.135
e??ei?h2?as?1.135?330.8?700?35?690.5mm2
(2)判别大小偏压
T?fc(b'f?b)h'f?14.3?(350?100)?120?429000N
N?T800?103?429?103????1fcbh01.0?14.3?100?665?0.390??b?0.550属大偏压
x??h0?0.390?665?259.4mm?120mm,中性轴位于腹板内。
'AAss(3)计算和
As?'Ne??1fcbx?h0?0.5x???1fcbf?bhfh0?0.5hf''???'?120)2f'y?h0?a's?800?103?690.5?1.0?14.3?100?259.4?(665?0.5?259.4)?1.0?14.3?250?120?(665???415.6mm2选用
'2A?A?452mmss,
360?(665?35)9.某单层厂房下柱,采用I形截面,对称配筋,柱的计算长度l0=6.8m, 截面
尺寸如图6-23所示,
'as?as?40mm混凝土等级为C30,fc=14.3N/mm2,钢筋为HRB400,
fy=f’y=360N/mm2,根
据内力分析结果,该柱控制截面上作用有三组不利内力: ○1N = 550KN,M=378.3KN·m ○2N = 704.8KN,M =280KN·m ○3N = 1200KN,M = 360KN·m
根据此三组内力,确定该柱截面配筋面积。
解:Ⅰ、求解第○1组内力
M378.3?106e0???687.8mm3N550?10 h800??26.67mm?20mm3030
ea?26.67mm
ei?e0?ea?687.8?26.67?714.47mm
?1?0.5fcA0.5?14.3?170000??2.21?1.0N550?103