2)小梁验算 q1=
max{3.21+(0.3-0.1)×0.7/4+0.9×[1.2×(0.5+(24+1.1)×0.18)+0.9×1.4×1]×max[0.6-0.7/2,(0.5-0.6)-0.7/2]/4×1,9.32+(0.3-0.1)×0.7/4}=9.36kN/m 同上四~六计算过程,可得:
R1=1.67kN,R2=16.94kN,R3=1.67kN
立柱最大受力Nw=max[R1+N边1,R2,R3+N边2]+Mw/lb=
max[1.67+0.9×[1.2×(0.75+(24+1.1)×0.18)+0.9×1.4×1]×(1+0.6-0.7/2)/2×0.9,16.94,1.67+0.9×[1.2×(0.75+(24+1.1)×0.18)+0.9×1.4×1]×(1+0.5-0.6-0.7/2)/2×0.9]+0.03/1.2=16.97kN
f=N/(φA)+Mw/W=16970.66/(0.63×489)+0.03×106/5080=61.73N/mm2≤[f]=205N/mm2
满足要求!
八、可调托座验算
可调托座承载力容许值[N](kN) 30 由\主梁验算\一节计算可知可调托座最大受力N=max[R2]=18.64kN≤[N]=30kN
满足要求!
