AB杆为拉力N,其竖直方向分力为N*sin30,即N/2分析CD杆,CD杆对点C弯矩和为0,∑Mc=0P*杆CD=N/2*杆CB,P=50kn,CD=5,CB=3解出N,N=[δ]S, [δ]=200MPa,S为AB截面求得AB直径R,设计直径应≥R
