max max A N 26×10 =130×10°=130MPa maX A 丌×(16×10)2/4 Omax=130MPa< 170MPa=o 所以强度足够
max max A FN = 3 6 max 3 2 max 26 10 130 10 130 (16 10 ) / 4 130 170 [ ] FN MPa A MPa MPa − = = = = = = 所以强度足够
补例2:已知F=26kN,[G=170MPa。试选择 钢拉杆的直径。 F
补例2:已知F=26kN,[σ]=170MPa。试选择 钢拉杆的直径。 F F
解:(因外力F为已知) F FN f=26KN
解:(因外力F 为已知) FN=F=26kN F FN x
∠2 N max 4XF 4×26×10 d≥ max a[o 3.14×170×100.195m 取d=200mm
2 max 4 d A FN = 3 max 6 4 4 26 10 0.195 3.14 170 10 200 FN d m d mm = = 取 =