已知:P=16KW P1=6KW n=600r/min D=900mm D1400mm D2=230mm W=0.85KN W1=0.35KN a=300mm ??20
?D轮:
Me=P×9549/n=254.64Nm 2 FT·0.45- FT·0.45=254.64Nm FT=656N D1轮:
Me1=P1×9549/n=95.49Nm FT1·0.2-2 FT1·0.2=95.49Nm FT1=477.45N
把F力分解Z.Y为两个方向上的力Fz.Fy Fz×0.115=Me- Me1=254.64-95.49 Fz=1383.913N
Fy/Fz=tgα Fy=tgα·Fz=503.703N 转动轴力学简图:
分为力在Y方向上的力学简图和力在Z方向上的力学简图.
Y方向上的力 Y Fra Fy A D2 B D1 C D Frb X1 W Z X4 X3 X2 X5 X1 W1 3FT1
将点约C束去掉换成一个力X1 用力法解超静定问题
?F1??11X1?0M1??WX1M2??(W1?3Ft1)X2?(2a?X2)WM3?FrbX3?(X3?a)(W1?3Ft1)?(X3?3a)W则M1?0M4??FraX4M2?a?X2M3?2a?X3M4?X4M5?X5
∑MA=0 ∑Fy=0 FRB=4546.69N FRA=2418N
1?M2M2??M2M2???F1?EI??105.368 ?F1?EIa0a0a0aaM3M3??0M4M4??0M5M5
?1aaaaM2M2?M3M3?M4M4?00o0???M5M5EI??11?0.099?11???
X1??F1?1064.32N?11FRC=X1=1064.32N ∑MA=0 ∑Fy=0 FRB=2418N FRA=1353.673N
Y方向弯矩图 Y A D2 B D1 C D X 190.704 255 406.109 661.0891
Y Fra Fy A D2 B D1 C D Frb Frc W Z W1 3FT1 Z方向上的力 Fra Fz 3Ft A D2 B D1 C D Frb X2 X4 X3 X2 X1 Y Z ∑MA=0 ∑Fy=0 FRB=3545.54N FRA=3234.46N
?F2??22X2?0
将点约C束去掉换成一个力X2 用力法解超静定问题
M1?3FtX1M2?(X2?a)3FtM3??FrbX3?(X3?3a)3FtM4?Frax4M1?0M2?X2M3?2a?X3M4?X412aaa(?0M2M2dX2??0M3M3dX3??0M4M4dX4)EI?F2?378.6515?F2?12aaaM2M2dX2?M3M3dX3?M4MdX4oo0???EI?22?0.144?22???X2??F2??2629.525N?22 ∑MA=0 ∑Fy=0 FRB=2418N FRA=1353.673N Z方向弯矩图
Fra Fz 3Ft A D2 B D1 C D Y Frb Frc Z