(1)∵B浸没在水中
∴F浮=ρ水gVB=ρ水g
=GB gρB
=20N;100N 5
∵B匀速下沉
∴B给A的拉力为
(G+G动)=1 n
(GB-F浮+G动)=1 3
(80N+G动)1 3
∵A匀速运动
∴f=
(80N+G动)1 3
∵F1拉A使B匀速上升
∴F1=
(G-F浮+G动)+f=1 3
(80N+G动)=2 3
N+160 3
G动;2 3
∵B完全露出水面
∴B给A的拉力为
(G+G动)=1 n
(GB+G动)=1 3
(100N+G动);1 3
∵F2拉A使B匀速上升;
∴F2=
(GB+G动)+f=1 3
(100N+G动)+1 3
(80N+G动)=60N+1 3
G动;2 3
∵F1:F2=9:10;
∴G动=10N;
∴f=
(80N+G动)=1 3
(80N+10N)=30N.1 3
(2)∴F2=
(GB+G动)+f=1 3
N;200 3
∴P2=
=FS t
=
N?nh200 3 4s
=20W.
N×3×0.4m200 3 4s
(3)
=η1 η2
=
GB?F浮
GB?F浮+G动
GB
GB+G动
=
100N?20N 100N?20N+10N
100N 100N+10N
.44 45
故答案为:30N;20W;44:45.
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