设木棒的重心为C,由于木棒质地均匀,则C为AB的中点;已知AB=1m,AO=O′B=0.25m,所以OC=O′C=0.25m.
F1×OB=G×OC,代入数据,得:20N×(1m-0.25m)=G×0.25m,
从B端竖直向下压木棒时,杆杠CO′B以O′为支点,则:
G×O′C=F2×O′B,即:G×0.25m=F2×0.25m,即F2×0.25m=20N×(1m-0.25m)
解得,F2=60N.
故选C.
A. 20N设木棒的重心为C,由于木棒质地均匀,则C为AB的中点;G×O′C=F2×O′B,即:G×0.25m=F2×0.25m,