1第六章习题参考答案6-1解:(a)1()cos602ZMPPRPR(b)3()sinsin602ZMPPRPRPR6-2解:6-3解:受力如图所示,为空间汇交力系。解得:31.5ADFKN(压力)31.5BDFKN(压力)1.5CDFKN(压力)6-4解:受力分析如图所示,为空间汇交力系,由几何关系可得:2002OBOCmm;2003BDCDmm;2005ADmm解得:7.45ADFKN(压力)2.89BDFKN(拉力)2.89CDFKN(拉力)6-5解:受力分析如图所示:23F和3F构成一力偶,且有33FF6-6解:该平行力系的合力大小为:该合力RF与平面的交点为(,CCXY),由合力矩定理有:6-7解:齿轮传动轴受力如图:且有:1120RPtg联立后解得:12121950;3900;710;1420;PKNPKNRKNRKN6-8解:取轮I:0YM1102DmP取AB:0XF120AXBXFFRR0ZM212024375820AXRRF‘且有:2220RPtg联立后解得:1.03;15.9AXAZFKNFKN6-9解:0XF12sin20cos15cos150AXBXFNFSS联立后解得:2130NN6-10(a)解:由对称性0cx(b)解:由对称性0cy用负面积法求cx36-11解:由对称性0cy由减面积法求cx6-12解:105002100105010501050500(2100)232100105010505000.51179iicxAxAmm6-13解:由对称性0cy由负面积法求cx6-14解:受力分析如图所示6-15解:由对称性,0cy
