----------------------------------------理论力学(第七版)课后题答案哈工大.高等教育出版社--------------------------------第1章静力学公理和物体的受力分析1-1画出下列各图中物体A,ABC或构件AB,AC的受力图。未画重力的各物体的自重不计,所有接触处均为光滑接触。FN1APFN2(a)(a1)FTAPFN(b)(b1)AFN1PBFN3FN2(c)(c1)FTBFAyP1P2AFAx(d)(d1)FAFBFAB(e)(e1)1理论力学(第七版)课后题答案哈工大.高等教育出版社qFFAyFBFAxAB(f)(f1)FBCFCAFA(g)(g1)FAyFCCAFAxBP1P2(h)(h1)BFCFCFAxDAFAy(i)(i1)(j)(j1)BFBFCPFAyFAxA(k)(k1)2理论力学(第七版)课后题答案哈工大.高等教育出版社FCAFAB′FACCA′FABBFACFBAAP(l)(l1)(l2)(l3)图1-11-2画出下列每个标注字符的物体的受力图。题图中未画重力的各物体的自重不计,所有接触处均为光滑接触。FN2C′FP2(a1)FN1N(a)BFN1BCFN2FNP2P1P1FAyFAyFAxFAxAA(a2)(a3)FN1AP1FN3BP2FN2(b)(b1)′FNFN3FN1ABP2P1FNFN2(b2)(b3)3理论力学(第七版)课后题答案哈工大.高等教育出版社FAyFAxACDFN2BP2P1FN1(c)(c1)FAyFTAFAxD′FFN2TBP1FN1P2(c2)(c3)FAyFBqBAFAxCDFC(d)(d1)FDyFAyFBqqD′FDxBAFAxCFDxD′FDyFC(d2)(d3)FAy′FBxqBFAyFAxqAB′FByFAxFCxCFCyPFBxABPFCx(e1)CFByFCy(e)(e2)(e3)F1CF2FAyFByABFAxFBx(f)(f1)4理论力学(第七版)课后题答案哈工大.高等教育出版社FCx′FCxCCF1FCyF′F2FAyCyFByAFBxFAxB(f2)(f3)FBFAyCBAFAxP(g)(g1)′FCyFT′FCxCFAyFBFTDCFAxBAFCxP(g2)(g3)DF1FCyFB′F2FBBCFCxBFAyAFAx(h)(h1)(h2)AFAxFAyFCyFCxC′AFEFCyFFOyCDFOxFCx′EOB(i)(i1)(i2)5理论力学(第七版)课后题答案哈工大.高等教育出版社AA′FAx′FE′FAyFECDFByFByFOyFBxFOxFBxOBB(i3)(i4)FAyDEFCxFTAFAxFByCCHFByFCyBPFBxFBxB(j)(j1)(j2)FAyFDy′′FEy′FCFCx′EFAxT2DFT2′FExFExADFDx′EFDxFT3FT1′FCyFDyFEy(j3)(j4)(j5)EFFBCED′BFCxθ′′FDEFCy(k)(k1)FBFFCBFCxθECFCy90°−θFDEDDFAyFAyAAFAxFAx(k2)(k3)6理论力学(第七版)课后题答案哈工大.高等教育出版社FB′FBF1FDBBDCAFAFC(l)(l1)(l2)F2′DFDF1F2DBACEEFEFAFCFE(l3)(l4)或′′FDyF2F1FFDyF2F1B′DFDxFDxBBDDFExACECEFExFCFEyFAFCFEy(l2)’(l3)’(l4)’′FADAFCyFCxCF1B(m)(m1)FADDFADHEF2ADFEFHFAD′(m2)(m3)7理论力学(第七版)课后题答案哈工大.高等教育出版社FNAAFkFNBFOyFOxBO(n)(n1)FN1BDq′FBFN2FN3(n2)FBDFFCFEFAFGGCEA(o)(o1)FBBDFDFBFEFFFCFD′FEAFAFB′CD(o2)(o3)(o4)图1-28理论力学(第七版)课后题答案哈工大.高等教育出版社第2章平面汇交力系与平面力偶系2-1铆接薄板在孔心A,B和C处受3个力作用,如图2-1a所示。F1=100N,沿铅直方向;F3=50N,沿水平方向,并通过点A;F2=50N,力的作用线也通过点A,尺寸如图。求此力系的合力。ycF3dF2F1F2bF3AxF1FR60θa(a)(b)(c)图2-1解(1)几何法作力多边形abcd,其封闭边ad即确定了合力FR的大小和方向。由图2-1b,得FR=(F1+F2×4/5)2+(F3+F2×3/5)2=(100N+50N×4/5)2+(50N+50N×3/5)2=161N∠(FR,F1)=arccos(F1+F2×4/5)FR=arccos(100N+50N×4/5)=29.74=2944′oo161N(2)解析法建立如图2-1c所示的直角坐标系Axy。∑Fx=F1+F2×3/5==50N+50N×3/5=80N∑Fy=F1+F2×4/5=100N+50N×4/5=140NFR=(80i+140j)NFR=(80N)+(140N)=161N222-2如图2-2a所示,固定在墙壁上的圆环受3条绳索的拉力作用,力F1沿水平方向,力F3沿铅直方向,力F2与水平线成40°角。3个力的大小分别为F1=2000N,F2=2500N,F3=1500N。求3个力的合力。aF1OxF1O40°F2θ40°F2bFRF3F3cy(a)(b)(c)图2-2解(1)解析法建立如图2-2b所示的直角坐标系Oxy。∑Fx=F1+F2cos40°=2000N+2500N⋅cos40°=3915N9理论力学(第七版)课后题答案哈工大.高等教育出版社∑Fy=F3+F2sin40°=1500N+2500N⋅sin40°=3107NFR=(∑Fx)+(∑Fy)=3915+3107N=4998N2222()∠(FR,Fx)=arccos(∑Fx)=arccos(3915N)=38°26′FR4998N(2)几何法作力多边形Oabc,封闭边Oc确定了合力FR的大小和方向。根据图2-2c,得FR=(F1+F2cos40°)2+(F3+F2sin40°)2=(2000+2500cos40°)2+(1500+2500sin40°)2=4998N∑Fx=arccos3915N=38°26′∠(FR...
