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Ejercicio.

Jesthiger Cohil
Jesthiger Cohil

The document describes solving a mechanics problem by using a free-body diagram of a lever BCD. Two forces acting on the lever are calculated in parts (a) and (b). The results are then combined to find the magnitude and direction of the net force C acting on the lever, which is determined to be 449 N at an angle of 32.3 degrees.

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Con P = 191 N Del diagrama de cuerpo libre tenemos: Para la parte a del diagrama de cuerpo libre tomaremos la parte BCD Para la parte b del diagrama de cuerpo libre tomaremos la parte BCD S: Complete Online Solutions Manual Organization System echanicsfor Engineers: Statics and Dynamics, 8/e, Ferdinand P. Beer, E. Russell Johnston, Jr., er 4, Solution 19. Body Diagram: (a) From free-body diagram of lever BCD ( ) ( )0: 50 mm 200 N 75 mm 0C ABM TS = - = 300ABT = (b) From free-body diagram of lever BCD ( )0: 200 N 0.6 300 N 0x xF CS = + + = 380 N or 380 Nx xC = - =C ( )0: 0.8 300 N 0y yF CS = + = N240orN240 =-= yyC C Then ( ) ( )2 22 2 380 240 449.44 Nx yC C C= + = + = and °= - - == -- 276.32 380 240 tantan 11 x y C C q or 449 N=C 32.3° MOS: CompleteOnlineSolutionsManual Organization System apter 4, Solution 19. ee-Body Diagram: (a) From free-body diagram of lever BCD ( ) ( )0: 50 mm 200 N 75 mm 0C ABM TS = - = 300ABT = (b) From free-body diagram of lever BCD ( )0: 200 N 0.6 300 N 0x xF CS = + + = 380 N or 380 Nx xC = - =C ( )0: 0.8 300 N 0y yF CS = + = N240orN240 =-= yyC C Then ( ) ( ) 2 22 2 380 240 449.44 Nx yC C C= + = + = and °= - - == -- 276.32 380 240 tantan 11 x y C C q or 449 N=C 32.3° mpleteOnlineSolutionsManual Organization System , Solution 19. Diagram: (a) From free-body diagram of lever BCD ( ) ( )0: 50 mm 200 N 75 mm 0C ABM TS = - = 300ABT = (b) From free-body diagram of lever BCD ( )0: 200 N 0.6 300 N 0x xF CS = + + = 380 N or 380 Nx xC = - =C ( )0: 0.8 300 N 0y yF CS = + = N240orN240 =-= yyC C Then ( ) ( ) 2 22 2 380 240 449.44 Nx yC C C= + = + = and °= - - == -- 276.32 380 240 tantan 11 x y C C q or 449 N=C 32.3° COSMOS: CompleteOnlineSolutionsManual Organization System Chapter 4, Solution 19. Free-Body Diagram: (a) From free-body diagram of lever BCD ( ) ( )0: 50 mm 200 N 75 mm 0C ABM TS = - = 300ABT = (b) From free-body diagram of lever BCD ( )0: 200 N 0.6 300 N 0x xF CS = + + = 380 N or 380 Nx xC = - =C ( )0: 0.8 300 N 0y yF CS = + = N240orN240 =-= yyC C Then ( ) ( )2 22 2 380 240 449.44 Nx yC C C= + = + = and °= - - == -- 276.32 380 240 tantan 11 x y C C q or 449 N=C 32.3° te Online Solutions Manual Organization System olution 19. iagram: (a) From free-body diagram of lever BCD ( ) ( )0: 50 mm 200 N 75 mm 0C ABM TS = - = 300ABT = (b) From free-body diagram of lever BCD ( )0: 200 N 0.6 300 N 0x xF CS = + + = 380 N or 380 Nx xC = - =C ( )0: 0.8 300 N 0y yF CS = + = N240orN240 =-= yyC C Then ( ) ( )2 22 2 380 240 449.44 Nx yC C C= + = + = and °= - - == -- 276.32 380 240 tantan 11 x y C C q or 449 N=C 32.3° s Manual Organization System (a) From free-body diagram of lever BCD ( ) ( )0: 50 mm 200 N 75 mm 0C ABM TS = - = 300ABT = (b) From free-body diagram of lever BCD ( )0: 200 N 0.6 300 N 0x xF CS = + + = 380 N or 380 Nx xC = - =C ( )0: 0.8 300 N 0y yF CS = + = N240orN240 =-= yyC C Then ( ) ( )2 22 2 380 240 449.44 Nx yC C C= + = + = and °= - - == -- 276.32 380 240 tantan 11 x y C C q or 449 N=C 32.3°

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Ejercicio.

  • 1. Con P = 191 N Del diagrama de cuerpo libre tenemos: Para la parte a del diagrama de cuerpo libre tomaremos la parte BCD Para la parte b del diagrama de cuerpo libre tomaremos la parte BCD S: Complete Online Solutions Manual Organization System echanicsfor Engineers: Statics and Dynamics, 8/e, Ferdinand P. Beer, E. Russell Johnston, Jr., er 4, Solution 19. Body Diagram: (a) From free-body diagram of lever BCD ( ) ( )0: 50 mm 200 N 75 mm 0C ABM TS = - = 300ABT = (b) From free-body diagram of lever BCD ( )0: 200 N 0.6 300 N 0x xF CS = + + = 380 N or 380 Nx xC = - =C ( )0: 0.8 300 N 0y yF CS = + = N240orN240 =-= yyC C Then ( ) ( )2 22 2 380 240 449.44 Nx yC C C= + = + = and °= - - == -- 276.32 380 240 tantan 11 x y C C q or 449 N=C 32.3° MOS: CompleteOnlineSolutionsManual Organization System apter 4, Solution 19. ee-Body Diagram: (a) From free-body diagram of lever BCD ( ) ( )0: 50 mm 200 N 75 mm 0C ABM TS = - = 300ABT = (b) From free-body diagram of lever BCD ( )0: 200 N 0.6 300 N 0x xF CS = + + = 380 N or 380 Nx xC = - =C ( )0: 0.8 300 N 0y yF CS = + = N240orN240 =-= yyC C Then ( ) ( ) 2 22 2 380 240 449.44 Nx yC C C= + = + = and °= - - == -- 276.32 380 240 tantan 11 x y C C q or 449 N=C 32.3° mpleteOnlineSolutionsManual Organization System , Solution 19. Diagram: (a) From free-body diagram of lever BCD ( ) ( )0: 50 mm 200 N 75 mm 0C ABM TS = - = 300ABT = (b) From free-body diagram of lever BCD ( )0: 200 N 0.6 300 N 0x xF CS = + + = 380 N or 380 Nx xC = - =C ( )0: 0.8 300 N 0y yF CS = + = N240orN240 =-= yyC C Then ( ) ( ) 2 22 2 380 240 449.44 Nx yC C C= + = + = and °= - - == -- 276.32 380 240 tantan 11 x y C C q or 449 N=C 32.3° COSMOS: CompleteOnlineSolutionsManual Organization System Chapter 4, Solution 19. Free-Body Diagram: (a) From free-body diagram of lever BCD ( ) ( )0: 50 mm 200 N 75 mm 0C ABM TS = - = 300ABT = (b) From free-body diagram of lever BCD ( )0: 200 N 0.6 300 N 0x xF CS = + + = 380 N or 380 Nx xC = - =C ( )0: 0.8 300 N 0y yF CS = + = N240orN240 =-= yyC C Then ( ) ( )2 22 2 380 240 449.44 Nx yC C C= + = + = and °= - - == -- 276.32 380 240 tantan 11 x y C C q or 449 N=C 32.3° te Online Solutions Manual Organization System olution 19. iagram: (a) From free-body diagram of lever BCD ( ) ( )0: 50 mm 200 N 75 mm 0C ABM TS = - = 300ABT = (b) From free-body diagram of lever BCD ( )0: 200 N 0.6 300 N 0x xF CS = + + = 380 N or 380 Nx xC = - =C ( )0: 0.8 300 N 0y yF CS = + = N240orN240 =-= yyC C Then ( ) ( )2 22 2 380 240 449.44 Nx yC C C= + = + = and °= - - == -- 276.32 380 240 tantan 11 x y C C q or 449 N=C 32.3° s Manual Organization System (a) From free-body diagram of lever BCD ( ) ( )0: 50 mm 200 N 75 mm 0C ABM TS = - = 300ABT = (b) From free-body diagram of lever BCD ( )0: 200 N 0.6 300 N 0x xF CS = + + = 380 N or 380 Nx xC = - =C ( )0: 0.8 300 N 0y yF CS = + = N240orN240 =-= yyC C Then ( ) ( )2 22 2 380 240 449.44 Nx yC C C= + = + = and °= - - == -- 276.32 380 240 tantan 11 x y C C q or 449 N=C 32.3°