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Diffstat (limited to '3772/CH12/EX12.8')
| -rw-r--r-- | 3772/CH12/EX12.8/Ex12_8.sce | 78 |
1 files changed, 78 insertions, 0 deletions
diff --git a/3772/CH12/EX12.8/Ex12_8.sce b/3772/CH12/EX12.8/Ex12_8.sce new file mode 100644 index 000000000..27215730d --- /dev/null +++ b/3772/CH12/EX12.8/Ex12_8.sce @@ -0,0 +1,78 @@ +// Problem no 12.8,Page No.292 + +clc;clear; +close; + +L=8 //m //span +W=24*10**3 //N/m //U.D.L +y=2*10**-2 //m //deflection +E=20*10**9 +I=10**-5 //m**4 + +//Calculations + +//The Downward deflection at C Due to u.d.l +//Y_c=5*W*L**3*(384*E*I)**-1 + +//The Upward Deflection at C due to prop Reaction P +//Y_c_1=P*L**3*(48*E*I)**-1 + +//Since the prop is at the same level as end supports +//Y_c_1=Y_c +P_1=5*W*8**-1*10**-3 //KN + +//The reaction at A and B is equal +R_a=(24-15)*2**-1 +R_b=R_a; +//Shear Force at B +V_B=4.5 //KN + +//Shear Force at C +V_C1=4.5-24*2**-1 +V_C2=4.5-24*2**-1+15 + +//Shea rForce at A +V_A=-4.5 //KN + +//B.M at C due to u.d.l +M_C1=W*L*8**-1*10**-3 //KN*m + +//B.M due to only prop reaction P=15 KN +P=15 +M_C2=-P*L*4**-1 //KN*m + +//B.M at D +M_D=4.5*1.5-24*8**-1*1.5**2*2**-1 + +//In second case prop sinks by 2 cm +//Y_c-Y_c_1=2 + +//So Further simplifying and sunstituting values in above equation we get +P=-(2*100**-1-(5*W*L**3*(384*E*I)**-1))*(L**3*(48*E*I)**-1)**-1 + +//Let Each end reaction be X +X=(24-14.625)*2**-1 + +//Result +printf("prop reaction is %.2f",P_1);printf(" KN") +printf("\n The End Reaction is %.2f",X);printf(" KN") + +//Plotting the Shear Force Diagram +subplot(2,1,1) +X1=[0,4,4,8,8] +Y1=[V_B,V_C1,V_C2,V_A,0] +Z1=[0,0,0,0,0] +plot(X1,Y1,X1,Z1) +xlabel("Length x in m") +ylabel("Shear Force in kN") +title("the Shear Force Diagram") + +//Plotting the Bendimg Moment Diagram +subplot(2,1,2) +X2=[0,4,4] +Y2=[0,M_C1,0] +Z2=[0,0,0] +plot(X2,Y2) +xlabel("Lenght in m") +ylabel("Bending Moment in kN.m") +title("the Bending Moment Diagram") |