Concept explainers
For the beam and loading shown, determine (a) the equation of the elastic curve, (b) the deflection at point B, (c) the deflection at point D.
Fig. P9.44
(a)
Find the equation of the elastic curve.
Answer to Problem 44P
The equation of the elastic curve is,
Explanation of Solution
Show the free-body diagram of the beam AD as in Figure 1.
Determine the vertical reaction at point C by taking moment about point A.
Write the singularity equation for load intensity as follows;
Integrate the equation to find the shear force.
By definition, the change in bending moment with respect to change in distance is shear force. It is expressed as follows:
Integrate the equation to find the bending moment.
Write the second order differential equation as follows;
Here, the moment at the corresponding section is
Substitute
Integrate the equation with respect to x;
Integrate the Equation (2) with respect to x.
Boundary condition 1:
At the point D;
Substitute
Boundary condition 2:
At the point A;
Substitute
Boundary condition 3:
At the point C;
Substitute
Substitute
Therefore, the equation of the elastic curve is
(b)
Find the deflection at point B of the beam.
Answer to Problem 44P
The deflection at mid-point B of the beam is
Explanation of Solution
Refer to part (a);
Refer to Equation (4);
At point B;
Substitute
Therefore, the deflection at point B of the beam is
(c)
Find the deflection at point D of the beam.
Answer to Problem 44P
The deflection at mid-point D of the beam is
Explanation of Solution
Refer to part (a); Equation (4);
At point D;
Substitute
Therefore, the deflection at point D of the beam is
Want to see more full solutions like this?
Chapter 9 Solutions
EBK MECHANICS OF MATERIALS
- Determine the slope and deflection at D for the beam and loading shown (Fig. 8.33), knowing that the flexural rigidity of the beam is EI = 100 MN m². A 150 kN 2 m D Fig. 8.33 20 kN/m -8 m- Barrow_forwardAn overhang beam with negligible weight is loaded as shown. Knowing that the flexural rigidity of the beam is El = 2 × 105 kNm², (a) Reactions at A and B (a) determine the reactions at supports A and B, (b) derive the elastic (b) section AB curve for section AB, (c) derive the elastic curve for section BC, and v = (d) determine the deflection at point C. v = (c) section BC v' = 2 kN/m v = (d) m marrow_forwardPROBLEM 9.11 Mg (a) Determine the location and magnitude of the maximum deflection of * beam AB. (b) Assuming that beam AB is a W360 x 64, L = 3.5 m, and E = 200 GPa, calculate the maximum allowable value of the applied moment M, if the maximum deflection is not to exceed 1 mm. B = 45.3 kN · marrow_forward
- PROBLEM 9.14 For the beam and loading shown, knowing that a=2 m, w= 50 kN/m. and E = 200 GPa, determine (a) the slope at support A, (b) the deflection at point C. W310 x 38.7 L = 6 m- e = 8.18 x 10 rad Yc =11.78 mmarrow_forwardDetermine (i) the maximum deflection of the beam (ii) the location of maximum deflection Where; L = 1 P = 33N | = 3.3 x 108 mm4 E = 200 GPaarrow_forwardFor the beam and loading shown, determine (a) the equation of the elastic curve, (b) the slope at end A, (c) the deflection at the midpoint of the span. 司 x2 w = 4wo - L² В Aarrow_forward
- PROBLEM 9.11 Mo (a) Determine the location and magnitude of the maximum deflection of beam AB. (b) Assuming that beam AB is a W360 x 64, L = 3.5 m, and E = 200 GPa, calculate the maximum allowable value of the applied moment Mo if the maximum deflection is not to excecd I mm. Mo = 45.3 kN · m %3Darrow_forwardParrow_forwardFig. P9.78 E 9.79 and 9.80 For the uniform beam shown, determine (a) the reaction at A, (b) the reaction at B. ***** A Fig. P9.80 -L/2- Answer (a) 7 wL/128 1. (b)57 wL/128 1:9wL2/128. C -L/2- Barrow_forward
- For the beam and loading shown, use the double-integration method to determine (a) the equation of the elastic curve for the beam, (b) the location of the maximum deflection, and (c) the maximum beam deflection. Assume that El is constant for the beam. Let w = 13 kN/m, L = 4.0 m, E = 180 GPa, and I = 130 x 106 mm“. B L Answer: (b) х %3 m (c) Vmax mmarrow_forwardb. Determine the deflection of the beam at midpoint for the beam loading system shown in the figure given below : Take : E = 200 GN/m2 and I = 83 x 106 m. 20 N 30 N 10 N/m 10 m 5 m 10 m Fig. 10.arrow_forwardQ.4) Determine the deflection of the beam at point C. 7.arrow_forward
- Elements Of ElectromagneticsMechanical EngineeringISBN:9780190698614Author:Sadiku, Matthew N. O.Publisher:Oxford University PressMechanics of Materials (10th Edition)Mechanical EngineeringISBN:9780134319650Author:Russell C. HibbelerPublisher:PEARSONThermodynamics: An Engineering ApproachMechanical EngineeringISBN:9781259822674Author:Yunus A. Cengel Dr., Michael A. BolesPublisher:McGraw-Hill Education
- Control Systems EngineeringMechanical EngineeringISBN:9781118170519Author:Norman S. NisePublisher:WILEYMechanics of Materials (MindTap Course List)Mechanical EngineeringISBN:9781337093347Author:Barry J. Goodno, James M. GerePublisher:Cengage LearningEngineering Mechanics: StaticsMechanical EngineeringISBN:9781118807330Author:James L. Meriam, L. G. Kraige, J. N. BoltonPublisher:WILEY