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MECHANICS OF MATERIALS

MECHANICS OF MATERIALS. CO 1: Ability to DETERMINE the stresses, strain and deformation of members in simple one-dimensional elastic system. Chapter 1: Stress. By: ROSHAZITA CHE AMAT. Objectives. Determine the internal resultant loadings in the body (principle of statics).

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MECHANICS OF MATERIALS

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  1. MECHANICS OF MATERIALS CO 1: Ability to DETERMINE the stresses, strain and deformation of members in simple one-dimensional elastic system. Chapter 1: Stress By: ROSHAZITA CHE AMAT

  2. Objectives • Determine the internal resultant loadings in the body (principle of statics). • Applications of the analysis and design of members subjected to an axial load or direct shear (normal and shear stress).

  3. Introduction Mechanics of materials is a study of the relationship between the external loads on a body and the intensity of the internal loads within the body. This subject also involves the deformationsand stability of a body when subjected to external forces.

  4. Equilibrium of a Deformable Body External Forces Surface Forces - caused by direct contact of other body’s surface Body Forces - other body exerts a force without contact

  5. Equilibrium of a Deformable Body Reactions Surface forces developed at the supports/points of contact between bodies.

  6. Equilibrium of a Deformable Body Equations of Equilibrium Equilibrium of a body requires a balance of forcesand a balance of moments For a body with x, y, z coordinate system with origin O, Best way to account for these forces is to draw the body’s free-body diagram (FBD).

  7. Equilibrium of a Deformable Body Internal Resultant Loadings Objective of FBD is to determine the resultant force and moment acting within a body. In general, there are 4 different types of resultant loadings: a) Normal force, N b) Shear force, V c) Torsional moment or torque, T d) Bending moment, M

  8. Example 1 Determine the resultant internal loadings acting on the cross section at C of the beam.

  9. Solution: FBD Distributed loading at C is found by proportion, Magnitude of the resultant of the distributed load, which acts from C

  10. Solution: Equations of Equilibrium Applying the equations of equilibrium we have

  11. Example 2 Determine the resultant internal loadings acting on the cross section at B of the pipe. The pipe has a mass of 2 kg/m and is subjected to both a vertical force of 50 N and a couple moment of 70 N·m at its end A. It is fixed to the wall at C.

  12. Solution Free-Body Diagram Calculating the weight of each segment of pipe, Applying the six scalar equations of equilibrium,

  13. Solution

  14. Stress Distributionof internal loading is important in mechanics of materials. We will consider the material to be continuous. This intensityof internal force at a point is called stress.

  15. Stress Normal Stress σ Forceper unit area acting normal to ΔA Shear Stressτ Force per unit areaacting tangent toΔA

  16. Average Normal Stress in an Axially Loaded Bar When a cross-sectional area bar is subjected to axial force through the centroid, it is only subjected to normal stress. Stress is assumed to be averaged over the area.

  17. Average Normal Stress in an Axially Loaded Bar Average Normal Stress Distribution When a bar is subjected to a constant deformation, σ = average normal stressP = resultant normal forceA = cross sectional area of bar

  18. Average Normal Stress in an Axially Loaded Bar Equilibrium 2 normal stress components that are equalin magnitude but opposite in direction.

  19. Example 3 The bar has a constant width of 35 mm and a thickness of 10 mm. Determine the maximum average normal stress in the bar when it is subjected to the loading shown.

  20. Solution: By inspection, different sections have different internal forces.

  21. Solution: Graphically, the normal force diagram is as shown. By inspection, the largest loading is in region BC,

  22. Solution: Since the cross-sectional area of the bar is constant, the largest average normal stress is

  23. Example 4 The casting is made of steel that has a specific weight of . Determine the average compressive stress acting at points A and B.

  24. Example 4 Solution: By drawing a free-body diagram of the top segment,the internal axial force P at the section is The average compressive stress becomes

  25. Average Shear Stress The average shear stress distributed over each sectioned area that develops a shear force. τ = average shear stressP = internal resultant shear forceA = area at that section

  26. Average Shear Stress 2 different types of shear: a) Single Shear b) Double Shear

  27. Example 5 The inclined member is subjected to a compressive force of 3000 N. Determine the average compressive stress along the smooth areas of contact defined by AB and BC, and the average shear stress along the horizontal plane defined by EDB.

  28. Solution: The compressive forces acting on the areas of contact are The shear force acting on the sectioned horizontal plane EDB is

  29. Average compressive stresses along the AB and BC planes are Average shear stress acting on the BD plane is

  30. Allowable Stress Many unknown factors that influence the actual stress in a member. A factor of safety is needed to obtained allowable load. The factor ofsafety (F.S.) is a ratio of the failure load divided by the allowableload

  31. Example 6 The control arm is subjected to the loading. Determine to the nearest 5 mm the required diameter of the steel pin at C if the allowable shear stress for the steel is . Note in the figure that the pin is subjected to double shear.

  32. Solution: For equilibrium we have

  33. The pin at C resists the resultant force at C. Therefore, The pin is subjected to double shear, a shear force of 15.205 kN acts over its cross-sectional area between the arm and each supporting leaf for the pin. The required area is Use a pin with a diameter of d = 20 mm. (Ans)

  34. Example 7 The rigid bar AB supported by a steel rod AC having a diameter of 20 mm and an aluminum block having a cross sectional area of 1800 mm2. The 18-mm-diameter pins at A and C are subjected to single shear. If the failure stress for the steel and aluminum is and respectively, and the failure shear stress for each pin is , determine the largest load P that can be applied to the bar. Apply a factor of safety of F.S. = 2.

  35. Solution: The allowable stresses are There are three unknowns and we apply the equations of equilibrium,

  36. We will now determine each value of P that creates the allowable stress in the rod, block, and pins, respectively. For rod AC, Using Eq. 1, For block B, Using Eq. 2,

  37. For pin A or C, Using Eq. 1, When P reaches its smallest value (168 kN), it develops the allowable normal stress in the aluminium block. Hence,

  38. CO 1: Ability to DETERMINE the stresses, strain and deformation of members in simple one-dimensional elastic system.

  39. THANK YOU

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