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Chapter Outline Shigley’s Mechanical Engineering Design.

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Presentation on theme: "Chapter Outline Shigley’s Mechanical Engineering Design."— Presentation transcript:

1 Chapter Outline Shigley’s Mechanical Engineering Design

2 Statically Indeterminate Problems
A system is overconstrained when it has more unknown support (reaction) forces and/or moments than static equilibrium equations. Such a system is said to be statically indeterminate. The extra constraint supports are call redundant supports. To solve, a deflection equation is required for each redundant support. Shigley’s Mechanical Engineering Design

3 Statically Indeterminate Problems
Example of nested springs One equation of static equilibrium Deformation equation Use spring constant relation to put deflection equation in terms of force Substituting into equilibrium equation, Fig. 4–15 Shigley’s Mechanical Engineering Design

4 Procedure 1 for Statically Indeterminate Problems
1. Choose the redundant reaction(s) 2. Write the equations of static equilibrium for the remaining reactions in terms of the applied loads and the redundant reaction(s). 3. Write the deflection equation(s) for the point(s) at the locations of the redundant reaction(s) in terms of the applied loads and redundant reaction(s). 4. Solve equilibrium equations and deflection equations simultaneously to determine the reactions. Shigley’s Mechanical Engineering Design

5 Example 4-14 Fig. 4–16 Shigley’s Mechanical Engineering Design

6 Example 4-14 Shigley’s Mechanical Engineering Design

7 Example 4-14 Shigley’s Mechanical Engineering Design

8 Example 4-14 Shigley’s Mechanical Engineering Design

9 Example 4-14 Shigley’s Mechanical Engineering Design

10 Example 4-14 Shigley’s Mechanical Engineering Design

11 Example 4-14 Shigley’s Mechanical Engineering Design

12 Procedure 2 for Statically Indeterminate Problems
1. Write the equations of static equilibrium in terms of the applied loads and unknown restraint reactions. 2. Write the deflection equation in terms of the applied loads and unknown restraint reactions. 3. Apply boundary conditions to the deflection equation consistent with the restraints. 4. Solve the set of equations. Shigley’s Mechanical Engineering Design

13 Example 4-15 Fig. 4–17 Shigley’s Mechanical Engineering Design

14 Example 4-15 Fig. 4–17 Shigley’s Mechanical Engineering Design

15 Example 4-15 Shigley’s Mechanical Engineering Design

16 Example 4-15 Shigley’s Mechanical Engineering Design

17 Example 4-15 Shigley’s Mechanical Engineering Design

18 Example 4-15 Shigley’s Mechanical Engineering Design

19 Example 4-15 Shigley’s Mechanical Engineering Design

20 Four categories of columns Long columns with central loading
Compression Members Column – A member loaded in compression such that either its length or eccentric loading causes it to experience more than pure compression Four categories of columns Long columns with central loading Intermediate-length columns with central loading Columns with eccentric loading Struts or short columns with eccentric loading Shigley’s Mechanical Engineering Design

21 Long Columns with Central Loading
When P reaches critical load, column becomes unstable and bending develops rapidly Critical load depends on end conditions Fig. 4–18 Shigley’s Mechanical Engineering Design

22 For pin-ended column, critical load is given by Euler column formula,
Applies to other end conditions with addition of constant C for each end condition (4-42) (4-43) Fig. 4–18 Shigley’s Mechanical Engineering Design

23 Recommended Values for End Condition Constant
Fixed ends are practically difficult to achieve More conservative values of C are often used, as in Table 4-2 Table 4–2 Shigley’s Mechanical Engineering Design

24 Long Columns with Central Loading
Using I = Ak2, where A is the area and k is the radius of gyration, Euler column formula can be expressed as l/k is the slenderness ratio, used to classify columns according to length categories. Pcr/A is the critical unit load, the load per unit area necessary to place the column in a condition of unstable equilibrium. Shigley’s Mechanical Engineering Design

25 Plotting Pcr/A vs l/k, with C = 1 gives curve PQR
Euler Curve Plotting Pcr/A vs l/k, with C = 1 gives curve PQR Fig. 4–19 Shigley’s Mechanical Engineering Design

26 Long Columns with Central Loading
Tests show vulnerability to failure near point Q Since buckling is sudden and catastrophic, a conservative approach near Q is desired Point T is usually defined such that Pcr/A = Sy/2, giving Fig. 4–19 Shigley’s Mechanical Engineering Design

27 Condition for Use of Euler Equation
For (l/k) > (l/k)1, use Euler equation For (l/k) ≤ (l/k)1, use a parabolic curve between Sy and T Fig. 4–19 Shigley’s Mechanical Engineering Design

28 Intermediate-Length Columns with Central Loading
For intermediate-length columns, where (l/k) ≤ (l/k)1, use a parabolic curve between Sy and T General form of parabola If parabola starts at Sy, then a = Sy If parabola fits tangent to Euler curve at T, then Results in parabolic formula, also known as J.B. Johnson formula Fig. 4–19 Shigley’s Mechanical Engineering Design

29 Columns with Eccentric Loading
For eccentrically loaded column with eccentricity e, M = -P(e+y) Substituting into d2y/dx2=M/EI, Solving with boundary conditions y = 0 at x = 0 and at x = l Fig. 4–20 Shigley’s Mechanical Engineering Design

30 Columns with Eccentric Loading
At midspan where x = l/2 Fig. 4–20 Shigley’s Mechanical Engineering Design

31 Columns with Eccentric Loading
The maximum compressive stress includes axial and bending Substituting Mmax from Eq. (4-48) Using Syc as the maximum value of sc, and solving for P/A, we obtain the secant column formula Shigley’s Mechanical Engineering Design

32 ec/k2 is the eccentricity ratio
Secant Column Formula Secant Column Formula ec/k2 is the eccentricity ratio Design charts of secant column formula for various eccentricity ratio can be prepared for a given material strength Fig. 4–21 Shigley’s Mechanical Engineering Design

33 Example 4-16 Shigley’s Mechanical Engineering Design

34 Example 4-16 Shigley’s Mechanical Engineering Design

35 Example 4-17 Shigley’s Mechanical Engineering Design

36 Example 4-17 Shigley’s Mechanical Engineering Design

37 Example 4-18 Shigley’s Mechanical Engineering Design

38 Example 4-19 Shigley’s Mechanical Engineering Design

39 Example 4-19 Shigley’s Mechanical Engineering Design

40 Struts or Short Compression Members
Strut - short member loaded in compression If eccentricity exists, maximum stress is at B with axial compression and bending. Note that it is not a function of length Differs from secant equation in that it assumes small effect of bending deflection If bending deflection is limited to 1 percent of e, then from Eq. (4-44), the limiting slenderness ratio for strut is Fig. 4–22 Shigley’s Mechanical Engineering Design

41 Example 4-20 Fig. 4–23 Shigley’s Mechanical Engineering Design

42 Example 4-20 Shigley’s Mechanical Engineering Design

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