ERT 348 Controlled Environment Design 1

1. ERT 348Controlled Environment Design 1 STRESS-STRAIN RELATIONSHIP

2. Introduction • The three most important principles are: • The stresses and strains are related by the materials properties, including the stress-strain curves for concrete and steel. • The distribution of strains must be compatible with the distorted shape of the cross-section. • The resultant forces developed by the section must balance the applied loads for static equilibrium.

3. MATERIAL PROPERTIES CONCRETE STEEL TIMBER

4. Assignment 1 • Determine the physical properties of the concrete, steel and timber materials. • Modulus of Elasticity • Coefficient of Thermal expansion • Grade • Strength • Poisson’s Ratio • Partial Safety Factors

5. PROPERTIES OF SECTIONS Centre of gravity or Centroid Moment of Inertia Section Modulus Shear Stress Bending Stress

6. Centre of gravity • A point which the resultant attraction of the earth eg. the weight of the object • To determine the position of centre of gravity, the following method applies: • Divide the body to several parts • Determine the area@ volume of each part • Assume the area @ volume of each part at its centre of gravity • Take moment at convenient axis to determine centre of gravity of whole body

7. 60mm 120mm 60mm 80mm 1 3 2 Example 1: • Density=8000 kg/m3 • Thick=10 mm • Determine the position of centre of gravity x mm W1= 0.08m x 0.06m x 0.01m x 8000kg/m3 x 10 N/kg = 3.84 N W2= 0.02m x 0.12m x 0.01m x 8000kg/m3 x 10 N/kg = 1.92 N W3= 0.12m x 0.06m x 0.01m x 8000kg/m3 x 10 N/kg = 5.76 N

8. Example 1: • Resultant, R = 3.84 +1.92 + 5.76 N = 11.52 N • Rx = 3.84 (30) + 1.92 (60+60) + 5.76 (120 + 60+30) • x = 1555/11.52 = 135 mm

9. Centroid • Centre of gravity of an area also called as centroid.

10. 60mm 120mm 60mm Example 1: 80mm 120mm 1 3 2 • x = 1944000/14400 = 135 mm

11. Moment of inertia, I • Or called second moment of area, I • Measures the efficiency of that shape its resistance to bending • Moment of inertia about the x-x axis and y-y axis. y d Unit : mm4 or cm4 x x b y

12. Moment of Inertia of common shapes • Rectangle at one edge • Iuu= bd3/3 • Ivv= db3/3 • Triangle • Ixx= bd3/36 • Inn= db3/6 v b d d x x u u n n v b

13. Moment of Inertia of common shapes y B • Ixx= Iyy = πd4/64 • Ixx = (BD3-bd3)/12 • Iyy = (DB3-db3)/12 y d x D x x x b y y

14. Principle of parallel axes • Izz = Ixx + AH2 • Example: b=150mm;d=100mm; H=50mm • Ixx= (150 x 1003)/12 = 12.5 x 106 mm4 • Izz = Ixx + AH2 = 12.5 x 106 + 15000(502) = 50 x 106 mm4 x x H z z

15. Example 2: • Calculate the moment of inertia of the following structural section H= 212mm 12mm 400mm 24mm 200mm

16. Solution • Ixx of web = (12 x4003)/12= 64 x 106 mm4 • Ixx of flange = (200x243)/12= 0.23 x 106 mm4 • Ixx from principle axes xx = 0.23 x106 + AH2 AH2 = 200 x 24 x 2122 = 215.7 x 106 mm4 Ixx from x-x axis = 216 x 106 mm4 • Total Ixx = (64 + 2 x 216) x106 =496 x 106 mm4

17. Section Modulus, Z • Second moment of area divide by distance from axis • Where c = distance from axis x-x to the top of bottom of Z. • Unit in mm3 • Example for rectangle shape: • Ixx = bd3/12, c = d/2, Zxx= Ixx/c = bd2/6

18. Section Modulus, Z • Z = 1/y • f = M/Z = My/I • Safe allowable bending moment, Mmax = f.Z where • f = bending stress • y = distance from centroid

19. Example 3 • A timber beam of rectangular cross section is 150mm wide and 300mm deep. The maximum allowable bending in tension and compression must not exceed 6 N/mm2. What maximum bending moment in N.mm? • Z= bd2/6 = 150 x 3002/6 = 2.25 x 106 mm3 • Mmax= f.Z = 6 x 2.25x106 = 13.5x106 Nmm2

20. If non-symmetrical sections Mrc = 1/y1 x compression stress Mrt = 1/y2 x tension stress Safe bending moment = f x least Z y1 x x y2

21. 120 24 235 300 x x 137 48 200 Example 4 • Figure shows an old type cast iron joist (in mm) with a tension flange of 9600 mm2, a compression flange 2880 mm2 and a web of 7200 mm2. • The safe stress in compression is 5 N/mm2 and in tension 2.5 N/mm2. What is the safe bending moment for the section? What safe uniform load will the beam carry on a 4.8m span.

22. Solution • x =∑ay/∑a = (2880x360 + 7200x198 + 9600x24) (2880 + 7200 + 9600) = 137 mm • Total Ixx = (120x243/12 + 2880x2232)+ (24x3003/12 + 7200x612) + (200x483/12 + 960x1132) = 348.57 x 106 mm4 • Mrt = 2.5 x 348.57 x 106 = 6.36x106 Nmm • Mcr= 5.0 x 348.57 x 106 = 7.42x106 Nmm • WL/8 = 6.36x106 Nmm • W= 6.36 x 8/4.8 = 10.6 kN

23. Elastic Shear Stress Distribution • The shear forces induced in a beam by an applied load system generate shear stresses in both the horizontal and vertical directions. • At any point in an elastic body, the shear stresses in two mutually perpendicular directions are equal to each other in magnitude.

24. Shear Stress

25. 50mm x x 200mm Example 5: Elastic Shear Stress • The rectangular beam shown in Figure is subject to a vertical shear force of 3.0 kN. • Determine the shear stress distribution throughout the depth of the section. A y y

26. Solution: 3 y=50mm 4 y=25mm 1 5 y=0mm 2

27. Answer:

28. Answer: • Average τ = V/A = 3 x 103/(50x200) = 0.3 N/mm2 • Maximum = 1.5 V/A = 1.5x0.3 = 0.45 N/mm2

29. Bending Stress Distribution • f=σ= bending stress = My/I

30. 50mm x x 200mm M= 2.0 kNm