simple stress: normal stress
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Mechanics of Deformable BodiesMapúa Institute of Technology
MEC32/A1 Group 1 4Q 2014
MAGBOJOS, Redentor V. ; RIGOR, Lady Krista V. ; SALIDO, Lisette S.
Major Divisions of Mechanics
1. Mechanics of Rigid Bodies• Engineering mechanics
• Study of external forces and motions with particles and rigid bodies
• rigid body does not change in size and shape after applying a force
• Statics and dynamics
2. Mechanics of Deformable Bodies• Strength of materials
• Study of internal effects caused by external loads on deformable bodies
• deformable body objects that can stretch, bend, or twist
3. Mechanics of Fluids Hydraulics
Importance of studying internal effects on objects
SAFE AND SUCCESSFUL
DESIGNStrength, Stiffness, Stability
Simple Stress: Normal StressMapúa Institute of Technology
MEC32/A1 Group 1 4Q 2014MAGBOJOS, Redentor V. ; RIGOR, Lady Krista V. ; SALIDO, Lisette S.
Stress
Stress
Intensity of internal force
Unit strength of body
Vector quantity (magnitude + direction)
Force per unit area to structural members that are subjected to external forces
Describes and predicts the elastic deformation of a body
Simple Stress
1. Normal stress
• Tensile
• Compressive
2. Shearing stress
3. Bearing stress
𝑆𝑡𝑟𝑒𝑠𝑠 =𝐹𝑜𝑟𝑐𝑒
𝐴𝑟𝑒𝑎
𝑈𝑛𝑖𝑡: 𝑃𝑎 =𝑁
𝑚2; 𝑝𝑠𝑖;
𝑑𝑦𝑛
𝑐𝑚
Normal stress under axial loading
F axial force Passing through the centroid
Force acting perpendicular to the area
A cross sectional area
σ (sigma) normal stress Positive tension (elongate)
Negative compression (shorten)
𝝈 =𝑭
𝑨
Example 1-diameter steel hanger rod is used to hold up one
end of a walkway support beam. The force carried by the rod is 5000 lb. Determine the normal stress in the rod. (Disregard the weight of the rod.)
Cross-section of rod:
Normal stress in the rod:
𝐴 =𝜋
4𝑑2 =
𝜋
4(0.5 𝑖𝑛)2= 0.1964 𝑖𝑛2
𝜎 =𝐹
𝐴=
5000 𝑙𝑏
0.196 𝑖𝑛2= 25458.25 𝑝𝑠𝑖
𝜎= 25458.25 𝑝𝑠𝑖 ≈ 25500 𝑝𝑠𝑖Walkway
support beam
Hangerrod
Example 2Rigid bar ABC is supported by a pin at A and axial member (1), which has a cross sectional area of 540 mm2. The weight of rigid bar ABC can be neglected.
(a)
𝜎1 =𝐹1𝐴1
=(11 𝑘𝑁)(1000
𝑁𝑘𝑁
)
540 𝑚𝑚2 = 20.37 𝑁/ 𝑚𝑚2 𝜎1 = 20.37 𝑀𝑃𝑎
(a) Determine the normal stress in member (1) if a load of P = 8 kN is applied at C.
Σ𝑀𝐴 = 8 𝑘𝑁 2.2 𝑚 − 1.6 𝑚 𝐹1 = 0 ∴ 𝐹1 = 11 𝑘𝑁
Example 2Rigid bar ABC is supported by a pin at A and axial member (1), which has a cross sectional area of 540 mm2. The weight of rigid bar ABC can be neglected.
(b)
𝑃 = 19.64 𝑘𝑁
(b) If the maximum normal stress in member (1) must be limited to 50 MPa, what is the maximum load magnitude P that may be applied to the rigid bar at C?
Σ𝑀𝐴 = 2.2 𝑚 𝑃 − (1.6 𝑚)(27 𝑘𝑁)
∴ 𝐹1 = 𝜎1𝐴1 = 50 𝑀𝑃𝑎 540 𝑚𝑚2 = 50 𝑁/ 𝑚𝑚2 540 𝑚𝑚2
= 27000 N = 27 kN
Example 3
Draw FBD that expose the internal force in each of the three segments.
Axial segment (3)
Axial segment (2)
Axial segment (1)
𝐴 = 1083.33 𝑚𝑚2
A 50-mm-wide steel bar has axial loads applied at points B, C, and D. If the normal stress magnitude in the bar must not exceed 60 MPa, determine the minimum thickness that can be used for the bar.
Σ𝐹𝑥 = −𝐹3 + 25 𝑘𝑁 = 0∴ 𝐹𝑥 = 25 𝑘𝑁 (𝑇)
Σ𝐹𝑥 = −𝐹2 − 40𝑘𝑁 + 25 𝑘𝑁 = 0
∴ 𝐹𝑥 = −15 𝑘𝑁 = 15 𝑘𝑁 (𝐶)
Σ𝐹𝑥 = −𝐹1 + 80 𝑘𝑁 − 40𝑘𝑁+25 𝑘𝑁 = 0
∴ 𝐹𝑥 = 65 𝑘𝑁(𝑇)
𝜎 =𝐹
𝐴∴ 𝐴 ≥
𝐹
𝜎
=(65 𝑘𝑁)(1000 𝑁/𝑘𝑁)
(60 𝑁/ 𝑚𝑚2)
Example 4The homogeneous bar shown is supported by a smooth pin at C and a cable that runs from A to B around the smooth peg at D. Find the stress in the cable if its diameter is 0.6 inch and the bar weighs 6000 lb.
Example 5
Rigid bar ABC is supported by a pin at A and axial member (1), which has a cross sectional area of 540 mm2. The weight of rigid bar ABC can be neglected.
Determine the largest weight W that can be supported by two wires. The stress in either wire is not to exceed 30 ksi. The cross-sectional areas of wires AB and AC are 0.4 in2 and 0.5 in2, respectively.
Example 6
For the truss shown, calculate the stresses in members CE, DE, and DF. The cross-sectional area of each member is1.8 in2. Indicate tension (T) or compression (C).
Wrap up! Strength of materials is the study of internal effects
caused by external loads on deformable bodies.
Stress is the strength of internal force. It is a vectorquantity.
The direction of normal stress is denoted by a sign (positive tension, negative compression).
σ = F / A
The axial force P is perpendicular to cross-sectional area A.
References
1. Gonzales, Divina R. (n.d.) Simple Stress [Class Handout]. Mechanics of Deformable Bodies, Mapúa Institute of Technology, Intrauros, Manila.
2. Philpot, Timothy A. (2008). Mechanics of Materials: An Integrated Learning System. USA: John Wiley & Sons, Inc.
3. Verterra, Romel. (2014). Normal Stresses. Retrieved from http://www.mathalino.com/reviewer/mechanics-and-strength-of-materials/normal-stresses
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