Concept explainers
Determine (a) the critical load for the square strut, (b) the radius of the round strut for which both struts have the same critical load. (c) Express the cross-sectional area of the square strut as a percentage of the cross-sectional area of the round strut. Use E = 200 GPa.
Fig. P10.13 and P10.14
(a)
Find the critical load of the square strut.
Answer to Problem 14P
The critical load of the square strut is
Explanation of Solution
The modulus of elasticity of the strut is
Determine the moment of inertia of the square strut
Substitute 25 mm for a.
Determine the critical load
Here, the modulus of elasticity is E and the length of the strut is L.
Substitute 200 GPa for E,
Therefore, the critical load of the square strut is
(b)
Find the radius of the round strut when the critical load is same for square strut and round strut.
Answer to Problem 14P
The radius of the round strut is
Explanation of Solution
The modulus of elasticity of the strut is
Determine the moment of inertia of the square strut
Here, the size of the square strut is a.
Substitute 25 mm for a.
Determine the critical load
Substitute 200 GPa for E,
The critical load of the square strut and the round strut is equal.
Determine the moment of inertia of the round strut
Substitute 64.3 kN for
Determine the radius of the round strut (c) using the relation.
Substitute
Therefore, the radius of the round strut is
(c)
Find the percentage of cross-sectional area of square strut to the cross-sectional area of round strut.
Answer to Problem 14P
The percentage of cross-sectional area of square strut to the cross-sectional area of round strut is
Explanation of Solution
The modulus of elasticity of the strut is
Find the cross sectional area of the square strut
Here, the size of the square strut is a.
Substitute 25 mm for a.
Find the cross sectional area of the round strut
Here, the radius of the round strut is c.
Substitute 14.27 mm for c.
Find the percentage of area of square strut to the area of round strut as follows;
Substitute
Therefore, the percentage of cross-sectional area of square strut to the cross-sectional area of round strut is
Want to see more full solutions like this?
Chapter 10 Solutions
EBK MECHANICS OF MATERIALS
- Each of the five struts shown consists of a solid steel rod. (a) Know-ing that strut (1) is of a 0.8-in. diameter, determine the factor of safety with respect to buckling for the loading shown. (b) Determine the diameter of each of the other struts for which the factor of safety is the same as the factor of safety obtained in part a. Use E=29 *106 psiarrow_forwardShow all work and unitsarrow_forward! Required information Each of the five struts shown consists of a solid steel rod with E= 200 GPa. Given: Po = 7.2 kN 900 mm Po (1) Po (2) Po (3) (5) Knowing that the strut of Fig. (1) is of a 20-mm diameter, determine the factor of safety with respect to buckling for the loading shown. (Round the final answer to two decimal places. You must provide an answer before moving the the next part.) The factor of safety isarrow_forward
- A load P is supported as shown by a steel pin that has been inserted in a short wooden member hanging from the ceiling. The ultimate strength of the wood used is 60 MPa in tension and 7.5 MPa in shear,while the ultimate strength of the steel is 145 MPa in shear. Knowing that b = 40 mm, c = 55 mm, and d = 12 mm, determine the load P if an overall factor of safety of 3.2 is desired.arrow_forwardProblem 13.1 Two wooden members of 80mm x 120mm uniform rectangular cross section are joined by the simple glued scarf splice shown. The angle of the joint is ß = 30 degrees and the glued joint has a capacity of 410 kPa against tension stresses and 680 kPa against shear stresses. Determine the largest centric load P that can be applied. P 80 mm 120 mm Parrow_forward5.arrow_forward
- An aluminum strut 2.50m long has a rectangular section 60mm by 30mm. A bolt through each end secures the strut so that it acts as a hinged column about an axis perpendicular to the 60 mm dimension and as a fixed ended column about an axis perpendicular to the 30mm dimension. Determine the safe central load using a factor of safety of 2.5 and E = 70 Gpa.arrow_forwardThe steel frame shown has a diagonal brace BD with an area of 1612 sq.mm. Determine the largest allowable load P (in N) if the change in length of member BD is not to exceed 1.27 mm. Use x = 4.4m, y = 5.76m, and E = 197 Gpa. Express your answer in four decimal places. ... B D X.arrow_forwardTwo 6-in.-wide wooden boards are to be joined by splice plates that will be fully glued on the contact surfaces. The glue to be used can safely provide a shear strength of 130 psi. Determine the smallest allowable length L that can be used for the splice plates for an applied load of P = 18 kips. Note that a gap of 0.5 in. is required between boards (1) and (2). P 6 in. (1) 0.5 in. O 27.22 in. O 21.27 in. O 32.88 in. O 29.62 in. O 23.58 in. (2)arrow_forward
- The steel frame (E = 200 GPa) shown has a diagonal brace BD with an area of 1920 mm2. Determine the largest allowable load P if the change in length of member BD is not to exceed 1.9 mm.The largest allowable load P isarrow_forwardThe steel frame shown has a diagonal brace BD with an area of 1548 sq.mm. Determine the largest allowable load P (in N) if the change in length of member BD is not to exceed 1.35 mm. Use x = 4.59m, y = 5.76m, and E = 199.3 Gpa. Express your answer in four decimal places.arrow_forward9arrow_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