For a certain steel alloy, the yield strength is 560 MPa and the Young’s modulus is 200 GPa. What is the maximum load that may be applied to a specimen with a cross sectional area of without plastic deformation?
If we apply the load on a given cross section it will create the stress. If we gradually increase the load, stress will gradually increases. Once the stress value reaches the yield strength value 560 MPa then the specimen starts deforming plastically. In orders to prevent any plastic deformation in the specimen the stress should be less than 560 MPa. The maximum force is nothing but 560*cros sectional area(in mm^2).then we will get the force value in Newtons(N).
For a certain steel alloy, the yield strength is 560 MPa and the Young’s modulus is...
For a brass alloy, the stress at which plastic deformation begins is 345 MPa and the modulus of elasticity is 103 GPa. What is the maximum load that may be applied to a specimen with a cross-sectional area of 130 mm without plastic deformation?
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A cylindrical specimen of some metal alloy having an elastic modulus of 121 GPa and an original cross-sectional diameter of 4.7 mm will experience only elastic deformation when a tensile load of 2400 N is applied. Calculate the maximum length of the specimen before deformation if the maximum allowable elongation is 0.41 mm.
A cylindrical specimen of some metal alloy having an elastic modulus of 120 GPa and an original cross-sectional diameter of 3.0 mm will experience only elastic deformation when a tensile load of 2400 N is applied. Calculate the maximum length of the specimen before deformation if the maximum allowable elongation is 0.47 mm.
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